CN216203953U - Heat pipe cold radiation system for sunlight room and sunlight room - Google Patents
Heat pipe cold radiation system for sunlight room and sunlight room Download PDFInfo
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- CN216203953U CN216203953U CN202122610186.0U CN202122610186U CN216203953U CN 216203953 U CN216203953 U CN 216203953U CN 202122610186 U CN202122610186 U CN 202122610186U CN 216203953 U CN216203953 U CN 216203953U
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- 230000005855 radiation Effects 0.000 title claims abstract description 45
- 238000001704 evaporation Methods 0.000 claims abstract description 70
- 230000008020 evaporation Effects 0.000 claims abstract description 63
- 239000007788 liquid Substances 0.000 claims abstract description 48
- 230000005494 condensation Effects 0.000 claims abstract description 19
- 238000009833 condensation Methods 0.000 claims abstract description 19
- 230000005540 biological transmission Effects 0.000 claims abstract description 18
- 238000005086 pumping Methods 0.000 claims description 16
- 238000007664 blowing Methods 0.000 claims description 12
- 230000000694 effects Effects 0.000 claims description 9
- 238000004891 communication Methods 0.000 claims description 6
- 238000005265 energy consumption Methods 0.000 abstract description 16
- 238000005057 refrigeration Methods 0.000 abstract description 16
- 230000000903 blocking effect Effects 0.000 abstract 1
- 230000009286 beneficial effect Effects 0.000 description 20
- 238000001816 cooling Methods 0.000 description 11
- 230000006872 improvement Effects 0.000 description 8
- 230000009467 reduction Effects 0.000 description 5
- 238000009423 ventilation Methods 0.000 description 5
- 238000004378 air conditioning Methods 0.000 description 4
- 230000005484 gravity Effects 0.000 description 4
- 230000001276 controlling effect Effects 0.000 description 3
- 238000003287 bathing Methods 0.000 description 2
- 238000004134 energy conservation Methods 0.000 description 2
- 238000010248 power generation Methods 0.000 description 2
- 238000007639 printing Methods 0.000 description 2
- OKTJSMMVPCPJKN-UHFFFAOYSA-N Carbon Chemical compound [C] OKTJSMMVPCPJKN-UHFFFAOYSA-N 0.000 description 1
- 230000009471 action Effects 0.000 description 1
- 229910052799 carbon Inorganic materials 0.000 description 1
- 238000007599 discharging Methods 0.000 description 1
- 238000000034 method Methods 0.000 description 1
- 238000012986 modification Methods 0.000 description 1
- 230000004048 modification Effects 0.000 description 1
- 230000001105 regulatory effect Effects 0.000 description 1
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Abstract
The utility model discloses a heat pipe cold radiation system for a sunlight room and the sunlight room, wherein the heat pipe cold radiation system comprises: the device comprises an evaporation unit, a condensation unit and a working medium transmission assembly; the evaporation unit is arranged in the top area of the internal space of the sunlight room; the evaporation unit is provided with a liquid inlet and a gas outlet; the condensing unit is arranged in a backlight area outside the sunlight room; the condensing unit is provided with a liquid outlet and a gas inlet; the working medium transmission assembly comprises a connecting pipe and a pipeline control element, and the connecting pipe is used for respectively communicating the liquid inlet and the liquid outlet and the gas inlet; the pipeline control element is arranged on the connecting pipe. The utility model can realize the circulation refrigeration of the working medium between the evaporation unit and the condensation unit under the condition of no power driving by utilizing the internal and external temperature difference, the energy consumption is nearly zero, and no noise exists; secondly, the evaporation unit is arranged in the area of the sunlight room close to the roof, so that the heat exchange efficiency is improved; and thirdly, the condensing unit is arranged in a backlight area of the sunlight room to avoid blocking sunlight and form shadows.
Description
Technical Field
The utility model relates to the technical field of heat pipe heat exchange, in particular to a heat pipe cold radiation system for a sunlight room and the sunlight room.
