IP Library Granted Patent US 9,964,333
Granted Patent B2
US 9,964,333 · App. 14/288,171 · Granted May 8, 2018

System and method for furnace fluid flow management

Inventors: Andrew Hamilton Hanks (Tyler, TX); Zhaohui Gu (Tyler, TX)
Assignee: Trane International Inc.
F24H9/16F24H8/00F28D1/0461F28D1/0477F28D1/05316F28F1/32Y02B30/102
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 9,964,333
App. No.
14/288,171
Granted
May 8, 2018
Kind
B2
Abstract

A furnace has a primary heat exchanger tube, a secondary heat exchanger comprising a plurality of secondary heat exchanger tubes, a hot header configured to provide a fluid flow path between an output of the primary heat exchanger tube to an input of the secondary heat exchanger, and a perforated fluid flow plate disposed at least partially within the hot header.

Claims (32)

1. A furnace, comprising:

a primary heat exchanger tube;

a secondary heat exchanger comprising a plurality of secondary heat exchanger tubes;

a hot header configured to provide a fluid flow path between an output of the primary heat exchanger tube to an input of the secondary heat exchanger; and

a perforated fluid flow plate disposed at least partially within the hot header, wherein the perforated fluid flow plate comprises an interior wall comprising:

a first portion distance from the secondary hear exchanger tubes, the first portion comprising a plurality of perforations that are misaligned relative to the secondary heat exchanger tubes; and

a second portion abutting one or more of the secondary heat exchanger tubes to provide a fluid flow path from the hot header to the one or more of the secondary heat exchanger tubes.

2. The furnace of claim 1 , wherein the perforated fluid flow plate comprises a profile configured to minimize pooling of condensate within the hot header.

3. The furnace of claim 1 , further comprising a seal configured to minimize pooling of condensate within the hot header.

4. The furnace of claim 1 , further comprising a seal that extends over both the perforated fluid flow plate and a primary plate of the hot header.

5. The furnace of claim 4 , wherein the primary plate of the hot header is associated with an output end of the primary heat exchanger tube.

6. The furnace of claim 5 , further comprising a seal between a header plate of the secondary heat exchanger and the perforated fluid flow plate.

7. The furnace of claim 6 , further comprising a seal between the primary plate of the hot header and the header plate of the secondary heat exchanger.

8. The furnace of claim 1 , further comprising a gasket disposed within the perforated fluid flow plate.

9. The furnace of claim 8 , wherein the gasket is configured to minimize pooling of condensate within a space bounded by the perforated fluid flow plate.

10. A heating, ventilation, and/or air conditioning (HVAC) system, comprising:

a primary heat exchanger tube;

a secondary heat exchanger comprising a plurality of secondary heat exchanger tubes;

a hot header configured to provide a fluid flow path between an output of the primary heat exchanger tube to an input of the secondary heat exchanger;

a perforated fluid flow plate disposed at least partially within the hot header, wherein the perforated fluid flow plate comprises an interior wall comprising:

a first portion distance from the secondary hear exchanger tubes, the first portion comprising a plurality of perforations that are misaligned relative to the secondary heat exchanger tubes; and

a second portion abutting one or more of the secondary heat exchanger tubes to provide a fluid flow path from the hot header to the one or more of the secondary heat exchanger tubes;

an inducer motor configured to draw fluids from the primary heat exchanger tube to the secondary heat exchanger; and

a circulation blower configured to selectively cause circulation air to flow from contact with the secondary heat exchanger to contact with the primary heat exchanger tube.

11. The furnace of claim 10 , wherein the perforated fluid flow plate comprises a profile configured to minimize pooling of condensate within the hot header.

12. The furnace of claim 10 , further comprising a seal configured to minimize pooling of condensate within the hot header.

13. The furnace of claim 10 , further comprising a seal that extends over both the perforated fluid flow plate and a primary plate of the hot header.

14. The furnace of claim 13 , wherein the primary plate of the hot header is associated with an output end of the primary heat exchanger tube.

15. The furnace of claim 14 , further comprising a seal between a header plate of the secondary heat exchanger and the perforated fluid flow plate.

16. The furnace of claim 15 , further comprising a seal between the primary plate of the hot header and the header plate of the secondary heat exchanger.

17. The furnace of claim 10 , further comprising a gasket disposed within the perforated fluid flow plate.

18. The furnace of claim 17 , wherein the gasket is configured to minimize pooling of condensate within a space bounded by the perforated fluid flow plate.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 2, 2014
From: HANKS, ANDREW HAMILTON; GU, ZHAOHUI
To: TRANE INTERNATIONAL INC.
Reel/Frame 033008/0978 →
Continuity (2)
Provisional Application 61828117 · May 28, 2013
Related Publication 20140352930A1 · Dec 4, 2014