Flue gas waste heat recovery device
By setting a nebulizer and flow control valve in the flue gas and air humidification heat exchanger, combined with a booster water pump and neutralization device, the pH value of condensate water is adjusted, and the corrosion problem of condensate water is solved, and the anti-corrosion and pollutant reduction of the flue gas heat exchanger is achieved.
Patent Information
- Application Number
- CN202422563665.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-23
- Publication Date
- 2025-08-26
- Estimated Expiration
- 2034-10-23
AI Technical Summary
In the prior art, the condensed water generated during the waste heat recovery process of flue gas is low in pH and strong corrosive due to the dissolution of acidic substances, which affects the service life of the flue gas heat exchanger and pollutant emissions.
By setting a nebulizer and flow control valve in the flue gas and air humidification heat exchanger, the pH value is adjusted using condensate water, combined with a booster water pump and neutralization device, the acid and alkali neutralization of the condensate water is achieved and corrosion is prevented.
It effectively increases the pH value of condensate, prevents corrosion of the flue gas heat exchanger, extends service life, and reduces pollutant emissions.
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Figure CN223271735U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to industrial energy-saving equipment, in particular to a flue gas waste heat recovery device. Background Art
[0002] The combustion process of natural gas boilers typically produces nitrogen oxides, and some also produce sulfur dioxide. Flue gas waste heat recovery is an effective means of improving boiler energy efficiency. However, the condensate produced during this recovery process has a pH of approximately 4.6 due to the dissolution of acidic substances in the flue gas, making it corrosive to conventional heat exchangers.
[0003] Using condensed water to humidify flue gas or combustion air is a wet waste heat recovery technology, also known as steam pump flue gas waste heat recovery technology. It is usually used to increase the flue gas condensation temperature, thereby providing conditions for recovering the flue gas latent heat under higher cold source temperature conditions. Patent CN 109268820 B reduces the combustion temperature by humidifying the combustion air and gas to achieve the purpose of reducing the production of nitrogen oxides. Currently, there is no technology on the market that can adjust the pH value of condensed water by humidifying flue gas or combustion air to achieve corrosion protection of heat exchangers. Increasing the pH value of condensed water is of great significance for extending the service life of heat exchanger materials or coatings. Utility Model Content
[0004] In order to extend the service life of the flue gas heat exchanger, prevent the flue gas heat exchanger from corrosion, reduce the emission of flue gas pollutants and increase the flue gas dew point temperature, the utility model provides a flue gas waste heat recovery device.
[0005] The utility model discloses a flue gas waste heat recovery device, comprising a flue gas humidifying heat exchanger, a flue gas heat exchanger, an air humidifying heat exchanger, a booster water pump, a water neutralization device, a flow control valve A, a flow control valve B, a flow control valve C, an air temperature and humidity meter, a flue gas temperature and humidity meter, a pH detector, a four-way valve A, a four-way valve B and a water tank. The flue gas humidifying heat exchanger and the air humidifying heat exchanger are direct heat exchangers. A plurality of flue gas humidifying heat exchanger atomizers are evenly arranged above the flue gas humidifying heat exchanger. The flue gas humidifying heat exchanger atomizer is connected to the flow control valve B, the smoke outlet of the flue gas humidifying heat exchanger is connected to the smoke inlet on the high-temperature side of the flue gas heat exchanger, the smoke temperature and humidity meter is arranged between the flue gas humidifying heat exchanger and the flue gas heat exchanger, the water outlet of the flue gas heat exchanger is connected to one end of the water neutralization device, and the pH detector is arranged on the flue gas humidifying heat exchanger. Between the air heat exchanger and the water neutralization device, the other end of the water neutralization device is connected to the inlet of the booster water pump, the outlet of the booster water pump is connected to one end of the four-way valve A, the other three ends of the four-way valve A are respectively connected to the flow control valve A, the flow control valve B and one end of the flow control valve C, the other end of the flow control valve C is connected to one end of the four-way valve B, the other three ends of the four-way valve B are respectively connected to the water inlet of the water tank, the water outlet of the flue gas humidification heat exchanger and the water outlet of the air humidification heat exchanger, a plurality of air humidification heat exchanger atomizers are evenly arranged above the air humidification heat exchanger, the air humidification heat exchanger atomizer is connected to the flow control valve A, an air thermometer and humidity meter are arranged at the exhaust port of the air humidification heat exchanger, and the low-temperature side of the flue gas heat exchanger is used to circulate a low-temperature medium for heat exchange with the flue gas.