Background
In building energy consumption, the air conditioner energy consumption ratio can reach 30-40%, and with the promotion of low carbon, it becomes increasingly important to further reduce the air conditioner energy consumption. A conventional air conditioner generally includes a cooling system, which provides a cooling source at a temperature lower than an ambient temperature by a cooling means, and exchanges heat between indoor heat and the cooling source, thereby transferring the heat to an external environment. Since refrigeration requires energy consumption, there is a limit to system energy efficiency, typical household air conditioning systems typically have an energy efficiency ratio of around 3.2, and good systems may be slightly higher, but also have their limits.
The operation of the air conditioning system is related to the indoor temperature setting, for example, at 26 ℃, and the air conditioner enters the cooling operation only if the temperature is higher than the indoor temperature, but the operation is not directly related to the outdoor ambient temperature. In actual use, even in summer, the indoor temperature is higher than that of the outdoor temperature for many times. If the outside is just raining too much, the user can feel cool obviously if the user walks out of the room. Or at night, the indoor temperature is often higher than outdoors. In this time, the compressor is still started during the operation of the air conditioner, and large energy consumption exists. If the method of low energy consumption can be adopted, the heat is conducted to the natural environment by utilizing the temperature difference between the indoor and the outdoor, and the energy consumption of indoor temperature reduction can be obviously reduced. A sunlight room is a typical leisure place with outdoor temperature usually lower than indoor temperature.
In particular, in many households, when the outdoor environment temperature is higher than 26 ℃, the temperature in the sunlight room is often as high as 40 ℃. And generally, the family does not set an air conditioner in the sunshine room, and is not willing to keep the ventilation of the sunshine room all the time, so that the actual use value of the sunshine room is obviously reduced due to high temperature. At present, heat in a sunlight room in a higher temperature area is usually kept in a building all the time, and no economical means is available for discharging the heat to the outside.
Therefore, there is a need in the art for a temperature regulating device that is simple in configuration, does not affect the light transmission type of the solar house, and can efficiently and energy-efficiently discharge heat in a higher area in the solar house to achieve the purpose of maintaining a predetermined temperature.
SUMMERY OF THE UTILITY MODEL
In order to solve the technical problems, the utility model provides a heat pipe cold radiation system which is applicable to a sunlight room, has simple configuration, does not influence the light transmission type of the sunlight room, can efficiently and energy-saving discharge the heat in the sunlight room and realizes the purpose of keeping the temperature at the preset temperature.
In order to achieve the purpose, the technical scheme of the utility model is as follows:
on one hand, the utility model discloses a heat pipe cold radiation system for a sunlight room, which reduces the internal temperature of the sunlight room by utilizing the temperature difference that the outdoor temperature is lower than the indoor temperature, the top of the sunlight room is provided with an edge beam and a supporting framework beam, and the heat pipe cold radiation system comprises: the device comprises an evaporation unit, a condensation unit and a working medium transmission assembly; the evaporation unit is arranged in the top area of the internal space of the sunlight room; the evaporation unit is provided with a liquid inlet and a gas outlet; the condensing unit is arranged in a backlight area outside the sunlight room; the condensing unit is provided with a liquid outlet and a gas inlet; the working medium transmission assembly comprises a connecting pipe and a pipeline control element, and the connecting pipe is used for respectively communicating the liquid inlet and the liquid outlet and the gas inlet; the pipeline control element is arranged on the connecting pipe and used for controlling the working medium circulation between the evaporation unit and the condensation unit.
