IP Library Granted Patent US 12,733,136
Granted Patent B2
US 12,733,136 · App. 18/313,284 · Granted Sep 8, 2026

Electrified vehicle inverter power module cooling

Inventors: Vincent T. Skalski (Plymouth, MI); Brian Christian Orr (Macomb, MI)
Assignee: FORD GLOBAL TECHNOLOGIES, LLC
H05K7/2089B60K11/02B60L50/60H02M7/003B60L2210/40
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Quick Facts
Patent No.
US 12,733,136
App. No.
18/313,284
Granted
Sep 8, 2026
Kind
B2
Abstract

An inverter power module cooling system for an electrified vehicle includes an inlet coupled to channels providing coolant from a heat exchanger in parallel to a plurality of power modules along a first edge of associated chips having one or more switches, and channels collecting coolant from a second edge of associated chips. An additional serpentine channel receives coolant from the inlet to cool an associated area of a thermally conductive capacitor pad. The system may include a base plate having channels on one side and providing coolant to one side of the power modules and the capacitor pad, and a channel plate secured to an opposite side of the base plate to provide coolant to an opposite of the power modules. Cover plates may be provided to seal the channels of the base plate and channel plate, or may be integrally formed by molding or additive manufacturing.

Claims (30)

1 . An electrified vehicle inverter, comprising:

at least one power module including a first chip and a second chip each having at least one switch operable to convert direct current to alternating current; and

a housing configured to secure the power module therein, the housing including:

a coolant inlet fluidly coupled to a first channel directing coolant from the inlet in parallel across the first and second chips from first respective edges of the first and second chips to opposite respective edges of the first and second chips to a second channel fluidly coupled to a coolant outlet;

a base plate defining at least a first portion of the first and second channels and configured to secure the at least one power module thereto;

at least one cover plate secured to the base plate, the at least one cover plate configured to fluidly seal the first and second channels;

a channel plate defining a second portion of the first and second channels, the channel plate secured to the base plate, the at least one power module being disposed between the channel plate and the base plate; and

a second cover plate secured to the channel plate and fluidly sealing the second portion of the first and second channels.

2 . The electrified vehicle inverter of claim 1 wherein the base plate defines a second portion of the first and second channels, and a third channel having a first end fluidly coupled to the coolant inlet and a second end fluidly coupled to the coolant outlet, the third channel directing coolant over a conductive cooling pad configured to contact an inverter capacitor.

3 . The electrified vehicle inverter of claim 2 wherein the third channel comprises a serpentine portion associated with the conductive cooling pad.

4 . The electrified vehicle inverter of claim 2 further comprising a base cover plate secured to the base plate and fluidly sealing the third channel and the second portion of the first and second channels.

5 . The electrified vehicle inverter of claim 1 wherein the at least one power module includes thermally conductive cooling pins in contact with surfaces of the first and second chips and extending within coolant flow areas between the first and second channels.

6 . An electrified vehicle system including a traction battery electrically connected to an electric machine by an inverter comprising:

a base plate having a first channel fluidly coupled to a coolant inlet, a second channel fluidly coupled to a coolant outlet, and a third channel fluidly coupled to the coolant inlet and the coolant outlet, the base plate configured to secure a plurality of power modules, each power module including first and second chips mounted back-to-back and having at least one switch operable by a controller to convert DC power from the traction battery to AC power to the electric machine, the first channel configured to supply coolant in parallel to a first edge of the first chip of each of the plurality of power modules, the second channel configured to collect coolant from a second edge of the first chip of each of the plurality of power modules;

a base cover plate extending over the first, second, and third channels and secured to the base plate;

a channel plate having a fourth channel fluidly coupled to the coolant inlet and a fifth channel fluidly coupled to the coolant outlet, the fourth channel configured to supply coolant in parallel to a first edge of the second chip of each of the plurality of power modules, the fifth channel configured to collect coolant from a second edge of the second chip of each of the plurality of power modules; and

a channel cover plate extending over the fourth and fifth channels.

7 . The electrified vehicle system of claim 6 wherein the base plate includes a thermally conductive capacitor pad and wherein the third channel includes a serpentine portion associated with the capacitor pad.

8 . The electrified vehicle system of claim 6 wherein the first and second channels extend from a first surface of the base plate, and the channel plate is secured to a second surface of the base plate opposite the first surface.

9 . The electrified vehicle system of claim 6 wherein each chip contacts a plurality of thermally conductive pin fins disposed between a respective first edge and second edge of each chip.

10 . The electrified vehicle system of claim 6 wherein each power module is mounted to the base plate such that the first chip is on a first side of the base plate and the second chip is on an opposite side of the base plate.

11 . An electrified vehicle inverter, comprising:

a plurality of power modules, each of the plurality of power modules including two chips mounted back-to-back, each chip having at least one switch operable to convert DC power from a traction battery to AC power supplied to an electric machine, the inverter including a coolant inlet configured to supply coolant in parallel to a first edge of all of the chips of the plurality of power modules, and a coolant outlet configured to exhaust coolant after flowing from the first edge to a second edge opposite the first edge of each chip; and

a base plate configured to secure each of the plurality of power modules thereto, the base plate having a first channel configured to supply coolant from the coolant inlet in parallel to the first edge of each chip and a second channel configured to direct coolant from the second edge of each chip to the coolant outlet.

12 . The electrified vehicle inverter of claim 11 wherein the base plate includes a thermally conductive capacitor plate and a third channel extending from the coolant inlet across the capacitor plate to the coolant outlet.

13 . The electrified vehicle inverter of claim 12 wherein the third channel includes a serpentine portion aligned with the capacitor plate.

14 . The electrified vehicle inverter of claim 13 further comprising a base cover plate extending over the first, second, and third channels and secured to the base plate, the base cover plate configured to fluidly seal the first, second, and third channels.

15 . The electrified vehicle inverter of claim 14 further comprising:

a channel plate secured to the base plate, the channel plate including a lower channel fluidly coupled to the first channel and an upper channel fluidly coupled to the second channel.

16 . The electrified vehicle inverter of claim 15 further comprising a channel plate cover secured to the channel plate and fluidly sealing the top and bottom channels.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 8, 2023
From: SKALSKI, VINCENT T.; ORR, BRIAN CHRISTIAN
To: FORD GLOBAL TECHNOLOGIES, LLC
Reel/Frame 063560/0938 →
Continuity (1)
Related Publication 20240373598A1 · Nov 7, 2024
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