Charging device with stress stored by charging that is initiated by externally applied force, and that being eventually released by heat due to charging saturation
Abstract
A secondary cell featuring transient rise in temp. once charged to saturation, to be coupled and thereby forming a composite structure with a charging assembly by mutual engagement of conductive contacts provided on either part, the force of union generated by the coupling will compress a thermosetting prestressed means which is a spring or otherwise prestressed element while the coupling brings the contacts into conduction by which the charging is initiated, the momentum prestressed thereby will be released once charging in the secondary cell reaches its saturation, and that followed by cutoff of the charging current to the secondary cell.
Claims
exact text as granted — not AI-modified1 . Charging Device with stress stored by charging that is initiated by externally applied force and the stored stress being eventually released by heat due to charging saturation, comprising a secondary cell which is characterized by a transient rise in temp. once charged to its saturation, and which can be one of a nickel/cadmium, nickel/hydrogen, nickel/zinc, nickel/iron base battery to be matched in a charging assembly therefor and both executed per specific design, with conductive contacts provided on both parts for the transmission of electric power, force of union prevailing when both are combined together will suffice to compress spring or other prestress element to be released of stress previously stored in the wake of ambient heat, charging is made when contacts on both parts are enabled one on one, forming a coupled pair, and once the charging reaches its saturation, as confirmed by a testing device provided therefor, addressed to the secondary cell set, by the working of a mechanical thermosetting prestress device the stress previously stored will be released forthwith, and that sufficient to unmake the contact-to-contact coupling theretofore established between the secondary cell set and the charging assembly, including alternatively unmaking of contacts on the secondary cell set alone, or those on or within the charging assembly alone, and charging current to the secondary cell is cut off at the same time.
The cell charging saturation testing device as mentioned in the foregoing can be any of a variety of temperature sensors with the charging assembly and the secondary cell set being combined vertically upwards and uncoupled downwards, or alternatively combined downwardly and uncoupled upwardly in the vertical orientation; or still combined and uncoupled horizontally; or still combined and uncoupled in otherwise angular setting relative to each other, whereof the prestressed thermosetting means comprises:
(1) Solenoidal coils and flux loop installed way between the charging assembly and the secondary battery cell set, interposed with a compression spring in which compression energy may be stored;
(2) Thermosetting flip-flop binary metal spring sheets;
(3) Thermosetting flip-flop binary metal retainer and spring;
(4) Having resilient positioning mortise joint and dovetail coupling provided on both the charging assembly and the secondary battery cell set to localize charging operation, and that complemented with thermo-setting memory alloy or binary metal structure to be deformed by heat expansion once charging that is taking place in the secondary cell set has reached its saturation, when that occurs conductive contacts binding the secondary cell set with the charging assembly are brought apart, including alternatively unmaking of contacts solely in the secondary cell set, or in the charging assembly, or still inside the charging assembly, and power supply is blocked forthwith;
(5) Having magnetic core and permanent magnet installed respectively in the charging assembly and in the secondary cell set to localize charging operation, and that complemented with thermosetting memory alloy or binary metal structure only to get deformed purposedly due to heat expansion once charging that is taking place in the secondary cell set has reached its saturation, when that occurs conductive contacts binding the secondary cell set with the charging assembly are brought apart, including alternatively unmaking of contacts solely in the secondary cell set, or in the charging assembly, or still inside the charging assembly, and power supply is blocked forthwith;
(6) Having conductive contacts on the charging assembly and conductive contacts on the secondary cell set retained resiliently in position with respect to each other, forming thereby a pair, and having thermosetting memory alloy or binary metal sheets or annular spring units arranged down the secondary cell set once the cell set is loaded in place, so that a secured attachment is made, so that thermal deformation which occurs when the secondary cell set is charged to saturation will bring the secondary cell set and the charging assembly apart from each other by disengagement of the pair of contacts, including alternatively unmaking of contacts solely in the secondary cell set, or in the charging assembly, or still inside the charging assembly, and power supply is blocked forthwith;
(7) Having thermosetting memory alloy or binary metal processed into conductive contacts for the charging assembly, meant, in addition to getting coupled to conductive contacts on the secondary cell set, but also for holding the secondary cell set in position, such conductive contacts for the charging assembly, on being heated by saturation of charging of the secondary cell set, will get deformed to release hold of the secondary cell set which will then fall straight off the conductive contact and power supply is blocked forthwith;
(8) Having the contacts for the charging assembly materialized by heat transformation of the memory alloy or binary metal, together with another set of contacts likewise functioning as a prestress spring coupled to the conductive contacts on the secondary cell set, and to hold in place the same secondary cell set at the same time, so that when conductive contacts on the charging assembly, on receiving heat from the effect of saturation of charging of the secondary cell set, becomes deformed to release hold of the secondary cell set, the interactive coupling of contacts between the secondary cell set and the charging assembly are defeated by the prestressed conductive contact functioning like a prestressed spring, or alternatively the defeat be with respect to the secondary cell set only, or to the charging assembly only, or to internal contacts of the charging assembly only, power supply is blocked forthwith, it is to be noted that both sets of conductive contacts of the charging assembly may be those featuring thermosetting or prestressed spring traits;
(9) Having thermosetting memory alloy or binary metal base processed into conductive contacts for the charging assembly serving, in addition to conductive coupling with correspondent contacts on the secondary cell set, to exhibit retention by which to hold the secondary cell set in place and, by the incorporation of pieces of or annular compression spring the same will attach to the secondary cell set when it is loaded in position, in secured compression, once the secondary cell set is charged to saturation so that the retentive contacts are deformed by the heat produced thereby and the secondary cell set itself is released from position, the compression spring will kick off interactive contacts between the secondary cell set and the charging assembly, including, alternatively, kicking off of contacts on the secondary cell set only, or of contacts on the charging assembly only, or of contacts within the charging assembly only, and power supply is blocked forthwith.
Structured accordingly, when the secondary cell is loaded into the charging assembly, force applied externally will compel the cell to bring contacts on both the charging assembly and the cell into conductive coupling whereupon charging to the cell begins, and that in turn brings the Battery Charging Saturation Testing Device to a testing state, once the cell is charged to saturation, then both the Charging Saturation Testing Device and the interfacing matched thereby will respond to reset both the charging assembly and the cell set to a released, that is, open state, and power supply to the secondary cell set is blocked forthwith.
2 . Charging Device with stress stored by charging that is initiated by externally applied force and the stored stress being eventually released by heat due to charging saturation, complete with a temp. sensor executed in the form of temp. switch laden in the secondary cell set, and comprising essentially:
Charging assembly H 101 : in plane or dovetail engagement with the secondary cell set H 102 , built in with D.C. power supply circuit, solenoidal coil W 101 and magnet core F 101 , as well as contacts P 101 , P 103 , P 105 serving to match the secondary cell set H 102 ; D.C. Power supply: either D.C. power supply straight or as converted from an A.C. source through rectification, serving to charge the secondary cell set through a charging circuit; Secondary cell set H 102 : enclosed by insulation casing, containing secondary cell B 101 and Temp. switch THS 101 as the Temp. Sensor, on the interfacing between the secondary cell set H 102 and the charging assembly H 101 is fitted a magnet core F 102 which forms a flux loop together with another magnet core F 101 complete with a solenoidal coil W 101 built into the charging assembly H 101 , plus conductive contacts P 102 , P 104 , P 106 for coupling to terminals of both polarities of the secondary cell within as well as correspondent contacts on the Temp. switch; Spring SP 101 , annular or in a piece, made of compressible substance, interposed between the charging assembly H 101 and the secondary cell set H 102 , meant to store prestress when both are pressed together, to be discharged when charging of the secondary cell B 101 has reached its saturation, followed by a temp. rise resulting in the Temp. switch THS 101 cutting off current outgoing from the solenoidal coil W 101 , whereupon correspondent contacts on both the secondary cell set and on the charging assembly are brought apart, including alternatively the unmaking of contacts on the secondary cell set only, or on the charging assembly only, or still within the charging assembly only; concurrent with cutoff of charging current inside the secondary cell set B 101 , spring SP 101 being installed with the secondary cell set H 102 or else with the charging assembly H 101 as preferred.
