IP Library › Granted Patent US 11,046,147
Granted Patent B2
US 11,046,147 · App. 16/257,946 · Granted Jun 29, 2021

Cabin condenser integrated temperature control system

Inventor: Kota Takeichi (Novi, MI)
Assignee: DENSO International America, Inc.
B60H1/00899B60H1/00278B60H1/3227F28D2021/0084F28F9/0231F28F9/0246F28F9/26
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Quick Facts
Patent No.
US 11,046,147
App. No.
16/257,946
Granted
Jun 29, 2021
Kind
B2
Abstract

A cabin condenser for a heating, ventilation, and air conditioning (HVAC) system for a battery electric vehicle (BEV). The cabin condenser includes a first cabin condenser portion and a second cabin condenser portion. A regulator is configured to control flow of refrigerant from the first cabin condenser portion to the second cabin condenser portion.

Claims (43)

1. A cabin condenser for a heating, ventilation, and air conditioning (HVAC) system for a battery electric vehicle (BEV), the cabin condenser comprising:

a first cabin condenser portion;

a second cabin condenser portion;

a regulator configured to control flow of refrigerant from the first cabin condenser portion to the second cabin condenser portion, the regulator defines a first chamber through which refrigerant flows from the first cabin condenser portion into the second cabin condenser portion, and the regulator defines a second chamber through which refrigerant flows from the second cabin condenser portion, a divider separates the first chamber from the second chamber so that the first chamber is fluidly independent of the second chamber; and

an airflow divider between the first cabin condenser portion and the second cabin condenser portion to separate airflow through the first cabin condenser portion from airflow through the second cabin condenser portion;

wherein airflow through the first cabin condenser portion flows to a passenger cabin of the BEV, and airflow through the second cabin condenser portion flows to an exterior of the BEV.

2. The cabin condenser of claim 1 , wherein:

the first cabin condenser portion includes a first condenser inlet in receipt of refrigerant warmed by a chiller, and includes a first condenser outlet connected to a first regulator inlet of the regulator; and

the second cabin condenser portion includes a second condenser inlet in receipt of refrigerant from a regulator outlet of the regulator, and includes a second condenser outlet;

wherein the first chamber of the regulator is between the first regulator inlet and the regulator outlet.

3. The cabin condenser of claim 2 , wherein the second condenser outlet is connected to a second regulator inlet of the regulator that is in direct fluid communication with the second chamber.

4. The cabin condenser of claim 1 , wherein:

the regulator includes a valve within the first chamber, the valve is configured to be open a first degree when refrigerant entering the first cabin condenser portion is at a first temperature; and

the valve is configured to be open a second degree that is greater than the first degree to increase refrigerant flow through the second cabin condenser portion when refrigerant entering the second cabin condenser portion is at a second temperature that is greater than the first temperature.

5. The cabin condenser of claim 1 , wherein the first cabin condenser portion and the second cabin condenser portion are spaced apart.

6. The cabin condenser of claim 1 , wherein the first cabin condenser portion and the second cabin condenser portion are in a common housing.

7. The cabin condenser of claim 1 , further comprising:

a first airflow control device configured to control airflow across the first cabin condenser portion; and

a second airflow control device configured to control airflow across the second cabin condenser portion.

8. A heating, ventilation, and air conditioning (HVAC) system for a battery electric vehicle (BEV) comprising:

a chiller configured to cool a battery of the BEV;

a cabin condenser in fluid communication with the chiller to receive refrigerant warmed by the chiller, the cabin condenser including a first cabin condenser portion, and a second cabin condenser portion; and

a regulator configured to control flow of refrigerant from the first cabin condenser portion to the second cabin condenser portion, the regulator defines a first chamber through which refrigerant flows from the first cabin condenser portion into the second cabin condenser portion, and the regulator defines a second chamber through which refrigerant flows from the second cabin condenser portion, a divider separates the first chamber from the second chamber so that the first chamber is fluidly independent of the second chamber;

wherein the first cabin condenser portion is in a first airflow duct portion that directs airflow to a passenger cabin of the BEV, and the second cabin condenser portion is in a second airflow duct portion that directs airflow to an exterior of the BEV such that airflow through the first cabin condenser portion is independent of airflow through the second cabin condenser portion.

9. The HVAC system of claim 8 , further comprising a compressor along a refrigerant line between the chiller and the cabin condenser, the compressor configured to compress refrigerant flowing from the chiller to the cabin condenser.

10. The HVAC system of claim 1 , further comprising an evaporator in the first airflow duct portion upstream of the cabin condenser.

11. The HVAC system of claim 1 , further comprising a first airflow control device configured to control airflow across the first cabin condenser portion; and

a second airflow control device configured to control airflow across the second airflow duct portion.

12. The HVAC system of claim 11 , wherein the first airflow control device is a first airflow control door at an upstream face of the condenser; and

wherein the second airflow control device is a second airflow control door at a junction between the first airflow duct portion and the second airflow duct portion.

13. The HVAC system of claim 8 , wherein:

the regulator includes a valve within the first chamber, the valve is configured to be open a first degree when refrigerant entering the first cabin condenser portion is at a first temperature; and

the valve is configured to be open a second degree that is greater than the first degree to increase refrigerant flow through the second cabin condenser portion when refrigerant entering the second cabin condenser portion is at a second temperature that is greater than the first temperature.

14. The HVAC system of claim 13 , wherein the valve is configured to be open the first degree when a waste heat capacity of the chiller is at a first capacity; and

wherein the valve is configured to be open at the second degree when the waste heat capacity of the chiller is at a second capacity that is greater than the first capacity.

15. The HVAC system of claim 8 , wherein:

the first cabin condenser portion includes a first condenser inlet in receipt of refrigerant warmed by the chiller, and includes a first condenser outlet connected to a first regulator inlet of the regulator;

the second cabin condenser portion includes a second condenser inlet in receipt of refrigerant from a regulator outlet of the regulator, and includes a second condenser outlet; and

the second condenser outlet is connected to a second regulator inlet of the regulator;

wherein the first chamber of the regulator is between the first regulator inlet and the regulator outlet.

16. The HVAC system of claim 15 , wherein the first cabin condenser portion is spaced apart from the second cabin condenser portion.

17. The HVAC system of claim 8 , further comprising an external condenser in a refrigerant loop in receipt of refrigerant from the chiller.

18. The HVAC system of claim 8 , further comprising a thermostatic expansion valve upstream of the chiller.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 25, 2019
From: TAKEICHI, KOTA
To: DENSO INTERNATIONAL AMERICA, INC.
Reel/Frame 048139/0875 →
Continuity (1)
Related Publication 20200238792A1 · Jul 30, 2020
Cited By (1)
US 12,370,865