Portable new energy heating device
Through the design of mobile wheels, shrinkable solar photovoltaic panels and telescopic heat transfer components, the flexibility and heating uniformity of new energy heating devices are solved, convenient mobile and efficient heating are achieved, and cost and pollution are reduced.
Patent Information
- Application Number
- CN202421617133.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-09
- Publication Date
- 2025-07-18
- Estimated Expiration
- 2034-07-09
AI Technical Summary
The existing new energy heating devices have poor flexibility, difficulty in moving and storage, and uneven heating, which affects the heating efficiency and low solar energy utilization rate.
It adopts a mobile wheel and push-pull rod design to facilitate device movement; shrinkable solar photovoltaic panels and telescopic heat transfer components adjust the distribution of heat transfer plates according to room space; combined with solar heat collectors and electric heaters, uniform heating is achieved.
It improves the flexibility and heating efficiency of the device, reduces heating costs, reduces environmental pollution, improves resource utilization, and achieves uniform heating and rapid heating.
Smart Images

Figure CN223121501U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the technical field of new energy heating equipment, and specifically relates to a portable new energy heating device. Background Art
[0002] New energy, also known as unconventional energy, refers to various forms of energy other than traditional energy. It refers to energy that has just begun to be developed or is being actively studied and is yet to be promoted, such as solar energy, geothermal energy, wind energy, ocean energy, biomass energy and nuclear fusion energy. The development of the new energy industry is not only an effective means of supplementing the entire energy supply system, but also an important measure for environmental governance and ecological protection. It is the ultimate energy choice to meet the needs of sustainable development of human society. New energy heating is often used in home heating.
[0003] The existing new energy heating devices have poor flexibility and are not convenient to move and store. In order to overcome this technical defect, in the prior art, the Chinese utility model patent announcement number is CN216557347U, and the utility model name is a new type of portable mobile solar thermal storage hot air heater. The key points of its technical solution are: it includes a protective shell, a hollow groove is opened on the top of the protective shell, and slide rails are opened inside the hollow groove and on both sides of the protective shell, and a card slot is opened above the slide rail, and a slider is movably connected inside the slide rail, and a solar panel is fixedly installed on the inner side of the two sliders, and an inverter is connected to the bottom of the solar panel, and the position of the solar panel can be adjusted by the slide rail and the slider, so that the solar panel can be placed at the bottom of the hollow groove when not in use, and the top cover can close the hollow groove, so that the solar panel can be closed and stored when not in use, thereby increasing the service life of the solar panel.
[0004] Although the above-mentioned prior art can achieve the technical effect of convenient movement and storage, it cannot achieve uniform heat dissipation in the room, affecting the indoor heating efficiency. In addition, the prior art is powered by only one photovoltaic panel, which greatly reduces the utilization rate of solar energy and affects the power supply effect. Utility Model Content
[0005] The purpose of the utility model is to overcome the deficiencies in the prior art and to provide a convenient new energy heating device which can be easily moved and stored and can achieve uniform heat dissipation in the room.
[0006] In order to achieve the above-mentioned purpose of the utility model, the specific technical scheme is as follows:
[0007] A portable new energy heating device, comprising a box body. At the four corners of the bottom of the box body, moving wheels are provided. Inside the box body, a water storage tank, a circulating water pump and a storage battery are respectively arranged. At the top of the box body, there is a support platform. On the support platform, there is a support plate. On the upper surface of the support plate, a first solar photovoltaic panel and a solar collector are respectively arranged. On one side of the box body, a retractable and deployable second solar photovoltaic panel is provided. On the other side of the box body, a telescopic heat transfer component is provided. The water storage tank is connected to a third water pipe through the circulating water pump. The third water pipe is used to supply water to the telescopic heat transfer component. The outlet end of the telescopic heat transfer component is connected to the solar collector through a first water pipe. The outlet end of the solar collector is connected to the water storage tank through a second water pipe. And an electric heater and a temperature sensor are respectively arranged in the water storage tank. The electric heater is placed inside the water tank. A control panel is arranged on the box body.