3 . Charging Device with stress stored by charging that is initiated by externally applied force and the stored stress being eventually released by heat due to charging saturation, whereof the D.C. power supply drives contacts P 101 , P 105 on the charging assembly H 101 and contacts P 102 , P 106 on the secondary cell set H 102 , into mutual conduction, and that in turn charges the secondary cell set B 101 , the temp. switch THS 101 in the secondary cell set H 102 can have one end thereof connected serially to the negative polarity of the secondary cell B 101 , the other end thereof connected by way of conductive contacts P 104 , P 103 to correspondent contacts on the charging assembly, further on to the solenoidal coil W 101 , note that the solenoidal coil W 101 may be optionally paralleled with a flywheel diode CR 102 and time delay capacitor C 100 , the solenoidal coil W 101 may have one end thereof connected to the positive polarity of the power supply, which is a D.C. power supply which is then seriesly connected with an isolation diode CR 101 in the forward direction, before being connected eventually to the positive conductive contact P 101 on the charging assembly H 101 .
4 . Charging Device with stress stored by charging that is initiated by externally applied force and the stored stress being eventually released by heat due to charging saturation according to claim 3 , incorporating optionally a second D.C. power supply V+′ may be provided to have its positive polarity connected to the positive end of the solenoidal coil W 101 , and to have its negative polarity connected in common with the negative polarity of the prime D.C. power supply in the charging assembly, in this execution series connection of an isolation diode CR 101 is dispensed with.
5 . Charging Device with stress stored by charging that is initiated by externally applied force and the stored stress being eventually released by heat due to charging saturation according to claim 2 , incorporating additionally an auxiliary conductive contact P 100 to the charging assembly H 101 , once charging in the secondary cell B 101 reaches its saturation with heat produced in the meantime due to a rise in temp. actuating the temp. switch THS 101 in the secondary cell set H 102 , magnetized current generated in the solenoidal coil W 101 will be cut off, and that resulting in a release of the prestress stored in the spring SP 101 , to the effect that contact-to-contact coupling between the secondary cell set and the charging assembly is defeated, including alternatively defeating of the contacts in the secondary cell set only, or of or within the charging assembly alone, and charging current to the secondary cell B 101 is cut off forthwith, but then contacts P 105 on the charging assembly H 101 are still maintained conductive with contacts P 106 on the secondary cell set H 102 , whereas the auxiliary contact P 100 that is additionally provided on the charging assembly H 101 , and in series by the intervention of a current limiting resistor R 101 with the power supply for charging purposes remains conductive with contact P 102 on the secondary cell set H 102 , such that a small current of predetermined magnitude is still maintained way from the power supply charging continually the secondary cell B 101 .
6 . Charging Device with stress stored by charging that is initiated by externally applied force and the stored stress being eventually released by heat due to charging saturation according to claim 1 , whereof the temp. sensor is executed in the form of a temp. switch installed in the charging assembly, and comprising essentially:
Charging assembly H 101 : in plane or dovetail engagement with the secondary cell set H 102 , built in with D.C. Power supply circuit, solenoidal coil W 101 and magnet core F 101 , as well as contacts P 101 , P 103 , P 105 serving to match the secondary cell set H 102 ; the charging assembly H 101 incorporates in addition a temp. switch THS 101 serving the purpose of a temp. sensor; D.C. power supply: either be a D.C. power supply straight or as converted from an A.C. source through rectification, serving to charge the secondary cell set through a charging circuit; Secondary cell set H 102 : enclosed in an isolation casing and incorporates a secondary cell B 101 , and equipped with a magnet core F 102 on its interfacing with the charging assembly H 101 to form a common flux loop with another magnet core F 101 furnished in the solenoidal coil W 101 inside the charging assembly H 101 , and comprising contacts P 102 , P 106 traced to positive, negative terminals of the secondary cell B 101 inside the isolated casing, contact P 102 being correspondent with contact P 101 on the charging assembly H 101 , contact P 106 being in common with contacts P 105 , P 103 on the charging assembly H 101 to form a triplicate pass; further a thermal shoe TC 101 serving to convey temp.; Spring SP 101 : annular or in a piece execution, made of compressible material, interposed between the charging assembly H 101 and the secondary cell set H 102 , meant to store prestress when both are pressed together, to be discharged when charging of the secondary cell B 101 has reached its saturation, followed by a temp. rise resulting in the temp. switch THS 101 cutting off current outgoing from the solenoidal coil W 101 , whereupon correspondent contacts on both the secondary cell set and on the charging assembly are brought apart, including alternatively the unmaking of contacts solely on the secondary cell set, or solely on the charging assembly, or still solely within the charging assembly, concurrent with cutoff of charging current inside the secondary cell set B 101 , spring SP 101 being installed with the secondary cell set H 102 or else with the charging assembly H 101 as preferred.
7 . Charging Device with stress stored by charging that is initiated by externally applied force and the stored stress being eventually released by heat due to charging saturation according to claim 6 , wherein it will be appreciated that once having brought conductive contacts P 101 , P 105 on the charging assembly H 101 into coupling match with contacts P 102 , P 106 on the secondary cell set H 102 , the D.C. power supply will proceed on to charge the secondary cell set B 101 , the temp. switch THS 101 inside the charging assembly H 101 has one end thereof in series with the auxiliary contact P 103 on the charging assembly H 101 , and the other end connected to the solenoidal coil W 101 , the power supply has its negative terminal connected to the negative conductive contact P 105 on the charging assembly H 101 , by lading the secondary cell set B 101 pointed to the conductive contact P 106 , conduction will be made first with the negative conductive contact P 105 on the charging assembly H 101 , thence with the auxiliary conductive contact P 103 , to thus form a triplicate common pass, the solenoidal coil W 101 may optionally be in parallel with a flywheel diode CR 102 and time delay capacitor C 100 , with one terminal thereof leading to the positive terminal of power supply, the positive terminal of the D.C. power supply, after linked to the solenoidal coil W 101 , is in forward series with an isolation diode CR 101 , before passing to the positive conductive contact P 101 on the charging assembly;
8 . Charging Device with stress stored by charging that is initiated by externally applied force and the stored stress being eventually released by heat due to charging saturation according to claim 7 , wherein it is also practicable to provide additionally a second D.C. power supply V+′, with its positive polarity going to the positive terminal of the solenoidal coil W 101 , and its negative terminal in series with the conductive contact of the temp. switch THS 101 before passing to the auxiliary contact P 105 , the negative polarity of the charging purpose D.C. power supply and the same polarity of the second D.C. power supply V+′ are merged in the charging assembly, thereby rendering unnecessary the provision of an isolation diode CR 101 .
9 . Charging Device with stress stored by charging that is initiated by externally applied force and the stored stress being eventually released by heat due to charging saturation according to claim 6 , wherein by the addition of an auxiliary conductive contact P 100 to the charging assembly H 101 , once the temp. switch THS 101 in the secondary cell set H 102 is driven to function due to a temp. rise occasioned by the saturation of charging of the secondary cell B 101 , magnetized current in the solenoidal coil W 101 will be cut off to release the prestress stored in the spring SP 101 , to follow that interactive coupling of contacts on both the secondary cell set and the charging assembly is defeated, including alternatively unmaking of the contacts of the secondary cell set alone, or of the charging assembly alone, or still inside the charging assembly alone, and the charging current in the secondary cell B 101 is cut off too, by maintaining contacts P 105 on the charging assembly H 101 conductive with contacts P 106 on the secondary cell set H 102 , plus the provision of an auxiliary conductive contact P 100 interposed in series between the power supply and the charging assembly, the conductive contact P 102 on the secondary cell set H 102 will be turned into conduction, so that a predetermined level of small current is still maintained from the power supply to the secondary coil set B 101 , making possible sustained charging at work.
