CN218379615U - Heat recovery unit - Google Patents

Heat recovery unit Download PDF

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Publication number
CN218379615U
CN218379615U CN202222565003.2U CN202222565003U CN218379615U CN 218379615 U CN218379615 U CN 218379615U CN 202222565003 U CN202222565003 U CN 202222565003U CN 218379615 U CN218379615 U CN 218379615U
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China
Prior art keywords
heat recovery
air
section
cooling
air supply
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CN202222565003.2U
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Chinese (zh)
Inventor
徐艳妮
范霖
何伟光
洪奇锐
杨基文
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Gree Green Refrigeration Technology Center Co Ltd of Zhuhai
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Gree Green Refrigeration Technology Center Co Ltd of Zhuhai
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    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02BCLIMATE CHANGE MITIGATION TECHNOLOGIES RELATED TO BUILDINGS, e.g. HOUSING, HOUSE APPLIANCES OR RELATED END-USER APPLICATIONS
    • Y02B30/00Energy efficient heating, ventilation or air conditioning [HVAC]
    • Y02B30/56Heat recovery units

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Abstract

The utility model provides a heat recovery unit. This heat recovery unit includes: the fresh air unit (1) is provided with a fresh air outlet; the air supply assembly comprises a heat recovery device (2), wherein the heat recovery device (2) comprises a precooling section (3) and a surface air cooler (4) which are sequentially arranged along the air supply direction, the precooling section (3) is arranged at a fresh air outlet, a cooling liquid in the surface air cooler (4) is subjected to heat exchange with air and then enters the precooling section (3), and the air flowing through the precooling section (3) is precooled. According to the utility model discloses a heat recovery unit can improve heat recovery unit's energy utilization efficiency, reduces energy resource consumption by a wide margin.