[0008] In a specific embodiment of the present invention, push-pull rods are arranged at both ends of the box body.
[0009] In a specific embodiment of the present invention, one side of the second solar photovoltaic panel is rotationally connected to the top side wall of the box body through a rotating shaft. The middle part of the bottom of the second solar photovoltaic panel is rotationally connected to an electric push rod through a rotating shaft. The bottom of the electric push rod is rotationally connected to the side wall of the box body through a rotating shaft.
[0010] In a preferred embodiment, the telescopic heat transfer component includes two symmetrically distributed multi-section telescopic rods. The ends of the two multi-section telescopic rods far away from the box body are connected through a fixed rod. One end of the multi-section telescopic rod is fixedly connected to the side wall of the box body.
[0011] In a more preferred embodiment, a heat transfer plate is arranged on each joint of the multi-section telescopic rod.
[0012] In another specific embodiment of the present invention, the outlet of the third water pipe is connected to the heat transfer plate close to one side of the box body. The outlet of the heat transfer plate far away from the box body is connected to the first water pipe. And adjacent heat transfer plates are connected through a water guide pipe.
[0013] In a more preferred embodiment, a single-chip microcomputer, a display screen and control buttons are arranged in the control panel. For example, the display screen and the control buttons are directly connected to the corresponding pins of the single-chip microcomputer through wires. The display screen is placed on the front of the control panel, and the control buttons are distributed on the side of the display screen. Both are integrated on the control panel for convenient operation. The single-chip microcomputer is located inside the control panel and is connected to the display screen and the control buttons through wires. The single-chip microcomputer is electrically connected to the first solar photovoltaic panel, the second solar photovoltaic panel, the solar collector, the electric heater, the electric push rod, the circulation water pump, the temperature sensor and the storage battery respectively. None of these are the key points of this application document and do not need to be elaborated in detail. All of them can be completed based on the existing Internet and communication networks in cooperation with existing known computer or server devices. The software programs inherent in the existing computers and servers can achieve the above functions.
[0014] In a specific embodiment of the present invention, the single-chip microcomputer is electrically connected to the first solar photovoltaic panel, the second solar photovoltaic panel, the solar collector, the electric heater, the electric push rod, the circulation water pump, the temperature sensor and the storage battery respectively.
[0015] The storage battery is connected to the circulation water pump through an electric wire to provide power for the circulation water pump. The circulation water pump is connected to the water storage tank through a hose pipe. The water inlet of the circulation water pump is connected to the water outlet of the water storage tank through a pipe. On the other side of the water storage tank body, a telescopic heat transfer component is provided. The water storage tank is connected to a third water pipe through the circulation water pump. The third water pipe is used to supply water to the telescopic heat transfer component. The outlet end of the telescopic heat transfer component is connected to the solar collector through a first water pipe. The outlet end of the solar collector is connected to the water storage tank through a second water pipe. The outlet end of the telescopic heat transfer component is connected to the solar collector through a first water pipe. The outlet end of the solar collector is connected to the water storage tank through a second water pipe.
[0016] Compared with the prior art, the beneficial effects of the present invention are as follows:
[0017] 1. By setting the moving wheels and the push-pull rod, the present invention facilitates the movement of the device, thereby improving the flexibility of the device. It has strong practicability and good heating effect, provides corresponding solutions for energy conservation, emission reduction and energy conversion in temporary shelters, has low heating cost, reduces environmental pollution, and improves the utilization rate of resources at the same time.
[0018] 2. By setting the electric push rod, it is convenient to retract and deploy the second solar photovoltaic panel and cooperate with the telescopic heat transfer component, so as to realize the change of the volume of the device. When not in use, the device can be adjusted to the minimum volume state, greatly reducing the floor space occupied by the device and facilitating its movement and storage.