10 . Charging Device with stress stored by charging that is initiated by externally applied force and the stored stress being eventually released by heat due to charging saturation according to any claim numbered 2 through 9 , whereof the temp. switch THS 101 may have one of its terminals connected to the positive electrode of the power supply for charging purposes or alternatively it may be provided independently, of which both terminals may serve only the purpose of controlling the solenoidal coil W 101 , and be matched to a complementary control circuit to serve the control purpose for which the present invention is intended.
11 . Charging Device with stress stored by charging that is initiated by externally applied force and the stored stress being eventually released by heat due to charging saturation according to claim 1 , whereof the temp. sensor is executed in the form of a flip-flop binary metal base thermosetting spring interposed between the secondary cell and the charging assembly, comprising essentially:
Charging assembly H 101 : in plane or dovetail coupling with the secondary cell set H 102 , built in with D.C. power supply circuit and with conductive contacts P 101 , P 105 for coupling with counterparts on the secondary cell; D.C. power supply: being a D.C. system straight or one converted from an A.C. system through rectification, serving to charge the secondary cell by way of a charging circuit; Secondary cell set H 102 : enclosed in an insulation casing, incorporating a secondary cell B 101 and conductive contacts P 102 , P 106 in line with the positive/negative terminals of the secondary cell B 101 ; on the interfacing of the secondary cell H 102 with the charging assembly H 101 is provided a thermo-resetting flip-flop binary metal spring TH 201 ; Thermo-resetting binary flip-flop metal spring TH 201 : comprising one or more pieces superposed in a same or opposite functional direction, interposed between the interfacings of the charging assembly H 101 with the secondary cell set H 102 , to convert the force applied on both when combined into stored stress to be released whenever the thermo-resetting flip-flop binary metal spring TH 201 resets itself due to heat prevailing by a rise in temp. due to charging of the secondary cell B 101 to its saturation, whereby correspondent contacts on both the secondary cell set and on the charging assembly are defeated, including alternatively unmaking of contacts solely on the secondary cell set or of those on the charging assembly or still those within the charging assembly, charging current in the secondary cell set blocked altogether, the thermo-resetting flip-flop binary metal spring TH 201 is to be installed into the charging assembly.
12 . Charging Device with stress stored by charging that is initiated by externally applied force and the stored stress being eventually released by heat due to charging saturation according to claim 11 , wherein by the addition of an auxiliary conductive contact P 100 to the charging assembly H 101 , to release the prestress stored in the thermo-resetting flip-flop binary metal spring TH 201 when it is reset by the heat which results from a rise in temp. as charging of the secondary cell B 101 reaches its saturation, so as to defeat the coupling of contacts on both the secondary cell set and the charging assembly, including alternatively unmaking of contacts solely on the secondary cell set or on the charging assembly or still within the charging assembly, so that charging current to the secondary cell B 101 is blocked forthwith, whereas conduction is still maintained way between the contacts P 101 on the charging assembly H 101 and contacts P 102 on the secondary cell set H 102 , so that by the addition of an auxiliary contact P 100 which is in series by a current limiting resistor R 101 with the power supply, conduction is made with the contact P 106 on the secondary cell set H 102 , thereby maintaining a small charging current as from the power supply to the secondary cell.
13 . Charging Device with stress stored by charging that is initiated by externally applied force and the stored stress being eventually released by heat due to charging saturation according to claim 1 , whereof the temp. sensor is executed in the form of a flip-flop binary metal base thermosetting spring interposed between the secondary cell and the charging assembly and comprising essentially:
Charging assembly H 101 : in plane or dovetail coupling with the secondary cell set H 102 , built in with D.C. power supply circuit and with conductive contacts P 101 , P 105 for coupling with counterparts on the secondary cell; D.C. power supply: being a D.C. system straight or one converted from an A.C. system through rectification, serving to charge the secondary cell by way of a charging circuit; Secondary cell set H 102 : enclosed in an insulation casing, incorporating a secondary cell B 101 and conductive contacts P 102 , P 106 in line with the positive/negative terminals of the secondary cell Bl 01 ; on the interfacing of the secondary cell H 102 with the charging assembly H 101 is provided a thermo-resetting flip-flop binary metal spring TH 201 ; Thermo-resetting binary flip-flop metal spring TH 201 : comprising one or more pieces superposed in a same or opposite functional direction, interposed between the interfacings of the charging assembly H 101 with the secondary cell set H 102 , to convert the force applied on both when combined into stored stress to be released whenever the thermo-resetting flip-flop binary metal spring TH 201 resets itself due to heat prevailing by a rise in temp. due to charging of the secondary cell B 101 to its saturation, whereby correspondent contacts on both the secondary cell set and on the charging assembly are defeated, including alternatively unmaking of contacts solely on the secondary cell set or of those on the charging assembly or still those within the charging assembly, charging current in the secondary cell set blocked altogether, the thermo-resetting flip-flop binary metal spring TH 201 is to be installed into the charging assembly.
14 . Charging Device with stress stored by charging that is initiated by externally applied force and the stored stress being eventually released by heat due to charging saturation according to claim 13 , wherein by the addition of an auxiliary conductive contact P 100 to the charging assembly H 101 , to release the prestress stored in the thermo-resetting flip-flop binary metal spring TH 201 when it is reset by the heat which results from a rise in temp. as charging of the secondary cell B 101 reaches its saturation, so as to defeat the coupling of contacts on both the secondary cell set and the charging assembly, so that charging current to the secondary cell B 101 is blocked forthwith, whereas conduction is still maintained way between the contacts P 101 on the charging assembly H 101 and the contacts P 102 on the secondary cell set H 102 , so that by the addition of an auxiliary contact P 100 which is in series by a current limiting resistor R 101 with the power supply, conduction is made with the contact P 106 on the secondary cell set H 102 , thereby maintaining a small charging current as from the power supply to the secondary cell.
