Cleanable heat collection and heating device capable of surface cleaning
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-04
- Publication Date
- 2026-08-14
AI Technical Summary
[0004]本实用新型的目的是提供可进行表面清洁的清洁集热供热装置,解决目前市场上的可进行表面清洁的清洁集热供热装置表面的灰尘等杂质会加速表面腐蚀,进而降低其使用寿命的问题
[0016]本实用新型的有益效果是:本实用新型的清洁集热供热装置,利用吸尘头表面开设的多个吸收口对箱体的表面进行全方位的灰尘等杂质的吸收清洁,避免了箱体表面灰尘等杂质清洁不彻底的情况出现,提高了箱体表面的清洁效果,吸收的灰尘等杂质会进入收纳箱中,方便了后续灰尘等杂质的处理工作,避免了灰尘等杂质粘附在箱体上出现加速腐蚀的现象,提高了箱体的使用寿命。
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Figure CN224635508U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of clean heat collection and heating technology, specifically relating to a clean heat collection and heating device capable of surface cleaning. Background Technology
[0002] Clean energy collection and heating systems are devices that utilize clean energy for heating, aiming to reduce pollutant emissions and energy consumption while providing safe, green, and economical thermal energy. Such systems typically include the following key components: (1) Clean heat sources: These can be ultra-low emission coal-fired cogeneration, natural gas, electricity, geothermal energy, biomass, solar energy, industrial waste heat, or nuclear energy, etc. (2) High-efficiency transmission and distribution network: used to efficiently transmit the heat energy generated by clean heat sources to the user end; (3) Energy-efficient buildings (heat users): Energy-efficient materials and designs are used to reduce heat loss; (4) Thermal energy storage technology: Using thermal energy storage devices, such as electric thermal energy storage systems, electrical energy is converted into thermal energy and stored for use during off-peak hours, reducing costs and reducing pressure on the power grid; (5) Intelligent control system: The system is intelligently controlled through technologies such as the Internet of Things, accurately distributing heat and improving energy efficiency.
[0003] The application of surface-cleanable thermal collector heating systems helps achieve sustainable development goals, reduces negative environmental impacts, and provides a comfortable living environment. However, during the installation process, the surface of the entire device will inevitably gradually become covered with dust and other impurities. If these dust and impurities are not cleaned, they will accelerate the corrosion rate of the surface of the surface-cleanable thermal collector heating system due to prolonged coverage, thereby reducing the service life of the heating equipment. Utility Model Content
[0004] The purpose of this invention is to provide a surface-cleaning heat collection and heating device that can be cleaned, thereby solving the problem that dust and other impurities on the surface of current surface-cleaning heat collection and heating devices on the market will accelerate surface corrosion and reduce their service life.
[0005] To address the aforementioned technical problems, this utility model discloses a surface-cleaning heat collection and heating device, comprising a heat collection and heating device, wherein a descaling component is provided on the surface of the housing of the heat collection and heating device; the descaling component includes an assembly box fixed to the bottom of the housing, a dust collection motor fixedly installed at the top of the inner cavity of the assembly box, a dust collection fan fixedly installed at the output end of the dust collection motor, an isolation net fixedly installed in the inner cavity of the assembly box, and the isolation net is located at the bottom of the dust collection motor and the dust collection fan; a storage groove is provided on the surface of the assembly box, and a dust collection box is movably installed inside the storage groove; a ventilation hole is fixedly installed on the top of the assembly box; a dust collection pipe is fixedly installed on the side of the assembly box; a dust collection ring is fixedly installed on the surface of the housing, and one end of the dust collection ring is fixed to one end of the dust collection pipe; multiple dust collection ports are provided on the surface of the dust collection ring.
[0006] The technical solution of this utility model also has the following characteristics: As a further improvement to the technical solution of this utility model, the dust suction ring is arranged around the surface of the box.
[0007] As a further improvement to the technical solution of this utility model, a suction head is fixedly installed on the surface of each of the multiple suction ports.
[0008] As a further improvement to the technical solution of this utility model, the top of the vacuum head is a circular plate.
[0009] As a further improvement to the technical solution of this utility model, the top circular periphery of the vacuum head is provided with multiple sets of impurity absorption ports.
[0010] As a further improvement to the technical solution of this utility model, a heat-conducting component is provided on the top of the assembly box.
[0011] As a further improvement to the technical solution of this utility model, the heat conduction component includes an exhaust pipe fixed outside the ventilation hole on the assembly box, a guide hole is opened on one side of the exhaust pipe, one end of the exhaust pipe corresponds to the heat dissipation port on the surface of the box, and two first valves are fixedly installed inside the exhaust pipe.
[0012] As a further improvement to the technical solution of this utility model, the inner cavity of the assembly box is also provided with an isolation component.
[0013] As a further improvement to the technical solution of this utility model, the isolation component includes a combined motor fixed inside the assembly box, a steering rod fixedly installed at the output end of the combined motor, and a sealing plate fixedly installed on the outside of the steering rod, and the sealing plate is used to cover the isolation net.
[0014] As a further improvement to the technical solution of this utility model, a transmission component is provided on the outside of the assembly box.
[0015] As a further improvement to the technical solution of this utility model, the transmission component includes an exhaust port opened on one side of the assembly box, an exhaust pipe fixedly installed on the outside of the exhaust port, one end of the exhaust pipe being fixed to the surface of the suction pipe, and a second valve being provided in the inner cavity of both the exhaust pipe and the suction pipe.
[0016] The beneficial effects of this utility model are as follows: The cleaning heat collection and heating device of this utility model utilizes multiple absorption ports on the surface of the dust suction head to comprehensively absorb and clean the surface of the box, avoiding the situation where the dust and other impurities on the surface of the box are not thoroughly cleaned, thus improving the cleaning effect of the box surface. The absorbed dust and other impurities will enter the storage box, facilitating the subsequent handling of dust and other impurities, preventing dust and other impurities from adhering to the box and accelerating corrosion, thereby increasing the service life of the box. Attached Figure Description
[0017] The accompanying drawings, which are included to provide a further understanding of the present invention and constitute a part of this invention, illustrate exemplary embodiments of the present invention and, together with the description thereof, serve to explain the present invention and do not constitute an undue limitation thereof. In the drawings: Figure 1 This is a schematic diagram of the overall structure of a surface-cleaning heat collection and heating device according to the present invention. Figure 2 This is a cross-sectional structural diagram of a surface-cleaning heat collection and heating device according to the present invention. Figure 3 This is a schematic diagram of the isolation component structure of a surface-cleaning heat collection and heating device according to the present invention; In the picture: 1. Box body; 2. Descaling components; 201. Assembly box; 202. Vacuum motor; 203. Vacuum fan blades; 204. Isolation net; 205. Storage slot; 206. Storage box; 207. Ventilation hole; 208. Vacuum hose; 209. Vacuum ring; 2010. Vacuum inlet; 3. Vacuum cleaner head; 4. Absorption port; 5. Heat-conducting components; 501. Exhaust duct; 502. Air guide hole; 503. First valve; 6. Isolation assembly; 601. Combined motor; 602. Steering rod; 603. Enclosure plate; 7. Transmission component; 701. Exhaust vent; 702. Exhaust duct; 703. Second valve. Detailed Implementation
[0018] The embodiments of this utility model are described in detail below. Examples of these embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain this utility model, and should not be construed as limiting this utility model.