[0006] The utility model provides a flue gas waste heat recovery device, wherein the flue gas heat exchanger is an indirect heat exchanger.
[0007] The utility model provides a flue gas waste heat recovery device, wherein the warm medium is heat network return water.
[0008] The utility model provides a flue gas waste heat recovery device, wherein the low-temperature medium is a heat pump working medium.
[0009] The utility model discloses a flue gas waste heat recovery device which has at least the following beneficial effects: the utility model utilizes condensed water to humidify the flue gas or air and adjusts the pH value of the condensed water. The principle is simple, the operation is convenient, and the anti-corrosion effect on the flue gas heat exchanger is significant; the flue gas dew point temperature is increased, the temperature requirement for the low-temperature medium is reduced, the heat exchange effect of the flue gas heat exchanger is enhanced, and the pollution of the flue gas pollutants to the environment is reduced. BRIEF DESCRIPTION OF THE DRAWINGS
[0010] Figure 1 The following is a schematic diagram showing the structure of the flue gas waste heat recovery device of the present invention;
[0011] Figure 2 The utility model shows a flow chart of the method of using the flue gas waste heat recovery device.
[0012] Reference numerals:
[0013] 1-Flue gas humidifying heat exchanger; 2-Flue gas heat exchanger; 3-Air humidifying heat exchanger; 4-Booster water pump; 5-Water neutralization device; 6-pH detector; 7-Flow control valve A; 8-Flow control valve B; 9-Flow control valve C; 10-Air temperature and humidity meter; 11-Flue gas temperature and humidity meter; 12-Atomizer for air humidifying heat exchanger; 13-Atomizer for flue gas humidifying heat exchanger; 14-Water tank; 15-Four-way valve A; 16-Four-way valve B. DETAILED DESCRIPTION
[0014] The present disclosure will now be discussed with reference to several exemplary embodiments. It should be understood that these embodiments are discussed only to enable those skilled in the art to better understand and implement the present disclosure, rather than to imply any limitation on the scope of the present disclosure.
[0015] As used herein, the term "including" and variations thereof are to be interpreted as open-ended terms meaning "including, but not limited to." The term "based on" is to be interpreted as "based, at least in part, on." The terms "one embodiment" and "an embodiment" are to be interpreted as meaning "at least one embodiment." The term "another embodiment" is to be interpreted as meaning "at least one other embodiment."
[0016] As used herein, the term "including" and its variations are to be interpreted as open-ended terms meaning "including, but not limited to." The term "based on" is to be interpreted as "based, at least in part, on." The terms "one embodiment" and "an embodiment" are to be interpreted as "at least one embodiment." The term "another embodiment" is to be interpreted as "at least one other embodiment." Terms such as "upper," "lower," "left," "right," "front," "back," "top," "bottom," "inner," "outer," "vertical," "horizontal," "transverse," and "longitudinal" indicate orientations or positional relationships based on the orientations or positional relationships shown in the accompanying drawings. These terms are primarily intended to better describe the present application and its embodiments and are not intended to limit the devices, elements, or components indicated to having a specific orientation, or to being constructed and operated in a specific orientation. Furthermore, some of the above terms may be used to indicate other meanings besides orientation or positional relationships. For example, the term "on" may, in certain circumstances, be used to indicate a dependency or connection relationship. Those skilled in the art will understand the specific meanings of these terms in this application based on the specific circumstances. Furthermore, the terms "installed," "disposed," "provided with," "connected," and "connected" are to be interpreted broadly. For example, it can be a fixed connection, a detachable connection, or an integral structure; it can be a mechanical connection, or an electrical connection; it can be directly connected, or indirectly connected through an intermediate medium, or it can be an internal connection between two devices, elements or components. For those of ordinary skill in the art, the specific meanings of the above terms in this application can be understood according to the specific circumstances. In addition, the terms "first", "second", etc. are mainly used to distinguish different devices, elements or components (the specific types and structures may be the same or different), and are not used to indicate or imply the relative importance and quantity of the indicated devices, elements or components. Unless otherwise specified, "plurality" means two or more.