Description

Heat recovery unit
Technical Field
The utility model relates to an air conditioning system technical field particularly, relates to a heat recovery unit.
Background
The air handling unit for the data center ventilation air conditioning system mainly meets the requirements of ambient temperature and humidity in a main control room of the data center, guarantees the ambient conditions such as temperature and humidity required by equipment operation in the main control room, and meets the requirement of comfort of main control room workers on the environment. The mode that increases electrical heating behind the surface cooler reduces air supply relative humidity on the market generally, reaches the humiture requirement of human travelling comfort requirement and environment, and on the one hand the absorptive heat of surface cooler is wasted by vain, and on the other hand, electrical heating can additionally consume the electric energy, consequently greatly increased energy resource consumption.
SUMMERY OF THE UTILITY MODEL
A primary object of the present invention is to provide a heat recovery unit, which can improve the energy utilization efficiency of the heat recovery unit and greatly reduce the energy consumption.
In order to achieve the above object, according to an aspect of the present invention, there is provided a heat recovery unit including:
the fresh air unit is provided with a fresh air outlet;
the air supply assembly comprises a heat recovery device, the heat recovery device comprises a precooling section and a surface cooler which are sequentially arranged along the air supply direction, the precooling section is arranged at a fresh air outlet, and cooling liquid in the surface cooler enters the precooling section after being subjected to heat exchange with air to precool the air flowing through the precooling section.
Furthermore, the heat recovery device also comprises a reheating section, the reheating section is positioned at the downstream of the air supply direction of the surface air cooler, and the cooling liquid in the precooling section enters the reheating section after heat exchange with the air so as to heat the air flowing through the reheating section.
Furthermore, the heat recovery device also comprises a cooling unit, and cooling liquid in the cooling unit flows through the surface air cooler, the pre-cooling section and the reheating section in sequence and then flows back to the cooling unit.
Furthermore, the heat recovery device also comprises a cooling unit and a water pump, the cooling unit forms a circulation loop with the surface air cooler through a liquid inlet pipe and a liquid return pipe, a bypass pipeline is arranged on the liquid return pipe, the bypass pipeline is connected to the cooling unit after being sequentially connected with the pre-cooling section and the reheating section, the liquid return pipe is selectively communicated with the bypass pipeline or the cooling unit, and the water pump provides power for the flow of the cooling liquid.
Furthermore, the liquid return pipe, the bypass pipeline and the cooling unit are connected through a three-way valve, and a flow regulating valve is arranged on the liquid return pipe.
Further, the air supply assembly also comprises a hot water coil which is positioned at the downstream of the air supply direction of the heat recovery device.
Further, the air supply assembly further comprises an electric heater which is positioned at the downstream of the air supply direction of the heat recovery device.
Further, the air supply assembly further comprises a humidifier, and the humidifier is located at the downstream of the air supply direction of the heat recovery device.
Furthermore, the air supply assembly further comprises a hot water coil, an electric heater and a humidifier, and the hot water coil, the electric heater and the humidifier are sequentially arranged on the downstream side of the heat recovery device along the air supply direction.
Furthermore, the fresh air unit comprises a heat recovery section, and fresh air is blown out from a fresh air outlet after exchanging heat with return air in the heat recovery section.
Use the technical scheme of the utility model, heat recovery unit includes: the fresh air unit is provided with a fresh air outlet; the air supply assembly comprises a heat recovery device, the heat recovery device comprises a pre-cooling section and a surface air cooler which are sequentially arranged along the air supply direction, the pre-cooling section is arranged at a fresh air outlet, cooling liquid in the surface air cooler enters the pre-cooling section after heat exchange with air, and pre-cooling is carried out on the air flowing through the pre-cooling section. This heat recovery unit's air supply subassembly includes heat recovery unit, heat recovery unit utilizes the surface cooler to cool down the dehumidification to the air, the humidity of conditioned air, coolant liquid after the surface cooler heat transfer is carried out the reuse through the precooling section, carry out the precooling to the air that is located the air supply direction upstream side of surface cooler, reduce the load of surface cooler processing air in-process, the cold volume of coolant liquid after the fully utilized surface cooler cools down the dehumidification, effectively improve heat recovery unit's energy utilization efficiency, reduce energy consumption by a wide margin.
Drawings
The accompanying drawings, which form a part of the present application, are included to provide a further understanding of the invention, and are incorporated in and constitute a part of this specification, illustrate embodiments of the invention and together with the description serve to explain the invention and not to limit the invention. In the drawings:
fig. 1 shows a schematic structural view of a heat recovery unit of an embodiment of the present invention; and
fig. 2 shows a control schematic diagram of a heat recovery unit according to an embodiment of the present invention.