The beneficial effect of adopting above-mentioned technical scheme is: the utility model fully considers the problems that the temperature in the sunshine room is far higher than the outdoor temperature and the practical value of the sunshine room is not high due to the fact that the air conditioner and the ventilation will of a house owner are not strong in the prior art, the utility model can realize the circulating refrigeration of working media between the evaporation unit and the condensation unit under the condition of unpowered driving by respectively arranging the evaporation unit and the condensation unit inside and outside the sunshine room and communicating through the working medium transmission assembly, the energy consumption is nearly zero, no noise exists, and the energy conservation and noise reduction are really realized under the condition of realizing the indoor refrigeration; secondly, according to the principle that the vertical distribution of air changes along with the temperature, the density of hot air is low and can rise; the cold air has high density and will sink. Therefore, the sunlight room has gradient distribution of temperature from low to high, the temperature of the air is higher when the sunlight room is higher than the space, therefore, the evaporation unit is arranged in the area of the sunlight room close to the roof, when the working medium and the air with the highest temperature in the external sunlight room perform radiation and convection heat exchange, the temperature difference of heat exchange is expanded as much as possible, the heat exchange efficiency is improved, the hot air is cooled and sinks to the personnel activity area at the lower part of the sunlight room, the air temperature in the whole sunlight room can be reduced through multiple cycles, and the human body is in a position where the body feels better compared with the traditional air conditioner which can only reduce the temperature of the lower layer space; and thirdly, the condensing unit is arranged in a backlight area of the sunlight room, so that the condensing unit outside the sunlight room is prevented from shielding sunlight, and meanwhile, the condensing unit is prevented from forming shadows in the sunlight room to influence the appearance of the sunlight room and the sun bathing experience.
As a further improvement of the technical scheme of the utility model, the evaporation units are flat and are distributed along the boundary beam at the joint of the roof of the sunlight room and the back wall back to the sunlight.
The beneficial effect of adopting above-mentioned technical scheme is: the characteristic that the height of the internal space of the sunlight room is generally not high is fully considered, and the evaporation unit is flat, so that the purpose of occupying the space in the height direction of the sunlight room as little as possible can be realized; in addition, the evaporation units are specifically arranged along the edge of the junction of the roof of the sunlight room and the back wall back to the sunlight, so that the shielding of the top light can be reduced as much as possible.
As a further improvement of the technical scheme of the utility model, the evaporation unit is provided with more than one air supply outlet, the air supply outlet is arranged on the side surface of the evaporation unit, the heat pipe cold radiation system further comprises an air supply pipeline, the air supply pipeline is communicated with the air supply outlet and is arranged below the support framework beam along the trend of the support framework beam, and the bottom of the air supply pipeline is provided with a plurality of air outlets.
The beneficial effect of adopting above-mentioned technical scheme is: the setting of supply-air duct is convenient for carry cold wind to the more distant department of distance evaporation unit, realizes that a plurality of air outlets send out cold wind simultaneously in the sunshine room for the regional air temperature of eminence can descend to predetermined temperature fast, has promoted indoor temperature's cooling efficiency and temperature distribution homogeneity. In addition, if the air supply outlet is arranged below the evaporation unit, or the air supply outlet supplies air directly downwards, so that the horizontal temperature distribution in the sunlight room is uneven; or turn a direction again and carry other positions, nevertheless must lead to the fact the bigger occupation of space to sunshine room direction of height like this, consequently, the supply-air outlet is established in the side of evaporation unit, and the later stage of being convenient for is carried to different regions through the blast pipe, and can effectively reduce the occupation to the inside direction of height space in sunshine room.
As a further improvement of the technical scheme of the utility model, a power air supply element is arranged at the air supply opening.
The beneficial effect of adopting above-mentioned technical scheme is: the setting of power air supply component can accelerate the outflow of cold wind, and forms the low-pressure region in the inside of evaporating unit to hot-blast rate that gets into evaporating unit has also been accelerated, thereby has promoted holistic heat exchange efficiency, has also further accelerated the cooling of air temperature in the sunshine room.
As a further improvement of the technical scheme of the utility model, the evaporation unit comprises an evaporation heat exchange tube, and the evaporation heat exchange tube is matched with a supporting framework beam on the roof of the sunlight room and does not occupy a light transmission area on the top of the sunlight room.
The beneficial effect of adopting above-mentioned technical scheme is: the evaporation heat exchange tube that sets up the evaporation unit is laid with the support skeleton roof beam cooperation of sunshine house roof, can avoid appearing the evaporation heat exchange tube and occupy the top printing opacity area in sunshine room alone, prevents effectively that the evaporation heat exchange tube from sheltering from light and forming the projection below, reduces the influence to the outside impression of sunshine room and inside experience.