[0019] 3. By pulling out the multi - section telescopic rod, the multi - section telescopic rod extends, so that each heat transfer plate is separated from each other. As a result, the user can adjust the length of the telescopic heat transfer component according to the room space, enabling each heat transfer plate to be evenly distributed in the room. Using hot water to dissipate heat into the room makes the indoor heating uniform, which is conducive to quickly raising the indoor temperature. BRIEF DESCRIPTION OF THE DRAWINGS
[0020] Figure 1 Fig. is the overall structural schematic diagram of the portable new - energy heating device of the present utility model;
[0021] Figure 2 Fig. is the front view of the portable new - energy heating device of the present utility model;
[0022] Figure 3 Fig. is the internal structural schematic diagram of the box body in the portable new - energy heating device of the present utility model;
[0023] Figure 4 Fig. is the structural schematic diagram of the telescopic heat transfer component in the portable new - energy heating device of the present utility model;
[0024] Figure 5 Fig. is the structural schematic diagram of the second solar photovoltaic panel in the portable new - energy heating device of the present utility model;
[0025] Figure 6 Fig. is the structural schematic diagram of the box body in the portable new - energy heating device of the present utility model;
[0026] Figure 7 Fig. is the internal structural schematic diagram of the water storage tank in the portable new - energy heating device of the present utility model;
[0027] In the figure, 1 - box body; 2 - moving wheel; 3 - support plate; 4 - first solar photovoltaic panel; 5 - solar collector; 6 - multi - section telescopic rod; 7 - heat transfer plate; 8 - first water pipe; 9 - second solar photovoltaic panel; 10 - control panel; 11 - push - pull rod; 12 - second water pipe; 13 - water guide pipe; 14 - third water pipe; 15 - electric push rod; 16 - support platform; 17 - water storage tank; 18 - circulation water pump; 19 - storage battery; 20 - electric heater; 21 - temperature sensor; 22 - display screen; 23 - control button. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0028] The technical solutions of the present utility model will be further described in detail below with reference to the drawings and specific embodiments.
[0029] As Figures 1 - 7As shown in the figure, a portable new energy heating device of the present utility model includes a box body 1. Moving wheels 2 are provided at the four corners of the bottom of the box body 1. Push-pull rods 11 are provided at both ends of the box body 1. Through the arrangement of the moving wheels 2 and the push-pull rods 11, it is convenient to move the device, thereby improving the flexibility of the device and having strong practicability. Inside the box body 1, a water storage tank 17, a circulation water pump 18 and a storage battery 19 are respectively arranged. A support plate 3 is installed on the top of the box body 1 through a support platform 16. A first solar photovoltaic panel 4 and a solar collector 5 are respectively arranged on the upper surface of the support plate 3. A second solar photovoltaic panel 9 that can be retracted and deployed is arranged on one side of the box body 1. One side of the second solar photovoltaic panel 9 is rotatably connected to the top side wall of the box body 1 through a rotating shaft. The middle part of the bottom of the second solar photovoltaic panel 9 is rotatably connected to an electric push rod 15 through a rotating shaft. The bottom of the electric push rod 15 is rotatably connected to the side wall of the box body 1 through a rotating shaft. Through the arrangement of the electric push rod 15, it is convenient to retract and deploy the second solar photovoltaic panel 9, thereby realizing the change of the volume of the device. When the device is not needed, the second solar photovoltaic panel 9 can be retracted, greatly reducing the floor space of the device and facilitating its movement and storage. The specific operation method is as follows: by starting the electric push rod 15 to pull the second solar photovoltaic panel 9, the back of the second solar photovoltaic panel 9 is close to the side wall of the box body 1. By starting the electric push rod 15, the electric push rod 15 can push the second solar photovoltaic panel 9, and the second solar photovoltaic panel 9 can be deployed, so that the second solar photovoltaic panel 9 cooperates with the first solar photovoltaic panel 4 to utilize solar energy for power supply, and power can be supplied to each electrical appliance of the device. At the same time, part of the electricity can be stored in the storage battery 19, and the storage battery 19 can supply power to each electrical appliance of the device. A telescopic heat transfer component is arranged on the other side. The telescopic heat transfer component includes two symmetrically distributed multi-section telescopic rods 6. One end of the two multi-section telescopic rods 6 far from the box body 1 is connected through a fixed rod. One end of the multi-section telescopic rod 6 is fixedly connected to the side wall of the box body 1, and a heat transfer plate 7 is arranged on each joint of the multi-section telescopic rod 6. Through the arrangement of the multi-section telescopic rod 6, when the device is not needed, the multi-section telescopic rod 6 is in a retracted state. At this time, multiple heat transfer plates 7 are arranged side by side, making the device in the smallest volume state, which is convenient for moving and storing the device. When in use, by pulling the multi-section telescopic rod 6, the multi-section telescopic rod 6 extends, so that each heat transfer plate 7 is separated from each other. Thus, the user can adjust the length of the telescopic heat transfer component according to the room space, so that each heat transfer plate 7 is evenly distributed in the room, and hot water is used to dissipate heat into the room, so that the indoor heating is uniform, which is conducive to quickly warming the room.