15 . Charging Device with stress stored by charging that is initiated by externally applied force and the stored stress being eventually released by heat due to charging saturation according to claim 1 , incorporating in addition a temp. sensor executed in the form of a flip-flop binary metal base thermo-resetting retainer installed in the secondary cell set in conjunction with a spring interposed between the secondary cell and the charging assembly, comprising essentially:
Charging assembly H 101 : in plane or dovetail coupling with the secondary cell set H 102 , incorporating a D.C. power supply within as well as conductive contacts P 101 , P 105 for coupling with the secondary cell set H 102 , the charging assembly H 101 being furnished with one or more positioning coulisse to accommodate mortise engagement with thermo-resetting flip-flop binary metal retainer TH 301 which is part of the secondary cell set; D.C. power supply: being a D.C. power supply straight or by conversion through rectification from an A.C. system to charge the secondary cell B 101 by way of a charging circuit; Secondary cell set H 102 : enclosed in an insulation casing and incorporating a secondary cell B 101 and conductive contacts P 102 , P 106 in line with positive/negative terminals of the secondary cell B 101 , plus thermo-resetting flip-flop binary metal retainer TH 301 serving to match positioning coulisse S 100 on the charging assembly H 101 ; Spring SP 102 : compressible annular or piece configuration, interposed between the charging assembly H 101 and the secondary cell set H 102 , serving to compress the spring SP 102 into a compressed state when both are united together and just to be restricted by the positioning clamp formed by the heat-driven thermo-resetting flip-flop binary metal retainer TH 301 and the positioning coulisse, when, due to saturation of charging at the secondary cell set B 101 , that accompanied with release of heat, the engagement is released, prestress stored previously will be discharged to disengage the coupling of contacts on the secondary cell set and on the charging assembly respectively, including alternatively unmaking solely of contacts on the secondary cell set or on the charging assembly or within the charging assembly, charging current to the secondary cell set B 101 is blocked forthwith; the spring SP 102 is to be mounted in the charging assembly H 101 or in the secondary cell set H 102 ; Thermo-resetting flip-flop binary metal retainer TH 301 : comprising at least one binary metal sheet or otherwise structured member, to be mounted in the secondary cell set H 102 , for which coupling coulisse S 100 for coupling purpose is provided on the charging assembly H 101 , in order for the coupling coulisse S 100 to rest engaged with thermo-resetting flip-flop binary metal retainer TH 301 when both the secondary cell H 102 and the charging assembly H 101 are united for charging purpose, as there comes about a rise in temp. owing to a saturation of charging of the secondary cell B 101 , the thermo-resetting flip-flop binary metal retainer TH 301 will reset itself due to the heat thereby produced, the prestress stored in the spring is released in the meantime to unmake the interactive coupling of contacts on both the secondary cell set and the charging assembly, including alternatively unmaking only of the contacts on the secondary cell set, or on the charging assembly, or still within the charging assembly, charging current to the secondary cell B 101 blocked forthwith;
16 . Charging Device with stress stored by charging that is initiated by externally applied force and the stored stress being eventually released by heat due to charging saturation according to claim 15 , wherein by the addition of an auxiliary conductive contact P 100 to the charging assembly H 101 , when charging of the secondary cell B 101 reaches its saturation to result in a rise of temp. such that by the heat thereby produced the thermo-resetting flip-flop binary metal retainer TH 301 resets itself, coupling with the positioning coulisse S 100 will be released, and prestress stored in the spring SP 102 discharged to bring interactive contacts on the secondary cell set, and on the charging assembly, apart, including alternatively unmaking only of contacts on the secondary cell set, or only of the charging assembly, or still, only within the charging assembly, and charging current to the secondary cell set is blocked forthwith, at this juncture contacts P 105 on the charging assembly H 101 , on the one hand, and contacts P 106 on the secondary cell set H 102 , on the other hand, are still maintained in conduction, and by the addition of an auxiliary contact P 100 together with a current limiting resistor R 101 in series with the power supply and that in common with the contact P 102 on the secondary cell set H 102 , a small charging current is maintained as from the power supply to the secondary cell set B 101 .
17 . Charging Device with stress stored by charging that is initiated by externally applied force and the stored stress being eventually released by heat due to charging saturation according to claim 1 , incorporating a spring interposed between the secondary cell and the charging assembly, and that in conjunction with a flip-flop binary metal base thermo-resetting retainer installed in the charging assembly to account for a temp. sensor, comprising essentially:
Charging assembly H 101 : in plane or dovetail coupling with the secondary cell set H 102 , built in with a D.C. power supply to enable contacts P 101 , P 105 in line with the secondary cell set H 102 , the charging assembly H 101 further incorporates one or more thermo-resetting binary metal, flip-flop type retainer TH 401 for coupling, dovetail style, with positioning coulisse S 200 provided on the secondary cell set H 10 ; D.C. power supply: being a D.C. system straight or converted by rectification from an A.C. system, to charge the secondary cell; Secondary cell set H 102 : incorporating secondary cell B 101 and enclosed by an isolation casing, and to enable conductive contacts P 102 , P 106 in line with the positive/negative terminals of the secondary cell; on the secondary cell H 102 are provided positioning coulisse S 200 meant for mortise coupling with the thermo-resetting flip-flop binary metal retainer TH 401 on the charging assembly H 101 ; Spring SP 102 : structured annular or in a piece of compressible material SP 101 , interposed way between the charging assembly and the secondary cell set so that it may be compressed with stress stored when both are combined for charging purposes, it is at the same time restricted by the clamp formed by the coupling of the thermo-resetting flip-flop binary metal retainer TH 401 and the positioning coulisse S 200 , and once a saturation is reached in the charging of the secondary cell B 101 , accompanied by a rise in temp., and that defeating the coupling between the thermo-resetting flip-flop binary metal retainer TH 401 and the dovetail mortise positioning coulisse S 200 , prestress theretofore stored in the spring SP 102 will be released to unmake the contact-to-contact coupling between the secondary cell set and the charging assembly, including alternatively unmaking solely of contacts on the secondary cell, or solely those on the charging assembly, or still those solely within the charging assembly, and charging current to the secondary cell B 101 cut off altogether; note that the spring SP 102 may be installed either on the charging assembly H 101 or on the secondary cell set H 102 ; Thermo-resetting flip-flop binary metal retainer TH 401 : being a retainer device composed of at least one binary metal sheet or otherwise structure, to be furnished on the charging assembly H 101 , with respect to which positioning coulisse S 200 for coupling purposes is provided on the secondary cell set H 102 , when both are combined for charging purposes, the thermo-resetting flip-flop binary metal retainer TH 401 and the positioning coulisse S 200 on the secondary cell are engaged together, as when later on charging in the secondary cell B 101 reaches its saturation, and that accompanied with a rise in temp., the thermo-resetting flip-flop binary metal retainer TH 401 will reset itself by the heat produced thereby, thus the coupling defeated, and the prestress released to bring apart the contact-to-contact coupling theretofore secured on the secondary cell set with the charging assembly, including alternatively unmaking of contacts on the secondary cell set only, or on the charging assembly only, or still within the charging assembly only, and charging current to the secondary cell B 101 blocked forthwith.
18 . Charging Device with stress stored by charging that is initiated by externally applied force and the stored stress being eventually released by heat due to charging saturation according to claim 17 , wherein by the addition of an auxiliary conductive contact P 100 to the charging assembly H 101 , when charging of the secondary cell B 101 reaches its saturation to result in a rise of temp. such that by the heat thereby produced the thermo-resetting flip-flop binary metal retainer TH 401 resets itself, coupling with the positioning coulisse S 100 will be released, and prestress stored in the spring SP 102 discharged to defeat the contact-to-contact coupling between secondary cell set and the charging assembly apart, including alternatively unmaking only of contacts on the secondary cell set, or only of the charging assembly, or still, only within the charging assembly, and charging current to the secondary cell set is blocked forthwith, at this juncture contacts P 105 on the charging assembly H 101 , on the one hand, and contacts P 106 on the secondary cell set H 102 , on the other hand, are still maintained in a current limiting resistor R 101 in series with the power supply and that in common with the contact P 102 on the secondary cell set H 102 , a small charging current is maintained as from the power supply to the secondary cell set B 101 .
19 . Charging Device with stress stored by charging that is initiated by externally applied force and the stored stress being eventually released by heat due to charging saturation according to claim 1 , whereof the temp. sensor is executed in the form of a memory alloy or binary metal base thermosetting structure interposed between the secondary cell and the charging assembly, comprising essentially;
Charging assembly H 101 : in plane or dovetail coupling with the secondary cell set H 102 , equipped with D.C. power supply and contacts P 101 , P 105 for coupling with the secondary cell set H 102 ; D.C. power supply: being a D.C. power supply straight or as converted through rectification from an A.C. source, serving to charge the secondary cell by way of a charging circuit; Secondary cell set H 102 : enclosed in an insulation casing, equipped with a secondary cell B 101 and contacts P 102 , P 106 meant for coupling with the positive/negative terminals of the secondary cell B 101 ; the interfacing between the secondary cell set H 102 and the charging assembly H 101 is equipped with a memory alloy or binary metal base thermosetting structure TH 501 ; At least one elastic positioning tenon L 100 equipped on the secondary cell H 102 , correspondent with mortise S 300 provided on the charging assembly H 101 , this forming a pair which may be reciprocally structured; Memory alloy or binary metal base thermosetting structure TH 501 : being singly or plurally provided, way between the coupling front of both the charging assembly H 101 and the secondary cell H 102 , so that compression is received when both are combined together, and when there is a rise in temp. due to saturation of charging in the secondary cell B 101 , the memory alloy or binary metal base thermosetting structure TH 501 will, affected by the heat produced thereby, expand to the effect that the coupling of elastic tenon with mortise binding the secondary cell H 102 with the charging assembly H 101 is defeated, and the contact-to-contact coupling between the secondary cell and the charging assembly is undone, including alternatively unmaking of contacts on the secondary cell only, or on the charging assembly only, or still on those contacts within the charging assembly only, and charging current to the secondary cell B 101 is cut off forthwith, the memory alloy or binary metal base thermosetting structure TH 501 may be equipped on the charging assembly H 101 or alternatively, where justified, on the secondary cell H 102 .