Wherein the figures include the following reference numerals:
1. a fresh air handling unit; 2. a heat recovery device; 3. a pre-cooling section; 4. a surface cooler; 5. a reheating section; 6. a cooling unit; 7. a liquid return pipe; 8. a bypass line; 9. a three-way valve; 10. a flow regulating valve; 11. a hot water coil pipe; 12. an electric heater; 13. a humidifier; 14. a heat recovery section; 15. a water pump; 16. an air supply device; 17. a liquid inlet pipe.
Detailed Description
It should be noted that, in the present application, the embodiments and features of the embodiments may be combined with each other without conflict. The present invention will be described in detail below with reference to the accompanying drawings in conjunction with embodiments.
Referring to fig. 1, according to an embodiment of the present invention, a heat recovery unit includes: the fresh air unit 1 is provided with a fresh air outlet; the air supply assembly comprises a heat recovery device 2, wherein the heat recovery device 2 comprises a precooling section 3 and a surface cooler 4 which are sequentially arranged along the air supply direction, the precooling section 3 is arranged at a fresh air outlet, cooling liquid in the surface cooler 4 and air enter the precooling section 3 after heat exchange, and the air flowing through the precooling section 3 is precooled.
This heat recovery unit's air supply subassembly includes heat recovery unit 2, heat recovery unit 2 utilizes surface cooler 4 to cool down the dehumidification to the air, the humidity of air conditioning, coolant liquid after 3 pairs of surface cooler 4 heat exchanges of precooling section carries out reuse, carry out the precooling to the air that is located surface cooler 4's air supply direction upstream side, reduce the load of surface cooler 4 processing air in-process, the cold volume of coolant liquid after the fully utilized surface cooler 4 cools down the dehumidification to the air, effectively improve heat recovery unit's energy utilization efficiency, reduce energy resource consumption by a wide margin.
In one embodiment, the heat recovery device 2 further comprises a reheating section 5, the reheating section 5 is located at the downstream of the air supply direction of the surface cooler 4, and the cooling liquid in the precooling section 3 enters the reheating section 5 after being subjected to heat exchange with the air, so that the air flowing through the reheating section 5 is heated.
In this embodiment, the heat recovery device 2 further includes a reheating section 5, the reheating section 5 and the pre-cooling section 3 are connected in series, so that after the pre-cooling section 3 exchanges heat with fresh air and absorbs heat of the fresh air, the cooling liquid absorbing heat can flow to the reheating section 5, and a cooling liquid with a temperature higher than that of air cooled and dehumidified by the surface air cooler 4 is formed at the reheating section 5, so that air which is located at the downstream side of the surface air cooler 4 and cooled and dehumidified by the surface air cooler 4 can be heated by using the heat absorbed by the cooling liquid at the pre-cooling section 3, and because the cooling capacity of the cooling liquid in the pre-cooling section 3 for pre-cooling air comes from the cooling capacity of the cooling liquid after heat exchange of the surface air cooler 4, and the heat capacity of the cooling liquid in the reheating section 5 for reheating air comes from the fresh air for heat exchange, the cooling capacity of the cooling liquid and the energy contained in the air can be fully utilized, the cooling capacity of the cooling liquid and the air can be reduced, the cooling capacity of the surface air cooler 4 in the air processing process can be reduced, and the sensible heat load of the heater for heating the processed air can be greatly reduced, and even the energy consumption of the traditional air can be greatly reduced, and the energy saving can be eliminated, and the energy saving of the traditional air can be greatly.
The pre-cooling section 3 and the reheating section 5 are distributed on the upstream side and the downstream side of the surface cooler 4 and are connected through pipelines to form a horseshoe-shaped heat exchange pipe, or an integral horseshoe-shaped heat pipe is adopted, and the energy transmission is realized by utilizing the self characteristics of the heat pipe.
In one embodiment, the heat recovery device 2 further comprises a cooling unit 6 and a water pump 15, wherein the cooling liquid in the cooling unit 6 flows through the surface air cooler 4, the pre-cooling section 3 and the reheating section 5 in sequence and then flows back to the cooling unit 6, and the water pump 15 provides power for the flow of the cooling liquid.
In this embodiment, the cooling unit 6 is connected to the pre-cooling section 3, the surface air cooler 4 and the reheating section 5 in sequence, and the water pump 15 may be disposed at an outlet end of the cooling unit 6 to drive the cooling liquid to flow circularly. In the process of circulating flow of the cooling liquid, firstly, the air is cooled and dehumidified at the surface air cooler 4, then, the air flows to the pre-cooling section 3 to pre-cool the air on the upstream side of the surface air cooler 4 by using the residual cooling of the cooling liquid, and after the fresh air heat at the fresh air outlet is absorbed and the temperature is raised, the air flows to the reheating section 5 on the downstream side of the surface air cooler 4 to exchange heat with the air on the downstream side of the surface air cooler 4, and the air is heated. The cooling liquid circulation formed by the cooling unit 6, the pre-cooling section 3, the surface air cooler 4 and the reheating section 5 in the embodiment is a single circulation structure, and the temperature and the humidity of air can be adjusted by adjusting a flow adjusting valve 10 on a pipeline.