[0019] In the description of this utility model, the use of "first" and "second" is only for the purpose of distinguishing technical features and should not be construed as indicating or implying relative importance or implicitly indicating the number of technical features or the order of the technical features.
[0020] In the description of this utility model, unless otherwise explicitly defined, terms such as "setting," "installation," and "connection" should be interpreted broadly, and those skilled in the art can reasonably determine the specific meaning of the above terms in this utility model in conjunction with the specific content of the technical solution.
[0021] Example 1 like Figure 1 and Figure 2 As shown, this utility model discloses a surface-cleaning heat collection and heating device, including a self-cleaning descaling component 2 on the surface of the housing 1 of the self-cleaning heat collection and heating device. The descaling component 2 includes an assembly box 201 fixed to the bottom of the housing 1, a vacuum motor 202 fixedly installed at the top of the inner cavity of the assembly box 201, a vacuum fan blade 203 fixedly installed at the output end of the vacuum motor 202, and an isolation net 204 fixedly installed in the inner cavity of the assembly box 201. At the bottom of the dust generator 202 and the suction fan blade 203, a storage groove 205 is provided on the surface of the assembly box 201. A dust collection box 206 is movably installed inside the storage groove 205. A ventilation hole 207 is fixedly installed on the top of the assembly box 201. A suction pipe 208 is fixedly installed on the side of the assembly box 201. A suction ring 209 is fixedly installed on the surface of the box 1, and one end of the suction ring 209 is fixed to one end of the suction pipe 208. Multiple suction ports 2010 are provided on the surface of the suction ring 209.
[0022] The clean thermal energy collection and heating device here is an existing clean thermal energy collection and heating device. This device is a device that uses clean energy to provide heating, aiming to reduce pollutant emissions and energy consumption, while providing safe, green and economical heat.
[0023] Compared with the prior art, in Embodiment 1, the improvement of the present invention for a surface-cleaning heat collection and heating device is that a descaling component 2 for self-cleaning is added to the surface of the housing 1 of the existing clean heat collection and heating device.
[0024] The descaling component 2 consists of an assembly box 201, a vacuum motor 202, a vacuum fan blade 203, an isolation net 204, a storage slot 205, a storage box 206, a ventilation hole 207, a vacuum pipe 208, a vacuum ring 209, and a vacuum port 2010.
[0025] Therefore, in the surface-cleaning heat collection and heating device of this utility model, the functions of each component are as follows: Assembly box 201 provides installation space for other components and forms a sealed area to collect and absorb incoming dust.
[0026] The vacuum motor 202 is used to provide power to adsorb and clean the dust on the surface of the housing 1 of the heat collection and heating device.
[0027] The vacuum fan blade 203 converts the power of the vacuum motor 202 into suction to adsorb and clean the dust on the surface of the housing 1 of the heat collection and heating device.
[0028] The isolation net 204 separates the vacuum motor 202 and the vacuum fan blade 203 on the upper part of the isolation net 204, preventing them from mixing with the dust and other impurities collected in the storage box 206.
[0029] Storage slot 205 is used to install storage box 206.
[0030] Storage box 206 is used to store collected dust.
[0031] Ventilation hole 207 provides an air outlet to create airflow.
[0032] The suction tube 208 is used to transmit the generated suction force.
[0033] The suction ring 209 transfers suction power to the surface of the housing 1 of the heat collection and heating device.
[0034] The suction port 2010 is used to remove dust and other debris from the surface of the housing 1.
[0035] The present invention discloses a surface cleaning and heat collection device, the working principle of which is as follows: When cleaning the surface of the housing 1, the dust suction motor 202 on the descaling component 2 is started. The dust suction motor 202 drives the dust suction fan blade 203 to rotate inside the assembly box 201, thereby generating suction. At this time, the suction passes through the dust suction pipe 208, which uses the dust suction ring 209 in conjunction with the dust suction port 2010 to absorb dust and other impurities from the surface of the housing 1. The absorbed dust and other impurities will enter the storage box 206, which facilitates the subsequent handling of dust and other impurities, avoids the phenomenon of dust and other impurities adhering to the housing 1 and accelerating corrosion, and improves the service life of the housing 1.
[0036] Example 2 like Figure 1 and Figure 2 As shown in Example 1, Example 2 of this utility model provides a surface-cleaning heat collection and heating device, which includes a self-cleaning descaling component 2 on the surface of the housing 1 of the self-cleaning heat collection and heating device. The descaling component 2 includes an assembly box 201 fixed to the bottom of the housing 1, a vacuum motor 202 fixedly installed at the top of the inner cavity of the assembly box 201, a vacuum fan blade 203 fixedly installed at the output end of the vacuum motor 202, and an isolation net 204 fixedly installed in the inner cavity of the assembly box 201. 204 is located at the bottom of the vacuum motor 202 and the vacuum fan blade 203. The surface of the assembly box 201 is provided with a storage groove 205. A dust collection box 206 is movably installed inside the storage groove 205. A ventilation hole 207 is fixedly installed on the top of the assembly box 201. A vacuum pipe 208 is fixedly installed on the side of the assembly box 201. A vacuum ring 209 is fixedly installed on the surface of the box 1, and one end of the vacuum ring 209 is fixed to one end of the vacuum pipe 208. Multiple vacuum ports 2010 are provided on the surface of the vacuum ring 209.
[0037] like Figure 1 As shown, unlike Embodiment 1, in Embodiment 2, a clean heat collection and heating device of this utility model has a dust suction ring 209 surrounding the surface of the housing 1.
[0038] Compared to Example 1, Example 2 provides a way of arranging the suction ring 209. The principle is that the suction ring 209 is arranged around the surface of the box 1, which can ensure that the surface of the box 1 is adsorbed and cleaned.
[0039] The following is a detailed description of a surface-cleaning heat collection and heating device of the present invention, which is described in Example 2.
[0040] The clean thermal energy collection and heating device here is an existing clean thermal energy collection and heating device. This device is a device that uses clean energy to provide heating, aiming to reduce pollutant emissions and energy consumption, while providing safe, green and economical heat.