20 . Charging Device with stress stored by charging that is initiated by externally applied force and the stored stress being eventually released by heat due to charging saturation according to claim 19 , wherein by the addition of an auxiliary conductive contact P 100 to the charging assembly H 101 , once a rise in temp. is occasioned by the charging of the secondary cell B 101 to its saturation, such that the memory alloy or binary metal base thermosetting structure TH 501 resets itself due to the heat produced thereby, the contact-to-contact coupling between the secondary cell and the charging assembly will be defeated, including alternatively defeating of contacts on the secondary cell set only, or of contacts on the charging assembly only, or of those within the charging assembly only, and the charging current to the secondary cell B 101 is cut off forthwith, at this juncture contact P 101 on the charging assembly H 101 is still maintained conductive with contacts P 102 on the secondary cell H 102 , by the provision of an auxiliary contact P 100 which is in series with power supply by the intervention of a current limiting resistor R 101 , conductive contact P 106 on the secondary cell H 102 is made conductive so that an ongoing small current is maintained way from power supply to the secondary cell B 101 .
21 . Charging Device with stress stored by charging that is initiated by externally applied force and the stored stress being eventually released by heat due to charging saturation according to claim 1 , whereof the temp. sensor is executed in the form of a memory alloy or binary metal base thermosetting spring structure interposed between the secondary cell and the charging assembly, comprising essentially:
Charging assembly H 101 : in plane or dovetail coupling with the secondary cell set H 102 , equipped with D.C. power supply and contacts P 101 , P 105 for coupling with the secondary cell set H 102 ; D.C. power supply: being a D.C. power supply straight or as converted by rectification from an A.C. system, serving to charge the secondary cell by way of a charging circuit; Secondary cell set H 102 : enclosed in an insulation casing, equipped with a secondary cell B 101 and contacts P 102 , P 106 meant for coupling with the positive/negative terminals of the secondary cell B 101 ; the interfacing between the secondary cell set H 102 and the charging assembly H 101 is equipped with a memory alloy or binary metal base thermosetting structure TH 601 ; The secondary cell set H 102 being equipped with at least one elastic positioning tenon L 100 , to be matched with a correspondent mortise S 300 provided on the charging assembly H 101 , this being a reciprocal structure; Memory alloy or binary metal base thermosetting structure TG 601 : being singly or plurally provided, way between the coupling front of both the charging assembly H 101 and the secondary cell H 102 , so that compression is received when both are combined together, and when there is a rise in temp. due to saturation of charging in the secondary cell B 101 , the memory alloy or binary metal base thermosetting structure TH 601 will, affected by the heat produced thereby, expand to the effect that the coupling of elastic tenon with mortise binding the secondary cell H 102 with the charging assembly H 101 is defeated, and the contact-to-contact coupling between the secondary cell and the charging assembly is undone, including alternatively unmaking of contacts on the secondary cell only, or on or within the charging assembly only, and charging current to he secondary cell B 101 is cut off forthwith, one terminal of the memory alloy or binary metal base thermosetting annular spring TH 601 is to be attached to either the charging assembly H 101 or to the secondary cell set H 102 .
22 . Charging device with stress stored by charging that is initiated by externally applied force and the stored stress being eventually released by heat due to charging saturation according to claim 21 , wherein by the addition of an auxiliary conductive contact P 100 to the charging assembly, once a rise in temp. is occasioned by the charging of the secondary cell B 101 to its saturation, such that the memory alloy or binary metal base thermosetting structure TH 601 resets itself due to the heat produced thereby, the contact-to-contact coupling between the secondary cell and the charging assembly will be defeated, including alternatively defeating of contacts on the secondary cell set only, or of contacts on or within the charging assembly only, and the charging current to the secondary cell B 101 is cut off forthwith, at this juncture contact P 101 on the charging assembly B 101 is still maintained conductive with contacts P 100 which is in series with power supply by the intervention of a current limiting resistor R 101 , conductive contact P 106 on the secondary cell H 102 is made conductive so that an ongoing small current is maintained way from power supply to the secondary cell B 101 .
23 . Charging device with stress stored by charging that is initiated by externally applied force and the stored stress being eventually released by heat due to charging saturation according to claim 1 , whereof the temp. sensor is executed in the form of a memory alloy or binary metal base thermosetting structure interposed between the secondary cell and the charging assembly, comprising essentially:
Charging assembly H 101 : in plane or dovetail coupling with the secondary cell set H 102 , and incorporating D.C. power supply to enable contacts P 101 , P 105 in line with the secondary cell set H 102 ; D.C. power supply: being a D.C. power supply straight or as converted through rectification from an A.C. system, to charge the secondary cell by way of a charging circuit; Secondary cell set H 102 : enclosed in an insulation casing, loaded with a secondary cell B 101 , and equipped with contacts P 102 , P 106 in line with positive/negative terminals of the secondary cell B 101 , on the interfacing of the secondary cell set B 102 with the charging assembly H 101 is seated a memory alloy or binary metal base thermosetting structure TH 501 ; Secondary cell set H 102 being furnished with at least one magnet core F 102 to be matched with a permanent magnet PM 300 that is mounted onto the charging assembly H 101 , both being reciprocally structured; Memory alloy or binary metal base thermosetting structure TG 501 : composed of one or more memory alloy or binary metal base structure TG 501 , interposed way between the charging assembly H 101 and the secondary cell set H 102 and is compressed by the force of union when both are combined altogether, and said thermosetting structure TG 50 L will expand by the heat prevailing when a rise in temp. is triggered by the charging of the secondary cell B 101 to its saturation, to the effect that contact-to-contact coupling between the secondary cell set and the charging assembly is set apart, including alternatively unmaking of the contacts of the secondary only or of or within the charging assembly only, and charging current to the secondary cell B 101 is cut off forthwith, said memory alloy or binary metal base thermosetting structure TH 501 being selectively equipped onto the charging assembly H 101 or onto the secondary cell set H 102 as preferred.
24 . Charging Device with stress stored by charging that is initiated by externally applied force and the stored stress being eventually released by heat due to charging saturation according to claim 23 , wherein by the addition of an auxiliary conductive contact P 100 to the charging assembly, once a rise in temp. is occasioned by the charging of the secondary cell B 101 to its saturation, such that the memory alloy or binary metal base thermosetting structure TG 501 resets itself due to the heat produced thereby, the contact-to-contact coupling between the secondary cell and the charging assembly will be defeated, including alternatively defeating of contacts on the secondary cell set only, or of contacts on or within the charging assembly only, and the charging current to the secondary cell B 101 is cut off forthwith, at this juncture contact P 101 on the charging assembly B 101 is still maintained conductive with contacts P 100 which is in series with power supply by the intervention of a current limiting resistor R 101 , conductive contact P 106 on the secondary cell H 102 is made conductive so that an ongoing small current is maintained way from power supply to the secondary cell B 101 .