[0030] The water storage tank 17 is connected to a third water pipe 14 through a circulating water pump 18. The third water pipe 14 is used to supply water to the telescopic heat transfer assembly. The outlet end of the telescopic heat transfer assembly is connected to the solar collector 5 through a first water pipe 8. The outlet end of the solar collector 5 is connected to the water storage tank 17 through a second water pipe 12. The outlet of the third water pipe 14 is connected to the heat transfer plate 7 near one side of the box body 1. The outlet of the heat transfer plate 7 on the side far from the box body 1 is connected to the first water pipe 8. And adjacent heat transfer plates 7 are connected through a water guide pipe 13. The hot water in the water storage tank 17 is input into the heat transfer plate 7 through the circulating water pump 18 and the third water pipe 14. Under the action of the water guide pipe 13, the hot water is transmitted between each heat transfer plate 7. After entering the last heat transfer plate 7, it is transmitted to the solar collector 5 through the first water pipe 8. The solar collector 5 uses solar energy to heat the water and transports it to the water storage tank 17. In this way, the cycle repeats. The water temperature in the water storage tank 17 can be detected in real time through the temperature sensor 21. Through the setting of the electric heater 20, it can cooperate with the solar collector 5 to heat the water, greatly improving the heating efficiency.
[0031] An electric heater 20 and a temperature sensor 21 are respectively arranged in the water storage tank 17. A control panel 10 is arranged on the box body 1. A single-chip microcomputer, a display screen and control buttons are arranged in the control panel 10. As Figure 1 shown, the display screen 22 and the control buttons 23 are directly connected to the corresponding pins of the single-chip microcomputer through wires. The display screen 22 is placed on the front of the control panel 10, and the control buttons 23 are distributed on the side of the display screen 22. Both are integrated on the control panel 10 for convenient operation. The single-chip microcomputer is located inside the control panel 10 and is connected to the display screen 22 and the control buttons 23 through wires. The single-chip microcomputer is electrically connected to the first solar photovoltaic panel 4, the second solar photovoltaic panel 9, the solar collector 5, the electric heater 20, the electric push rod 15, the circulating water pump 18, the temperature sensor 21 and the storage battery 19 respectively. None of these are the key points of this application document and do not need to be elaborated in detail. All can be completed based on the existing Internet and communication networks in cooperation with existing known computer or server devices. The software programs originally possessed by the existing computers and servers can realize the above functions.