[0041] Compared with the prior art, in Embodiment 2, the improvement of the present invention for a surface-cleaning heat collection and heating device is that a descaling component 2 for self-cleaning is added to the surface of the housing 1 of the existing clean heat collection and heating device, and the arrangement of the dust suction ring 209 is defined.
[0042] The descaling component 2 consists of an assembly box 201, a vacuum motor 202, a vacuum fan blade 203, an isolation net 204, a storage slot 205, a storage box 206, a ventilation hole 207, a vacuum pipe 208, a vacuum ring 209, and a vacuum port 2010.
[0043] Therefore, in the surface-cleaning heat collection and heating device of this utility model, the functions of each component are as follows: Assembly box 201 provides installation space for other components and forms a sealed area to collect and absorb incoming dust.
[0044] The vacuum motor 202 is used to provide power to adsorb and clean the dust on the surface of the housing 1 of the heat collection and heating device.
[0045] The vacuum fan blade 203 converts the power of the vacuum motor 202 into suction to adsorb and clean the dust on the surface of the housing 1 of the heat collection and heating device.
[0046] The isolation net 204 separates the vacuum motor 202 and the vacuum fan blade 203 on the upper part of the isolation net 204, preventing them from mixing with the dust and other impurities collected in the storage box 206.
[0047] Storage slot 205 is used to install storage box 206.
[0048] Storage box 206 is used to store collected dust.
[0049] Ventilation hole 207 provides an air outlet to create airflow.
[0050] The suction tube 208 is used to transmit the generated suction force.
[0051] The suction ring 209 transfers suction power to the surface of the housing 1 of the heat collection and heating device.
[0052] The suction port 2010 is used to remove dust and other debris from the surface of the housing 1.
[0053] The present invention discloses a surface cleaning and heat collection device, the working principle of which is as follows: When cleaning the surface of the housing 1, the dust collection motor 202 on the descaling component 2 is started. The dust collection motor 202 drives the dust collection fan blade 203 to rotate inside the assembly box 201, thereby generating suction. At this time, the suction passes through the dust collection pipe 208, and the dust collection pipe 208 uses the dust collection ring 209 in conjunction with the dust collection port 2010 to absorb dust and other impurities from the surface of the housing 1. Since the dust collection head 3 is installed on the surface of the dust collection port 2010, the absorbed dust and other impurities will enter the storage box 206, which facilitates the subsequent handling of dust and other impurities, avoids the phenomenon of dust and other impurities adhering to the housing 1 and accelerating corrosion, and improves the service life of the housing 1.
[0054] Example 3 like Figure 1 and Figure 2As shown in Example 1, Example 3 of this utility model also includes a clean heat collection and heating device, similar to Example 1. The surface of the housing 1 of the clean heat collection and heating device is provided with a descaling component 2 for self-cleaning. The descaling component 2 includes an assembly box 201 fixed to the bottom of the housing 1. A vacuum motor 202 is fixedly installed at the top of the inner cavity of the assembly box 201. A vacuum fan blade 203 is fixedly installed at the output end of the vacuum motor 202. An isolation net 204 is fixedly installed in the inner cavity of the assembly box 201. The assembly box 201 has a storage slot 205 on its surface, located at the bottom of the vacuum motor 202 and the vacuum fan blade 203. A dust collection box 206 is movably installed inside the storage slot 205. A ventilation hole 207 is fixedly installed on the top of the assembly box 201. A vacuum pipe 208 is fixedly installed on the side of the assembly box 201. A vacuum ring 209 is fixedly installed on the surface of the box 1, and one end of the vacuum ring 209 is fixed to one end of the vacuum pipe 208. Multiple vacuum ports 2010 are opened on the surface of the vacuum ring 209.
[0055] like Figure 1 As shown, unlike Embodiment 1, in Embodiment 3, a clean heat collection and heating device of this utility model has a dust suction ring 209 surrounding the surface of the housing 1, and a dust suction head 3 is fixedly installed on the surface of each of the multiple dust suction ports 2010.
[0056] Compared to Example 1, Example 3 provides a way of arranging the suction ring 209. The principle is that the suction ring 209 is arranged around the surface of the box 1, which can ensure that the surface of the box 1 is adsorbed and cleaned.
[0057] Compared to Embodiment 1, Embodiment 3 also provides a specific structure for the suction port 2010. The principle is that a suction head 3 is fixedly installed on the surface of each of the multiple suction ports 2010, which can concentrate the multiple suction ports 2010 together to increase the suction power, so as to adsorb dust and other objects on the surface of the box 1.
[0058] The following is a detailed description of a surface-cleaning heat collection and heating device of the present invention, which is described in Example 3.
[0059] The clean thermal energy collection and heating device here is an existing clean thermal energy collection and heating device. This device is a device that uses clean energy to provide heating, aiming to reduce pollutant emissions and energy consumption, while providing safe, green and economical heat.
[0060] Compared with the prior art, in embodiment 3, the improvement of the cleaning heat collection and heating device of the present invention that can perform surface cleaning is as follows: a descaling component 2 for self-cleaning is added to the surface of the box 1 of the existing cleaning heat collection and heating device, and the arrangement of the dust suction ring 209 is defined; the specific structure of the dust suction port 2010 is defined.
[0061] The descaling component 2 consists of an assembly box 201, a vacuum motor 202, a vacuum fan blade 203, an isolation net 204, a storage slot 205, a storage box 206, a ventilation hole 207, a vacuum pipe 208, a vacuum ring 209, and a vacuum port 2010.
[0062] Therefore, in the surface-cleaning heat collection and heating device of this utility model, the functions of each component are as follows: Assembly box 201 provides installation space for other components and forms a sealed area to collect and absorb incoming dust.
[0063] The vacuum motor 202 is used to provide power to adsorb and clean the dust on the surface of the housing 1 of the heat collection and heating device.
[0064] The vacuum fan blade 203 converts the power of the vacuum motor 202 into suction to adsorb and clean the dust on the surface of the housing 1 of the heat collection and heating device.
[0065] The isolation net 204 separates the vacuum motor 202 and the vacuum fan blade 203 on the upper part of the isolation net 204, preventing them from mixing with the dust and other impurities collected in the storage box 206.
[0066] Storage slot 205 is used to install storage box 206.
[0067] Storage box 206 is used to store collected dust.
[0068] Ventilation hole 207 provides an air outlet to create airflow.
[0069] The suction tube 208 is used to transmit the generated suction force.
[0070] The suction ring 209 transfers suction power to the surface of the housing 1 of the heat collection and heating device.
[0071] The suction port 2010 is used to remove dust and other debris from the surface of the housing 1.
[0072] The vacuum head 3 can concentrate multiple vacuum ports 2010 together to increase suction power and remove dust from the surface of the housing 1.