25 . Charging Device with stress stored by charging that is initiated by externally applied force and the stored stress being eventually released by heat due to charging saturation according to claim 1 , whereof the temp. sensor is executed in the form of a memory alloy or binary metal base thermosetting spring structure interposed between the secondary cell and the charging assembly, comprising essentially:
Charging assembly H 101 : in plane or dovetail coupling with the secondary cell set H 102 , equipped with D.C. power supply and contacts P 101 , P 105 for coupling with the secondary cell set H 102 ; D.C. power supply: being a D.C. power supply straight or as converted through rectification from an A.C. system, serving to charge the secondary cell by way of a charging circuit; Secondary cell set H 102 : enclosed in an insulation casing, equipped with a secondary cell B 101 and contacts P 102 , P 106 meant for coupling with the positive/negative terminals of the secondary cell B 101 ; the interfacing between the secondary cell set H 102 and the charging assembly H 101 is equipped with a memory alloy or binary metal base thermosetting structure TG 601 ; At least one elastic positioning tenon L 100 equipped on the secondary cell H 102 , correspondent with mortise S 300 provided on the charging assembly H 101 , this forming a pair which may be reciprocally structured; Memory alloy or binary metal base thermosetting structure TH 601 ; being singly or plurally provided, way between the coupling front of both the charging assembly H 101 and the secondary cell H 102 , and executed in the form of a spring, such that, when both the assembly H 101 and the cell H 102 are combined together, the attraction which draws the permanent magnet PM 300 on the charging assembly H 101 and the magnet core F 102 on the secondary cell H 102 together will compress the memory alloy or binary metal base thermosetting annular spring TH 601 which, on receiving the heat prevailing in the wake of a rise in temp. occasioned by the charging of the secondary cell B 101 to its saturation, will expand to set the magnet core F 102 on the secondary cell H 102 apart from the permanent magnet PM 300 on the charging assembly H 101 , meantime defeating the contact-to-contact coupling between the secondary cell and the charging assembly, including alternatively defeating of contacts solely on the secondary cell or contacts solely on or within the charging assembly, and charging current to the secondary cell B 101 cut off forthwith, one terminal of the memory alloy or binary metal base thermosetting annular spring TG 601 being attached to the charging assembly H 101 or to the secondary cell H 102 .
26 . Charging Device with stress stored by charging that is initiated by externally applied force and the stored stress being eventually released by heat due to charging saturation according to claim 25 , wherein by the addition of an auxiliary conductive contact P 100 to the charging assembly, once a rise in temp. is occasioned by the charging of the secondary cell B 101 to its saturation, such that the memory alloy or binary metal base thermosetting structure TG 601 resets itself due to the heat produced thereby, the contact-to-contact coupling between the secondary cell and the charging assembly will be defeated, including alternatively defeating of contacts on the secondary cell set only, or of contacts on or within the charging assembly only, and the charging current to the secondary cell B 101 is cut off forthwith, at this juncture contact P 101 on the charging assembly B 101 is still maintained conductive with contacts P 100 which is in series with power supply by the intervention of a current limiting resistor R 101 , conductive contact P 106 on the secondary cell H 102 is made conductive so that an ongoing small current is maintained way from power supply to the secondary cell B 101 .
27 . Charging Device with stress stored by charging that is initiated by externally applied force and stored stress being eventually released by heat due to charging saturation according to claim 1 , whereof the temp. sensor is executed in the form of a memory alloy or binary metal base thermosetting contact for conduction purposes in conjunction with a compression spring interposed between the secondary cell and the charging assembly, comprising essentially:
Charging assembly H 101 : in plane or dovetail coupling with the secondary cell set H 102 , comprising a D.C. power supply and memory alloy or binary metal base thermosetting contacts P 101 , P 105 meant for coupling with counterpart contacts on the secondary cell set H 102 ; D.C. power supply: being D.C. power supply straight or as converted through rectification from an A.C. source, to charge the secondary cell set by way of a charging circuit; Secondary cell set H 102 : enclosed in an insulation casing, equipped with secondary cell B 101 , and contacts P 312 , P 311 meant for coupling with positive/negative terminals of the secondary cell B 101 ; the interfacing between the secondary cell set H 102 and the charging assembly H 101 being equipped with compressible piece of or annular spring; The secondary cell set H 102 being furnished with contacts P 311 , P 312 complete with positioning mortise thereon, and the charging assembly H 101 is equipped with memory alloy or binary metal base thermosetting contacts THP 101 , THP 102 which are reciprocally replaceable; Compressible piece of or annular spring SP 103 : a spring as such interposed way between the coupling interfacing of the charging assembly H 101 and the secondary cell set H 102 , when both are coupled the compression produced thereby will leave its effect upon same spring SP 103 , when charging in the secondary cell B 101 reaches its saturation to incur a rise in temp. accompanied with heat produced thereby to deform the memory alloy or binary metal base thermosetting contacts THP 101 , THP 102 , the contact-to-contact coupling between the secondary cell set H 102 and the charging assembly H 101 will be defeated concurrent with cutoff of charging current to the secondary cell B 101 , and the compression spring SP 103 is released at the same time to unmake the contact-to-contact coupling between the secondary cell set and the charging assembly, including alternatively unmaking of contacts on the secondary cell only, or unmaking of contacts on or within the charging assembly only.
28 . Charging Device with stress stored by charging that is initiated by externally applied force and the stored stress being eventually released by heat due to charging saturation according to claim 27 , wherein by the addition of an auxiliary conductive contact P 100 to the charging assembly H 101 , once a rise in temp. is occasioned by the charging of the secondary cell B 101 to its saturation, such that the memory alloy or binary metal base thermosetting contacts THP 101 , THP 102 rest themselves due to the heat produced thereby, the contact-to-contact coupling between the secondary cell and the charging assembly will be defeated, including alternatively defeating of contacts on the secondary cell set only, or of contacts on or within the charging assembly only, and the charging current to the secondary cell B 101 is cut off forthwith, at this juncture contact THP 101 on the charging assembly H 101 is still maintained conductive with contact P 311 on the secondary cell set H 102 , and by the provision of an auxiliary contact P 100 in series with a current limiting resistor R 101 in line with power supply, conduction is made with contact P 312 on the secondary cell set H 102 , and that making possible the maintaining of an ongoing, small current charged by the power supply to the secondary cell B 101 .
29 . Charging device with stress stored by charging that is initiated by externally applied force and the stored stress being eventually released by heat due to charging saturation according to claim 1 , whereof the temp. sensor is executed in the form of a memory alloy or binary metal base thermosetting structure interposed between the secondary cell and the charging assembly, comprising essentially:
Charging assembly H 101 : in plane or dovetail coupling with the secondary cell set H 102 , furnished with D.C. power supply and contacts P 101 , P 105 for coupling with the secondary cell set H 102 , as well as trigger switch LS 101 in control of power supply for charging purposes by switching on or off the input or output of the said power supply; D.C. power supply: being a D.C. power supply straight or as converted through rectification from an A.C. source to charge the secondary cell by way of a charging circuit; Secondary cell set H 102 : enclosed in an insulation casing and incorporating a secondary cell B 101 and contacts P 102 , P 106 in line with positive/negative terminals of the secondary cell B 101 ; the coupling interfacing of the secondary cell set H 102 and the charging assembly H 101 being interposed with a memory alloy or binary metal base thermosetting structure TH 501 ; Conventional emplacement for charging stability interposed between the secondary cell set H 102 and the charging assembly H 101 ; Memory alloy or binary metal base thermosetting structure TH 501 : provided singly or plurally, interposed way between the interfacing of the charging assembly H 101 and the secondary cell set H 102 and compressed tight when both are combined together, and will drive, by the heat produced when charging in the secondary cell B 101 reaches its saturation, the auxiliary electric heater HT 101 , which in turn results in an expansion of the memory alloy or binary metal base thermosetting structure TH 501 , and that eventually defeats the contact-to-contact coupling between the secondary cell set and the charging assembly, including alternatively unmaking of contacts on the secondary cell set alone or of contacts on or within the charging assembly alone, such that the trigger switch LS 101 controlling the power supply is driven open, and charging current to the secondary cell B 101 cut off forthwith.