In one embodiment, the heat recovery device 2 further comprises a cooling unit 6, the cooling unit 6 forms a circulation loop with the surface cooler 4 through a liquid inlet pipe 17 and a liquid return pipe 7, a bypass pipeline 8 is arranged on the liquid return pipe 7, the bypass pipeline 8 is connected to the cooling unit 6 after being sequentially connected with the pre-cooling section 3 and the reheating section 5, and the liquid return pipe 7 is selectively communicated with the bypass pipeline 8 or the cooling unit 6.
The liquid return pipe 7, the bypass pipeline 8 and the cooling unit 6 are connected through a three-way valve 9, and a flow regulating valve 10 is arranged on the liquid return pipe 7.
In this embodiment, the flow rate distributed to the bypass line 8 can be adjusted by the three-way valve 9, so as to adjust the temperature of the air, and the flow rate of the coolant flowing out of the surface air cooler 4 can be adjusted by the flow rate adjusting valve 10, so as to adjust the heat exchange time of the coolant in the surface air cooler 4, adjust the surface temperature of the surface air cooler 4, and achieve the purpose of adjusting the air humidity.
The process of adjusting the air temperature using the three-way valve 9 is as follows: when the bypass opening of the three-way valve 9 is reduced, the amount of the cooling liquid entering the pre-cooling section 3 is reduced, the amount of the cooling liquid exchanging heat with the air is reduced, and the amount of the heat of the air which can be absorbed is reduced, so that the amount of the cooling liquid entering the reheating section 5 is reduced, and the heating amount of the air cooled and dehumidified by the surface air cooler 4 is reduced, so that the temperature of the air after heat exchange by the reheating section 5 can be reduced; when the bypass opening of the three-way valve 9 is increased, the amount of the coolant entering the pre-cooling section 3 is increased, the amount of the coolant exchanging heat with the air is increased, the amount of heat of the air that can be absorbed is increased, and therefore, the amount of heat of the coolant entering the reheating section 5 is increased, and the amount of heat of the air cooled and dehumidified by the surface air cooler 4 is increased, and therefore, the temperature of the air exchanging heat by the reheating section 5 can be raised.
Through the joint adjustment of the three-way valve 9 and the flow regulating valve 10, the indoor distribution temperature and the indoor air supply humidity can be accurately controlled, and therefore the constant temperature and humidity of the indoor environment can be effectively guaranteed.
In one embodiment, the air supply assembly further comprises a hot water coil 11, the hot water coil 11 being located downstream in the air supply direction of the heat recovery device 2. The hot water coil 11 can heat the air flowing through, so as to adjust the air outlet temperature of the air.
In one embodiment, the air supply assembly further comprises an electric heater 12, the electric heater 12 being located downstream in the air supply direction of the heat recovery device 2. The electric heater 12 can heat the air flowing through, so as to adjust the outlet air temperature of the air.
In one embodiment, the air supply assembly further comprises a humidifier 13, the humidifier 13 being located downstream of the heat recovery device 2 in the air supply direction. The humidifier 13 is, for example, an electrode humidifier. The humidifier 13 is used for indoor humidification in winter, and is used to increase the moisture content of air when the air passes through.
In one embodiment, the air supply assembly further comprises a hot water coil 11, an electric heater 12 and a humidifier 13, and the hot water coil 11, the electric heater 12 and the humidifier 13 are sequentially arranged on the downstream side of the heat recovery device 2 along the air supply direction. The air supply assembly further comprises an air supply device 16 positioned at the air supply opening, and the air supply device 16 comprises a fan and can provide air supply power.
In one embodiment, the fresh air handling unit 1 includes a heat recovery section 14, and fresh air is blown out from a fresh air outlet after the heat recovery section 14 exchanges heat with return air.
The fresh air is in the return air at the heat recovery section 14 for heat exchange, and the cold quantity of the return air can be fully absorbed, so that the cold load when the surface air cooler is used for treating air is further reduced, and the utilization efficiency of energy is improved.
The coolant may be, for example, water, or another coolant, for example, ethanol.
The utility model discloses heat recovery unit, through add in liquid return pipe 7 that some cold water of three-way valve 9 bypass arrive heat recovery unit 2, the fresh air of outdoor damp and hot is T1 through the plate fin heat exchanger cooling temperature in fresh air unit 1, relative humidity is H1, it can be d1 to calculate moisture content, 3 temperature in the precooling section of rethread horseshoe heat pipe is T2, relative humidity is H2, it can be d2 to calculate moisture content, the water evaporation heat absorption in the precooling section 3 of horseshoe heat pipe, follow the loop from linkage segment to reheating section 5, the heat is taken away, cold volume is passed over, the fresh air of damp and hot becomes the air after the precooling, dehumidify and cool down the temperature for T3 again through surface cooler 4, relative humidity is H3, it can be d3 to calculate moisture content, the fresh air of surface cold is T4 through reheating section 5 heating temperature of horseshoe heat pipe again, relative humidity is H4, it can be d4 to calculate moisture content, reach a comfortable temperature and humidity, send into indoor. The utility model discloses the horseshoe heat pipe that forms can be arranged in air conditioning system for improve the dehumidification effect of surface cooler, and play energy-conserving effect.
