IP Library › Granted Patent US 12,533,995
Granted Patent B2
US 12,533,995 · App. 18/807,115 · Granted Jan 27, 2026

Battery electric vehicle temperature-regulation system

Inventors: Andrew Swantek (Park Ridge, IL); Peter Quade (Walsrode, DE); Daniel Wenzel (Wipperfuerth, DE); Michael Henker (Kunshan, CN); Eric Rask (River Forest, IL)
Assignee: Illinois Tool Works Inc.
B60L58/26B60L58/27B60L2240/485B60L2240/545
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Quick Facts
Patent No.
US 12,533,995
App. No.
18/807,115
Granted
Jan 27, 2026
Kind
B2
Abstract

An actuated valveless architecture system includes a first screw pump, a second screw pump, and a plurality of check valves. The plurality of check valves is fluidically coupled with at least one of the first screw pump and the second screw pump. The plurality of check valves is configured to define a battery loop to regulate temperature of the battery system and a drivetrain loop to regulate temperature of the drive system.

Claims (37)

1 . An actuated valveless architecture system for regulating temperature in a vehicle having a battery system and a drive system, the actuated valveless architecture system comprising:

a first bi-directional control pump;

a second bi-directional control pump;

a plurality of check valves fluidically coupled with at least one of the first bi-directional control pump and the second bi-directional control pump;

a radiator; and

a chiller,

wherein the plurality of check valves, the first bi-directional control pump, and the second bi-directional control pump are configured to define a battery loop configured to regulate temperature of the battery system and a drivetrain loop configured to regulate temperature of the drive system,

wherein the plurality of check valves comprises a first check valve, a second check valve, a third check valve, and a fourth check valve, and

wherein the first check valve is configured to prevent coolant backflow from the radiator to the first bi-directional control pump.

2 . The actuated valveless architecture system of claim 1 , wherein each of the plurality of check valves is a passive valve.

3 . The actuated valveless architecture system of claim 1 , wherein the first bi-directional control pump and the second bi-directional control pump are configured to be independently controlled and to alternate between an off state, a first direction, and a second direction opposite the first direction.

4 . The actuated valveless architecture system of claim 1 , wherein the battery loop includes the chiller.

5 . The actuated valveless architecture system of claim 1 , wherein the drivetrain loop includes the radiator.

6 . The actuated valveless architecture system of claim 1 , wherein the first bi-directional control pump and the second bi-directional control pump are configured to direct coolant flow selectively through the chiller and the radiator.

7 . The actuated valveless architecture system of claim 1 , further comprising a positive temperature coefficient (PTC) heater, wherein the battery loop includes the PTC heater.

8 . The actuated valveless architecture system of claim 1 , wherein the second check valve is configured to prevent coolant flow from the first bi-directional control pump and divert coolant through the first check valve toward the radiator.

9 . The actuated valveless architecture system of claim 8 , wherein the third check valve is configured to prevent coolant backflow from the chiller toward the second bi-directional control pump.

10 . The actuated valveless architecture system of claim 9 , wherein the fourth check valve is configured to prevent coolant flow from the second bi-directional control pump and divert coolant through the third check valve toward the chiller.

11 . The actuated valveless architecture system of claim 1 , wherein the first bi-directional control pump and the second bi-directional control pump are configured, via one or more check valves of the plurality of check valves, to restrict flow through the drive system to one-way flow.

12 . The actuated valveless architecture system of claim 1 , wherein the first bi-directional control pump and the second bi-directional control pump are configured to be controlled via a control system having a processor operatively coupled to a memory device.

13 . The actuated valveless architecture system of claim 12 , wherein the control system is configured to employ artificial intelligence (AI) to monitor and control one or both of the bi-directional control pump and the second bi-directional control pump.

14 . An actuated valveless architecture system for regulating temperature in a vehicle having a battery system and a drive system, the actuated valveless architecture system comprising:

a first bi-directional control pump;

a second bi-directional control pump;

a radiator;

a chiller,

wherein each of the first bi-directional control pump and the second bi-directional control pump is bidirectional, and

wherein each of the first bi-directional control pump and the second bi-directional control pump is configured to be independently controlled and to alternate between an off state, a first direction, and a second direction opposite the first direction; and

a plurality of check valves fluidically coupled with at least one of the first bi-directional control pump and the second bi-directional control pump,

wherein the plurality of check valves, the first bi-directional control pump, and the second bi-directional control pump are configured to define a battery loop configured to regulate temperature of the battery system and a drivetrain loop configured to regulate temperature of the drive system,

wherein the plurality of check valves comprises a first check valve, a second check valve, a third check valve, and a fourth check valve, and

wherein the first check valve is configured to prevent coolant backflow from the radiator to the first bi-directional control pump.

15 . The actuated valveless architecture system of claim 14 , wherein the first bi-directional control pump and the second bi-directional control pump are configured to direct coolant flow selectively through the chiller and the radiator.

16 . The actuated valveless architecture system of claim 14 , wherein the first bi-directional control pump and the second bi-directional control pump are configured, via one or more check valves of the plurality of check valves, to restrict flow through the drive system to one-way flow.

17 . The actuated valveless architecture system of claim 14 , wherein the second check valve is configured to prevent coolant flow from the first bi-directional control pump and divert coolant through the first check valve toward the radiator.

18 . The actuated valveless architecture system of claim 17 , wherein the third check valve is configured to prevent coolant backflow from the chiller toward the second bi-directional control pump.

19 . The actuated valveless architecture system of claim 18 , wherein the fourth check valve is configured to prevent coolant flow from the second bi-directional control pump and divert coolant through the third check valve toward the chiller.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 13, 2024
From: SWANTEK, ANDREW; QUADE, PETER; WENZEL, DANIEL; HENKER, MICHAEL; RASK, ERIC
To: ILLINOIS TOOL WORKS INC.
Reel/Frame 069253/0497 →
Continuity (2)
Provisional Application 63535593 · Aug 31, 2023
Related Publication 20250074256A1 · Mar 6, 2025
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