As a further improvement of the technical scheme of the utility model, the height of the liquid inlet is lower than that of the liquid outlet, and the height of the air outlet is lower than that of the air inlet.
The beneficial effect of adopting above-mentioned technical scheme is: through setting up inlet and liquid outlet, air inlet and gas outlet are in the position relation of direction of height, utilize the liquid working medium after the action of gravity drive condensation to flow back to the evaporation unit from the condensation unit downwards, and the gaseous working medium after the evaporation flows back to the condensation unit upwards, forms refrigeration cycle to carry the heat outside sunshine room from sunshine room in, realize the purpose of cooling, the energy consumption is extremely low and noiseless.
As a further improvement of the technical scheme of the utility model, the working medium transmission assembly further comprises a liquid storage device and a pumping element, the liquid storage device is arranged on a connecting pipe between the liquid inlet and the liquid outlet, and the pumping element is arranged on the connecting pipe between the liquid storage device and the liquid inlet.
The beneficial effect of adopting above-mentioned technical scheme is: the liquid storage device and the pumping element are arranged, the limitation of the upper position and the lower position of the condensing unit and the upper position and the lower position of the evaporating unit are reduced, the applicability of the heat pipe cold radiation system to sunlight rooms with different structures and different external spaces is enhanced, although compared with gravity driving, the power driving working medium of the pumping element has higher energy consumption of circulating refrigeration, and compared with traditional air-conditioning refrigeration, the energy consumption refrigeration ratio still has outstanding advantages. In addition, the working medium transmission assembly can be also provided with a solar power generation element for supplying power to the heat pipe cold radiation system, so that the energy-saving effect is better.
As a further improvement of the technical scheme of the utility model, the pipeline control element comprises an electric switch valve, and the heat pipe cold radiation system further comprises a control unit which is in communication connection with the pumping element, the power air supply element and the electric switch valve in a wired or wireless manner.
The beneficial effect of adopting above-mentioned technical scheme is: the electric switch valve and the control unit can automatically control the starting and stopping of the pumping element and the power air supply element according to the real-time temperature in the sunlight room, so that the temperature in the sunlight room is controlled within a preset temperature range.
As a further improvement of the technical scheme of the utility model, the heat pipe cold radiation system further comprises a control terminal, the control terminal is in communication connection with the control unit through wire or wireless, the control terminal is positioned in the height range of the movement of the adult in the sunlight room, and a temperature sensor is arranged in the control terminal and used for measuring the air temperature in the movement range of the human body in the sunlight room.
The beneficial effect of adopting above-mentioned technical scheme is: temperature sensor is introduced into the control terminal, and the position of preferred control terminal is in adult's activity height scope, and the personnel of being convenient for on the one hand control the operation, and more importantly, the operating condition of controlling heat pipe cold radiation system is carried out to the air temperature of measuring human home range through temperature sensor to guarantee to use human body feeling temperature as the control benchmark, heat pipe cold radiation system's operation is more energy-conserving, and the experience of people in the sunshine room is more comfortable.
On the other hand, the utility model further discloses a sunlight room, which comprises the heat pipe cold radiation system for the sunlight room in any one of the technical schemes.
The beneficial effect of adopting above-mentioned technical scheme is: contain the sunshine room of any one heat pipe cold radiation system among the above-mentioned technical scheme, all can effectively solve among the prior art sunshine room temperature and far be higher than outdoor temperature, and the will that utilizes air conditioner and ventilation to cool down generally not lead to the problem that sunshine room practical value is not high by force because of the owner, realize satisfying under the prerequisite of sunshine room internal environment refrigeration demand, energy saving and consumption reduction falls and makes an uproar, make people can be happy to be put to carry out work or amusement in the sunshine room, fully enjoy various enjoyment that the sunshine room brought.
