IP Library Granted Patent US 10,401,061
Granted Patent B2
US 10,401,061 · App. 14/602,790 · Granted Sep 3, 2019

Heat pump non-reversing valve arrangement

Inventors: Craig Michael Burg (Sussex, WI); Jeremy Hogan (Greenfield, WI)
Assignee: Desert Aire Corp.
F25B30/02F25B6/04F25B13/00F25B41/04F25B41/046F25B49/02F25B2313/021F25B2339/047F25B2400/0403F25B2400/0409Y10T29/49359
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Quick Facts
Patent No.
US 10,401,061
App. No.
14/602,790
Granted
Sep 3, 2019
Kind
B2
Abstract

A heat pump system that is operable in heating and cooling modes and which maintains the direction of fluid flows through a primary heat exchanger during heating and cooling operations such that the respective fluids are directed in counter flow thermal directions during both heating and cooling operations.

Claims (35)

1. A heat pump system providing a heating mode heating an airflow at one time and a cooling mode cooling the airflow at another time, comprising:

a primary heat exchanger having a first fluid path associated with a first fluid and a second fluid path associated with a second fluid, the first fluid path and the second fluid path allowing a counter flow thermal exchange between the first fluid and the second fluid during each of a discrete heating operation heating the airflow in the heating mode and a discrete cooling operation cooling the airflow in the cooling mode;

an evaporator fluidly connected to the second fluid path;

a compressor fluidly connected to the second fluid path;

a bypass passage between an outlet of the primary heat exchanger and an inlet of the compressor;

a secondary heat exchanger fluidly connected to the compressor, the secondary heat exchanger being fluidly associated with the airflow and the second fluid path, the secondary heat exchanger operating as a condenser in both the heating and cooling modes; and

a valve arrangement associated with the second fluid path, the valve arrangement being operable to maintain a common direction of flow of the second fluid during each of the discrete heating operation heating the airflow and the discrete cooling operation cooling the airflow, the valve arrangement allowing the counter flow thermal exchange in all modes of operation,

wherein the valve arrangement comprises a first valve between an inlet and an outlet of the bypass passage, a second valve disposed between the evaporator and both the primary heat exchanger and the inlet of the bypass passage, and a third valve disposed upstream of the compressor and between an outlet of the evaporator and the outlet of the bypass passage.

2. The heat pump system of claim 1 further comprising a bypass passage that bypasses the secondary heat exchanger.

3. The heat pump system of claim 2 further comprising at least one of a valve upstream of the secondary heat exchanger and a valve downstream of the secondary heat exchanger that is configured to manipulate a flow rate through the secondary heat exchanger.

4. The heat pump system of claim 1 wherein the flows of the first fluid and the second fluid through the primary heat exchanger are in thermal counter flow directions relative to one another and the airflow is in a thermal counter flow direction relative to the second fluid path through the secondary heat exchanger during both the discrete heating operation and the discrete cooling operation.

5. The heat pump system of claim 1 wherein the secondary heat exchanger operates as a condenser during both the heating mode and the cooling mode.

6. The heat pump system of claim 1 wherein the secondary heat exchanger is connected downstream of the compressor, the primary heat exchanger is connected downstream of the secondary heat exchanger, the evaporator is connected downstream of the primary heat exchanger and the compressor is connected downstream of the evaporator.

7. A method of forming a fluid conditioning system that is operable in a cooling mode cooling an airflow at a one time and a heating mode heating the airflow at another time, the method comprising:

connecting a primary heat exchanger to a first fluid stream and a second fluid stream that are fluidly isolated from one another and in counter flow thermal exchange with one another;

connecting a vapor compression system that includes a refrigerant compressor that is disposed between an evaporator and a secondary heat exchanger such that the second fluid stream is directed through the vapor compression system;

providing a bypass passage between the primary heat exchanger and the refrigerant compressor that allows at least a portion of the second fluid stream to bypass the evaporator;

