IP Library Granted Patent US 10,837,711
Granted Patent B2
US 10,837,711 · App. 14/770,253 · Granted Nov 17, 2020

Heat transfer device

Inventor: Douglas Campbell (Wantage Oxfordshire, GB)
Assignee: WILLIAMS ADVANCED ENGINEERING LIMITED
F28D9/0093F28D1/0333F28D1/05358F28D15/00F28F3/046F28F9/264H01M2/1077H01M10/613H01M10/615H01M10/625H01M10/647H01M10/6557F28D2021/0029F28F2275/205H01M2220/20
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Quick Facts
Patent No.
US 10,837,711
App. No.
14/770,253
Granted
Nov 17, 2020
Kind
B2
Abstract

A heat transfer device including a body bounding a cavity for receiving a heat transfer medium, an inlet, and an outlet for providing a fluid connection to the cavity is provided. Interconnecting elements are provided at each of the inlet and outlet for providing a fluid connection to the inlet and the outlet. At least one interconnecting element is configured to interconnect with, and provide relative movement between and a substantially consistent fluid connection with, an interconnecting element of an adjacent device, such as a similar heat transfer device, over a range of spacing between bodies of the devices.

Claims (24)

1. A heat transfer assembly comprising:

a plurality of heat transfer devices, each heat transfer device comprising a body bounding a cavity of substantially constant volume for receiving a heat transfer fluid or medium, a gap or spacing being provided between opposing heat transfer surfaces of adjacent heat transfer devices,

at least one interconnection element fluidly connecting each heat transfer device with an adjacent heat transfer device, the interconnection element being configured to maintain a consistent fluid connection and, in use, permit variation in the spacing between opposing surfaces of adjacent heat transfer devices, the at least one interconnection element comprising a spigot defining a first tubular portion and a second tubular portion arranged on opposing sides of a respective heat transfer device, an inner surface of the first tubular portion being sized to substantially match an outer diameter of the second tubular portion, the first and second tubular portions defining a respective inlet and outlet that define a fluid through fluid passage, and in which the at least one interconnection element further comprises a radial flange that includes a further fluid passage from the through passage to the cavity,

securing elements comprising end plates configured to limit displacement of the plurality of heat transfer devices,

biasing elements comprising springs located between the end plates and an outermost heat transfer device, the biasing elements configured to provide an even pressure on the heat transfer devices and, in use, maintain the body bounding the cavity of the heat transfer device at the substantially constant volume, and

a sealing element comprising an o-ring, the sealing element configured to provide a fluid-tight seal located between the at least one interconnection element and the adjacent heat transfer device and, in use, permit the interconnecting element to slidingly move relative to the adjacent heat transfer plate, the movement being restrained by the biasing elements so as to maintain the body bounding the cavity at a substantially constant volume.

2. The heat transfer assembly as claimed in claim 1 , wherein the at least one interconnection element between adjacent heat transfer devices provides a common and continuous fluid connection.

3. The heat transfer assembly as claimed in claim 1 , wherein the plurality of heat transfer devices are in parallel coextensive alignment.

4. The heat transfer assembly as claimed in claim 1 , wherein a spacing between the end plates is fixed.

5. The heat transfer assembly as claimed in claim 1 , further comprising alignment elements configured to maintain the heat transfer devices in parallel alignment.

6. The heat transfer assembly as claimed in claim 5 , wherein the alignment elements interconnect the securing elements.

7. The heat transfer assembly as claimed in claim 5 , wherein the alignment elements comprise one or more securing rods or bolts passing through apertures formed in each of the plurality of heat transfer devices.

8. The heat transfer assembly as claimed in claim 7 , wherein the springs are provided on the one or more securing rods or bolts.

9. The heat transfer assembly as claimed in claim 5 , wherein the alignment elements comprise a keep plate located between the biasing elements and the outermost heat transfer device.

10. A battery stack, comprising:

a heat transfer assembly comprising:

a plurality of heat transfer devices, each heat transfer device comprising a body bounding a cavity of substantially constant volume for receiving a heat transfer fluid or medium, a gap or spacing being provided between opposing heat transfer surfaces of adjacent heat transfer devices,

at least one interconnection element fluidly connecting each heat transfer device with an adjacent heat transfer device, the interconnection element being configured to maintain a consistent fluid connection and, in use, permit variation in the spacing between opposing surfaces of adjacent heat transfer devices, the at least one interconnection element comprising a spigot defining a first tubular portion and a second tubular portion arranged on opposing sides of a respective heat transfer device, an inner surface of the first tubular portion being sized to substantially match an outer diameter of the second tubular portion, the first and second tubular portions defining a respective inlet and outlet that define a fluid through fluid passage, and in which the at least one interconnection element further comprises a radial flange that includes a further fluid passage from the through passage to the cavity,

securing elements comprising end plates configured to limit displacement of the plurality of heat transfer devices,

biasing elements comprising springs located between the end plates and an outermost heat transfer device, the biasing elements configured to provide an even pressure on the heat transfer devices and, in use, maintain the body bounding the cavity of the heat transfer device at the substantially constant volume, and

a sealing element comprising an o-ring, the sealing element configured to provide a fluid-tight seal located between the at least one interconnection element and the adjacent heat transfer device and, in use, permit the interconnecting element to slidingly move relative to the adjacent heat transfer plate, the movement being restrained by the biasing elements so as to maintain the body bounding the cavity at a substantially constant volume,

wherein a battery cell, pack or pouch is located in the spacing between opposing heat transfer devices.

11. The battery stack as claimed in claim 10 , wherein the heat transfer assembly further comprises alignment elements configured to maintain the heat transfer devices in parallel alignment.

12. The battery stack as claimed in claim 11 , wherein the alignment elements comprise a keep plate located between the biasing elements and the outermost heat transfer device.

Assignments (4)
CHANGE OF NAME Recorded Feb 24, 2025
From: WAE TECHNOLOGIES LIMITED
To: FORTESCUE ZERO LIMITED
Reel/Frame 070306/0051 →
CHANGE OF NAME Recorded Dec 23, 2022
From: WILLIAMS ADVANCED ENGINEERING LIMITED
To: WAE TECHNOLOGIES LIMITED
Reel/Frame 062196/0993 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 1, 2018
From: WILLIAMS GRAND PRIX ENGINEERING LIMITED
To: WILLIAMS ADVANCED ENGINEERING LIMITED
Reel/Frame 044796/0141 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 28, 2015
From: CAMPBELL, DOUGLAS
To: WILLIAMS GRAND PRIX ENGINEERING LIMITED
Reel/Frame 036786/0977 →
Priority Claims (1)
GB 1303386.5 · Feb 26, 2013 · national
Continuity (1)
Related Publication 20160003553A1 · Jan 7, 2016