CN212034083U - Special Lambert wall system adopting double-cold-condenser heat pipe type photovoltaic photo-thermal module - Google Patents

Special Lambert wall system adopting double-cold-condenser heat pipe type photovoltaic photo-thermal module Download PDF

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CN212034083U
CN212034083U CN202020453771.7U CN202020453771U CN212034083U CN 212034083 U CN212034083 U CN 212034083U CN 202020453771 U CN202020453771 U CN 202020453771U CN 212034083 U CN212034083 U CN 212034083U
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wall
heat
solar
special
heat exchange
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袁艳平
周锦志
余南阳
钟巍
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Southwest Jiaotong University
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Southwest Jiaotong University
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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
    • Y02B10/00Integration of renewable energy sources in buildings
    • Y02B10/10Photovoltaic [PV]
    • 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
    • Y02B10/00Integration of renewable energy sources in buildings
    • Y02B10/70Hybrid systems, e.g. uninterruptible or back-up power supplies integrating renewable energies
    • 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
    • Y02EREDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
    • Y02E10/00Energy generation through renewable energy sources
    • Y02E10/50Photovoltaic [PV] energy
    • 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
    • Y02EREDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
    • Y02E10/00Energy generation through renewable energy sources
    • Y02E10/60Thermal-PV hybrids

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  • Photovoltaic Devices (AREA)

Abstract

The utility model provides an adopt special lambert wall system of two cold condenser heat pipe formula photovoltaic light and heat module, including solar photovoltaic light and heat module, solar battery, solar energy contrary accuse all-in-one, water pump, two cold condensers, heat storage water tank, fan and special lambert wall. The system can realize multiple functions of power generation, hot water production, heating and the like, and in non-heating seasons, the solar photovoltaic and photothermal module is combined with the double-cold condenser, the water pump and the outdoor heat storage water tank to realize the hot water production function; in the heating season, the solar photovoltaic thermal module is combined with the double-cooling condenser, the fan and the special Lambert wall, the heat transfer rate of the heat pipe and the special Lambert wall is enhanced in a forced air cooling heat exchange mode, and the photoelectric and photothermal comprehensive efficiency of the solar photovoltaic thermal module is improved. Besides seasonal hot water making and heating functions, the system can realize annual power supply. The utility model discloses workable, easy and building combination can realize that multi-functional output satisfies the different demands of building according to the illumination characteristics in different seasons.

