Claims
- 1. A heat exchanger manifold block configured for attachment by brazing to a heat exchanger manifold by orienting the manifold block to have a longitudinal axis thereof substantially parallel to a longitudinal axis of the manifold, the manifold block comprising:
- a longitudinal surface substantially parallel to the longitudinal axes of the manifold block and the manifold;
- a second surface of the manifold block;
- a port hole in the second surface of the manifold block, the port hole being configured to receive a jumper tube to which the manifold block is configured for attachment;
- fins projecting from at least one of the longitudinal and second surfaces of the manifold block, the fins promoting convective and radiative heat transfer to the manifold block so as to increase the heating rate of the manifold block during brazing of the manifold block to the jumper tube and the manifold; and
- a counterbore surrounding the port hole, the counterbore being sized to serve as a reservoir for molten braze metal and to prevent molten braze metal from flowing away from the jumper tube and toward the fins during brazing of the jumper tube to the port hole.
- 2. The heat exchanger manifold block set forth in claim 1, further comprising the jumper tube brazed to the port hole of the manifold block.
- 3. The heat exchanger manifold block set forth in claim 1, further comprising the manifold brazed to the manifold block.
- 4. The heat exchanger manifold block set forth in claim 1, wherein the fins are defined by longitudinal grooves extruded into the longitudinal surface of the manifold block.
- 5. The heat exchanger manifold block set forth in claim 1, further comprising a mounting flange configured to mate with the manifold for attachment of the manifold block to the manifold.
- 6. The heat exchanger manifold block set forth in claim 5, wherein the mounting flange is spaced longitudinally from the second surface of the mounting block.
- 7. The heat exchanger manifold block set forth in claim 6, further comprising the manifold brazed to the mounting flange of the manifold block.
- 8. The heat exchanger manifold block set forth in claim 1, wherein the fins comprise a set of longitudinal fins that project from the longitudinal surface and a set of lateral fins that project from the second surface.
- 9. The heat exchanger manifold block set forth in claim 1, further comprising a cylindrical boss within the counter bore and surrounding the port hole.
- 10. The heat exchanger manifold block set forth in claim 9, further comprising the jumper tube brazed to the cylindrical boss.
- 11. A heat exchanger manifold block brazed to a jumper tube and a heat exchanger manifold, the manifold block having a longitudinal axis substantially parallel to a longitudinal axis of the manifold, the manifold block comprising:
- a longitudinal surface substantially parallel to the longitudinal axes of the manifold block and the manifold;
- a lateral end surface substantially perpendicular to the longitudinal surface of the manifold block;
- a mounting flange mated with and brazed to the manifold, the mounting flange being spaced longitudinally from the lateral end surface of the mounting block;
- a port hole in the lateral end surface of the manifold block, the jumper tube being received in and brazed to the port hole;
- longitudinal fins projecting from the longitudinal surface of the manifold block and lateral fins projecting from the lateral end surface of the manifold block, the lateral fins and the longitudinal fins promoting convective and radiative heat transfer to the manifold block so as to increase the heating rate of the manifold block during brazing of the manifold block to the jumper tube and the manifold;
- a counterbore surrounding the port hole, the counterbore being sized to serve as a reservoir for molten braze metal and to prevent molten braze metal from flowing away from the jumper tube and toward the fins during brazing of the jumper tube to the port hole; and
- a cylindrical boss within the counter bore and surrounding the port hole, the cylindrical boss having a distal end that does not project beyond the lateral end surface of the manifold block, the jumper tube being brazed to the cylindrical boss.
- 12. A method of brazing a heat exchanger manifold block to a heat exchanger manifold and a jumper tube, the method comprising the steps of:
- forming the manifold block to have a longitudinal axis, a longitudinal surface substantially parallel to the longitudinal axis of the manifold block, a second surface substantially perpendicular to the longitudinal surface of the manifold block, a port hole in the second surface of the manifold block, fins projecting from at least one of the longitudinal and second surfaces of the manifold block, and a counterbore surrounding the port hole; and
- assembling the manifold block, the jumper tube and the manifold by installing the jumper tube in the port hole and mating the manifold block with the manifold so that the manifold block is oriented to have the longitudinal axis thereof substantially parallel to a longitudinal axis of the manifold; and then
- brazing the manifold block to the jumper tube and the manifold, the fins promoting convective and radiative heat transfer to the manifold block so as to increase the heating rate of the manifold block, the counterbore serving as a reservoir for molten braze metal and preventing molten braze metal from flowing away from the jumper tube and toward the fins.
- 13. The method set forth in claim 12, wherein the fins are formed by extruding grooves into the longitudinal surface of the manifold block.
- 14. The method set forth in claim 12, wherein the manifold block is further formed to have a mounting flange that is mated with the manifold during the assembling step and brazed to the manifold during the brazing step, the mounting flange being formed so as to be spaced longitudinally from the second surface of the mounting block.
- 15. The method set forth in claim 12, wherein the assembling step further comprises assembling a braze metal ring within the counterbore so as to be between the jumper tube and the manifold prior to the brazing step, the braze metal ring being a source of the molten braze metal during the brazing step.
- 16. The method set forth in claim 12, wherein the fins are formed so as to include a set of longitudinal fins that project from the longitudinal surface and a set of lateral fins that project from the second surface.
- 17. The method set forth in claim 12, wherein the manifold block is further formed to have a cylindrical boss within the counter bore and surrounding the port hole.
- 18. The method set forth in claim 17, wherein the jumper tube is brazed to the cylindrical boss during the brazing step.
- 19. The method set forth in claim 12, wherein the second surface is a lateral end surface of the manifold block.
- 20. The method set forth in claim 19, wherein the manifold block is further formed to have:
- a mounting flange that is mated with the manifold during the assembling step and brazed to the manifold during the brazing step, the mounting flange is formed to be spaced longitudinally from the second surface of the mounting block;
- lateral fins projecting from the second surface, the lateral fins promoting convective and radiative heat transfer to the manifold block so as to increase the heating rate of the manifold block during the brazing step;
- a cylindrical boss within the counter bore and surrounding the port hole, the cylindrical boss having a distal end that does not project beyond the second surface of the manifold block, the jumper tube being brazed to the cylindrical boss during the brazing step.
Parent Case Info
This utility patent application claims the benefit of U.S. Provisional Application No. 60/084,311, filed May 5, 1998.
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