[0017] like Figure 1 As shown, the utility model discloses a flue gas waste heat recovery device, including a flue gas humidifying heat exchanger 1, a flue gas heat exchanger 2, an air humidifying heat exchanger 3, a booster water pump 4, a water neutralization device 5, a flow control valve A7, a flow control valve B8, a flow control valve C9, an air temperature and humidity meter 10, a flue gas temperature and humidity meter 11, an air humidifying heat exchanger atomizer 12, a flue gas humidifying heat exchanger atomizer 13, a pH detector 6, a four-way valve A15, and a four-way valve B1 6 and a water tank 14, a plurality of flue gas humidifying heat exchanger atomizers 13 are provided inside the flue gas humidifying heat exchanger 1, and are evenly arranged above the inside of the flue gas humidifying heat exchanger 1 to enhance the atomization effect, a plurality of air humidifying heat exchanger atomizers 12 are provided in the air humidifying heat exchanger 3, and are evenly arranged above the inside of the air humidifying heat exchanger 3 to enhance the atomization effect, wherein the air humidifying heat exchanger atomizer 12 and the flue gas humidifying heat exchanger atomizer 13 are both atomizing nozzles.
[0018] The flue gas humidifying heat exchanger 1 is provided with a flue gas inlet, a flue gas outlet, a water inlet and a water outlet.
[0019] The high-temperature side of the flue gas heat exchanger 2 is provided with a flue gas inlet and a flue gas outlet, and the low-temperature side of the flue gas heat exchanger 2 is provided with a low-temperature medium inlet and a low-temperature medium outlet.
[0020] The air humidifying heat exchanger 3 is provided with an air inlet, an air outlet, a water inlet and a water outlet.
[0021] The water inlet of the air humidifying heat exchanger 3 is connected to flow control valve A, and the water inlet of the flue gas humidifying heat exchanger 1 is connected to flow control valve B. The flue gas inlet of the flue gas humidifying heat exchanger 1 is connected to the flue gas outlet of the boiler. The flue gas outlet of the flue gas humidifying heat exchanger 1 is connected to the flue gas inlet of the flue gas heat exchanger 2 through a flue. A flue gas temperature and humidity meter 11 is installed on the flue to monitor the temperature and humidity of the flue gas in the flue gas humidifying heat exchanger 1 in real time. The flue gas is finally discharged through the flue gas outlet of the flue gas heat exchanger 2.
[0022] The air outlet on the upper side of the air humidifying heat exchanger 3 is connected to the air inlet of the boiler, and the air inlet on the left side of the air humidifying heat exchanger 3 is connected to the environment. Air flows in from the air inlet and is discharged from the air outlet. An air thermometer and humidity meter 10 is provided on the air channel of the air outlet to detect the temperature and humidity values of the air in the air humidifying heat exchanger 3 in real time.
[0023] The air humidifying heat exchanger atomizer 12 is disposed on the upper inner side of the air humidifying heat exchanger 3, and the flue gas humidifying heat exchanger atomizer 13 is disposed on the upper inner side of the flue gas humidifying heat exchanger 1. One end of the four-way valve A15 is connected to the booster water pump 4 via a water pipe. The booster water pump 4 is connected to one end of the water neutralization device 5 via a water pipe. The other end of the water neutralization device 5 is connected to the water outlet of the flue gas heat exchanger 2 via a water pipe. A pH meter 6 is installed on the water pipe connecting the water neutralization device 5 and the flue gas heat exchanger 2 to detect the pH value of the condensed water in real time. The condensed water undergoes acid-base neutralization in the neutralization device 5, achieving efficient and environmentally friendly treatment of the condensed water and preventing pollutants from entering the air humidifying heat exchanger 3 and the flue gas humidifying heat exchanger 1 and causing corrosion thereto.
