IP Library Granted Patent US 9,388,978
Granted Patent B1
US 9,388,978 · App. 13/725,486 · Granted Jul 12, 2016

Methods and systems for controlling gas temperatures

Inventor: Roger A. Soltys (Pittstown, NJ)
Assignee: MITSUBISHI HITACHI POWER SYSTEMS AMERICAS, INC.
F22D1/12
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Quick Facts
Patent No.
US 9,388,978
App. No.
13/725,486
Granted
Jul 12, 2016
Kind
B1
Abstract

Methods and systems for controlling the temperature of a heated flue gas stream downstream of a multi-part heat exchanger within a desired operating range through the use of a fluid bypass line which bypasses one or more sections, but not all sections, of the multi-part heat exchanger. In some but not necessarily all embodiments some fluid flow is maintained through the heat exchanger at all times. In one embodiment, the method includes sensing a temperature in said flue gas stream in proximity to an intermediate header of said multi-part heat exchanger and controlling a position of a bypass line control valve to control an amount of fluid passing through a fluid bypass line that bypasses the section of the multi-part heat exchanger between an inlet header and the intermediate header based on said temperature in said flue gas stream in proximity to the intermediate header of said multi-part heat exchanger.

Claims (45)

1. A system for controlling the temperature of a heated flue gas stream at a downstream device within a desired operating temperature range, the system comprising:

a multipart heat exchanger comprising:

a first heat exchanger section located in said flue gas stream said first heat exchanger section having a fluid inlet coupled to a fluid feed line;

a second heat exchanger section connected in series with said first heat exchanger section in said flue gas stream, said second heat exchanger section being located upstream of said first heat exchanger section in said flue gas stream;

an intermediate header having a first mixer fluid input, a second mixer fluid input, and a fluid outlet, said first mixer fluid input being coupled to a fluid output of said first heat exchanger section, and said fluid outlet of said intermediate header being coupled to a fluid inlet of said second heat exchanger section;

a fluid bypass line coupling said fluid feed line to said second mixer fluid input of said intermediate header, said fluid bypass line extending outside of said flue gas stream and providing a fluid bypass allowing at least some fluid supplied by said fluid feed line to fully bypass said first heat exchanger section; and

wherein the system further comprises:

a first temperature sensor in said flue gas stream in proximity of said intermediate header;

a first valve located in series with said fluid bypass line for controlling an amount of fluid flow through said fluid bypass line; and

a control module coupled to said first temperature sensor and said first valve, being configured to control a position of said first valve as a function of a temperature measured by said first temperature sensor.

2. The system of claim 1 ,

wherein said first valve is a multi-position valve; and

wherein said control module is configured to vary the amount of fluid flow through said bypass line in response to changes in sensed temperature indicated by said first temperature sensor.

3. The system of claim 2 ,

wherein said first heat exchanger section includes a fluid inlet header; and

wherein said system further includes:

a second temperature sensor located in said flue gas stream in proximity to a flue gas exit coupled to said control module.

4. The system of claim 3 , further comprising:

a fluid monitoring device located in said fluid bypass line and coupled to said control module; and

said fluid monitoring device configured to measure the flow of fluid through the bypass line and send fluid flow measurement information to said control module.

5. The system of claim 4 , wherein said control module is further configured to:

receive said fluid flow measurement information from said fluid monitoring device; and

use said received fluid flow measurement information during said varying the amount of fluid flow through said bypass line in response to changes in sensed temperature indicated by said first temperature sensor.

6. The system of claim 2 , further comprising:

a second valve located between a fluid supply line and said fluid inlet header, said second valve controlling an amount of fluid supplied to said fluid inlet header; and

wherein said control module is configured to control said second valve based on a temperature sensed by said second temperature sensor.

7. The system of claim 2 , further comprising:

a third valve located between a fluid supply line and said fluid inlet header, said second valve being a block valve switchable between a fully open and a fully closed state; and

wherein said control module is further configured to close said second valve when a desired flue gas operating temperature is detected by the first temperature sensor.

8. The system of claim 1 wherein said multipart heat exchanger is located in a flue between a boiler which outputs said flue gas stream and a selective catalytic reduction (SCR) module.

9. The system of claim 1 , wherein the multipart heat exchanger is a multipart economizer.

10. A system for controlling the temperature of a heated flue gas stream at a downstream device within a desired operating temperature range, the system comprising:

a multipart heat exchanger comprising:

a first heat exchanger section located in said flue gas stream said first heat exchanger section having a fluid inlet coupled to a fluid feed line;

a second heat exchanger section connected in series with said first heat exchanger section in said flue gas stream, said second heat exchanger section being located upstream of said first heat exchanger section in said flue gas stream;

an intermediate header having a first mixer fluid input, a second mixer fluid input, and a fluid outlet, said first mixer fluid input being coupled to a fluid output of said first heat exchanger section, and said fluid outlet of said intermediate header being coupled to a fluid inlet of said second heat exchanger section;

a fluid bypass line coupling said fluid feed line to said second mixer fluid input of said intermediate header, said fluid bypass line extending outside of said flue gas stream and providing a fluid bypass allowing at least some fluid supplied by said fluid feed line to fully bypass said first heat exchanger section; and

wherein said second heat exchanger section is configured to condense any steam received via said first and second inputs of said intermediate header.

11. A system for controlling the temperature of a heated flue gas stream at a downstream device within a desired operating temperature range, the system comprising:

a multipart heat exchanger comprising:

a first heat exchanger section located in said flue gas stream said first heat exchanger section having a fluid inlet coupled to a fluid feed line;

a second heat exchanger section connected in series with said first heat exchanger section in said flue gas stream, said second heat exchanger section being located upstream of said first heat exchanger section in said flue gas stream;

an intermediate header having a first mixer fluid input, a second mixer fluid input, and a fluid outlet, said first mixer fluid input being coupled to a fluid output of said first heat exchanger section, and said fluid outlet of said intermediate header being coupled to a fluid inlet of said second heat exchanger section;

a fluid bypass line coupling said fluid feed line to said second mixer fluid input of said intermediate header, said fluid bypass line extending outside of said flue gas stream and providing a fluid bypass allowing at least some fluid supplied by said fluid feed line to fully bypass said first heat exchanger section; and

wherein said fluid bypass line comprises one or more tubes attached to both said inlet header and said intermediate header and provide structural support for both said inlet header and said intermediate header.

Assignments (4)
CHANGE OF NAME Recorded Nov 11, 2020
From: MITSUBISHI HITACHI POWER SYSTEMS AMERICAS, INC.
To: MITSUBISHI POWER AMERICAS, INC.
Reel/Frame 054389/0404 →
MERGER Recorded Jun 9, 2016
From: MITSUBISHI HITACHI POWER SYSTEMS AMERICA-ENERGY AND ENVIRONMENT, LTD.
To: MITSUBISHI HITACHI POWER SYSTEMS AMERICAS, INC.
Reel/Frame 038864/0761 →
CHANGE OF NAME Recorded Jun 9, 2016
From: HITACHI POWER SYSTEMS AMERICA, LTD.
To: MITSUBISHI HITACHI POWER SYSTEMS AMERICA-ENERGY AND ENVIRONMENT, LTD.
Reel/Frame 038947/0512 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 21, 2012
From: SOLTYS, ROGER A.
To: HITACHI POWER SYSTEMS AMERICA, LTD.
Reel/Frame 029522/0329 →