[0073] The present invention discloses a surface cleaning and heat collection device, the working principle of which is as follows: When cleaning the surface of the housing 1, the dust collection motor 202 on the descaling component 2 is activated. The dust collection motor 202 drives the dust collection fan blade 203 to rotate inside the assembly box 201, thereby generating suction. At this time, the suction passes through the dust collection pipe 208, which uses the dust collection ring 209 in conjunction with the dust collection port 2010 to absorb dust and other impurities from the surface of the housing 1. Since the dust collection port 2010 is equipped with a dust collection head 3, the dust collection head 3 can be used to absorb and clean the surface of the housing 1 from all directions, avoiding the situation where the dust and other impurities on the surface of the housing 1 are not thoroughly cleaned, thus improving the cleaning effect of the surface of the housing 1. The absorbed dust and other impurities will enter the storage box 206, which facilitates the subsequent handling of dust and other impurities, avoids the phenomenon of dust and other impurities adhering to the housing 1 and accelerating corrosion, and improves the service life of the housing 1.
[0074] Example 4 like Figure 1 and Figure 2 As shown in Example 1, Example 4 of this utility model also includes a clean heat collection and heating device, similar to Example 1. The surface of the housing 1 of the clean heat collection and heating device is provided with a descaling component 2 for self-cleaning. The descaling component 2 includes an assembly box 201 fixed to the bottom of the housing 1. A vacuum motor 202 is fixedly installed at the top of the inner cavity of the assembly box 201. A vacuum fan blade 203 is fixedly installed at the output end of the vacuum motor 202. An isolation net 204 is fixedly installed in the inner cavity of the assembly box 201. The assembly box 201 has a storage slot 205 on its surface, located at the bottom of the vacuum motor 202 and the vacuum fan blade 203. A dust collection box 206 is movably installed inside the storage slot 205. A ventilation hole 207 is fixedly installed on the top of the assembly box 201. A vacuum pipe 208 is fixedly installed on the side of the assembly box 201. A vacuum ring 209 is fixedly installed on the surface of the box 1, and one end of the vacuum ring 209 is fixed to one end of the vacuum pipe 208. Multiple vacuum ports 2010 are opened on the surface of the vacuum ring 209.
[0075] like Figure 1 As shown, unlike Embodiment 1, in Embodiment 4 of this utility model, a clean heat collection and heating device has a dust suction ring 209 surrounding the surface of the housing 1, and a dust suction head 3 is fixedly installed on the surface of each of the multiple dust suction ports 2010. The top of the dust suction head 3 is a circular plate.
[0076] Compared to Example 1, Example 4 provides a way of arranging the suction ring 209. The principle is that the suction ring 209 is arranged around the surface of the box 1, which can ensure that the surface of the box 1 is cleaned and impurities are removed.
[0077] Compared to Embodiment 1, Embodiment 4 also provides a specific structure for the suction port 2010. The principle is that a suction head 3 is fixedly installed on the surface of each of the multiple suction ports 2010, which can concentrate the multiple suction ports 2010 together to increase the suction power, so as to adsorb dust and other objects on the surface of the box 1.
[0078] Compared to Example 1, Example 4 also provides a vacuum head 3 in the form of a plate. The principle is that the top of the vacuum head 3 is designed as a circular plate to facilitate the concentration of suction power.
[0079] The following is a detailed description of a surface-cleaning heat collection and heating device of the present invention, which is described in Example 4.
[0080] The clean thermal energy collection and heating device here is an existing clean thermal energy collection and heating device. This device is a device that uses clean energy to provide heating, aiming to reduce pollutant emissions and energy consumption, while providing safe, green and economical heat.
[0081] Compared with the prior art, in embodiment 4, the improvement of the cleaning heat collection and heating device of the present invention that can perform surface cleaning is as follows: a descaling component 2 for self-cleaning is added to the surface of the box 1 of the existing cleaning heat collection and heating device, and the arrangement of the dust suction ring 209 is defined; the specific structure of the dust suction port 2010 is defined; and the specific structure of the dust suction head 3 is defined.
[0082] The descaling component 2 consists of an assembly box 201, a vacuum motor 202, a vacuum fan blade 203, an isolation net 204, a storage slot 205, a storage box 206, a ventilation hole 207, a vacuum pipe 208, a vacuum ring 209, and a vacuum port 2010.
[0083] Therefore, in the surface-cleaning heat collection and heating device of this utility model, the functions of each component are as follows: Assembly box 201 provides installation space for other components and forms a sealed area to collect and absorb incoming dust.
[0084] The vacuum motor 202 is used to provide power to adsorb and clean the dust on the surface of the housing 1 of the heat collection and heating device.
[0085] The vacuum fan blade 203 converts the power of the vacuum motor 202 into suction to adsorb and clean the dust on the surface of the housing 1 of the heat collection and heating device.
[0086] The isolation net 204 separates the vacuum motor 202 and the vacuum fan blade 203 on the upper part of the isolation net 204, preventing them from mixing with the dust and other impurities collected in the storage box 206.
[0087] Storage slot 205 is used to install storage box 206.
[0088] Storage box 206 is used to store collected dust.
[0089] Ventilation hole 207 provides an air outlet to create airflow.
[0090] The suction tube 208 is used to transmit the generated suction force.
[0091] The suction ring 209 transfers suction power to the surface of the housing 1 of the heat collection and heating device.
[0092] The suction port 2010 is used to remove dust and other debris from the surface of the housing 1.
[0093] The vacuum head 3 can concentrate multiple vacuum ports 2010 together to increase suction power and remove dust from the surface of the housing 1.
[0094] The present invention discloses a surface cleaning and heat collection device, the working principle of which is as follows: When cleaning the surface of the housing 1, the dust collection motor 202 on the descaling component 2 is activated. The dust collection motor 202 drives the dust collection fan blade 203 to rotate inside the assembly box 201, thereby generating suction. At this time, the suction passes through the dust collection pipe 208, which uses the dust collection ring 209 in conjunction with the dust collection port 2010 to absorb dust and other impurities from the surface of the housing 1. Since the dust collection port 2010 is equipped with a dust collection head 3, and the top of the dust collection head 3 is circular, the dust collection head 3 can be used to absorb and clean the surface of the housing 1 from all directions, avoiding the situation where the dust and other impurities on the surface of the housing 1 are not thoroughly cleaned, thus improving the cleaning effect of the surface of the housing 1. The absorbed dust and other impurities will enter the storage box 206, which facilitates the subsequent handling of dust and other impurities, avoids the phenomenon of dust and other impurities adhering to the housing 1 and accelerating corrosion, and improves the service life of the housing 1.