[0032] During use, move the device outdoors. By activating the electric push rod 15, the electric push rod 15 pushes the second solar photovoltaic panel 9, enabling the second solar photovoltaic panel 9 to unfold. The second solar photovoltaic panel 9 cooperates with the first solar photovoltaic panel 4 to utilize solar energy for power supply, which can supply power to each electrical appliance of the device. At the same time, part of the electricity can be stored in the storage battery 19, and the storage battery 19 can supply power to each electrical appliance of the device. By pulling out the multi-section telescopic rod 6, the multi-section telescopic rod 6 extends, causing each heat transfer plate 7 to separate from each other. Thus, the user can adjust the length of the telescopic heat transfer assembly according to the room space, enabling each heat transfer plate 7 to be evenly distributed in the room. Using hot water to dissipate heat indoors makes the indoor heating uniform, which is conducive to quickly raising the indoor temperature. The hot water in the water storage tank 17 is input into the heat transfer plate 7 through the circulating water pump 18 and the third water pipe 14. Under the action of the water guide pipe 13, the hot water is transmitted between each heat transfer plate 7. After entering the last heat transfer plate 7, it is transmitted to the solar collector 5 through the first water pipe 8. The solar collector 5 uses solar energy to heat the water and transports it to the water storage tank 17. This cycle repeats. The water temperature in the water storage tank 17 can be detected in real time through the temperature sensor 21. With the setting of the electric heater 20, it can cooperate with the solar collector 5 to heat the water, greatly improving the heating efficiency.
[0033] The above is only the preferred specific implementation manner of the present utility model, and the protection scope of the present utility model is not limited thereto. Any simple change or equivalent replacement of the technical solution that can be obviously obtained by those skilled in the art within the technical scope disclosed by the present utility model falls within the protection scope of the present utility model.
Claims
1. A portable new energy heating device, characterized in that, It includes a box body (1), moving wheels (2) are provided at the four corners of the bottom of the box body (1), a water storage tank (17), a circulating water pump (18) and a storage battery (19) are respectively arranged in the inner cavity of the box body (1), a support platform (16) is provided at the top of the box body (1), a pallet (3) is provided on the support platform (16), a first solar photovoltaic panel (4) and a solar collector (5) are respectively arranged on the upper surface of the pallet (3), a second solar photovoltaic panel (9) is provided on one side of the box body (1), a telescopic heat transfer component is arranged on the other side of the box body (1), the water storage tank (17) is connected to a third water pipe (14) through the circulating water pump (18), the third water pipe (14) is used for supplying water to the telescopic heat transfer component, the outlet end of the telescopic heat transfer component is connected to the solar collector (5) through a first water pipe (8), the outlet end of the solar collector (5) is connected to the water storage tank (17) through a second water pipe (12), and an electric heater (20) and a temperature sensor (21) are respectively arranged in the water storage tank (17), and a control panel (10) is arranged on the box body (1).
2. The portable new energy heating device according to claim 1, characterized in that, Push-pull rods (11) are provided at both ends of the box body (1).
3. A portable new energy heating device according to claim 1, characterized in that, One side of the second solar photovoltaic panel (9) is rotatably connected to the top side wall of the box body (1) through a rotating shaft, the middle part of the bottom of the second solar photovoltaic panel (9) is rotatably connected to an electric push rod (15) through a rotating shaft, and the bottom of the electric push rod (15) is rotatably connected to the side wall of the box body (1) through a rotating shaft.
4. The portable new energy heating device according to claim 1, characterized in that, The telescopic heat transfer component includes two symmetrically distributed multi-section telescopic rods (6), one ends of the two multi-section telescopic rods (6) far away from the box body (1) are connected through a fixing rod, and one ends of the multi-section telescopic rods (6) are fixedly connected to the side wall of the box body (1).
5. The portable new energy heating device according to claim 4, characterized in that, A heat transfer plate (7) is arranged on each joint of the multi-section telescopic rod (6).
6. The portable new energy heating device according to claim 5, characterized in that, The outlet of the third water pipe (14) is connected to the heat transfer plate (7) close to one side of the box body (1), the outlet of the heat transfer plate (7) far away from the box body (1) is connected to the first water pipe (8), and adjacent heat transfer plates (7) are connected through a water guide pipe (13).
7. The portable new energy heating device according to claim 6, wherein A single-chip microcomputer is arranged in the control panel (10), and a display screen (22) and control buttons (23) are arranged on the surface of the control panel (10).
8. The portable new energy heating device according to claim 7, wherein, The single-chip microcomputer is electrically connected to the first solar photovoltaic panel (4), the second solar photovoltaic panel (9), the solar collector (5), the electric heater (20), the electric push rod (15), the circulating water pump (18), the temperature sensor (21) and the storage battery (19) respectively.