US2022235981A1PendingUtilityA1

Water-cooling type condenser

Assignee: HANON SYSTEMSPriority: Aug 27, 2019Filed: Aug 11, 2020Published: Jul 28, 2022
Est. expiryAug 27, 2039(~13.1 yrs left)· nominal 20-yr term from priority
F28F 9/0251F28D 9/005F28D 2021/007F28F 9/02F25B 39/04F25B 2339/0442F25B 2339/047F28D 9/0056F25B 2339/0443F25B 41/40F25B 43/00F28F 2275/06F25B 43/02F25B 2339/0446
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Claims

Abstract

A water-cooling type condenser having a core part having a refrigerant fluid channel wherein a refrigerant flows and a cooling water fluid channel wherein cooling water flows; a gas-liquid separator disposed spaced apart from one side of the core part; a penetration connector having communication holes passing through both sides thereof, one side thereof being inserted into and coupled to a refrigerant outlet formed on the core part, and the other side being inserted into and coupled to a refrigerant inlet formed on the gas-liquid separator. A non-penetration connector is blocked between both sides thereof. One side is inserted into and coupled to a coupling hole formed on the core part, and the other side is inserted into and coupled to a coupling hole formed on the gas-liquid separator. The gas-liquid separator and the refrigerant fluid channel communicate. The gas-liquid separator is fixed to the core part.

Claims

exact text as granted — not AI-modified
1 . A water-cooling type condenser comprising:
 a core part in which refrigerant fluid channels through which a refrigerant flows and cooling water fluid channels through which cooling water flows are formed;   a gas-liquid separator disposed on one side of the core part so as to be spaced apart from the core part;   a penetration connector having a communication hole formed to penetrate through both sides thereof, and having one side inserted and coupled into a refrigerant outlet formed in the core part and the other side inserted into and coupled to a refrigerant inlet formed in the gas-liquid separator; and   a non-penetration connector of which a space between both sides is blocked and which has one side inserted and coupled into the core part and the other side inserted into and coupled to a coupling hole formed in the gas-liquid separator.   
     
     
         2 . The water-cooling type condenser of  claim 1 , wherein
 the penetration connector and the non-penetration connector have one sides joined to the core and the other sides joined to the gas-liquid separator.   
     
     
         3 . The water-cooling type condenser of  claim 1 , wherein
 the core part is formed by stacking a plurality of plates, and the refrigerant fluid channels and the cooling water fluid channels are formed by stacking the plurality of plates.   
     
     
         4 . The water-cooling type condenser of  claim 1 ,
 further comprising an end plate coupled to the core part,   wherein a first communication part corresponding to the refrigerant outlet of the core part and a second communication part spaced apart from the first communication part are formed in the end plate, and   one side of the penetration connector is inserted into and coupled to the first communication part, and one side of the non-penetration connector is inserted into and coupled to the second communication part.   
     
     
         5 . The water-cooling type condenser of  claim 4 , wherein
 the first communication part and the second communication part of the end plate are formed to protrude toward the gas-liquid separator.   
     
     
         6 . The water-cooling type condenser of  claim 5 , wherein
 the end plate is a clad member of which a surface in contact with the core part is formed as a clad surface, and inner circumferential surfaces of the first communication part and the second communication part are formed as a clad surface and are joined to the penetration connector and the non-penetration connector.   
     
     
         7 . The water-cooling type condenser of  claim 4 , wherein
 the gas-liquid separator is a clad member having an outer circumferential surface formed as a clad surface, and the penetration connector and non-penetration connector are joined to the outer circumferential surface of the gas-liquid separator.   
     
     
         8 . The water-cooling type condenser of  claim 1 , wherein
 the penetration connector and the non-penetration connector include, respectively, step parts formed between both insertion parts thereof so as to protrude in an outer diameter direction.   
     
     
         9 . The water-cooling type condenser of  claim 8 , wherein
 both side surfaces of the step parts of the penetration connector and the non-penetration connector are formed asymmetrically, one side surfaces of the step parts are formed as flat surfaces so as to correspond to a shape of a surface of the end plate with which the one side surfaces of the step parts are in contact, and the other side surfaces of the step parts are formed as arc-shaped curved surfaces so as to correspond to a shape of a surface of the gas-liquid separator with which the other side surfaces of the step parts are in contact.   
     
     
         10 . The water-cooling type condenser of  claim 8 , wherein
 one or more of the penetration connector and the non-penetration connector include seating grooves concavely formed in side surfaces of the step parts facing the gas-liquid separator, and clad rings formed of a clad material are inserted into the seating grooves.   
     
     
         11 . The water-cooling type condenser of  claim 10 , wherein
 one or more of the penetration connector and the non-penetration connector are joined to the gas-liquid separator by melting the clad rings.   
     
     
         12 . The water-cooling type condenser of  claim 8 , wherein
 in the non-penetration connector, the both insertion parts, the step part, and a blocking part blocking a space between the both insertion parts are formed integrally with each other by cutting a material having a block or rod shape.   
     
     
         13 . The water-cooling type condenser of  claim 8 , wherein
 outer circumferential surfaces of the both insertion parts of the penetration connector are formed as a clad surface.   
     
     
         14 . The water-cooling type condenser of  claim 1 , wherein
 the penetration connector and the non-penetration connector are formed to have the same external shape except whether or not inner portions thereof are in a penetration shape.

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