[0095] Example 5 like Figure 1 and Figure 2As shown in Example 1, Example 5 of this utility model also includes a clean heat collection and heating device, similar to Example 1. The surface of the housing 1 of the clean heat collection and heating device is provided with a self-cleaning descaling component 2. The descaling component 2 includes an assembly box 201 fixed to the bottom of the housing 1. A vacuum motor 202 is fixedly installed at the top of the inner cavity of the assembly box 201. A vacuum fan blade 203 is fixedly installed at the output end of the vacuum motor 202. An isolation net 204 is fixedly installed in the inner cavity of the assembly box 201. The assembly box 201 has a storage slot 205 on its surface, located at the bottom of the vacuum motor 202 and the vacuum fan blade 203. A dust collection box 206 is movably installed inside the storage slot 205. A ventilation hole 207 is fixedly installed on the top of the assembly box 201. A vacuum pipe 208 is fixedly installed on the side of the assembly box 201. A vacuum ring 209 is fixedly installed on the surface of the box 1, and one end of the vacuum ring 209 is fixed to one end of the vacuum pipe 208. Multiple vacuum ports 2010 are opened on the surface of the vacuum ring 209.
[0096] like Figure 1 As shown, unlike Embodiment 1, in Embodiment 5 of this utility model, a clean heat collection and heating device has a dust suction ring 209 surrounding the surface of the housing 1, and a dust suction head 3 is fixedly installed on the surface of each of the multiple dust suction ports 2010. The top of the dust suction head 3 is a circular plate, and multiple sets of impurity absorption ports 4 are opened around the circular top of the dust suction head 3.
[0097] Compared to Example 1, Example 5 provides a way of arranging the suction ring 209. The principle is that the suction ring 209 is arranged around the surface of the box 1, which can ensure that the surface of the box 1 is adsorbed and cleaned.
[0098] Compared to Embodiment 1, Embodiment 5 also provides a specific structure for the suction port 2010. The principle is that a suction head 3 is fixedly installed on the surface of each of the multiple suction ports 2010, which can concentrate the multiple suction ports 2010 together to increase the suction power, so as to adsorb dust and other objects on the surface of the box 1.
[0099] Compared to Example 1, Example 5 also provides a vacuum head 3 in the form of a plate. The principle is that the top of the vacuum head 3 is designed as a circular plate to facilitate the concentration of suction power.
[0100] Compared to Example 1, Example 5 adds an absorption port 4. The principle is to open multiple sets of absorption ports 4 for impurities around the top circular periphery of the suction head 3 so as to concentrate and output a larger suction force.
[0101] The following is a detailed description of a surface-cleaning heat collection and heating device of the present invention, which is described in Example 5.
[0102] The clean thermal energy collection and heating device here is an existing clean thermal energy collection and heating device. This device is a device that uses clean energy to provide heating, aiming to reduce pollutant emissions and energy consumption, while providing safe, green and economical heat.
[0103] Compared with the prior art, in embodiment 5, the improvement of the cleaning heat collection and heating device of the present invention that can perform surface cleaning is as follows: a descaling component 2 for self-cleaning is added to the surface of the box 1 of the existing cleaning heat collection and heating device, and the arrangement of the dust suction ring 209 is defined; the specific structure of the dust suction port 2010 is defined; the specific structure of the dust suction head 3 is defined; and the specific structure of the absorption port 4 is defined.
[0104] The descaling component 2 consists of an assembly box 201, a vacuum motor 202, a vacuum fan blade 203, an isolation net 204, a storage slot 205, a storage box 206, a ventilation hole 207, a vacuum pipe 208, a vacuum ring 209, and a vacuum port 2010.
[0105] Therefore, in the surface-cleaning heat collection and heating device of this utility model, the functions of each component are as follows: Assembly box 201 provides installation space for other components and forms a sealed area to collect and absorb incoming dust.
[0106] The vacuum motor 202 is used to provide power to adsorb and clean the dust on the surface of the housing 1 of the heat collection and heating device.
[0107] The vacuum fan blade 203 converts the power of the vacuum motor 202 into suction to adsorb and clean the dust on the surface of the housing 1 of the heat collection and heating device.
[0108] The isolation net 204 separates the vacuum motor 202 and the vacuum fan blade 203 on the upper part of the isolation net 204, preventing them from mixing with the dust and other impurities collected in the storage box 206.
[0109] Storage slot 205 is used to install storage box 206.
[0110] Storage box 206 is used to store collected dust.
[0111] Ventilation hole 207 provides an air outlet to create airflow.
[0112] The suction tube 208 is used to transmit the generated suction force.
[0113] The suction ring 209 transfers suction power to the surface of the housing 1 of the heat collection and heating device.
[0114] The suction port 2010 is used to remove dust and other debris from the surface of the housing 1.
[0115] The vacuum head 3 can concentrate multiple vacuum ports 2010 together to increase suction power and remove dust from the surface of the housing 1.
[0116] This utility model discloses a surface cleaning and heat collection device, the working principle of which is as follows: When cleaning the surface of the housing 1, the dust collection motor 202 on the descaling component 2 is activated. The dust collection motor 202 drives the dust collection fan blades 203 to rotate inside the assembly box 201, thereby generating suction. At this time, the suction force passes through the dust collection pipe 208, and the dust collection pipe 208 uses the dust collection ring 209 in conjunction with the dust collection port 2010 to absorb dust and other impurities from the surface of the housing 1. Since the dust collection port 2010 is equipped with a dust collection head 3, the dust collection head 3... The top of the device is arranged in a ring shape, with the absorption ports 4 evenly distributed on the outer wall of the ring. This allows for comprehensive cleaning of dust and other impurities on the surface of the housing 1 using multiple absorption ports 4 on the surface of the suction head 3. This avoids incomplete cleaning of dust and other impurities on the surface of the housing 1, improving the cleaning effect of the housing 1. The absorbed dust and other impurities will enter the storage box 206, facilitating subsequent handling of dust and other impurities and preventing dust and other impurities from adhering to the housing 1 and accelerating corrosion, thus extending the service life of the housing 1.
[0117] Example 6 like Figure 1 and Figure 2 As shown in Example 1, Example 6 of this utility model also includes a clean heat collection and heating device, similar to Example 1. The surface of the housing 1 of the clean heat collection and heating device is provided with a descaling component 2 for self-cleaning. The descaling component 2 includes an assembly box 201 fixed to the bottom of the housing 1. A vacuum motor 202 is fixedly installed at the top of the inner cavity of the assembly box 201. A vacuum fan blade 203 is fixedly installed at the output end of the vacuum motor 202. An isolation net 204 is fixedly installed in the inner cavity of the assembly box 201. The assembly box 201 has a storage slot 205 on its surface, located at the bottom of the vacuum motor 202 and the vacuum fan blade 203. A dust collection box 206 is movably installed inside the storage slot 205. A ventilation hole 207 is fixedly installed on the top of the assembly box 201. A vacuum pipe 208 is fixedly installed on the side of the assembly box 201. A vacuum ring 209 is fixedly installed on the surface of the box 1, and one end of the vacuum ring 209 is fixed to one end of the vacuum pipe 208. Multiple vacuum ports 2010 are opened on the surface of the vacuum ring 209.