Referring to fig. 2 in combination, according to an embodiment of the present invention, a control method of a heat recovery unit includes: acquiring a current air outlet temperature Tsend and a target air outlet temperature T set; acquiring current air outlet moisture content d delivery and target air outlet moisture content d setting; comparing the current outlet air temperature T with the target outlet air temperature T, and the current outlet air moisture content d with the target outlet air moisture content d; the heat recovery device 2 is adjusted according to the comparison result.
In one embodiment, the step of adjusting the heat recovery device 2 in dependence on the comparison comprises: detecting a difference value between the current outlet air moisture content d and the target outlet air moisture content d; when | d is sent to d and | is less than or equal to a, the flow regulating valve is kept not to act; and when | d is sent to d and | is more than a, controlling the opening of the flow regulating valve by a PID algorithm according to the current outlet air moisture content d and the target outlet air moisture content d.
In one embodiment, the step of adjusting the heat recovery device 2 in dependence on the comparison comprises: detecting a difference value between the current air outlet temperature tSend and the target air outlet temperature T; when the absolute value of T is sent to T and the absolute value is less than or equal to b, keeping the three-way valve 9 not to act; when the absolute value of T is greater than b, the opening degree of the three-way valve 9 is controlled according to the current air outlet temperature T and the target air outlet temperature T.
In one embodiment, when | T send-T is set to | > b, the step of controlling the opening of the three-way valve 9 by the PID algorithm according to the current outlet air temperature tput and the target outlet air temperature T includes: when T is greater than T and + b is set, the bypass opening of the three-way valve 9 is reduced until the condition that T is greater than T and T is set to be less than or equal to b is met; when T is less than T and is equal to-b, the bypass opening degree of the three-way valve 9 is increased; detecting whether T is less than T and-b is less than T, and if so, detecting whether the opening of the bypass reaches 100%;
if the opening degree reaches 100%, starting electrical heating until the condition that the absolute value T is sent to the position-T and the absolute value is less than or equal to b is met; if the opening degree does not reach 100%, the bypass opening degree of the three-way valve 9 is continuously increased.
In the above-mentioned examples, a is, for example, 0.5g/kg, and b is, for example, 1 ℃.
In the control method of this embodiment, the target of the regulation is the air supply temperature and the air supply moisture content, which are equal to the set values, the set temperature return difference value is 1 ℃, and the set moisture content return difference value is 0.5g/kg, that is, if the air supply moisture content and the set value difference value are ± 0.5g/kg, the flow regulating valve 10 keeps the opening degree unchanged, and if the air supply temperature and the set value difference value are ± 1 ℃, the bypass opening degree of the three-way valve 9 keeps unchanged.
When the detection is continuously carried out for 10S, d is sent to d and is set to be less than or equal to 0.5, the flow regulating valve 10 does not act; otherwise, the opening degree of the flow regulating valve 10 is controlled through a PID algorithm according to the target air supply moisture content and the current air supply moisture content, wherein the target air supply moisture content is a target moisture content value, the feedback temperature is a real-time moisture content value, and parameters P, ti and Td in the PID control block can be set. When the air supply temperature Tsend detected by 10S is continuously greater than the set temperature Tset to +1, the bypass opening of the three-way valve 9 is reduced, the water flow is reduced, the cold water flowing into the pre-cooling section 3 and the reheating section 5 is reduced, the heat exchange quantity is reduced, the Tsend is reduced until the absolute value of Tsend-T is less than or equal to 1, and the bypass opening of the three-way valve 9 is kept unchanged; and vice versa. When the bypass opening of the three-way valve 9 reaches 100% and still does not meet the requirement, the electric heater 12 can be turned on to meet the requirement.
It is noted that the terminology used herein is for the purpose of describing particular embodiments only and is not intended to be limiting of exemplary embodiments according to the present application. As used herein, the singular forms "a", "an", and "the" are intended to include the plural forms as well, and it should be understood that when the terms "comprises" and/or "comprising" are used in this specification, they specify the presence of stated features, steps, operations, devices, components, and/or combinations thereof, unless the context clearly indicates otherwise.
It should be noted that the terms "first," "second," and the like in the description and claims of this application and in the accompanying drawings are used for distinguishing between similar elements and not necessarily for describing a particular sequential or chronological order. It is to be understood that the data so used is interchangeable under appropriate circumstances such that the embodiments of the application described herein are capable of operation in other sequences than those illustrated or described herein.
The above description is only a preferred embodiment of the present invention and is not intended to limit the present invention, and various modifications and changes may be made by those skilled in the art. Any modification, equivalent replacement, or improvement made within the spirit and principle of the present invention should be included in the protection scope of the present invention.