Drawings
In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the drawings used in the description of the embodiments or the prior art will be briefly described below, it is obvious that the drawings in the following description are only some embodiments of the present invention, and it is obvious for those skilled in the art that other drawings can be obtained based on these drawings without creative efforts.
FIG. 1 is a schematic view of a heat pipe cold radiation system for a sunlight room of the present invention;
FIG. 2 is a schematic view of another heat pipe cold radiation system for a sunlight room of the present invention;
FIG. 3 is an enlarged view of a portion of FIG. 2 at I;
the corresponding part names indicated by the numbers in the figures are as follows:
a sunlight room 01; an edge beam 011; a support skeleton beam 012; a roof 013; a rear wall 014; an evaporation unit 1; a liquid inlet 11; an air outlet 12; an air supply outlet 13; a powered air delivery element 14; an evaporating heat exchange tube 15; a condensing unit 2; a liquid outlet 21; an air inlet 22; a working medium transmission component 3; a connecting pipe 31; a line control element 32; an electric on-off valve 321; a reservoir 33; a pumping element 34; an air supply duct 4; an air outlet 41; a control unit 5; a control terminal 6; a temperature sensor 61.
Detailed Description
In order to facilitate an understanding of the utility model, the utility model will be described more fully and in detail below with reference to the accompanying drawings and preferred embodiments, but the scope of the utility model is not limited to the specific embodiments below. It should be noted that the embodiments and features of the embodiments may be combined with each other without conflict.
In order to realize the purpose of the utility model, the technical scheme provided by the utility model is as follows:
in some embodiments of the present invention, as shown in fig. 1 to 3, a heat pipe cold radiation system for a sunlight room is disclosed, which reduces an internal temperature of the sunlight room 01 by using a temperature difference that an outdoor temperature is lower than an indoor temperature, a boundary beam 011 and a supporting frame beam 012 are disposed on a top of the sunlight room 01, the heat pipe cold radiation system includes: the device comprises an evaporation unit 1, a condensation unit 2 and a working medium transmission component 3; the evaporation unit 1 is arranged in the area, close to the roof 013, inside the sunlight room 01; the evaporation unit 1 is provided with a liquid inlet 11 and a gas outlet 12; the condensing unit 2 is arranged in a backlight area outside the sunlight room 01; the condensing unit 2 is provided with a liquid outlet 21 and a gas inlet 22; the working medium transmission assembly 3 comprises a connecting pipe 31 and a pipeline control element 32, wherein the connecting pipe 31 is used for respectively communicating the liquid inlet 11 with the liquid outlet 21 and the gas outlet 12 with the gas inlet 22; the pipeline control element 32 is arranged on the connecting pipe 31 and used for controlling the working medium circulation between the evaporation unit 1 and the condensation unit 2.
The beneficial effect of adopting above-mentioned technical scheme is: the utility model fully considers the problems that the temperature in the sunshine room 01 is far higher than the outdoor temperature in the prior art, and the practical value of the sunshine room 01 is not high due to the fact that the air conditioner and the ventilation will of a house owner are not strong generally, through arranging the evaporation unit 1 and the condensation unit 2 in the sunshine room 01 and communicating the evaporation unit 1 and the condensation unit 2 through the working medium transmission assembly 3, the circulating refrigeration of working media between the evaporation unit 1 and the condensation unit 2 can be realized under the condition of no power drive, the energy consumption is nearly zero, no noise exists, and the energy conservation and noise reduction are really realized under the condition of realizing the indoor refrigeration; secondly, according to the principle that the vertical distribution of air changes along with the temperature, the density of hot air is low and can rise; the cold air has high density and will sink. Therefore, the sunlight room 01 has gradient distribution of temperature from low to high, and the temperature of air is higher when the sunlight room is higher than the space, so that the evaporation unit 1 is arranged in the area of the sunlight room 01 close to a roof 013, when the working medium and the air with the highest temperature in the external sunlight room 01 perform radiation and convection heat exchange, the temperature difference of heat exchange is expanded as much as possible, the heat exchange efficiency is improved, the hot air is cooled and then sinks to the personnel activity area at the lower part of the sunlight room 01, the air temperature in the whole sunlight room 01 can be reduced through multiple cycles, and the human body is in the position where the body feeling is better compared with the traditional air conditioner which can only reduce the temperature of the lower-layer space; thirdly, the condensing unit 2 is arranged in the backlight area of the sunlight room 01, so that the condensing unit 2 outside the sunlight room 01 is prevented from shielding sunlight, and meanwhile, the condensing unit 2 is prevented from forming shadows in the sunlight room 01 to influence the external impression of the sunlight room 01 and the sun bathing experience.
