IP Library › Granted Patent US 10,384,511
Granted Patent B2
US 10,384,511 · App. 15/417,260 · Granted Aug 20, 2019

Method to control battery cooling using the battery coolant pump in electrified vehicles

Inventors: Angel Fernando Porras (Dearborn, MI); Timothy Noah Blatchley (Dearborn, MI); Kenneth J. Jackson (Dearborn, MI)
Assignee: Ford Global Technologies, LLC
B60H1/00278B60H1/00885B60H1/323B60H1/3204B60H1/3205B60H1/32281B60L1/003B60L1/02B60L58/26B60H1/00385B60H2001/00307B60H2001/3255B60H2001/3266B60H2001/3272B60L2240/36B60L2240/545Y02T10/7005Y02T90/16Y10S903/93
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Quick Facts
Patent No.
US 10,384,511
App. No.
15/417,260
Granted
Aug 20, 2019
Kind
B2
Abstract

A climate-control system for a vehicle, comprising a controller in communication with a chiller configured to cool a vehicle battery and an evaporator configured to cool a vehicle cabin. The controller is configured to output a target chiller-pump speed based upon a difference between a battery coolant temperature and a target-battery coolant temperature to mitigate a temperature swing of air entering the cabin, and limiting the target chiller-pump speed in response to an available capacity of the chiller.

Claims (9)

1. A climate-control system for a vehicle, comprising:

a controller in communication with a chiller configured to cool a vehicle battery and an evaporator configured to cool a vehicle cabin, the controller configured to output a target chiller pump speed based upon a difference between a battery coolant temperature and a target-battery coolant temperature to mitigate a temperature swing of air entering the cabin, and limiting the target chiller-pump speed in response to an available capacity of the chiller wherein the pump speed is adjusted in response to the capacity of the chiller; and

wherein the capacity of the chiller is defined utilizing a look-up table mapping a cabin thermal load of the vehicle and a difference between an evaporator temperature and a target evaporator temperature.

2. The climate-control system of claim 1 , wherein the pump speed is determined such that coolant is increased in circulation to a chiller outlet as capacity of the chiller increases.

3. The climate-control system of claim 2 , wherein the pump speed includes a first speed configured to output coolant at a first speed in response to the capacity of the chiller being full.

4. The climate-control system of claim 2 , wherein the pump speed includes a second speed configured to output coolant at a second speed being lower than a first speed in response to the chiller capacity being less than full.

5. The climate-control system of claim 1 , wherein the controller is further configured to determine a change in temperature of cells in the vehicle battery.

6. The climate-control system of claim 5 , wherein the controller is further configured to define a target pump speed in response to the change in temperature of cells in the vehicle battery being below a temperature gradient threshold value defining a temperature gradient in the vehicle battery.

7. The climate-control system of claim 5 , wherein the controller is further configured to output a maximum target speed in response to the change in temperature of cells in the vehicle battery being above a temperature gradient value defining a temperature gradient in the vehicle battery.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 27, 2017
From: PORRAS, ANGEL FERNANDO; BLATCHLEY, TIMOTHY NOAH; JACKSON, KENNETH J.
To: FORD GLOBAL TECHNOLOGIES, LLC
Reel/Frame 041099/0467 →
Continuity (1)
Related Publication 20180215231A1 · Aug 2, 2018
Cited By (1)
US 12,656,008