IP Library Granted Patent US 8,037,685
Granted Patent B2
US 8,037,685 · App. 12/336,196 · Granted Oct 18, 2011

Method for cooling an internal combustion engine having exhaust gas recirculation and charge air cooling

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Quick Facts
Patent No.
US 8,037,685
App. No.
12/336,196
Granted
Oct 18, 2011
Kind
B2
Abstract

A system for cooling charge air from a turbo- or supercharger and exhaust gas recirculated from an exhaust gas recirculation valve in an internal combustion engine. The system includes a radiator and parallel charge air and exhaust gas heat exchanger units, the charge air heat exchanger unit having aluminum tubes and fins for air cooling the charge air, and the exhaust gas heat exchanger unit having stainless steel tubes and fins. The charge air heat exchanger and the exhaust gas heat exchanger units are each disposed adjacent the radiator, on the same or opposite sides. Alternatively, there is provided a pair of combined charge air cooler and exhaust gas cooler heat exchanger units, with a first heat exchanger unit having stainless steel tubes and fins, and a second heat exchanger unit having aluminum tubes and fins. The heat exchanger units are disposed on opposites sides of the radiator.

Claims (23)

1. A method of cooling engine coolant and charge air from a turbo- or supercharger in an internal combustion engine comprising:

providing a radiator for cooling engine coolant having opposite front and rear core faces through which ambient air flows, and opposite upper and lower ends adjacent the faces;

providing a charge air cooler for cooling charge air having upper and lower units, each charge air cooler unit having opposite front and rear core faces through which ambient air flows, and opposite upper and lower ends adjacent the faces, the upper charge air cooler unit being disposed in overlapping relationship and adjacent to the upper end of the radiator, wherein one face at the upper end of the radiator is disposed adjacent one face of the upper charge air cooler unit, and the lower charge air cooler unit being disposed in overlapping relationship and adjacent to the lower end of the radiator with the upper and lower ends of the lower charge air cooler unit being oriented in the same direction as the upper and lower ends of the radiator, wherein the other face at the lower end of the radiator is disposed adjacent one face of the lower charge air cooler unit, each charge air cooler unit having a different core style from the other selected from the group consisting of core depth, fin count, and tube spacing, the charge air cooler units being operatively connected such that the charge air flows therebetween;

flowing the engine coolant through the radiator to cool the engine coolant;

flowing the charge air from the turbo- or supercharger in sequence through the charge air heat exchanger units to cool the charge air; and

flowing cooling air through the heat exchanger assembly such that the cooling air flows in series through the upper end of the radiator and the upper charge air cooler unit, and the cooling air flows in series through the lower charge air cooler unit and the lower end of the radiator, with one of the charge air cooler units being positioned upstream of the radiator with respect to cooling air flow and the other of the charge air cooler units being positioned downstream of the radiator with respect to cooling air flow, wherein the upstream charge air cooler unit has a lower fin count, lower core depth or increased tube spacing compared to the fin count, core depth or tube spacing of the downstream charge air cooler unit.

2. The method of claim 1 wherein at least one of the charge air cooler units includes cooling for recirculated exhaust gas.

3. The method of claim 1 wherein the upper and lower ends of the upper charge air cooler unit are oriented in the same direction as the upper and lower ends of the radiator.

4. The method of claim 1 wherein each charge air cooler unit has a different core depth from the other, and the upstream charge air cooler unit has a lower core depth compared to the core depth of the downstream charge air cooler unit.

5. The method of claim 1 wherein each charge air cooler unit has a different fin count from the other, and the upstream charge air cooler unit has a lower fin count compared to the fin count of the downstream charge air cooler unit.

6. The method of claim 1 wherein each charge air cooler unit has a different tube spacing from the other, and the upstream charge air cooler unit has an increased tube spacing compared to the tube spacing of the downstream charge air cooler unit.

