Electric compressor and method for controlling same
US-2016370038-A1 · Dec 22, 2016 · US
US2024246394A1 · US · A1
| Field | Value |
|---|---|
| Publication number | US-2024246394-A1 |
| Application number | US-202218564225-A |
| Country | US |
| Kind code | A1 |
| Filing date | Dec 7, 2022 |
| Priority date | Dec 31, 2021 |
| Publication date | Jul 25, 2024 |
| Grant date | — |
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Embodiments provide a 3-way valve and a heat pump system using same, the 3-way valve comprising: a housing in which an inlet, a first outlet, and a second outlet are disposed; and a ball valve which is disposed inside the housing, wherein the ball valve comprises: an inlet hole which is connected to the inlet and into which a refrigerant flows; a first outlet hole and a second outlet hole, through which the refrigerant flowing into the inlet hole flows out, and when the ball valve rotates, the refrigerant flowing out through the first outlet hole passes through the first outlet, and the flow rate of the refrigerant flowing out through the second outlet hole is controlled through the second outlet.
Opening claim text (preview).
1 . A 3-way valve comprising: a housing having an inlet, a first outlet, and a second outlet disposed therein; and a ball valve disposed within the housing, wherein the ball valve includes an inlet hole which is connected to the inlet and into which a refrigerant is introduced, and a first outlet hole and a second outlet hole through which the refrigerant introduced into the inlet hole flows out, when the ball valve is rotated, the refrigerant flowing out through the first outlet hole passes through the first outlet, and the refrigerant flowing out through the second outlet hole passes through the second outlet, and the flow rate of the refrigerant discharged from the first outlet and the second outlet is controlled depending on the position of the first outlet hole and the second outlet hole due to the rotation of the ball valve. 2 . The 3-way valve according to claim 1 , wherein the first outlet and the second outlet are disposed in the housing so as to be opposed each other. 3 . The 3-way valve according to claim 2 , wherein the centerline of the first outlet hole and the centerline of the second outlet hole are arranged to intersect each other. 4 . The 3-way valve according to claim 3 , wherein an area of the first outlet hole is formed to be larger than an area of the first outlet, and an area of the second outlet hole is formed to be equal to or smaller than an area of the second outlet. 5 . The 3-way valve according to claim 4 , wherein a ratio of a transverse diameter of the second outlet hole to a transverse width of the first outlet hole is less than or equal to 0.3. 6 . The 3-way valve according to claim 4 , wherein a ratio of a transverse width to a longitudinal height of the first outlet hole is greater than 2. 7 . The 3-way valve according to claim 6 , wherein a longitudinal height of the first outlet hole and a diameter of the inlet hole are the same. 8 . The 3-way valve according to claim 1 , wherein when the second outlet hole is blocked by the inner wall of the housing due to the rotation of the ball valve, all of the refrigerant introduced through the inlet is discharged from the first outlet through the first outlet hole. 9 . The 3-way valve according to claim 1 , wherein the flow rate of the refrigerant discharged from the first outlet and the second outlet is controlled by regulating the area in which the second outlet hole and the second outlet communicate with each other by rotating the ball valve. 10 . The 3-way valve according to claim 9 , wherein the flow rate of the refrigerant discharged from the second outlet is increased as the area communicating between the second outlet and the second outlet hole is increased by rotating the ball valve. 11 . The 3-way valve according to claim 1 , wherein the area of the first outlet hole is formed to be larger than the area of the first outlet so that the area communicating between the first outlet hole and the first outlet remains constant even when the ball valve is rotated. 12 . A heat pump system comprising: a compressor configured to compress and discharge a refrigerant; a first expansion means configured to expand a compressed refrigerant; a first moving line and a second moving line along which the refrigerant expanded by the first expansion means moves; a condenser disposed on the first moving line; and an evaporator into which the refrigerant moving along the second moving line is introduced, the evaporator being disposed within an air conditioning case, wherein the 3-way valve in any one of claims 1 to 11 is disposed at a bifurcation of the first moving line and the second moving line. 13 . A heat pump system according to claim 12 , wherein the refrigerant which has passed through the compressor passes through an indoor heat exchanger disposed within the air conditioning case and is then introduced into the first expansion means. 14 . A heat pump system according to claim 13 , wherein in a heating and dehumidification mode, the 3-way valve is configured to control the amount of the refrigerant introduced into the evaporator according to humidity information sensed in a vehicle. 15 . A heat pump system according to claim 12 , wherein the second moving line is connected to the evaporator by bypassing a second expansion means.
for minimizing the humidity of the air · CPC title
where the flow direction of the refrigerant does not change and there is an extra subcondenser, e.g. in an air duct · CPC title
where the flow direction of the refrigerant does not change and there is a bypass of the condenser · CPC title
Valves for air-conditioning devices, e.g. thermostatic valves · CPC title
by the detection of humidity or frost · CPC title
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