[0118] like Figure 1As shown, unlike Embodiment 1, in Embodiment 6, a clean heat collection and heating device of this utility model, a dust suction ring 209 is arranged around the surface of the box 1, and a dust suction head 3 is fixedly installed on the surface of multiple dust suction ports 2010. The top of the dust suction head 3 is a circular plate, and multiple sets of impurity absorption ports 4 are opened on the circular periphery of the top of the dust suction head 3. A heat conduction component 5 is provided on the top of the assembly box 201, an isolation component 6 is provided in the inner cavity of the assembly box 201, and a transmission component 7 is provided on the outer side of the assembly box 201.
[0119] Compared to Example 1, Example 6 provides a way of arranging the suction ring 209. The principle is that the suction ring 209 is arranged around the surface of the box 1, which can ensure that the surface of the box 1 is cleaned and impurities are removed.
[0120] Compared to Embodiment 1, Embodiment 6 also provides a specific structure for the suction port 2010. The principle is that a suction head 3 is fixedly installed on the surface of each of the multiple suction ports 2010, which can concentrate the multiple suction ports 2010 together to increase the suction power, so as to adsorb dust and other substances on the surface of the box 1.
[0121] Compared to Example 1, Example 6 also provides a vacuum head 3 in the form of a plate. The principle is that the top of the vacuum head 3 is designed as a circular plate to facilitate the concentration of suction power.
[0122] Compared to Example 1, Example 6 adds an absorption port 4. The principle is to open multiple sets of absorption ports 4 for impurities around the top circular periphery of the suction head 3 so as to concentrate the output of a larger suction force.
[0123] Compared to Example 1, Example 6 adds an absorption port 4. The principle is to open multiple sets of absorption ports 4 for impurities around the top circular periphery of the suction head 3 so as to concentrate the output of a larger suction force.
[0124] Compared to Example 1, Example 6 adds a heat-conducting component 5. The principle is that a heat-conducting component 5 is provided on the top of the assembly box 201 to collect heat.
[0125] Compared to Example 1, Example 6 adds an isolation component 6. The principle is that the inner cavity of the assembly box 201 is also provided with an isolation component 6, which is used to close the isolation net 204.
[0126] Compared to Embodiment 1, Embodiment 6 adds a transmission component 7, which is based on the principle that the transmission component 7 is provided on the outside of the assembly box 201.
[0127] The following is a detailed description of a surface-cleaning heat collection and heating device of the present invention, which is described in Example 6.
[0128] The clean thermal energy collection and heating device here is an existing clean thermal energy collection and heating device. This device is a device that uses clean energy to provide heating, aiming to reduce pollutant emissions and energy consumption, while providing safe, green and economical heat.
[0129] Compared with the prior art, in Embodiment 6, the improvement of the cleaning heat collection and heating device of the present invention that can perform surface cleaning is as follows: a descaling component 2 for self-cleaning is added to the surface of the housing 1 of the existing cleaning heat collection and heating device, and the arrangement of the dust suction ring 209 is defined; the specific structure of the dust suction port 2010 is defined; the specific structure of the dust suction head 3 is defined; the specific structure of the absorption port 4 is defined; and a heat conduction component 5, an isolation component 6, and a transmission component 7 are added.
[0130] The descaling component 2 consists of an assembly box 201, a vacuum motor 202, a vacuum fan blade 203, an isolation net 204, a storage slot 205, a storage box 206, a ventilation hole 207, a vacuum pipe 208, a vacuum ring 209, and a vacuum port 2010.
[0131] Therefore, in the surface-cleaning heat collection and heating device of this utility model, the functions of each component are as follows: Assembly box 201 provides installation space for other components and forms a sealed area to collect and absorb incoming dust.
[0132] The vacuum motor 202 is used to provide power to adsorb and clean the dust on the surface of the housing 1 of the heat collection and heating device.
[0133] The vacuum fan blade 203 converts the power of the vacuum motor 202 into suction to adsorb and clean the dust on the surface of the housing 1 of the heat collection and heating device.
[0134] The isolation net 204 separates the vacuum motor 202 and the vacuum fan blade 203 on the upper part of the isolation net 204, preventing them from mixing with the dust and other impurities collected in the storage box 206.
[0135] Storage slot 205 is used to install storage box 206.
[0136] Storage box 206 is used to store collected dust.
[0137] Ventilation hole 207 provides an air outlet to create airflow.
[0138] The suction tube 208 is used to transmit the generated suction force.
[0139] The suction ring 209 transfers suction power to the surface of the housing 1 of the heat collection and heating device.
[0140] The suction port 2010 is used to remove dust and other debris from the surface of the housing 1.
[0141] The vacuum head 3 can concentrate multiple vacuum ports 2010 together to increase suction power and remove dust from the surface of the housing 1.
[0142] The heat-conducting component 5 is used to collect heat.
[0143] Isolation component 6 is used to enclose isolation netting 204.
[0144] The transmission component 7 is used for heat transfer.
[0145] This utility model discloses a surface cleaning and heat collection device, the working principle of which is as follows: When cleaning the surface of the housing 1, the dust collection motor 202 on the descaling component 2 is activated. The dust collection motor 202 drives the dust collection fan blades 203 to rotate inside the assembly box 201, thereby generating suction. At this time, the suction force passes through the dust collection pipe 208, and the dust collection pipe 208 uses the dust collection ring 209 in conjunction with the dust collection port 2010 to absorb dust and other impurities from the surface of the housing 1. Since the dust collection port 2010 is equipped with a dust collection head 3, the dust collection head 3... The top of the device is arranged in a ring shape, with the absorption ports 4 evenly distributed on the outer wall of the ring. This allows for comprehensive cleaning of dust and other impurities on the surface of the housing 1 using multiple absorption ports 4 on the surface of the suction head 3. This avoids incomplete cleaning of the housing 1 and improves the cleaning effect. The absorbed dust and other impurities enter the storage box 206, facilitating subsequent dust and impurity disposal and preventing dust and impurities from adhering to the housing 1 and accelerating corrosion, thus extending the service life of the housing 1. After the isolation component 6 seals the isolation mesh 204, the heat collected by the heat conduction component 5 into the housing 1 is discharged at a higher temperature along with the generated airflow through the transmission component 7, adsorbing the dust on the surface of the housing 1.