In other embodiments of the present invention, as shown in fig. 2, the evaporation unit 1 is flat and runs along the boundary beam 011 at the junction of the roof 013 of the sunlight room 01 and the back wall 014 facing away from the sunlight.
The beneficial effect of adopting above-mentioned technical scheme is: the characteristic that the height of the internal space of the sunshine room 01 is generally not high is fully considered, and the evaporation unit 1 is flat, so that the purpose of occupying the space of the sunshine room 01 in the height direction as little as possible can be realized; in addition, the evaporation units 1 are specifically arranged along the edge of the junction between the roof 013 of the sunlight room 01 and the back wall 014 facing away from the sunlight, so that the shielding of the top light can be reduced as much as possible.
In other embodiments of the present invention, as shown in fig. 2, the evaporation unit 1 is provided with more than one air blowing opening 13, the air blowing opening 13 is provided at a side surface of the evaporation unit 1, the heat pipe cold radiation system further includes an air blowing duct 4, the air blowing duct 4 is communicated with the air blowing opening 13 and is arranged below the supporting frame beam 012 along the moving direction of the supporting frame beam 012, and the bottom of the air blowing duct 4 is provided with a plurality of air outlets 41.
The beneficial effect of adopting above-mentioned technical scheme is: the setting of supply air duct 4 is convenient for carry cold wind to the more distant department apart from evaporation unit 1, realizes that a plurality of air outlets 41 send out cold wind simultaneously in the sunshine room 01 for the regional air temperature of eminence can descend to predetermined temperature fast, has promoted indoor temperature's cooling efficiency and temperature distribution homogeneity.
In other embodiments of the present invention, as shown in fig. 2, a power blowing element 14 is provided at the blowing port 13.
The beneficial effect of adopting above-mentioned technical scheme is: the setting of power air supply component 14 can accelerate the outflow of cold wind, and forms the low-pressure zone in the inside of evaporating unit 1 to hot-blast rate that gets into evaporating unit 1 has also been accelerated, thereby has promoted holistic heat exchange efficiency, has also further accelerated the cooling of air temperature in the sunshine room 01.
In other embodiments of the present invention, as shown in fig. 3, the evaporation unit 1 comprises an evaporation heat exchange tube 15, and the evaporation heat exchange tube 15 is disposed in cooperation with the supporting frame beams 012 of the roof 013 of the solar house 01, not only exclusively using the top light-transmitting area of the solar house 01.
The beneficial effect of adopting above-mentioned technical scheme is: the evaporation heat exchange tube 15 that sets up evaporation unit 1 and the support skeleton roof 012 cooperation of 01 roof 013 of sunshine room are laid, can avoid appearing evaporation heat exchange tube 15 and occupy the top printing opacity region of sunshine room 01 alone, prevent effectively that evaporation heat exchange tube 15 from sheltering from light and form the projection below, reduce the influence to 01 outside impressions of sunshine room and inside experience.
In other embodiments of the present invention, as shown in FIG. 1, the liquid inlet 11 is at a lower height than the liquid outlet 21, and the gas outlet 12 is at a lower height than the gas inlet 22.
The beneficial effect of adopting above-mentioned technical scheme is: through setting up inlet 11 and liquid outlet 21, air inlet 22 and the position relation of gas outlet 12 in the direction of height, utilize the liquid working medium of gravity drive after the condensation to flow back to evaporation unit 1 from condensation unit 2 downwards, the gaseous working medium after the evaporation flows back to condensation unit 2 upwards, forms refrigeration cycle to carry the heat outside sunshine room 01 from sunshine room 01 in to the purpose of realizing the cooling, the energy consumption is extremely low and noiseless.