Claims (10)

1. A heat recovery unit, comprising:
the fresh air unit (1) is provided with a fresh air outlet;
air supply assembly, including heat reclamation device (2), heat reclamation device (2) include precooling section (3) and surface cooler (4) that set gradually along the air supply direction, precooling section (3) set up fresh air outlet department, get into after coolant liquid in surface cooler (4) carries out the heat exchange with the air precooling section (3), the convection current carries out the precooling with the air of precooling section (3).
2. The heat recovery unit according to claim 1, wherein the heat recovery device (2) further comprises a reheating section (5), the reheating section (5) is located downstream of the air supply direction of the surface air cooler (4), and the cooling liquid in the pre-cooling section (3) enters the reheating section (5) after exchanging heat with air to heat the air flowing through the reheating section (5).
3. The heat recovery unit according to claim 2, wherein the heat recovery device (2) further comprises a cooling unit (6) and a water pump (15), the cooling liquid in the cooling unit (6) flows through the surface air cooler (4), the pre-cooling section (3) and the reheating section (5) in sequence and then flows back to the cooling unit (6), and the water pump (15) provides power for the flow of the cooling liquid.
4. The heat recovery unit according to claim 2, wherein the heat recovery device (2) further comprises a cooling unit (6), the cooling unit (6) forms a circulation loop with the surface cooler (4) through a liquid inlet pipe (17) and a liquid return pipe (7), a bypass pipeline (8) is arranged on the liquid return pipe (7), the bypass pipeline (8) is connected to the cooling unit (6) after sequentially connecting the pre-cooling section (3) and the reheating section (5), and the liquid return pipe (7) is selectively communicated with the bypass pipeline (8) or the cooling unit (6).
5. The heat recovery unit according to claim 4, characterized in that the liquid return pipe (7), the bypass line (8) and the cooling unit (6) are connected by a three-way valve (9), and a flow regulating valve (10) is arranged on the liquid return pipe (7).
6. The heat recovery unit according to claim 1, characterized in that the air supply assembly further comprises a hot water coil (11), the hot water coil (11) being located downstream of the air supply direction of the heat recovery device (2).
7. The heat recovery assembly according to claim 1, characterized in that the air supply assembly further comprises an electric heater (12), the electric heater (12) being located downstream of the air supply direction of the heat recovery device (2).
8. The heat recovery assembly of claim 1, wherein the air supply assembly further comprises a humidifier (13), the humidifier (13) being located downstream of the air supply direction of the heat recovery device (2).
9. The heat recovery unit according to claim 1, characterized in that the air supply assembly further comprises a hot water coil (11), an electric heater (12) and a humidifier (13), the hot water coil (11), the electric heater (12) and the humidifier (13) being arranged in the downstream side of the heat recovery device (2) in the air supply direction in this order.
10. A heat recovery unit according to any of claims 1 to 9, characterised in that the fresh air unit (1) comprises a heat recovery section (14), fresh air being blown out of the fresh air outlet after heat exchange with return air in the heat recovery section (14).
CN202222565003.2U 2022-09-22 2022-09-22 Heat recovery unit Active CN218379615U (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN202222565003.2U CN218379615U (en) 2022-09-22 2022-09-22 Heat recovery unit

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN202222565003.2U CN218379615U (en) 2022-09-22 2022-09-22 Heat recovery unit

Publications (1)

Publication Number Publication Date
CN218379615U true CN218379615U (en) 2023-01-24

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Application Number Title Priority Date Filing Date
CN202222565003.2U Active CN218379615U (en) 2022-09-22 2022-09-22 Heat recovery unit

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CN (1) CN218379615U (en)

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