[0146] Example 7 like Figure 1 and Figure 2As shown in Example 1, Example 7 of this utility model also includes a clean heat collection and heating device, similar to Example 1. The surface of the housing 1 of the clean heat collection and heating device is provided with a descaling component 2 for self-cleaning. The descaling component 2 includes an assembly box 201 fixed to the bottom of the housing 1. A vacuum motor 202 is fixedly installed at the top of the inner cavity of the assembly box 201. A vacuum fan blade 203 is fixedly installed at the output end of the vacuum motor 202. An isolation net 204 is fixedly installed in the inner cavity of the assembly box 201. The assembly box 201 has a storage slot 205 on its surface, located at the bottom of the vacuum motor 202 and the vacuum fan blade 203. A dust collection box 206 is movably installed inside the storage slot 205. A ventilation hole 207 is fixedly installed on the top of the assembly box 201. A vacuum pipe 208 is fixedly installed on the side of the assembly box 201. A vacuum ring 209 is fixedly installed on the surface of the box 1, and one end of the vacuum ring 209 is fixed to one end of the vacuum pipe 208. Multiple vacuum ports 2010 are opened on the surface of the vacuum ring 209.
[0147] like Figure 1 As shown, unlike Embodiment 1, in Embodiment 7 of this utility model, a clean heat collection and heating device, a dust suction ring 209 is arranged around the surface of the housing 1, and a dust suction head 3 is fixedly installed on the surface of multiple dust suction ports 2010. The top of the dust suction head 3 is a circular plate, and multiple sets of impurity absorption ports 4 are opened on the circular periphery of the top of the dust suction head 3. A heat conduction component 5 is provided on the top of the assembly box 201, and an isolation component 6 is also provided in the inner cavity of the assembly box 201. A transmission component 7 is provided on the outer side of the assembly box 201. The heat conduction component 5 includes an exhaust pipe 501 fixed outside the ventilation hole 207 on the assembly box 201. A guide hole 502 is opened on one side of the exhaust pipe 501, and one end of the exhaust pipe 501 corresponds to the heat dissipation port on the surface of the housing 1. Two first valves 503 are fixedly installed inside the exhaust pipe 501.
[0148] Compared to Example 1, Example 7 provides a way of arranging the suction ring 209. The principle is that the suction ring 209 is arranged around the surface of the box 1, which can ensure that the surface of the box 1 is adsorbed and cleaned.
[0149] Compared to Embodiment 1, Embodiment 7 also provides a specific structure for the suction port 2010. The principle is that a suction head 3 is fixedly installed on the surface of each of the multiple suction ports 2010, which can concentrate the multiple suction ports 2010 together to increase the suction power, so as to adsorb dust and other objects on the surface of the box 1.
[0150] Compared to Example 1, Example 7 also provides a vacuum head 3 in the form of a plate. The principle is that the top of the vacuum head 3 is designed as a circular plate to facilitate the concentration of suction power.
[0151] Compared to Example 1, Example 7 adds an absorption port 4. The principle is to open multiple sets of absorption ports 4 for impurities around the top circular periphery of the suction head 3 so as to concentrate the output of a larger suction force.
[0152] Compared to Example 1, Example 7 adds an absorption port 4. The principle is to open multiple sets of absorption ports 4 for impurities around the top circular periphery of the suction head 3 so as to concentrate the output of a larger suction force.
[0153] Compared to Embodiment 1, Embodiment 7 adds a heat-conducting component 5 and defines the heat-conducting component 5 as including an exhaust pipe 501 fixed outside the ventilation hole 207 on the assembly box 201. A guide hole 502 is opened on one side of the exhaust pipe 501, and one end of the exhaust pipe 501 corresponds to the heat dissipation vent on the surface of the box 1. Two first valves 503 are fixedly installed inside the exhaust pipe 501. The principle is that the heat-conducting component 5 is provided on the top of the assembly box 201 to collect heat.
[0154] Compared to Example 1, Example 6 adds an isolation component 6. The principle is that the inner cavity of the assembly box 201 is also provided with an isolation component 6, which is used to close the isolation net 204.
[0155] Compared to Embodiment 1, Embodiment 6 adds a transmission component 7, which is based on the principle that the transmission component 7 is provided on the outside of the assembly box 201.
[0156] The following is a detailed description of a surface-cleaning heat collection and heating device of the present invention, which is described in Example 7.
[0157] The clean thermal energy collection and heating device here is an existing clean thermal energy collection and heating device. This device is a device that uses clean energy to provide heating, aiming to reduce pollutant emissions and energy consumption, while providing safe, green and economical heat.
[0158] Compared with the prior art, in Embodiment 7, the improvement of the cleaning heat collection and heating device of the present invention that can perform surface cleaning is as follows: a descaling component 2 for self-cleaning is added to the surface of the housing 1 of the existing cleaning heat collection and heating device, and the arrangement of the suction ring 209 is defined; the specific structure of the suction port 2010 is defined; the specific structure of the suction head 3 is defined; the specific structure of the absorption port 4 is defined; a heat conduction component 5 is added and its specific structure is defined; an isolation component 6 is added; and a transmission component 7 is added.
[0159] The descaling component 2 consists of an assembly box 201, a vacuum motor 202, a vacuum fan blade 203, an isolation net 204, a storage slot 205, a storage box 206, a ventilation hole 207, a vacuum pipe 208, a vacuum ring 209, and a vacuum port 2010.
[0160] Therefore, in the surface-cleaning heat collection and heating device of this utility model, the functions of each component are as follows: Assembly box 201 provides installation space for other components and forms a sealed area to collect and absorb incoming dust.
[0161] The vacuum motor 202 is used to provide power to adsorb and clean the dust on the surface of the housing 1 of the heat collection and heating device.
[0162] The vacuum fan blade 203 converts the power of the vacuum motor 202 into suction to adsorb and clean the dust on the surface of the housing 1 of the heat collection and heating device.
[0163] The isolation net 204 separates the vacuum motor 202 and the vacuum fan blade 203 on the upper part of the isolation net 204, preventing them from mixing with the dust and other impurities collected in the storage box 206.
[0164] Storage slot 205 is used to install storage box 206.
[0165] Storage box 206 is used to store collected dust.
[0166] Ventilation hole 207 provides an air outlet to create airflow.
[0167] The suction tube 208 is used to transmit the generated suction force.
[0168] The suction ring 209 transfers suction power to the surface of the housing 1 of the heat collection and heating device.
[0169] The suction port 2010 is used to remove dust and other debris from the surface of the housing 1.
[0170] The vacuum head 3 can concentrate multiple vacuum ports 2010 together to increase suction power and remove dust from the surface of the housing 1.
[0171] The heat-conducting component 5 is used to collect heat.
[0172] Isolation component 6 is used to enclose isolation netting 204.
[0173] The transmission component 7 is used for heat transfer.