Description

Special Lambert wall system adopting double-cold-condenser heat pipe type photovoltaic photo-thermal module
Technical Field
The utility model belongs to photovoltaic light and heat technique and building combine the field, concretely relates to heat pipe formula photovoltaic light and heat system combines the application in the building with special Lambert wall.
Background
The solar photovoltaic photo-thermal integration technology (PV/T) combines the functions of two systems of a traditional solar photovoltaic panel and a solar thermal collector, and can provide electric energy and heat energy simultaneously. In order to solve the problem of freezing in the photovoltaic and photo-thermal module in winter, a heat pipe technology is introduced into the photovoltaic and photo-thermal system. At present, most of heat pipe type photovoltaic photo-thermal systems are in a single cooling mode, such as single air cooling mode and single water cooling mode, and the structure limits the output function of the system.
The special Lambert wall is used as a mature heating structure wall, and can heat indoor air through natural convection or forced convection heat exchange. The combination of the Lambertian wall and the photovoltaic photothermal technology increases the application forms of PV/T. However, the photoelectric and photothermal comprehensive efficiency of the Lambert wall is not higher than 45% in a natural convection or forced convection cooling state because the Lambert wall only uses a single cooling mode. Most of the energy is dissipated outdoors in the form of heat loss, so that the photovoltaic and photothermal integrated efficiency can be improved by utilizing various cooling modes.
Chinese patents 'a heat pipe type photovoltaic photo-thermal component' (CN201310539314.4) and 'a heat pipe type photovoltaic photo-thermal integrated plate' (CN201310475617.4) all adopt a single water cooling mode to achieve the function of heating water. A solar multifunctional wall (CN201410558931.3) introduces a natural convection heat exchange special Lambert wall heating and formaldehyde removal system, and a solar heat collection and ventilation system (CN201820406956.5) facing a passive room introduces a solar heat collector, a heat pipe and a special Lambert wall combined hot water system, wherein the systems all adopt a single cooling mode, and the solar utilization efficiency needs to be improved.
SUMMERY OF THE UTILITY MODEL
To single, the special lambertian wall cooling methods of solar energy single, the low scheduling problem of heat exchange efficiency of current heat pipe formula photovoltaic light and heat module heat transfer mode, the utility model provides an adopt two cold condenser heat pipe formula photovoltaic light and heat module's special lambertian wall combined system. The system combines the double-cooling heat exchanger, the heat pipe type photovoltaic photo-thermal module and the special Lambert wall, increases the output function of the photovoltaic photo-thermal module in two heat exchange modes of the single heat exchanger, and utilizes the combination of the heat pipe and the special Lambert wall to superpose and cool the photovoltaic photo-thermal module in a forced convection heat exchange mode, so that the photoelectric photo-thermal comprehensive efficiency of the system is improved.
In order to realize the purpose of the utility model, the utility model discloses technical scheme as follows:
a special Lambert wall system adopting a double-cold-condenser heat-pipe type photovoltaic photo-thermal module comprises a solar photovoltaic photo-thermal module, a double-cold condenser, a water pump, a heat storage water tank, a fan, a special Lambert wall, a solar storage battery and a solar inverse control all-in-one machine;
the solar photovoltaic thermal module is used for absorbing and converting solar energy and providing electric energy and heat energy for a system, and comprises a glass plate close to the illumination side, a heat absorption plate close to the user side, and a heat insulation air layer between the glass plate and the heat absorption plate, wherein the solar cell array is fixed on the light absorption surface of the heat absorption plate, and the microchannel evaporator plate core is fixed on the backlight surface of the heat absorption plate; the upper end of the micro-channel evaporator core is communicated with the lower end of a refrigerant steam pipe, the upper end of the refrigerant steam pipe is communicated with the inlet of a refrigerant heat exchange pipe, the outlet of the refrigerant heat exchange pipe is communicated with a refrigerant liquid return pipe,
the double-cold condenser is arranged above the solar photovoltaic and photothermal module, a refrigerant heat exchange tube and a water-cooling heat exchange tube are arranged in the double-cold condenser, the refrigerant heat exchange tube and the water-cooling heat exchange tube are arranged adjacently, an air cooling channel is formed by the interval between the adjacent microchannel refrigerant heat exchange tubes, the double-cold condenser is positioned at the air outlet on the super-Lambert wall, and the water-cooling heat exchange tube is connected with the heat storage water tank through a water pump to form a cooling water channel; the special Lambert wall is respectively provided with a special Lambert wall wind outlet, a special Lambert wall wind inlet and a special Lambert wall wind outlet from top to bottom, the special Lambert wall wind outlet, the special Lambert wall wind inlet and the special Lambert wall wind outlet are all positioned indoors, the special Lambert wall wind inlet is provided with a fan,