30 . Charging Device with stress stored by charging that is initiated by externally applied force and the stored stress being eventually released by heat due to charging saturation according to claim 1 , wherein by the addition of an auxiliary conductive contact P 100 to the charging assembly H 101 , when charging in the secondary cell B 101 reaches its saturation with heat produced thereby invested in the form of electric power which in turn drives the auxiliary electric heater HT 101 to yield thermal energy sufficient to reset the memory alloy or binary metal base thermosetting structure TH 501 , the contact-to-contact coupling between the secondary cell set and the charging assembly is defeated, including alternatively defeating of the contacts on the secondary cell set only, or of the contacts on or within the charging assembly only, and charging current to the secondary cell B 101 is cut off forthwith, at this juncture charging assembly H 101 by its contact P 101 and the secondary cell set H 102 through its contact P 102 are maintained mutually conductive all the same, while the auxiliary contact P 100 in series with the power supply by way of a current limiting resistor R 101 maintains conductive with contact P 106 on the secondary cell B 101 , such that small but ongoing current is maintained way from power supply to the secondary cell B 101 for charging purposes.
31 . Charging Device with stress stored by charging that is initiated by externally applied force and the stored stress being eventually released by heat due to charging saturation according to claim 1 , incorporating a composite structure formed by the coupling of a secondary cell set which is executed in a block with a charging assembly accessed by an open chute channel, and comprising:
A charging assembly H 101 : to be coupled with the secondary cell set vertically upwardly, and disengaged therefrom downwardly; or alternatively to be coupled downwardly and disengaged upwardly; or still coupled and disengaged horizontally; or else coupled and disengaged in otherwise chosen angular settings; on which is provided a chute channel to accommodate the secondary cell set H 102 ; furnished with D.C. power supply and contacts P 801 , P 805 as well as permanent magnet PM 300 , and memory alloy or binary metal base thermosetting structure TH 501 or alternatively a helicoidal spring TH 601 of the same base and to the same purpose; on the secondary cell set H 102 are equipped contacts P 802 , P 806 for coupling with the secondary cell B 101 within and magnet core F 102 ; when the charging assembly H 101 and the secondary cell set H 102 are combined, mutual attraction between said Magnet core F 102 on the secondary cell set H 102 and the Permanent Magnet PM 300 on the charging assembly will compress the memory alloy or binary metal base thermosetting structure TG 501 , or a helicoidal spring execution thereof TG 601 to thermally induced deformation, thereby setting contacts P 801 , P 805 on the charging assembly into conduction with contacts P 802 , P 806 on the secondary cell set, followed by charging with respect to the secondary cell B 101 since the secondary cell set is equipped with thermo-transmission block TC 101 which is coupled to the memory alloy or binary metal base thermosetting structure TH 501 on the charging assembly, when charging in the secondary cell reaches its saturation concurrent with the release of heat, the memory alloy or binary metal base thermosetting structure TH 501 will discharge a push in the wake of such a heat, and that push sufficient to disengage both the magnet core F 102 and the permanent magnet PM 300 , and coacting contact pairs on both the secondary cell set and on the charging assembly are defeated in suit, including alternatively the defeating of contacts on the secondary cell set alone, or on or within the charging assembly alone, and charging current to the secondary cell B 101 is cut off forthwith.
32 . Charging Device with stress stored by charging that is initiated by externally applied force and the stored stress being eventually released by heat due to charging saturation according to claim 1 , wherein by the furthermore a secondary cell charging means of which both positive/negative terminals are meant to be accessed to axial receptacles on specific applications, such that in the wake of a rise in temp. occasioned by charging of the secondary cell to its saturation, the secondary cell set will get rid of the charging electrode, and that resulting in cutoff of charging current, for execution this model comprises essentially:
A reciprocal, resilient pair of retention formed by contacts P 400 , P 401 on the charging assembly H 101 with contacts P 500 , P 501 on the secondary cell set H 102 , and a memory alloy or binary metal base thermosetting structure TH 801 executed in a metal sheet or helicoidal spring, positioned under the secondary cell set, which cell set H 102 sets steady and stable when loaded with a secondary cell B 101 therein, and said thermosetting structure TH 801 will get deformed thermally when the secondary cell set H 102 is charged to its saturation, and that sufficient to unmake the contact-to-contact coupling between the secondary cell set and the charging assembly, including alternatively unmaking of contacts on the secondary cell only, or of contacts on or within the charging assembly only, and the charging operation is cut off forthwith, in respect of this model the embodiments include representations in.
33 . Charging Device with stress stored by charging that is initiated by externally applied force and the stored stress being eventually released by heat due to charging saturation according to claim 1 , incorporating additionally a secondary cell charging assembly with positive/negative electrodes provided on axial ends thereof such that charging to the electrodes is terminated once a rise in temp. is occasioned by the charging to saturation, and charging current is cut off forthwith, and comprising essentially:
Contacts P 402 , P 403 as conduction points for the memory alloy or binary metal base thermosetting structure, serving more than coupling for conduction purpose with counterpart contacts P 500 , P 501 on the secondary cell set H 102 , also to store and exhibit resilient retention for holding the secondary cell set H 102 , and, by incorporating compressible spring SP 104 , executed in a piece or helicoidal spring, integral with the secondary cell B 101 when it is loaded into the secondary cell set H 102 , will account for a compression means, so that they, the contacts P 402 , P 403 , given the attribute as such, will get deformed by the heat released once charging in the secondary cell reaches its saturation, when that happens, the secondary cell set H 102 is released, and the compression spring SP 104 will defeat forthright the contact-to-contact coupling between the secondary cell and the charging assembly, including alternatively defeating of contacts only of the secondary cell set, or of or within the charging assembly, and the charging feature is defeated forthwith.
34 . Charging Device with stress stored by charging that is initiated by externally applied force and the stored stress being eventually released by heat due to charging saturation according to claim 1 , incorporating additionally a secondary cell charging assembly with positive/negative electrodes provided on axial ends thereof such that charging to the electrodes is terminated once a rise in temp. is occasioned by the charging to saturation, and charging current is cut off forthwith, and comprising essentially:
By the contacts P 405 furnished on the memory alloy or binary metal base thermosetting charging assembly H 101 , as well as another set of contacts PSP 406 featuring a prestressed spring function, extended with an insulated stretch arm A 100 , when a secondary cell set is laden, coupling will be made with respect to contacts P 500 , P 501 on the secondary cell set H 102 , which, together with the secondary cell set H 102 being clamped in the meantime, will start charging with respect to the secondary cell set, whereupon the engaging head AT 100 on the tail end of the insulated stretch arm A 100 is matched with counterpart engaging receptacle BT 100 on the tail end of memory alloy base, thermosetting contact P 405 , in a prestressed engagement, when charging in the secondary cell set H 102 reaches its saturation to release heat, contact P 405 on the charging assembly H 101 , on receiving said heat, will get deformed, resulting in dissociation of the insulated stretch arm A 100 on the contact PSP 406 that is retained by prestress, apart from the engaging receptacle BT 100 , such that the secondary cell set H 102 is released, then the prestress stored in the insulated stretch arm A 100 on the contact PSP 406 enabled by said prestress will bring contact-to-contact coupling thus far established between the secondary cell set and the charging assembly apart, including alternatively disengagement of contacts on the secondary cell set only or contacts on or within the charging assembly only, and power supply for charging purposes cut off forthwith. As an alternative structure the two sets of contacts on the charging assembly H 101 may comprise entirely prestressed thermosetting, spring-functioning contacts with extension of an insulated stretch arm.