[0024] The other three ends of the four-way valve A15 are connected to one end of the flow control valve A7, the flow control valve B8 and the flow control valve C9 respectively through water pipes. The other ends of the flow control valves A7, the flow control valve B8 and the flow control valve C9 are connected to the air humidifying heat exchanger atomizer 12 in the air humidifying heat exchanger 3, the flue gas humidifying heat exchanger atomizer 13 in the flue gas humidifying heat exchanger 1 and one end of the four-way valve B16 respectively through water pipes. The other three ends of the four-way valve B16 are connected to the flue gas humidifying heat exchanger 1, the water tank 14 and the air humidifying heat exchanger 3 respectively through water pipes.
[0025] As described above, the water inlet of the air humidifying heat exchanger 3 is connected to the flow control valve A7 through a water pipe, so that the air humidifying heat exchange atomizer 12 is connected to the water inlet of the air humidifying heat exchanger 3, that is, the flow control valve A7 can be connected to the air humidifying heat exchanger atomizer 12 through a water pipe.
[0026] Similarly, the water inlet of the flue gas humidifying heat exchanger 1 is connected to the flow control valve B8 through a water pipe, so that the flue gas humidifying heat exchange atomizer 13 is connected to the water inlet of the flue gas humidifying heat exchanger 1, that is, the flow control valve B8 can be connected to the flue gas humidifying heat exchanger atomizer 13 through the water pipe.
[0027] During operation, the low-temperature medium is introduced from the low-temperature medium inlet of the flue gas heat exchanger 2, and is discharged from the low-temperature medium outlet of the flue gas heat exchanger 2 after passing through the flue gas heat exchanger 2. The flue gas exchanges heat with the low-temperature medium, and the flue gas is reduced to a dew point temperature or below to form condensed water. The formed condensed water flows from the water outlet of the flue gas heat exchanger 2 into the water pipe and enters the water neutralization device 5. Before the condensed water enters the water neutralization device 5, the pH detector 6 detects the pH value of the condensed water in real time. After the condensed water is neutralized by the water neutralization device 5, it enters the booster water pump 4. The booster water pump 4 The water is pressurized, and then the condensed water flows into the flow control valve A7, the flow control valve B8 and the flow control valve C9 respectively through the four-way valve A15. The flow control valve A7 and the flow control valve B8 control the flow of the condensed water and then flow into the air humidifying heat exchanger atomizer 12 in the air humidifying heat exchanger 3 and the flue gas humidifying heat exchanger atomizer 13 in the flue gas humidifying heat exchanger 1 through the water pipes respectively. A certain number of the air humidifying heat exchanger atomizers 12 and the flue gas humidifying heat exchanger atomizers 13 are opened as needed to atomize the condensed water.
[0028] Air flows into the air inlet of the air humidifying heat exchanger 3 through the air duct, exchanges heat with the condensed water flowing out of the air humidifying heat exchanger atomizer 12 in the air humidifying heat exchanger 3, and is humidified at the same time. The air then flows out of the air outlet of the air humidifying heat exchanger 3 to the boiler. Boiler flue gas flows into the flue gas inlet of the flue gas humidifying heat exchanger 1, exchanges heat with the condensed water flowing out of the flue gas humidifying heat exchanger atomizer 13 in the flue gas humidifying heat exchanger 1, and is humidified at the same time. The flue gas then flows out of the flue gas outlet of the flue gas humidifying heat exchanger 1, flows into the flue gas inlet on the high-temperature side of the flue gas heat exchanger 2 through the flue duct, exchanges heat with the low-temperature medium in the flue gas heat exchanger 2, and is discharged from the high-temperature flue gas outlet of the flue gas heat exchanger 2.
[0029] The utility model uses flue gas condensate to humidify the flue gas and air through heat exchange, adjusts the temperature and humidity of the flue gas and air, and the flue gas temperature and humidity meter 11 and the air temperature and humidity meter 10 detect the temperature and humidity values of the corresponding flue gas and air in real time, and then adjusts the pH value of the condensate to the target value, thereby preventing the flue gas condensate from corroding the flue gas heat exchanger 2 and forming a virtuous cycle.
