IP Library Granted Patent US 10,954,845
Granted Patent B2
US 10,954,845 · App. 16/665,612 · Granted Mar 23, 2021

Actively controlled coolant tank to increase thermal storage capacity of hybrid electric vehicles

Inventors: Mohammad Reza Amini (Ann Arbor, MI); Jing Sun (Superior Township, MI); Ilya Kolmanovsky (Ann Arbor, MI); Hao Wang (Ann Arbor, MI)
Assignee: THE REGENTS OF THE UNIVERSITY OF MICHIGAN
F01P3/20B60H1/04B60K11/02F01P3/18F01P7/16F01P5/10F01P2003/182F01P2025/12F01P2025/30F01P2025/66F01P2060/08
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Quick Facts
Patent No.
US 10,954,845
App. No.
16/665,612
Granted
Mar 23, 2021
Kind
B2
Abstract

An engine and cabin thermal management system for use with a vehicle having an engine, a cabin heating system configured to thermally heat a cabin of the vehicle, a coolant system operably coupled to the engine and to the cabin heating system to thermally manage a temperature of the engine and a temperature of the cabin. The coolant system having one or more coolant thermal storage units fluidly coupled with a radiator and heater core of the coolant system forming a coolant loop. The system further having a control system configured to monitor and maintain at least a predetermined coolant temperature at the cabin heating system even during a coolant temperature decrease at the engine stops.

Claims (19)

1. An engine and cabin thermal management system for use with a vehicle, the engine, and cabin thermal management system comprising:

an engine;

a cabin heating system configured to thermally heat a cabin of the vehicle;

an actively controlled coolant tank system having coolant, the actively controlled coolant tank system being operably coupled to the engine and to the cabin heating system to thermally manage a temperature of the engine, a temperature of the coolant inside and outside of the tank system, and a temperature of the cabin, the actively controlled coolant tank system having one or more coolant thermal storage units fluidly coupled with a radiator and heater core of the actively controlled coolant tank system forming a coolant loop with two or more actuators configured to be continuously controlled during operation of the engine and engine stops; and

a predictive and optimization-based control system configured to monitor and maintain via the two or more actuators at least a predetermined coolant temperature at the cabin heating system even during a coolant temperature decrease at the engine stops, the predictive and optimization-based control system configured to monitor and maintain the predetermined coolant temperature at the cabin heating system based at least in part on traffic preview in a model predictive scheme while monitoring and maintaining a coolant level inside the one or more coolant thermal storage units, the model predictive scheme predicting the temperature and level of coolant inside the one or more coolant thermal storage units thereby coordinating the temperature and level of coolant inside the one or more coolant thermal storage units based on traffic and vehicle speed, the predictive and optimization-based control system further configured to ensure a minimum level of coolant is maintained within the one or more coolant thermal storage units to achieve the model predictive scheme.

2. The engine and cabin thermal management system according to claim 1 wherein the predictive and optimization-based control system actively outputs coolant stored in the coolant thermal storage unit to the coolant loop.

3. The engine and cabin thermal management system according to claim 1 wherein the predictive and optimization-based control system actively outputs coolant stored in the coolant thermal storage unit in response to predicted vehicle speed.

4. The engine and cabin thermal management system according to claim 1 wherein the control system predictive and optimization-based actively input coolant into the coolant thermal storage unit in response to predicted vehicle speed or traffic flow information in anticipation of an upcoming engine stop.

5. The engine and cabin thermal management system according to claim 1 , wherein the predictive and optimization-based control system is configured to add coolant from the engine to the coolant thermal storage unit when the engine is operating and to add coolant from the coolant thermal storage unit to the cabin heating system when the engine is not operating.

6. A vehicle comprising:

an engine;

a passenger cabin;

a cabin heating system configured to thermally heat the passenger cabin of the vehicle;

an actively controlled coolant tank system having coolant, the actively controlled coolant tank system being fluidly coupled to the engine and to the cabin heating system to independently thermally manage a temperature of the engine, a temperature of the coolant inside and outside of the tank system, and a temperature of the passenger cabin, the actively controlled coolant tank system having one or more coolant thermal storage units fluidly coupled with a radiator and heater core of the actively controlled coolant tank system forming a coolant loop with two or more actuators configured to be continuously controlled during operation of the engine and engine stops; and

a predictive and optimization-based control system configured to monitor and maintain via the two or more actuators at least a predetermined coolant temperature at the cabin heating system even during a coolant temperature decrease at the engine stops, the predictive and optimization-based control system configured to monitor and maintain the predetermined coolant temperature at the cabin heating system based at least in part on traffic preview in a model predictive scheme while monitoring and maintaining a coolant level inside the one or more coolant thermal storage units, the model predictive scheme predicting the temperature and level of coolant inside the one or more coolant thermal storage units thereby coordinating the temperature and level of coolant inside the one or more coolant thermal storage units based on traffic and vehicle speed, the predictive and optimization-based control system further configured to ensure a minimum level of coolant is maintained within the one or more coolant thermal storage units to achieve the model predictive scheme.

7. The vehicle according to claim 6 wherein the predictive and optimization-based control system actively outputs coolant stored in the coolant thermal storage unit to the coolant loop.

8. The vehicle according to claim 6 wherein the predictive and optimization-based control system actively outputs coolant stored in the coolant thermal storage unit in response to predicted vehicle speed.

9. The vehicle according to claim 6 wherein the predictive and optimization-based control system actively input coolant into the coolant thermal storage unit in response to predicted vehicle speed.

10. The vehicle according to claim 6 , wherein the predictive and optimization-based control system is configured to add coolant from the engine to the coolant thermal storage unit when the engine is operating and to add coolant from the coolant thermal storage unit to the cabin heating system when the engine is not operating.

Assignments (2)
CONFIRMATORY LICENSE Recorded Nov 30, 2020
From: UNIVERSITY OF MICHIGAN
To: U.S. DEPARTMENT OF ENERGY
Reel/Frame 054532/0589 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 5, 2020
From: AMINI, MOHAMMAD REZA, MR.; SUN, JING; KOLMANOVSKY, ILYA; WANG, HAO, MR.
To: THE REGENTS OF THE UNIVERSITY OF MICHIGAN
Reel/Frame 053408/0650 →
Continuity (2)
Provisional Application 62752427 · Oct 30, 2018
Related Publication 20200131976A1 · Apr 30, 2020