the solar storage battery is connected with the solar photovoltaic and photothermal module through an electric wire and used for storing electric energy, and the solar inverse control all-in-one machine is connected with the solar storage battery and converts direct current in the solar storage battery into alternating current to be supplied to a user side.
Preferably, the air outlet on the special lambertian wall is provided with a baffle for the air outlet on the special lambertian wall, the air inlet on the special lambertian wall is provided with a baffle for the air inlet on the special lambertian wall, and the air outlet under the special lambertian wall is provided with a baffle for the air outlet under the special lambertian wall.
Preferably, the wind inlet center of the specially-lambertian wall and the wind outlet position of the specially-lambertian wall are higher than those of the solar photovoltaic thermal module.
Preferably, the solar cell array and the micro-channel evaporator plate core are respectively fixed on the light absorbing surface and the back surface of the heat absorbing plate through hot melt adhesive lamination.
Preferably, the heat storage water tank is provided with a water outlet connected to the user side.
The utility model discloses an adopt two cold condenser heat pipe formula photovoltaic light and heat module's special Lambert wall system's application method, as follows:
in non-heating seasons, the solar photovoltaic thermal module, the microchannel refrigerant heat exchange tube, the water-cooling heat exchange tube, the heat storage water tank and the water pump run in a combined manner, liquid refrigerant in the microchannel evaporator core absorbs solar heat and then changes into gaseous steam, the gaseous steam enters the microchannel refrigerant heat exchange tube in the double-cold condenser through the refrigerant steam tube, at the moment, the water pump is started, water in the heat storage water tank enters the water-cooling heat exchange tube in the double-cold condenser under the driving of the water pump, the gaseous refrigerant and cooling water exchange heat in a refrigerant two-phase flow-water forced convection heat exchange mode on the inner wall of the microchannel refrigerant heat exchange tube, the gaseous refrigerant changes into liquid, the gaseous refrigerant flows into the microchannel evaporator core through a refrigerant return pipe under the action of gravity, a primary heat pipe heat transfer circulation process is completed, the heated cooling water flows into the heat storage water tank, a primary heat absorption process is, the heat storage water tank provides hot water through a client;
in the heating season, the solar photovoltaic thermal module, the microchannel refrigerant heat exchange tube, the fan and the special Lambert wall are operated in a combined mode; liquid refrigerant in the micro-channel evaporator core absorbs solar heat and then is changed into gaseous steam, and the gaseous steam enters the micro-channel refrigerant heat exchange tube in the double-cold condenser through the refrigerant steam tube; at the moment, the fan is started, indoor cold air enters the wall body from the wind inlet of the special Lambert wall under the driving of the fan and then respectively flows upwards and downwards, the air flowing upwards enters the air cooling channel in the double-cooling condenser, the gaseous refrigerant and the cold air exchange heat with the refrigerant two-phase flow-air forced convection heat exchange mode on the outer wall of the microchannel refrigerant heat exchange tube, the cooled gaseous refrigerant is changed into liquid, the gaseous refrigerant flows into the microchannel plate core through the refrigerant liquid return tube under the action of gravity, the heat transfer cycle process of the evaporator is completed, and the heated air enters the room through the wind outlet on the special Lambert wall; the downward air and the heat absorbing plate perform forced convection heat exchange, and the heated air enters the room from the lower wind outlet of the Lambert wall. The heat pipe and the Lambert wall are operated in a combined mode, the heat absorption plate is cooled doubly in a forced convection heat exchange mode, the solar energy utilization rate is improved, and the heating function is completed.
The solar storage battery is connected with the solar photovoltaic and photothermal module 1 through an electric wire and used for storing electric energy, and the solar inverse control all-in-one machine is connected with the solar storage battery and converts direct current in the solar storage battery into alternating current to be supplied to a user side.
Preferably, in non-heating seasons, the air inlet baffle in the specially-lambert wall, the air outlet baffle on the specially-lambert wall and the air outlet baffle under the specially-lambert wall are closed, a closed space is formed in the wall body and serves as an insulating layer of the double-cold condenser, and heat loss of the double-cold condenser during operation is reduced.
The system can realize the function of independently making hot water or heating through two different heat exchange modes (water cooling or air cooling) of the double-cold condenser.
The utility model discloses the technical conception of system as follows:
the water-cooling air-cooling double-cooling heat exchanger is used as a condenser of the heat pipe type photovoltaic photo-thermal module and is combined with a special Lambert wall technology. The system provides hot water and electric energy for buildings, and realizes the functions of heating and the like. In non-heating seasons, the heat pipe type photovoltaic photo-thermal system can independently operate to supply power and hot water for buildings. In the heating season, the heat pipe type photovoltaic photo-thermal system is combined with the specially-Lambert wall, the heat pipe and the specially-Lambert wall are used for jointly cooling the photovoltaic photo-thermal module, and heating is carried out on the building.