In other embodiments of the present invention, as shown in fig. 2, working medium transfer assembly 3 further includes a liquid reservoir 33 and a pumping element 34, wherein liquid reservoir 33 is disposed on connecting pipe 31 between liquid inlet 11 and liquid outlet 21, and pumping element 34 is disposed on connecting pipe 31 between liquid reservoir 33 and liquid inlet 11.
The beneficial effect of adopting above-mentioned technical scheme is: the arrangement of the liquid storage device 33 and the pumping element 34 reduces the limitation of the upper and lower positions of the condensing unit 2 and the evaporating unit 1, enhances the applicability of the heat pipe cold radiation system to the sunlight room 01 with different structures and different external spaces, and although the power driving working medium of the pumping element 34 has higher energy consumption for circulating refrigeration compared with the gravity driving, the energy consumption refrigeration ratio still has outstanding advantages compared with the traditional air conditioning refrigeration. In addition, the working medium transmission assembly 3 can be also provided with a solar power generation element for supplying power to the heat pipe cold radiation system, so that the energy-saving effect is better.
In other embodiments of the present invention, as shown in fig. 3, the pipeline control unit 32 includes an electric switch valve 321, and the heat pipe cold radiation system further includes a control unit 5, which is connected to the pumping unit 34, the power blowing unit 14 and the electric switch valve 321 in a communication manner through wires or wirelessly.
The beneficial effect of adopting above-mentioned technical scheme is: the electric switch valve 321 and the control unit 5 can automatically control the start and stop of the pumping element 34 and the power air supply element 14 according to the real-time temperature in the sunlight room 01, so as to control the temperature in the sunlight room 01 within a preset temperature range.
In other embodiments of the present invention, as shown in fig. 2, the heat pipe cold radiation system further includes a control terminal 6, the control terminal 6 is in communication connection with the control unit 5 through wire or wireless, the control terminal 6 is located in a height range of the sunlight room 01 in which an adult moves, and a temperature sensor 61 is disposed in the control terminal 6, and the temperature sensor 61 is configured to measure an air temperature in a body movement range in the sunlight room 01.
The beneficial effect of adopting above-mentioned technical scheme is: temperature sensor 61 is introduced into control terminal 6, and preferred control terminal 6's position is in adult's activity height scope, and the personnel of being convenient for on the one hand control the operation, and more importantly, measure the air temperature in the human activity scope through temperature sensor 61 and control heat pipe cold radiation system's running state to guarantee to use human body to feel the temperature as the control benchmark, heat pipe cold radiation system's operation is more energy-conserving, and the experience of people in sunshine room 01 is more comfortable.
In other embodiments of the present invention, a sunlight room is further disclosed, which includes any one of the above-mentioned heat pipe cold radiation systems for the sunlight room 01.
The beneficial effect of adopting above-mentioned technical scheme is: contain the sunshine room of any one heat pipe cold radiation system among the above-mentioned technical scheme, all can effectively solve among the prior art sunshine room 01 in the temperature far above outdoor temperature, and the will that utilizes air conditioner and ventilation to cool down generally not lead to the not high problem of sunshine room 01 practical value by force because of the homeowner, realize satisfying under the prerequisite of the 01 internal environment refrigeration demand in sunshine room, energy saving and consumption reduction falls and makes an uproar, make people can be happy to be put in the sunshine room 01 and carry out work or amusement, fully enjoy the various enjoyment that sunshine room 01 brought.
The above embodiments are merely illustrative of the technical concept and features of the present invention, and the purpose thereof is to enable those skilled in the art to understand the content of the present invention and implement the present invention, and not to limit the scope of the present invention, and all equivalent changes or modifications made according to the spirit of the present invention should be covered in the scope of the present invention.
