IP Library Patent Application 16370292
Patent Application
App. No. 16/370,292

HVAC UNIT UTILIZING SELECTIVELY MODULATED FLOW RATES WITH HOT GAS REHEAT CIRCUIT

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Quick Facts
Patent No.
US None
App. No.
16/370,292
Abstract

The present disclosure is directed to a single compressor HVAC system with hot gas reheat. The system includes a single compressor, at least one condenser, a reheat heat exchanger, an evaporator, and an expansion device. The HVAC system is designed to selectively modulate flow rates of refrigerant from the compressor between the at least one condenser and the reheat heat exchanger using a multi-directional valve, such as a three-way valve, downstream of the compressor.

Claims (35)

1 . A heating, ventilating, or air conditioning system comprising:

a compressor configured to compress a refrigerant to produce compressed refrigerant;

a multi-directional valve configured to receive the compressed refrigerant from the compressor, to direct a first portion of the compressed refrigerant to a first condenser configured to cool the compressed refrigerant to provide cooled refrigerant, and to direct a second portion of the compressed refrigerant to a reheat circuit;

an evaporator configured to receive the cooled refrigerant from the first condenser, to transfer heat from a fluid external to the evaporator to the refrigerant to cool the fluid and provide heated refrigerant prior to directing the heated refrigerant to the compressor;

a reheat heat exchanger configured to receive the second portion of the compressed refrigerant from the reheat circuit, and to transfer heat from the compressed refrigerant to the fluid cooled by the evaporator; and

a controller configured to selectively modulate a proportion of the first and second portions of the compressed refrigerant directed by the multi-directional valve.

2 . The heating, ventilating, or air conditioning system of claim 1 , wherein the controller is configured to selectively modulate the proportion of the first and second portions of the compressed refrigerant based on feedback from at least one sensor.

3 . The heating, ventilating, or air conditioning system of claim 2 , wherein the at least one sensor comprises a pressure sensor configured to detect a pressure of the heating, ventilating, or air conditioning system.

4 . The heating, ventilating, or air conditioning system of claim 2 , wherein the at least one sensor comprises a temperature sensor configured to detect a temperature of the heating, ventilating, or air conditioning system.

5 . The heating, ventilating, or air conditioning system of claim 1 , comprising a second condenser in parallel with the first condenser.

6 . The heating, ventilating, or air conditioning system of claim 5 , wherein the multi-directional valve is disposed upstream of a first inlet connection to the first condenser with respect to a direction of flow of the compressed refrigerant, and downstream of a second inlet connection to the second condenser with respect to the direction of flow of the compressed refrigerant.

7 . The heating, ventilating, or air conditioning system of claim 5 , comprising a refrigerant recovery circuit configured to direct refrigerant from the first condenser to a suction side of the compressor.

8 . The heating, ventilating, or air conditioning system of claim 1 , comprising at least one expansion device configured to receive and to reduce pressure of the cooled refrigerant from the first condenser.

9 . The heating, ventilating, or air conditioning system of claim 8 , wherein the expansion device is configured to receive refrigerant from the reheat heat exchanger.

10 . A heating, ventilating, or air conditioning system comprising:

a compressor configured to compress a refrigerant;

at least one condenser configured to condense the refrigerant;

an evaporator configured to evaporate the refrigerant from the at least one condenser prior to returning the refrigerant to the compressor;

a reheat heat exchanger configured to transfer heat from the refrigerant to a fluid cooled by the evaporator;

a multi-directional valve configured to receive the refrigerant from the compressor, to direct a first portion of the refrigerant into the at least one condenser, and to direct a second portion of the refrigerant into the reheat heat exchanger; and

a controller configured to selectively modulate the first and second portions of the refrigerant that is directed by the multi-directional valve.

11 . The heating, ventilating, or air conditioning system of claim 10 , wherein the controller is configured to selectively modulate the first and second portions of the refrigerant based on feedback from at least one sensor.

12 . The heating, ventilating, or air conditioning system of claim 10 , wherein the at least one condenser comprises first and second condensers in parallel with each other.

13 . The heating, ventilating, or air conditioning system of claim 12 , wherein the multi-directional valve is disposed downstream of an inlet connection to the first condenser and upstream of the second condenser with respect to flow of the refrigerant.

14 . The heating, ventilating, or air conditioning system of claim 12 , comprising a refrigerant recovery circuit configured to direct refrigerant from the second condenser to a suction side of the compressor.

15 . The heating, ventilating, or air conditioning system of claim 10 , comprising at least one expansion device configured to receive and to reduce pressure of the refrigerant from the at least one condenser.

16 . The heating, ventilating, or air conditioning system of claim 15 , wherein the expansion device is configured to receive the refrigerant from the reheat heat exchanger.

17 . A method for operating a heating, ventilating, or air conditioning system, comprising:

receiving a refrigerant flow from a compressor into a multi-directional valve;

directing a first portion of the refrigerant flow to a first condenser using the multi-directional valve;

directing a second portion of the refrigerant flow to a reheat heat exchanger using the multi-directional valve;

controlling the multi-directional valve to selectively modulate the first and second portions of the refrigerant flow.

18 . The method of claim 17 , comprising determining a proportion of the first portion of the refrigerant flow relative to the second portion of the refrigerant flow, and controlling the multi-directional valve to selectively modulate the first and second portions of the refrigerant flow based at least in part of the proportion.

19 . The method of claim 18 , wherein determining the proportion of the first portion of the refrigerant flow relative to the second portion of the refrigerant flow is based at least in part on feedback from at least one sensor.

20 . The method of claim 17 , comprising directing a third portion of the refrigerant flow to a second condenser upstream of the multi-directional valve.

Assignments (4)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 24, 2025
From: TYCO FIRE & SECURITY GMBH
To: JOHNSON CONTROLS LIGHT COMMERCIAL IP GMBH
Reel/Frame 070179/0435 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 24, 2024
From: JOHNSON CONTROLS TYCO IP HOLDINGS LLP
To: TYCO FIRE & SECURITY GMBH
Reel/Frame 067832/0947 →
NUNC PRO TUNC ASSIGNMENT Recorded Feb 4, 2022
From: JOHNSON CONTROLS TECHNOLOGY COMPANY
To: JOHNSON CONTROLS TYCO IP HOLDINGS LLP
Reel/Frame 058959/0764 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 1, 2019
From: BLANTON, NORMAN J.
To: JOHNSON CONTROLS TECHNOLOGY COMPANY
Reel/Frame 048755/0022 →