controlling the flow of the second fluid stream with a valve arrangement such that the second fluid stream is directed through the primary heat exchanger in a single flow direction during the heating mode heating the airflow and during the cooling mode cooling the airflow, wherein the first fluid stream and the second fluid stream flow in counter flow directions relative to one another without reversal of the single flow direction in each of the heating mode and the cooling mode, the valve arrangement allowing the counter flow thermal exchange in the heating and cooling modes, wherein the valve arrangement comprises a first valve between an inlet and an outlet of the bypass passage, a second valve disposed between the evaporator and both the primary heat exchanger and the inlet of the bypass passage, and a third valve disposed upstream of the compressor and between an outlet of the evaporator and the outlet of the bypass passage; and

connecting the airflow to the secondary heat exchanger in thermal exchange with the second fluid stream directed therethrough, wherein the airflow and the second fluid stream are in counter flow directions relative to one another during both the heating mode and the cooling mode.

8. The method of claim 7 further comprising providing a thermal exchange at the secondary heat exchanger during the heating mode and the cooling mode between the airflow and the second fluid stream.

9. The method of claim 7 further comprising allowing at least a portion of the second fluid stream that is output from the secondary heat exchanger to bypass the primary heat exchanger.

10. The method of claim 7 further comprising directing the first fluid stream and the second fluid stream in opposite directions through the primary heat exchanger.

11. The method of claim 7 further comprising operating the secondary heat exchanger as a condenser during both the heating mode and the cooling mode and connecting the secondary heat exchanger downstream of the compressor, the primary heat exchanger downstream of the secondary heat exchanger, the evaporator downstream of the primary heat exchanger and the compressor downstream of the evaporator.

12. A heat pump system providing a heating mode heating an airflow at one time and a cooling mode cooling the airflow at another time, comprising:

a first heat exchanger having a counter flow thermal exchange between a first fluid flow and a second fluid flow;

an evaporator associated with the second fluid flow;

a compressor associated to the second fluid flow and connected downstream of the evaporator;

a second heat exchanger fluidly connected to the compressor, the second heat exchanger providing a counter flow thermal exchange between the airflow and the second fluid flow; and

a plurality of bypass passages associated with each of the first heat exchanger, the evaporator, and the second heat exchanger such that the second fluid flow maintains a common flow direction and the first heat exchanger and the second heat exchanger maintain the respective counter flow thermal exchange during each of a discrete resultant heating mode heating the airflow and a discrete resultant cooling mode cooling the airflow completely through the heat pump system, the bypass passage associated with the evaporator being a bypass passage between an outlet of the first heat exchanger and an inlet of the compressor; and

a valve arrangement associated with the plurality of bypass passages and being operable to maintain the common flow direction and allowing the counter flow thermal exchange during the heating and cooling modes associated with the air flow,

wherein the valve arrangement comprises a first valve between an inlet and an outlet of the bypass passage associated with the evaporator, a second valve disposed between the evaporator and both the primary heat exchanger and the inlet of the bypass passage associated with the evaporator, and a third valve disposed upstream of the compressor and between an outlet of the evaporator and the outlet of the bypass passage associated with the evaporator.

13. The heat pump system of claim 12 wherein each of the plurality of bypass passages includes a valve that is configured to manipulate a mass flow associated with the second fluid flow.

14. The heat pump system of claim 13 further comprising a controller configured to control operation of the valve arrangement.

15. The heat pump system of claim 12 wherein the compressor is further defined as a variable stage compressor.

16. The heat pump system of claim 12 wherein at least one of the plurality of bypass passages bypasses the evaporator by virtue of being directed back to one of the first heat exchanger and to the compressor.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 13, 2017
From: DESERT AIRE CORPORATION
To: DCI INVESTMENTS, LLC
Reel/Frame 040972/0057 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 25, 2015
From: BURG, CRAIG MICHAEL; HOGAN, JEREMY
To: DESERT AIRE CORP.
Reel/Frame 035028/0281 →
Continuity (2)
Provisional Application 61930199 · Jan 22, 2014
Related Publication 20150204586A1 · Jul 23, 2015