[0030] The excess condensed water in the air humidifying heat exchanger 3 and the flue gas humidifying heat exchanger 1 flows into the four-way valve B16 through the water outlets of the air humidifying heat exchanger 3 and the flue gas humidifying heat exchanger 1, and then flows into the water tank 14 through the water inlet of the water tank 14. The excess condensed water pressurized by the booster water pump 4 flows into the flow control valve C9 for flow control, and then flows into the water tank 14 through the four-way valve B16.
[0031] Among them, the flue gas humidifying heat exchanger 1 and the air humidifying heat exchanger 3 are direct heat exchangers, and the flue gas heat exchanger 2 is an indirect heat exchanger, which improves work efficiency.
[0032] It should be noted that direct heat exchanger and indirect heat exchanger are general technical terms.
[0033] A direct heat exchanger is one in which the heating medium and the heated medium exchange heat through direct contact, rather than through a heated surface. This type of heat exchanger avoids the thermal resistance of dirt on and around the heat transfer partition. As long as the contact between the fluids is good, the heat transfer rate is high. Compared to indirect heat exchangers, which exchange heat through a heated surface, this type of heat exchanger generally offers advantages such as reduced manufacturing equipment and materials and higher heat transfer efficiency.
[0034] Indirect heat transfer refers to a form of heat transfer in which the heat transfer mediums do not come into direct contact with each other. Compared to direct heat transfer, this heat transfer method does not require mixing before heat transfer or separation after heat transfer, saving production costs in terms of time and process, and improving production efficiency.
[0035] The low-temperature medium that exchanges heat with the flue gas in the flue gas heat exchanger 2 can be heat network return water, heat pump working fluid or other media that can achieve equivalent effects, which is beneficial to system circulation and environmental protection.
[0036] like Figure 2 As shown, Q a Indicates the amount of condensed water in the air humidifying heat exchanger 3; Q a Max represents the maximum amount of condensed water in the air humidifying heat exchanger 3; Q g Indicates the amount of condensed water in the flue gas humidification heat exchanger 1; Q g Max indicates the maximum amount of condensed water in flue gas humidification heat exchanger 1.
[0037] The method for using the flue gas waste heat recovery device of the utility model comprises the following steps:
[0038] (1) Connect the flue gas inlet of the flue gas humidifying heat exchanger 1 to the flue gas outlet of the boiler, connect the air outlet of the air humidifying heat exchanger 3 to the air inlet of the boiler, start the boiler and keep it running, and let the low-temperature medium flow through the flue gas heat exchanger 2. Then, turn on the booster pump 4, flow control valve A7, flow control valve B8, and flow control valve C9;
[0039] (2) Determine whether the boiler is running. If the boiler is running, proceed to step (3); if the boiler is stopped, stop the low-temperature medium from flowing through the flue gas heat exchanger 2 and close the booster pump 4, flow control valve A7, flow control valve B8 and flow control valve C9;
[0040] (3) detecting the value of the pH detector 6 to determine whether the pH value is greater than or equal to the target value;
[0041] (4) If the pH value in step (3) is greater than or equal to the target value, then checking whether the air humidity value reaches 100%;
[0042] (5) If the pH value in step (3) is less than the target value, the amount of condensed water and the air humidity value of the air humidifying heat exchanger 3 are detected to determine whether the amount of condensed water in the air humidifying heat exchanger 3 has reached a maximum value or whether the air humidity value is greater than or equal to 99%;
[0043] (6) If the air humidity value in step (4) reaches 100%, the amount of condensed water entering the air humidifying heat exchanger 3 is reduced through the flow control valve A7, and the process returns to step (2); if the air humidity value in step (4) does not reach 100%, the amount of condensed water entering the flue gas humidifying heat exchanger 1 is reduced through the flow control valve B8, and the process returns to step (2);
[0044] (7) If the amount of condensed water in the air humidifying heat exchanger 3 in step (5) reaches the maximum value or the air humidity value is greater than or equal to 99%, continue to detect whether the air humidity value is equal to 100%; if the amount of condensed water in the air humidifying heat exchanger 3 in step (5) does not reach the maximum value and the air humidity value is less than 99%, increase the amount of condensed water in the air humidifying heat exchanger 3 and return to step (2);
[0045] (8) If the air humidity value in step (5) is equal to 100%, the amount of condensed water in the air humidifying heat exchanger 3 is reduced and the process returns to step (5); if the air humidity value in step (7) is less than 100%, the amount of condensed water in the flue gas humidifying heat exchanger 1 is detected to see whether it has reached a maximum value;
[0046] (9) If the amount of condensed water in the flue gas humidifying heat exchanger 1 reaches the maximum value in step (8), return to step (2); if the amount of condensed water in the flue gas humidifying heat exchanger 1 does not reach the maximum value in step (8), increase the amount of condensed water in the flue gas humidifying heat exchanger 1 and return to step (2).