Compared with the prior art, the beneficial effects of the utility model are as follows:
1. the utility model discloses regard two cold heat exchangers of water-cooling forced air cooling as the condenser of heat pipe formula photovoltaic light and heat module to single heat exchanger has realized two kinds of functions of heating water and heating.
2. The double-cold condenser and the special Lambert wall both adopt a forced convection heat exchange mode, so that the heat exchange coefficient of the heat exchanger is improved.
3. The heat pipe and the Lambert are combined to perform superposition cooling on the photovoltaic photo-thermal module, so that the photoelectric photo-thermal comprehensive efficiency of the photovoltaic photo-thermal module is improved, and the heating capacity is improved.
Drawings
Fig. 1 is a schematic structural view of a special lambertian wall combination system using a double-cold-condenser heat pipe type photovoltaic and photothermal module according to an embodiment of the present invention;
fig. 2 is a plan view of a hot water heating mode of a non-heating season double-cold condenser heat pipe photovoltaic photo-thermal module provided by an embodiment of the present invention;
fig. 3 is a plan view of a heating mode of a super-lambert wall heating module of a heat pipe photovoltaic photo-thermal module of a double-cold condenser in a heating season according to an embodiment of the present invention;
in the figure, 1 is a solar photovoltaic photothermal module, 2 is a glass plate, 3 is a heat insulation air layer, 4 is a solar cell array, 5 is a heat absorption plate, 6 is a microchannel evaporator plate core, 7 is a photovoltaic photothermal module frame, 8 is a refrigerant steam pipe, 9 is a refrigerant return pipe, 10 is a double-cooling condenser, 11 is a microchannel refrigerant heat exchange pipe, 12 is a water-cooling heat exchange pipe, 13 is an air cooling channel, 14 is a water pump, 15 is a heat storage water tank, 16 is a fan, 17 is a specially lambert wall wind inlet, 18 is a specially lambert wall wind outlet, 19 is a specially lambert wall wind outlet, 20 is a specially lambert wall wind inlet baffle, 21 is a specially lambert wall wind outlet baffle, 22 is a specially lambert wall wind outlet baffle, 23 is a specially lambert wall, 24 is a solar storage battery, 25 is a solar inversion control all-in-one machine, and 26 is a user terminal.
Detailed Description
As shown in fig. 1, a special lambertian wall system adopting a double-cold-condenser heat pipe type photovoltaic and photo-thermal module comprises a solar photovoltaic and photo-thermal module 1, a double-cold condenser 10, a water pump 14, a heat storage water tank 15, a fan 16, a special lambertian wall 23, a solar storage battery 24 and a solar inverse control all-in-one machine 25;
the solar photovoltaic thermal module 1 is used for absorbing and converting solar energy and providing electric energy and heat energy for a system, the solar photovoltaic thermal module 1 comprises a glass plate 2 close to the illumination side, a heat absorption plate 5 close to the user side, and a heat insulation air layer 3 between the glass plate 2 and the heat absorption plate 5, a solar cell array 4 is fixed on the light absorption surface of the heat absorption plate 5 in a hot melt adhesive laminating mode, and a microchannel evaporator plate core 6 is fixed on the backlight surface of the heat absorption plate 5 in a hot melt adhesive laminating mode; the upper end of the micro-channel evaporator plate core 6 is communicated with the lower end of a refrigerant steam pipe 8, the upper end of the refrigerant steam pipe 8 is communicated with the inlet of a refrigerant heat exchange pipe 11, the outlet of the refrigerant heat exchange pipe 11 is communicated with a refrigerant liquid return pipe 9, and the solar photovoltaic photothermal module 1 is embedded in a wall.
The double-cold condenser 10 is arranged above the solar photovoltaic thermal module 1, a refrigerant heat exchange tube 11 and a water-cooling heat exchange tube 12 are arranged inside the double-cold condenser 10, the refrigerant heat exchange tube 11 and the water-cooling heat exchange tube 12 are arranged adjacently, an air-cooling channel 13 is formed between the adjacent microchannel refrigerant heat exchange tubes 11 at intervals, the double-cold condenser 10 is positioned at an air outlet 18 on a special lambert wall, and the water-cooling heat exchange tube 12 is connected with a hot water storage tank 15 through a water pump 14 to form a cooling water channel; the heat storage water tank 15 is provided with a water outlet connected to the user end 26. The super-lambertian wall 23 is provided with a super-lambertian wall upper wind outlet 18, a super-lambertian wall wind inlet 17 and a super-lambertian wall lower wind outlet 19 from top to bottom respectively, the super-lambertian wall upper wind outlet 18, the super-lambertian wall wind inlet 17 and the super-lambertian wall lower wind outlet 19 are all located indoors, the fan 16 is arranged at the super-lambertian wall wind inlet 17, and the positions of the center of the super-lambertian wall wind inlet 17 and the position of the super-lambertian wall upper wind outlet 18 are higher than that of the solar photovoltaic thermal module 1. The super-lambertian wall upper wind outlet 18 is provided with a super-lambertian wall upper wind outlet baffle 21, the super-lambertian wall wind inlet 17 is provided with a super-lambertian wall wind inlet baffle 20, and the super-lambertian wall lower wind outlet 19 is provided with a super-lambertian wall lower wind outlet baffle 22.
