Strainer and an associated pumping method
Abstract
As shown for example in FIG. 5, the strainer 13 has a body 2 that defines a plurality of inlet holes 3 each having a perimeter that is extensible by at least 20%. Each of the inlet holes 3 is in fluid communication with a hollow internal chamber. In use, liquid is sucked through the holes 3, thereby straining out larger contaminants such as rocks and stones, into the hollow internal chamber and then out the outlet. The majority of the strainer 13 is formed from a resilient deformable material that allows opposed sides of the internal chamber to be brought into contact with each other in response to the application of a compressive force. Once the force is no longer being applied, the resilience of the material allows the body 2 to resiliently return to substantially its pre-deformation shape.
Claims
exact text as granted — not AI-modified1 . A strainer for attachment to an inlet of a hose, the strainer including:
a body defining a plurality of inlet holes, each of the inlet holes being in fluid communication with a hollow internal chamber; and an outlet being in fluid communication with the hollow internal chamber, the outlet being to attach to the inlet of the hose; wherein the body is formed from a resilient deformable material configured to bring opposed sides of the internal chamber into contact with each other in response to application of a compressive force prior to the body resiliently returning substantially to its pre-deformation shape when the compressive force is no longer applied; and wherein each of the holes defines a perimeter and wherein each of the holes is extensible so as to extend the perimeter by at least 20%.
2 . A strainer according to claim 1 , wherein the resilient deformable material is, or includes, any one of: an elastomeric polymer, a rubber, synthetic rubber, rubber-like material, polychloroprene or nitrile.
3 . A strainer according to claim 1 , wherein the resilient deformable material has a Young's modulus of less than a Young's modulus of a metal.
4 . A strainer according to claim 1 , wherein the resilient deformable material has a Young's modulus of less than a Young's modulus of a hard plastics material.
5 . A strainer according to claim 1 , wherein a coupling component is disposed adjacent the outlet and wherein the coupling component is a metal ring.
6 . A strainer according to claim 5 , wherein the metal ring is embedded within the material.
7 . A strainer according to claim 1 , wherein the strainer is formed by injection moulding.
8 . A strainer according to claim 1 , wherein the strainer is of a unitary construction.
9 . A strainer according to claim 1 , wherein the material is formed from a combination of: standard Malaysian rubber; an activator; an accelerator; a crosslinking agent, a processing aid; process oil; a wax; an antioxidant and antiozonant; and semi re-enforcing carbon black.
10 . A strainer according to claim 9 , wherein:
the Standard Malaysian Rubber is SMR10; the activator is zinc oxide and/or stearic acid; the accelerator is N-cyclohexyl-2-benzothiazole sulphonamide; the crosslinking agent is sulphur; the processing aid is a viscosity reducer; the process oil is a paraffinic oil; the wax is paraffinic wax; the antioxidant and antiozonant is N-(1,3-Dimethylbutyl)-N′-phenyl-p-phenylenediamine and/or N-Isopropyl-N′-phenyl-p-phenylenediamine; and the semi re-enforcing carbon black is N774.
11 . A strainer according to claim 1 , wherein the material is formed from a combination of:
polychloroprene; a cure system and crosslinking agent; a processing aid; a flame retardant; an acid acceptor; an antioxidant and antiozonant; and semi re-enforcing carbon black.
12 . A strainer according to claim 11 , wherein:
the cure system and crosslinking agent is zinc oxide and/or Ethylene thiourea and/or Tetramethylthiuram disulfid; the processing aid is stearic acid and/or an emulsion plasticizer dispersing and processing additive; the flame retardant is antimony trioxide and/or chlorinated polyethylene and/or alumina trihydrate and/or zinc borate; the acid acceptor is magnesium oxide; the antioxidant and antiozonant is N-(1,3-Dimethylbutyl)-N′-phenyl-p-phenylenediamine; and the semi re-enforcing carbon black is N330.
13 . A strainer according to claim 1 , wherein the combined cross sectional area of the plurality of holes is between 2 and 6 times the cross sectional area of the outlet.
14 . A strainer according to claim 1 , wherein the combined cross sectional area of the plurality of holes is between 6 and 14 times the cross sectional area of the outlet.
15 . A strainer according to claim 1 , wherein the strainer has a weight of less than 1 kg.
16 . A strainer according to claim 1 , wherein the body is a cylindrical shaft defining a distal end and a proximal end and wherein a tapered head is disposed at the distal end and wherein the outlet is at the proximal end.
17 . A strainer according to claim 16 , wherein the tapered head defines an included angle of between 40° and 70°.
18 . A strainer according to claim 1 , wherein the body is deformable upon the application of the compressive force, configured to crush the hollow internal chamber substantially flat prior to the body resiliently returning substantially to its pre-deformation shape when the compressive force is no longer applied.
19 . A method of pumping a liquid including:
providing a pump attached to a hose, the hose having a distal end defining an inlet; providing a strainer including: a body defining a plurality of inlet holes, each of the inlet holes being in fluid communication with a hollow internal chamber; and an outlet being in fluid communication with the hollow internal chamber, the outlet being for attachment to the inlet of the hose; wherein the body is formed from a resilient deformable material to bring opposed sides of the internal chamber into contact with each other in response to the application of a compressive force prior to the body resiliently returning substantially to its pre-deformation shape when the force is no longer applied and wherein each of the holes defines a perimeter and wherein each of the holes is extensible so as to extend the perimeter by at least 20%; attaching the outlet of the strainer to the inlet of the hose; operating the pump to suck the liquid into the plurality of holes, through the hollow chamber, out the outlet, and into the hose; and periodically detaching the strainer and impacting the strainer against a solid object to dislodge contaminants clogging the holes.
20 . A method according to claim 19 , including periodically reversing the flow direction of the pump such that liquid is pumped out of the holes to dislodge contaminants clogging the holes.Join the waitlist — get patent alerts
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