7. A method of cooling engine coolant and charge air from a turbo- or supercharger in an internal combustion engine comprising:

providing a radiator having upper and lower units for cooling engine coolant, each radiator unit having opposite front and rear core faces through which ambient cooling air flows, a depth between the front and rear faces, and opposite upper and lower ends adjacent the faces, the radiator units being operatively connected such that the engine coolant flows therebetween;

providing a charge air cooler having upper and lower units for cooling charge air, each charge air cooler unit having opposite front and rear core faces through which cooling air flows, and opposite upper and lower ends adjacent the faces, the upper charge air cooler unit being disposed in overlapping relationship and adjacent to the upper radiator unit, wherein one face of the upper radiator unit is disposed adjacent one face of the upper charge air cooler unit, and the lower charge air cooler unit being disposed in overlapping relationship and adjacent to the lower radiator unit, wherein the other face of the lower radiator unit is disposed adjacent one face of the lower charge air cooler unit, each charge air cooler unit having a different core style from the other selected from the group consisting of core depth, fin count, and tube spacing, the charge air cooler units being operatively connected such that the charge air flows therebetween;

flowing the engine coolant in sequence through the radiator units to cool the engine coolant;

flowing the charge air from the turbo- or supercharger in sequence through the charge air heat exchanger units to cool the charge air; and

flowing cooling air through the heat exchanger assembly such that the cooling air flows in series through the upper radiator unit and the upper charge air cooler unit, and the cooling air flows in series through the lower charge air cooler unit and the lower radiator unit, with one of the charge air cooler units being positioned upstream of a radiator unit with respect to cooling air flow and the other of the charge air cooler units being positioned downstream of the other radiator unit with respect to cooling air flow, wherein the upstream charge air cooler unit has a lower fin count, lower core depth or increased tube spacing compared to the fin count, core depth or tube spacing of the downstream charge air cooler unit.

8. The method of claim 7 wherein at least one of the charge air cooler units includes cooling for recirculated exhaust gas.

9. The method of claim 7 wherein each radiator unit has a different core style selected from the group consisting of core depth, type of fins, fin spacing, fin count, tube spacing and tube count.

10. The method of claim 7 wherein the upper and lower ends of the upper charge air cooler unit are oriented in the same direction as the upper and lower ends of the upper radiator unit and the upper and lower ends of the lower charge air cooler unit are oriented in the same direction as the upper and lower ends of the lower radiator unit.

11. The method of claim 7 wherein each charge air cooler unit has a different core depth from the other, and the upstream charge air cooler unit has a lower core depth compared to the core depth of the downstream charge air cooler unit.

12. The method of claim 7 wherein each charge air cooler unit has a different fin count from the other, and the upstream charge air cooler unit has a lower fin count compared to the fin count of the downstream charge air cooler unit.

13. The method of claim 7 wherein each charge air cooler unit has a different tube spacing from the other, and the upstream charge air cooler unit has an increased tube spacing compared to the tube spacing of the downstream charge air cooler unit.

Assignments (8)
RELEASE OF SECURITY INTEREST Recorded Mar 1, 2019
From: CIBC BANK USA F/K/A THE PRIVATEBANK AND TRUST COMPANY
To: HD BRANCH ACQUISITION, LLC
Reel/Frame 048479/0631 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 12, 2018
From: HD BRANCH ACQUISITION, LLC
To: THERMAL SOLUTIONS MANUFACTURING, INC.
Reel/Frame 044608/0110 →
INTELLECTUAL PROPERTY SECURITY AGREEMENT Recorded Jul 7, 2015
From: HD BRANCH ACQUISITION, LLC
To: THE PRIVATEBANK AND TRUST COMPANY
Reel/Frame 036066/0268 →
RELEASE OF SECURITY INTEREST Recorded Jun 15, 2015
From: MONROE CAPITAL PARTNERS FUND LLC
To: HD BRANCH ACQUISITION, LLC; R & D ENTERPRISES, INC.
Reel/Frame 035909/0843 →
RELEASE OF SECURITY INTEREST Recorded Jun 12, 2015
From: MONROE CAPITAL PARTNERS FUND LP, AS ADMINISTRATIVE AGENT
To: HD BRANCH ACQUISITION, LLC
Reel/Frame 035947/0226 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 17, 2012
From: CENTRUM EQUITIES ACQUISITION, LLC
To: HD BRANCH ACQUISITION, LLC
Reel/Frame 028563/0943 →
ASSIGNMENT OF PATENT AND TRADEMARK SECURITY AGREEMENTS Recorded Apr 26, 2012
From: BANK OF AMERICA, N.A., AS ADMINISTRATIVE AGENT
To: THE PRIVATEBANK AND TRUST COMPANY, AS AGENT
Reel/Frame 028110/0908 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 1, 2009
From: PROLIANCE INTERNATIONAL, INC.
To: CENTRUM EQUITIES ACQUISITION, LLC
Reel/Frame 023586/0202 →