The solar storage battery 24 is connected with the solar photovoltaic thermal module 1 through an electric wire and used for storing electric energy, and the solar inversion control all-in-one machine 25 is connected with the solar storage battery 24 and used for converting direct current in the solar storage battery into alternating current to be supplied to a user side 26.
The use method of the special lambertian wall system adopting the double-cold-condenser heat pipe type photovoltaic photo-thermal module in the embodiment comprises the following steps:
as shown in fig. 2, in non-heating seasons, the solar photovoltaic thermal module 1, the microchannel refrigerant heat exchange tube 11, the water-cooled heat exchange tube 12, the heat storage water tank 15 and the water pump 14 operate in combination, the liquid refrigerant in the microchannel evaporator core 6 absorbs solar heat and then changes into gaseous steam, the gaseous steam enters the microchannel refrigerant heat exchange tube 11 in the double-cold condenser 10 through the refrigerant steam tube 8, at this time, the water pump 14 is turned on, water in the heat storage water tank 15 enters the water-cooled heat exchange tube 12 in the double-cold condenser 10 under the driving of the water pump 14, the gaseous refrigerant and cooling water exchange heat in the form of refrigerant two-phase flow-water forced convection heat exchange on the inner wall of the microchannel refrigerant heat exchange tube 11, the cooled gaseous refrigerant changes into liquid, the cooled gaseous refrigerant flows into the microchannel evaporator core 6 through the refrigerant return tube 9 under the action of gravity, a heat pipe transfer cycle process is completed, and, completing the primary heat absorption process, and when the water reaches the temperature required by use, providing hot water by the heat storage water tank 15 through the client 26; in non-heating seasons, the air inlet baffle 20 in the specially-lambert wall, the air outlet baffle 21 on the specially-lambert wall and the air outlet baffle 22 under the specially-lambert wall are closed, a closed space is formed in the wall body and serves as a heat insulation layer of the double-cold condenser 10, and heat loss during the working period of the double-cold condenser is reduced.
As shown in fig. 3, in the heating season, the air inlet baffle 20 and the air outlet baffle 21 of the super lambertian wall and the air outlet baffle 22 of the super lambertian wall are opened, and the solar photovoltaic thermal module 1, the microchannel refrigerant heat exchange tube 11, the fan 16 and the super lambertian wall 23 run jointly; liquid refrigerant in the micro-channel evaporator plate core 6 absorbs solar heat and then is changed into gaseous steam, and the gaseous steam enters a micro-channel refrigerant heat exchange tube 11 in the double-cold condenser 10 through a refrigerant steam tube 8; at the moment, the fan 16 is started, indoor cold air enters the wall body from the air inlet 17 in the specially-lambert wall under the drive of the fan 16 and then respectively flows upwards and downwards, the air flowing upwards enters the air cooling channel 13 in the double-cold condenser 10, the gaseous refrigerant and the cold air exchange heat with the refrigerant two-phase flow air in the form of forced convection heat exchange on the outer wall of the micro-channel refrigerant heat exchange tube 11, the cooled gaseous refrigerant is changed into liquid, the cooled gaseous refrigerant flows into the micro-channel evaporator core 6 through the refrigerant liquid return tube 9 under the action of gravity, the heat transfer circulation process of the heat pipe is completed, and the heated air enters the room through the air outlet 18 on the specially-lambert; the air flowing downwards performs forced convection heat exchange with the heat absorbing plate 5, and the heated air enters the room from the lower wind outlet 19 of the Lambert wall. The heat pipe and the Lambert wall are operated in a combined mode, the heat absorption plate 5 is cooled doubly in a forced convection heat exchange mode, the solar energy utilization rate is improved, and the heating function is completed.
The solar storage battery 24 is connected with the solar photovoltaic thermal module 1 through an electric wire and used for storing electric energy, and the solar inversion control all-in-one machine 25 is connected with the solar storage battery 24 and used for converting direct current in the solar storage battery into alternating current to be supplied to a user side 26.
The system can realize the function of independently making hot water or heating through two different heat exchange modes (water cooling or air cooling) of the double-cold condenser 10.
The utility model provides a system installation is convenient, and especially adapted combines together with the building, can realize that multi-functional output satisfies user's different demands in the building according to the illumination characteristics in different seasons.
The embodiments of the present invention have been described in detail with reference to the accompanying drawings, but the present invention is not limited to the above-mentioned embodiments, which are only illustrative and not restrictive, and those skilled in the art can make many modifications without departing from the spirit and scope of the present invention, and these modifications are all within the protection scope of the present invention.