[0047] After the boiler is turned on, the flue gas waste heat recovery device is operated, and the low-temperature medium flows into the low-temperature side of the flue gas heat exchanger 2, and forms condensed water after heat exchange with the flue gas.
[0048] Check the boiler status. If the boiler is running, check the pH value of pH meter 6. If the boiler is not running, stop the flue gas waste heat recovery device.
[0049] If the pH value is greater than or equal to the target value, the value of the air temperature and humidity meter 10 is checked. If the air humidity reaches 100%, the amount of condensed water flowing into the air humidifying heat exchanger 3 is reduced through flow control valve A7, and a certain number of air humidifying heat exchanger atomizers 12 are closed to avoid oversaturation. The boiler operating status is checked to determine whether the flue gas waste heat recovery device should continue to operate. If the boiler is operating, the flue gas waste heat recovery device should continue to operate; if the boiler is stopped, the flue gas waste heat recovery device should also be stopped. If the air humidity is less than 100%, the amount of condensed water flowing into the flue gas humidifying heat exchanger 1 is reduced through flow control valve A8, and a certain number of flue gas humidifying heat exchanger atomizers 13 are closed to reduce pollutant emissions. The boiler operating status is checked to determine whether the flue gas waste heat recovery device should continue to operate. If the boiler is operating, the flue gas waste heat recovery device should continue to operate; if the boiler is stopped, the flue gas waste heat recovery device should also be stopped.
[0050] If the pH value detected by the pH detector 6 is less than the target value, the amount of condensed water in the air humidifying heat exchanger 3 and the humidity value of the air thermometer and hygrometer 10 are detected. If the amount of condensed water in the air humidifying heat exchanger 3 reaches the maximum value or the air humidity value detected by the air thermometer and hygrometer 10 is greater than or equal to 99%, continue to observe whether the humidity value of the air thermometer and hygrometer 10 reaches 100%; if the amount of condensed water in the air humidifying heat exchanger 3 does not reach the maximum value and the humidity value of the air thermometer and hygrometer 10 is less than 99%, the amount of condensed water flowing into the air humidifying heat exchanger 3 is increased through the flow control valve A7, and a certain number of air humidifying heat exchanger atomizers 12 are opened, the boiler operating status is checked, and it is determined whether the flue gas waste heat recovery device is continuously operated, that is, if the boiler is running, the flue gas waste heat recovery device is continuously operated, and if the boiler stops running, the flue gas waste heat recovery device is also stopped.
[0051] If the humidity value of the air thermometer and hygrometer 10 is 100%, the amount of condensed water flowing into the air humidifying heat exchanger 3 is reduced through the flow control valve A7, and a certain number of air humidifying heat exchanger atomizers 12 are closed. Then the amount of condensed water and the air humidity value of the air humidifying heat exchanger 3 are detected to determine whether the amount of condensed water in the air humidifying heat exchanger 3 has reached the maximum value or whether the air humidity value is greater than or equal to 99%. Until the humidity value of the air thermometer and hygrometer 10 is less than 100%, at this time, check whether the amount of condensed water in the flue gas humidifying heat exchanger 1 has reached the maximum value; if the humidity value of the air thermometer and hygrometer 10 is less than 100%, directly check whether the amount of condensed water in the flue gas humidifying heat exchanger 1 has reached the maximum value.