Claims (10)
1. The utility model provides a heat pipe cold radiation system for sunshine room, its characterized in that utilizes the difference in temperature that outdoor temperature is less than indoor temperature, reduces the inside temperature in sunshine room, and the top in sunshine room is equipped with boundary beam and supports skeleton roof beam, and heat pipe cold radiation system includes: the device comprises an evaporation unit, a condensation unit and a working medium transmission assembly;
the evaporation unit is arranged in the top area of the internal space of the sunlight room; the evaporation unit is provided with a liquid inlet and a gas outlet;
the condensing unit is arranged in a backlight area outside the sunlight room; the condensing unit is provided with a liquid outlet and a gas inlet;
the working medium transmission assembly comprises a connecting pipe and a pipeline control element, and the connecting pipe is used for respectively communicating the liquid inlet and the liquid outlet and the gas inlet; the pipeline control element is arranged on the connecting pipe and used for controlling the working medium circulation between the evaporation unit and the condensation unit.
2. A heat pipe cold radiation system for a solar house according to claim 1, wherein said evaporation unit is flat and arranged along the edge beam at the junction of the roof of the solar house and the back wall facing away from the sun.
3. A heat pipe cold radiation system for a sunlight room as claimed in claim 2, wherein said evaporation unit is provided with more than one air supply outlet, said air supply outlet is provided at the side of said evaporation unit, said heat pipe cold radiation system further comprises an air supply duct, said air supply duct is communicated with said air supply outlet and is arranged below said support frame beam along the direction of said support frame beam, and the bottom of said air supply duct is provided with a plurality of air outlets.
4. A heat pipe cold radiation system for a sunlight room as claimed in claim 3, wherein said air blowing opening is provided with a power air blowing element.
5. A heat pipe cold radiation system for a sunlight room as claimed in claim 1, wherein said evaporation unit comprises an evaporation heat exchange pipe, said evaporation heat exchange pipe is arranged in cooperation with a supporting skeleton beam of a sunlight room roof, not only exclusively using a top light transmission area of the sunlight room.
6. A heat pipe cold radiation system for a sunlight room as claimed in claim 1, wherein said liquid inlet is lower in height than said liquid outlet, and said air outlet is lower in height than said air inlet.
7. The heat pipe cold radiation system for a sunlight room of claim 4, wherein said working medium transfer assembly further comprises a liquid reservoir and a pumping element, said liquid reservoir is provided on a connecting pipe between said liquid inlet and said liquid outlet, said pumping element is provided on a connecting pipe between said liquid reservoir and said liquid inlet.
8. A heat pipe cold radiation system for a sunlight room as claimed in claim 7, wherein said pipeline control unit comprises an electric switch valve, said heat pipe cold radiation system further comprises a control unit, said control unit is connected with said pumping unit, said power blowing unit and said electric switch valve in communication by wire or wirelessly.
9. A heat pipe cold radiation system for a sunlight room as claimed in claim 8, further comprising a control terminal, wherein said control terminal is connected with said control unit by wire or wireless communication, said control terminal is located in the height range of the activity of the adult in the sunlight room, and said control terminal is provided with a temperature sensor inside, said temperature sensor is used to measure the air temperature in the activity range of the human body in the sunlight room.
10. A solar house comprising a heat pipe cold radiation system for a solar house according to any one of claims 1-9.
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| Application Number | Priority Date | Filing Date | Title |
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| CN202122610186.0U CN216203953U (en) | 2021-10-28 | 2021-10-28 | Heat pipe cold radiation system for sunlight room and sunlight room |
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| CN202122610186.0U CN216203953U (en) | 2021-10-28 | 2021-10-28 | Heat pipe cold radiation system for sunlight room and sunlight room |
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Cited By (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN116241998A (en) * | 2022-12-12 | 2023-06-09 | 青岛海尔空调器有限总公司 | Air conditioner and its control method |
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| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN116241998A (en) * | 2022-12-12 | 2023-06-09 | 青岛海尔空调器有限总公司 | Air conditioner and its control method |
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