Claims (5)

1. The utility model provides an adopt special lambertian wall system of two cold condenser heat pipe formula photovoltaic light and heat module which characterized in that: the solar energy reverse control system comprises a solar photovoltaic and photothermal module (1), a double-cooling condenser (10), a water pump (14), a heat storage water tank (15), a fan (16), a special Lambert wall (23), a solar storage battery (24) and a solar reverse control all-in-one machine (25);
the solar photovoltaic thermal module (1) is used for absorbing and converting solar energy and providing electric energy and heat energy for a system, the solar photovoltaic thermal module (1) comprises a glass plate (2) close to an illumination side, a heat absorption plate (5) close to a user side, and a heat insulation air layer (3) between the glass plate (2) and the heat absorption plate (5), a solar cell array (4) is fixed on a light absorption surface of the heat absorption plate (5), and a microchannel evaporator core (6) is fixed on a backlight surface of the heat absorption plate (5); the upper end of the micro-channel evaporator plate core (6) is communicated with the lower end of a refrigerant steam pipe (8), the upper end of the refrigerant steam pipe (8) is communicated with the inlet of a refrigerant heat exchange pipe (11), the outlet of the refrigerant heat exchange pipe (11) is communicated with a refrigerant liquid return pipe (9),
the double-cold condenser (10) is arranged above the solar photovoltaic photothermal module (1), a refrigerant heat exchange tube (11) and a water-cooling heat exchange tube (12) are arranged inside the double-cold condenser (10), the refrigerant heat exchange tube (11) and the water-cooling heat exchange tube (12) are arranged adjacently, an air cooling channel (13) is formed at the interval between the adjacent microchannel refrigerant heat exchange tubes (11), the double-cold condenser (10) is positioned at an air outlet (18) on a super-lambert wall, and the water-cooling heat exchange tube (12) is connected with a heat storage water tank (15) through a water pump (14) to form a cooling water channel; the special Lambert wall (23) is respectively provided with a special Lambert wall wind outlet (18), a special Lambert wall wind inlet (17) and a special Lambert wall wind outlet (19) from top to bottom, the special Lambert wall wind outlet (18), the special Lambert wall wind inlet (17) and the special Lambert wall wind outlet (19) are positioned indoors, a fan (16) is arranged at the special Lambert wall wind inlet (17),
the solar storage battery (24) is connected with the solar photovoltaic and photothermal module (1) through an electric wire and used for storing electric energy, and the solar inversion control integrated machine (25) is connected with the solar storage battery (24) and converts direct current in the solar storage battery into alternating current to be supplied to a user end (26).
2. The Talbot wall system using a dual cold condenser heat pipe photovoltaic thermal module of claim 1, wherein: the specially-lambertian wall upper wind outlet (18) is provided with a specially-lambertian wall upper wind outlet baffle (21), the specially-lambertian wall middle wind inlet (17) is provided with a specially-lambertian wall middle wind inlet baffle (20), and the specially-lambertian wall lower wind outlet (19) is provided with a specially-lambertian wall lower wind outlet baffle (22).
3. The Talbot wall system using a dual cold condenser heat pipe photovoltaic thermal module of claim 1, wherein: the center of the air inlet (17) in the specially-lambert wall and the position of the air outlet (18) on the specially-lambert wall are both higher than the solar photovoltaic thermal module (1).
4. The Talbot wall system using a dual cold condenser heat pipe photovoltaic thermal module of claim 1, wherein: the solar cell array (4) and the micro-channel evaporator plate core (6) are respectively fixed on the light absorption surface and the backlight surface of the heat absorption plate (5) in a hot melt adhesive laminating mode.
5. The Talbot wall system using a dual cold condenser heat pipe photovoltaic thermal module of claim 1, wherein: the heat storage water tank (15) is provided with a water outlet connected to the user end (26).
CN202020453771.7U 2020-03-31 2020-03-31 Special Lambert wall system adopting double-cold-condenser heat pipe type photovoltaic photo-thermal module Active CN212034083U (en)

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Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN111327270A (en) * 2020-03-31 2020-06-23 西南交通大学 Double-cold-condenser heat pipe type photovoltaic photo-thermal module-super-Lambert wall system and method

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN111327270A (en) * 2020-03-31 2020-06-23 西南交通大学 Double-cold-condenser heat pipe type photovoltaic photo-thermal module-super-Lambert wall system and method

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