[0052] If the amount of condensed water in the flue gas humidifying heat exchanger 1 reaches the maximum value, the operating status of the boiler is checked to determine whether the flue gas waste heat recovery device should be continuously operated, that is, if the boiler is operating, the flue gas waste heat recovery device should be continuously operated; if the boiler stops operating, the flue gas waste heat recovery device should also be stopped; if the amount of condensed water in the flue gas humidifying heat exchanger 1 has not reached the maximum value, the amount of condensed water flowing to the flue gas humidifying heat exchanger 1 is increased through the flow control valve B8, and a certain number of flue gas humidifying heat exchanger atomizers 13 are opened, and the operating status of the boiler is checked to determine whether the flue gas waste heat recovery device should be continuously operated, that is, if the boiler is operating, the flue gas waste heat recovery device should be continuously operated; if the boiler stops operating, the flue gas waste heat recovery device should also be stopped.
[0053] It can be seen that the present invention can increase the pH value of the condensed water to the target value, thereby achieving the purpose of preventing the flue gas condensed water from corroding the flue gas heat exchanger 2, forming a virtuous cycle.
[0054] It should be noted that when the amount of condensed water in the flue gas humidifying heat exchanger 1 and the air humidifying heat exchanger 3 reaches the maximum value, the adjustment capacity of the device reaches its limit. At this time, it is still possible that the pH value does not reach the target value. However, the pH value is already greater than the initial value, that is, the pH value is increased. The purpose of the utility model to reduce corrosion to the flue gas heat exchanger 2 by increasing the pH value, extend its service life and reduce pollutant emissions can still be achieved.
[0055] Those skilled in the art will appreciate that the above-mentioned embodiments are specific examples for implementing the present disclosure, and that in actual applications, various changes may be made thereto in form and detail without departing from the spirit and scope of the present disclosure.
Claims
1. A flue gas waste heat recovery device, characterized in that: It includes a flue gas humidifying heat exchanger, a flue gas heat exchanger, an air humidifying heat exchanger, a booster water pump, a water neutralization device, a flow control valve A, a flow control valve B, a flow control valve C, an air temperature and humidity meter, a flue gas temperature and humidity meter, a pH detector, a four-way valve A, a four-way valve B and a water tank. The flue gas humidifying heat exchanger and the air humidifying heat exchanger are direct heat exchangers. A plurality of flue gas humidifying heat exchanger atomizers are evenly arranged above the flue gas humidifying heat exchanger. The flue gas humidifying heat exchanger atomizer is connected to the flow control valve B. The smoke outlet of the flue gas humidifying heat exchanger is connected to the smoke inlet on the high-temperature side of the flue gas heat exchanger. The flue gas temperature and humidity meter is arranged between the flue gas humidifying heat exchanger and the flue gas heat exchanger. The water outlet of the flue gas heat exchanger is connected to one end of the water neutralization device. The pH detector is arranged between the flue gas heat exchanger and the water and the device, the other end of the water neutralization device is connected to the inlet of the booster water pump, the outlet of the booster water pump is connected to one end of the four-way valve A, the other three ends of the four-way valve A are respectively connected to the flow control valve A, the flow control valve B and one end of the flow control valve C, the other end of the flow control valve C is connected to one end of the four-way valve B, the other three ends of the four-way valve B are respectively connected to the water inlet of the water tank, the water outlet of the flue gas humidifying heat exchanger and the water outlet of the air humidifying heat exchanger, a plurality of air humidifying heat exchanger atomizers are evenly arranged above the air humidifying heat exchanger, the air humidifying heat exchanger atomizer is connected to the flow control valve A, the air thermometer and humidity meter are arranged at the exhaust port of the air humidifying heat exchanger, and the low-temperature side of the flue gas heat exchanger is used to circulate a low-temperature medium for heat exchange with the flue gas.
2. The flue gas waste heat recovery device according to claim 1, characterized in that: The flue gas heat exchanger is an indirect heat exchanger.
3. The flue gas waste heat recovery device according to claim 1, characterized in that: The low-temperature medium is heat network return water.
4. The flue gas waste heat recovery device according to claim 1, characterized in that: The low-temperature medium is a heat pump working medium.
Citation Information
Patent Citations
Waste heat recovery and purification system for flue gas from gas-fired boilers with combustion air and gas humidification
CN109268820B