35 . Charging Device with stress stored by charging that is initiated by externally applied force and the stored stress being eventually released by heat due to charging saturation according to claim 1 , incorporating additionally a secondary cell charging assembly with positive/negative electrodes provided on axial ends thereof such that charging to the electrodes is terminated once a rise in temp. is occasioned by the charging to saturation, and charging current is cut off forthwith, and comprising essentially:
Contacts P 407 , P 408 on the memory alloy or binary metal base thermosetting charging assembly H 101 , serving more than being coupled to contacts P 500 , P 501 on the secondary cell set H 102 , to holding the secondary cell set H 102 in place as well, when the secondary cell set H 102 is charged to saturation followed with release of heat, contacts P 407 , P 408 on the charging assembly H 101 , receiving the heat, will release hold of the secondary cell set H 102 , so that the secondary cell set H 102 will drop forthright clear of contacts P 407 , P 408 , and the charging capability is blocked forthwith.
36 . Charging Device with stress stored by charging that is initiated by externally applied force and the stored stress being eventually released by heat due to charging saturation according to claim 1 , whereof the temp. sensor may be provided singly or plurally embodied in any structure fit and proper for the purpose of application but essentially thermosetting type, to enhance the safety feature of the Device, including the incorporation of any conventional design of automatic cutoff means for combined operation, the applications including:
(1) For testing purposes, electromechanical temp. testing switches of the normally closed or normally open, or common pinning mode, or with normally closed, normally open contacts; or (2) Those with Positive Temp. Coefficient (PTC) or Negative Temp. Coefficient (NTC) feature which makes possible variation in impedance as a function of a change in temp. incorporated into electromechanical or solid state interfacing switch circuit, to control aforementioned solenoidal coil; or (3) Those provided with electromechanical or solid state circuit to test the transitory voltage decrease due to heat which accompanies a charging saturation which characterizes a secondary cell, coupled with electromechanical or solid state interfacing switch circuit to control aforementioned solenoidal coils; or (4) Those provided with auxiliary heater which will produce heat when receiving electric power incurred by saturation of charging in the secondary cell set, the auxiliary heater being of a flip-flop binary metal prestressed design or of a thermosetting binary metal design, heat thus produced will unmake straight contact-to-contact coupling between the secondary cell set and the charging assembly, including alternatively unmaking of contacts on the secondary cell set only or of or within the charging assembly only, so that power supply is cut off forthwith; or (5) Those provided with flip-flop binary metal prestressed spring or memory alloy or binary metal base thermosetting structure which, when receiving heat that is produced as charging in the secondary cell reaches its saturation, will unmake the contact-to-contact coupling between the secondary cell set and the charging assembly, including alternatively, unmaking of contacts on the secondary cell only, or unmaking of contacts on or within the charging assembly, such that power supply is cut off forthwith; or (6) Those provided with a resilient positioning means comprising a memory alloy or binary metal base thermosetting structure which, together with a compression spring seated way between the charging assembly and the secondary cell set, will, by releasing the spring due to triggering effect when the thermosetting resets itself in the wake of effectual heat, unmake the secondary cell and power supply is cut off forthwith; or (7) Those provided with a resilient positioning means which is bound by conductive contacts and made from a memory alloy or binary metal base thermosetting structure which, when receiving an effectual heat, will trigger off a prestressed spring that is seated way between the charging assembly and the secondary cell set, so that the secondary charging cell is disengaged and the power supply to which the charging is due is cut off forthwith; or (8) Those on which the memory alloy or binary metal base thermosetting structure is executed to be a charging assembly with conductive contacts thereon furnished to accommodate coupling with counterpart contacts on the secondary cell set, and meantime to hold the same secondary cell set in place, said contacts on the charging assembly, when affected by the heat released from the secondary cell as it is charged to saturation, will get deformed, thereby releasing the secondary cell set which will then drop off said contacts, and charging operation is cut off forthwith; (9) Those structured such that by the contacts furnished on the memory alloy or binary metal base thermosetting charging assembly, as well as another set of contacts featuring a prestressed spring function, extended with an insulated stretch arm, when a secondary cell set is laden, coupling will be made with respect to contacts on the secondary cell set, which, together with the secondary cell set being clamped in the meantime, will start charging with respect to the secondary cell set, whereupon the engaging head on the tail end of the insulated stretch arm is matched with counterpart engaging receptacle on the tail end of memory alloy base, thermosetting contact, in a prestressed engagement, when charging in the secondary cell set reaches its saturation to release heat, contact on the charging assembly, on receiving said heat, will get deformed, resulting in dissociation of the insulated stretch arm on the contact that is retained by prestress, apart from the engaging receptacle, such that the secondary cell set is released, then the prestress stored in the insulated stretch arm on the contact enabled by said prestress will bring contact-to-contact coupling thus far established between the secondary cell set and the charging assembly apart, including alternatively disengagement of contacts on the secondary cell set only or contacts on or within the charging assembly only, and power supply for charging purposes cut off forthwith. As an alternative structure the two sets of contacts on the charging assembly may comprise entirely prestressed thermosetting, spring-functioning contacts with extension of an insulated stretch arm; or (10) Those employing altogether two or more of any testing devices specified in item 1 through item 9 disclosed hereinbefore; or (11) Those employing any one or more electromechanical or solid state circuit specified in item 1 through item 9 hereinbefore to form and account for a delayed cutoff timer, with a view to jointly control the solenoidal coil, when the timer reaches its time current passing the solenoidal coil will be cut, and the spring hitherto compressed by prestress stored therein will be released to set apart the contact-to-contact coupling between the secondary cell set and the charging assembly, including alternatively unmaking of contacts of the secondary cell set only or those of or within the charging assembly only, to the effect that power supply for charging purposes is cut off forthwith; or (12) Those employing any or more than on electromechanical or solid state circuit to form and account for a time delayed circuit breaker for simultaneous control of power supply on which charging operation depends, so that power supply to the solenoidal coil is cut off once the time delayed circuit breaker has its time out, as predetermined; or
37 . Charging Device with stress stored by charging that is initiated by externally applied force and the stored stress being eventually released by heat due to charging saturation according to claim 1 , whereof the charging assembly H 101 and the secondary cell set H 102 is designed with purposes of application taken into account, such that:
(1) The secondary cell set is executed in a bar for coupling with the charging assembly that is configured like a bee-hive; or
(2) The secondary cell set is executed in a block for coupling with the charging assembly which is also executed in a block; or
(3) The secondary cell set is executed in a block for coupling with the charging assembly which is fitted with an open chute channel to accommodate the coupling purpose; or
(4) The charging assembly and the secondary cell set are executed for coupling in a vertically upward orientation, but uncoupling in a downward orientation; or alternatively for coupling and uncoupling in the horizontal direction; or still for coupling and uncoupling in otherwise angular setting appropriate to specific applications;
38 . Charging Device with stress stored by charging that is initiated by externally applied force and the stored stress being eventually released by heat due to charging saturation according to claim 1 , whereof the thermosetting structure derives its displacement due to deformation in the wake of a change in temp. of the shell casing thereof occasioned by the gas or fluid or liquid loaded therein and which abides by the law of expansion in the presence of heat but shrinkage in the presence of a decrease in ambient temperature.
39 . Charging Device with stress stored by charging that is initiated by externally applied force and the stored stress being eventually released by heat due to charging saturation according to claim 1 , whereof the secondary cell set is composed of one single cell or battery or alternatively of two or more cells or batteries connected in series or in parallel.Join the waitlist — get patent alerts
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