IP Library › Granted Patent US 12,510,307
Granted Patent B2
US 12,510,307 · App. 18/645,708 · Granted Dec 30, 2025

Heat sink and heat exchanger system using the same

Inventors: Bobby Mathew (Al Ain, AE); Fadi Alnaimat (Al Ain, AE); Mouza Abdulla Mohammed Sultan Al Shamsi (Al Ain, AE)
Assignee: UNITED ARAB EMIRATES UNIVERSITY
F28F1/40H05K7/20254
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Quick Facts
Patent No.
US 12,510,307
App. No.
18/645,708
Granted
Dec 30, 2025
Kind
B2
Abstract

The heat sink is a single-phase liquid-based heat sink. The heat sink includes a hollow cylindrical housing having first and second opposed circular walls and a sidewall. The first circular wall has a central opening formed therethrough. An intermediate circular plate is positioned between the first and second opposed circular walls. The intermediate circular plate has a central passage and an array of apertures formed therethrough. An inlet tube with opposed first and second ends passes through the central opening. The second end of the inlet tube is in fluid communication with the central passage formed through the intermediate circular plate. An outlet tube with opposed first and second ends is also provided such that the second end thereof is in fluid communication with the central opening formed through the first circular wall. The second circular wall is adapted for thermal communication with a heat source.

Claims (24)

1 . A heat sink, comprising:

a hollow cylindrical housing having first and second opposed circular walls and a sidewall, the first circular wall having a central opening formed therethrough;

an intermediate circular plate positioned between the first and second opposed circular walls, the intermediate circular plate having a central passage and an array of apertures formed therethrough;

an inlet tube having opposed first and second ends, wherein the inlet tube passes through the central opening formed through the first circular wall, and wherein the second end of the inlet tube is in direct fluid communication with the central passage formed through the intermediate circular plate; and

an outlet tube having opposed first and second ends, wherein the second end of the outlet tube is in direct fluid communication with the central opening formed through the first circular wall,

wherein the second circular wall is adapted for thermal communication with a heat source,

wherein the inlet tube delivers a cool heat exchange liquid to a heat exchange chamber defined between the second circular wall and the intermediate circular plate,

wherein the outlet tube removes a heated heat exchange liquid from an outlet chamber defined between the first circular wall and the intermediate circular plate, and

wherein the heat exchange chamber and the outlet chamber are in fluid communication with one another through the array of apertures formed through the intermediate circular plate,

wherein the inlet tube has a diameter which is smaller than a diameter of the outlet tube, and

wherein the inlet tube and the outlet tube are arranged coaxially and concentrically with respect to one another.

2 . The heat sink as recited in claim 1 , wherein a plurality of pin fins are mounted on an interior surface of the second circular wall.

3 . The heat sink as recited in claim 1 , wherein a plurality of elongated members are mounted on an interior surface of the first circular wall and an interior surface of the second circular wall such that a plurality of channels are defined therebetween.

4 . A heat exchanger system, comprising:

the heat sink according to claim 1 ; and

an air-to-liquid heat exchanger having an inlet and an outlet, the inlet thereof being in fluid communication with the outlet tube of the heat sink for receiving the heated heat exchange liquid therefrom for cooling thereof, and the outlet thereof being in fluid communication with the inlet tube of the heat sink for transferring the cool heat exchange liquid thereto following cooling thereof.

5 . The heat exchanger system as recited in claim 4 , further comprising a pump for driving the heated heat exchange liquid and the cool heat exchange liquid through the air-to-liquid heat exchanger.

6 . The heat exchanger system as recited in claim 4 , further comprising a fan for delivering environmental air to the air-to-liquid heat exchanger.

7 . The heat exchanger system as recited in claim 4 , wherein a plurality of pin fins are mounted on an interior surface of the first circular wall and an interior surface of the second circular wall of the heat sink.

8 . The heat exchanger system as recited in claim 4 , wherein a plurality of elongated members are mounted on an interior surface of the first circular wall and an interior surface of the second circular wall of the heat sink such that a plurality of channels are defined therebetween.

9 . The heat exchanger system as recited in claim 4 , wherein the inlet tube of the heat sink has a diameter which is smaller than a diameter of the outlet tube of the heat sink.

10 . The heat exchanger system as recited in claim 9 , wherein the inlet tube and the outlet tube of the heat sink are arranged coaxially with respect to one another.

11 . The heat sink as recited in claim 1 , wherein the second end of the inlet tube is directly connected to the central passage formed through the intermediate circular plate.

12 . The heat sink as recited in claim 11 , wherein the second end of the outlet tube is directly connected to the central opening formed through the first circular wall.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 26, 2024
From: MATHEW, BOBBY; ALNAIMAT, FADI; AL SHAMSI, MOUZA ABDULLA MOHAMMED SULTAN
To: UNITED ARAB EMIRATES UNIVERSITY
Reel/Frame 067236/0414 →
Continuity (1)
Related Publication 20250334353A1 · Oct 30, 2025
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