Refrigeration system with an oil drain conduit and methods of use
Abstract
A refrigeration system comprises a low side heat exchanger configured to receive a first portion of the working fluid from a flash tank. The refrigeration system further comprises a header positioned downstream of the low side heat exchanger, the header comprising one or more inlets configured to receive the working fluid from the low side heat exchanger, a first outlet, and a second outlet. The refrigeration system comprises a check valve positioned downstream of the first outlet, a compressor positioned downstream of the check valve, and an oil drain conduit. The oil drain conduit comprises an inlet in fluid communication with the second outlet of the header. The drain conduit comprises an outlet configured to discharge at least a portion of the working fluid to a position downstream of the check valve and upstream of the compressor.
Claims
exact text as granted — not AI-modified1 . A refrigeration system, comprising:
a low side heat exchanger configured to receive a working fluid, the low side heat exchanger comprising one or more circuits of coils configured to cool a space proximate the low side heat exchanger by transferring heat between airflow passing across an external surface of the one or more circuits of coils and the working fluid passing through the one or more circuits of coils; a header positioned downstream of the one or more circuits of coils, the header comprising:
one or more inlets configured to receive the working fluid from the one or more circuits of coils;
a first outlet in fluid communication with the header; and
a second outlet in fluid communication with the header;
a check valve positioned downstream of the first outlet, wherein the check valve is configured to allow the working fluid to flow through the check valve when a pressure difference across the check valve exceeds a threshold pressure; a compressor positioned downstream of the check valve, the compressor configured to compress the working fluid received from the check valve; and an oil drain conduit comprising an inlet in fluid communication with the second outlet of the header, the oil drain conduit comprising an outlet configured to discharge at least a portion of the working fluid to a position downstream of the check valve and upstream of the compressor.
2 . The refrigeration system of claim 1 , wherein the header extends between a top surface and a bottom surface, wherein a first outlet in the header is positioned at a height above the bottom surface of the header, wherein a volume between the first outlet and the bottom surface defines an oil collection space.
3 . The refrigeration system of claim 2 , wherein a second outlet of the header is positioned in the oil collection space.
4 . The refrigeration system of claim 2 , wherein a second outlet of the header is positioned on the bottom surface of the header.
5 . The refrigeration system of claim 1 , wherein the oil drain conduit has a cross-sectional area that is less than a cross-sectional area of the header.
6 . The refrigeration system of claim 5 , wherein the oil drain conduit is sized such that during operation a differential pressure induced by the check valve and a suction pressure from the compressor causes at least a portion of an oil contaminant from the working fluid in the header to pass from the inlet to the outlet of the oil drain conduit.
7 . The refrigeration system of claim 1 , wherein the oil drain conduit comprises a U-shape.
8 . A method of operating a refrigeration system, the method comprising:
reducing a pressure of a working fluid in a first expansion valve; cooling a first space with the working fluid received from the first expansion valve using a first low side heat exchanger unit, the first low side heat exchanger unit comprising:
a low side heat exchanger comprising one or more circuits of coils configured to receive the working fluid from the first expansion valve;
a header comprising configured to receive the working fluid from the one or more circuits of coils;
a check valve positioned downstream of the header, wherein the check valve allows the working fluid to flow through the check valve when a pressure difference across the check valve exceeds a threshold pressure; and
an oil drain conduit in fluid communication with the header and that discharges a portion of the working fluid to a position downstream of the check valve; and
compressing the working fluid using a compressor, wherein the compressor is positioned downstream of the check valve and the oil drain conduit.
9 . The method of claim 8 , wherein the header extends between a top surface and a bottom surface, wherein a first outlet in the header is positioned at a height above the bottom surface of the header, wherein a volume between the first outlet and the bottom surface defines an oil collection space.
10 . The method of claim 9 , wherein a second outlet of the header is positioned on the bottom surface of the header.
11 . The method of claim 9 , wherein the oil drain conduit has a cross-sectional area that is less than a cross-sectional area of the header.
12 . The method of claim 11 , wherein the oil drain conduit is sized such that during operation a differential pressure induced by the check valve and a suction pressure from the compressor causes at least a portion of an oil contaminant from the working fluid in the header to pass from an inlet to an outlet of the oil drain conduit.
13 . A refrigeration system comprising:
a flash tank comprising a working fluid; a first low side heat exchanger configured to receive a first portion of the working fluid from the flash tank; a first header positioned downstream of the first low side heat exchanger, and configured to receive the working fluid from the first low side heat exchanger; a first check valve positioned downstream of the first header; a first compressor positioned downstream of the first check valve; and a first oil drain conduit in fluid communication with the first header, the first oil drain conduit configured to discharge at least a portion of the working fluid to a position downstream of the first check valve and upstream of the first compressor.
14 . The refrigeration system of claim 13 , further comprising:
a second low side heat exchanger configured to receive a second portion of the working fluid from the flash tank; a second header positioned downstream of the second low side heat exchanger, the second header configured to receive the working fluid from the second low side heat exchanger; a second check valve positioned downstream of the second header; a second compressor positioned downstream of the second check valve; and a second oil drain conduit in fluid communication with the second header, the second oil drain conduit configured to discharge at least a portion of the working fluid to a position downstream of the second check valve and upstream of the second compressor.
15 . The refrigeration system of claim 13 , wherein the first header extends between a top surface and a bottom surface, wherein a first outlet in the first header is positioned at a height above the bottom surface of the first header, wherein a volume between the first outlet and the bottom surface defines an oil collection space.
16 . The refrigeration system of claim 13 , wherein the first oil drain conduit has a cross-sectional area that is less than a cross-sectional area of the first header.
17 . The refrigeration system of claim 13 , wherein the first oil drain conduit is sized such that during operation a differential pressure induced by the first check valve and a suction pressure from the first compressor causes at least a portion of an oil contaminant from the working fluid in the first header to pass from an inlet to an outlet of the first oil drain conduit.Join the waitlist — get patent alerts
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