[0174] This utility model discloses a surface cleaning and heat collection device, the working principle of which is as follows: When cleaning the surface of the housing 1, the dust collection motor 202 on the descaling component 2 is activated. The dust collection motor 202 drives the dust collection fan blades 203 to rotate inside the assembly box 201, thereby generating suction. At this time, the suction force passes through the dust collection pipe 208, and the dust collection pipe 208 uses the dust collection ring 209 in conjunction with the dust collection port 2010 to absorb dust and other impurities from the surface of the housing 1. Since the dust collection port 2010 is equipped with a dust collection head 3, the dust collection head 3... The top of the device is arranged in a ring shape, with the absorption ports 4 evenly distributed on the outer wall of the ring. This allows for comprehensive cleaning of dust and other impurities on the surface of the housing 1 using multiple absorption ports 4 on the surface of the suction head 3. This avoids incomplete cleaning of dust and other impurities on the surface of the housing 1, improving the cleaning effect of the housing 1. The absorbed dust and other impurities will enter the storage box 206, facilitating subsequent handling of dust and other impurities and preventing dust and other impurities from adhering to the housing 1 and accelerating corrosion, thus extending the service life of the housing 1.
[0175] Close the first valve 503 on the corresponding guide hole 502, and then open the first valve 503 on one end of the exhaust pipe 501 facing the heat dissipation port on the surface of the box 1. At this time, when the vacuum motor 202 is started and the vacuum fan blade 203 is rotated, the exhaust pipe 501 will absorb the hot airflow discharged from the box 1. Then the hot airflow is conducted to the vacuum pipe 208 through the exhaust pipe 702. Finally, the vacuum pipe 208 uses the vacuum ring 209 in conjunction with the vacuum head 3 and the absorption port 4 on the vacuum port 2010 to evenly spray the heat energy, thereby ensuring the heat balance on the surface of the box 1 and preventing the box 1 from malfunctioning due to excessively low surface temperature.
[0176] Example 8 like Figure 1 and Figure 2As shown in Example 1, Example 8 of this utility model also includes a clean heat collection and heating device, similar to Example 1. The surface of the housing 1 of the clean heat collection and heating device is provided with a descaling component 2 for self-cleaning. The descaling component 2 includes an assembly box 201 fixed to the bottom of the housing 1. A vacuum motor 202 is fixedly installed at the top of the inner cavity of the assembly box 201. A vacuum fan blade 203 is fixedly installed at the output end of the vacuum motor 202. An isolation net 204 is fixedly installed in the inner cavity of the assembly box 201. The assembly box 201 has a storage slot 205 on its surface, located at the bottom of the vacuum motor 202 and the vacuum fan blade 203. A dust collection box 206 is movably installed inside the storage slot 205. A ventilation hole 207 is fixedly installed on the top of the assembly box 201. A vacuum pipe 208 is fixedly installed on the side of the assembly box 201. A vacuum ring 209 is fixedly installed on the surface of the box 1, and one end of the vacuum ring 209 is fixed to one end of the vacuum pipe 208. Multiple vacuum ports 2010 are opened on the surface of the vacuum ring 209.
[0177] like Figure 1 As shown, unlike Embodiment 1, in Embodiment 8, a clean heat collection and heating device of this utility model, a dust suction ring 209 is arranged around the surface of the housing 1, and a dust suction head 3 is fixedly installed on the surface of each of the multiple dust suction ports 2010. The top of the dust suction head 3 is a circular plate, and multiple sets of impurity absorption ports 4 are opened on the circular periphery of the top of the dust suction head 3; a heat conduction component 5 is provided on the top of the assembly box 201, an isolation component 6 is also provided in the inner cavity of the assembly box 201, and a transmission component 7 is provided on the outer side of the assembly box 201; the heat conduction component 5 includes a channel fixed on the assembly box 201. The exhaust pipe 501 outside the air vent 207 has a guide hole 502 on one side. One end of the exhaust pipe 501 corresponds to the heat dissipation vent on the surface of the box 1. Two first valves 503 are fixedly installed inside the exhaust pipe 501. The inner cavity of the assembly box 201 is also provided with an isolation component 6. The isolation component 6 includes a merging motor 601 fixed inside the assembly box 201. A steering rod 602 is fixedly installed at the output end of the merging motor 601. A sealing plate 603 is fixedly installed on the outside of the steering rod 602, and the sealing plate 603 is used to cover the isolation net 204.
[0178] Compared to Example 1, Example 8 provides a way of arranging the suction ring 209. The principle is that the suction ring 209 is arranged around the surface of the box 1, which can ensure that the surface of the box 1 is adsorbed and cleaned.
[0179] Compared to Embodiment 1, Embodiment 8 also provides a specific structure for the suction port 2010. The principle is that a suction head 3 is fixedly installed on the surface of each of the multiple suction ports 2010, which can concentrate the multiple suction ports 2010 together to increase the suction power, so as to adsorb dust and other substances on the surface of the box 1.
[0180] Compared to Example 1, Example 8 also provides a vacuum head 3 in the form of a plate, the principle of which is to design the top of the vacuum head 3 as a circular plate to facilitate the concentration of suction power.
[0181] Compared to Example 1, Example 8 adds an absorption port 4. The principle is to open multiple sets of absorption ports 4 for impurities around the top circular periphery of the suction head 3 so as to concentrate the output of a larger suction force.
[0182] Compared to Example 1, Example 8 adds an absorption port 4. The principle is to open multiple sets of absorption ports 4 for impurities around the top circular periphery of the suction head 3 so as to concentrate the output of a larger suction force.
[0183] Compared to Embodiment 1, Embodiment 8 adds a heat-conducting component 5 and defines the heat-conducting component 5 as including an exhaust pipe 501 fixed outside the ventilation hole 207 on the assembly box 201. A guide hole 502 is opened on one side of the exhaust pipe 501. One end of the exhaust pipe 501 corresponds to the heat dissipation vent on the surface of the box 1. Two first valves 503 are fixedly installed inside the exhaust pipe 501. The principle is that the heat-conducting component 5 is provided on the top of the assembly box 201 to collect heat.
[0184] Compared to Embodiment 1, Embodiment 8 adds a heat-conducting component 5 and defines the heat-conducting component 5 as including an exhaust pipe 501 fixed outside the ventilation hole 207 on the assembly box 201. A guide hole 502 is opened on one side of the exhaust pipe 501. One end of the exhaust pipe 501 corresponds to the heat dissipation vent on the surface of the box 1. Two first valves 503 are fixedly installed inside the exhaust pipe 501. The principle is that the heat-conducting component 5 is provided on the top of the assembly box 201 to collect heat.
[0185] Compared to Example 1, Example 8 adds an isolation component 6. The principle is that the inner cavity of the assembly box 201 is also provided with an isolation component 6, which is used to seal the isolation net 204.
[0186] The following is a detailed description of a surface-cleaning heat collection and heating device of the present invention, which is described in Example 8.
[0187] The clean thermal energy collection and heating device here is an existing clean thermal energy collection and heating device. This device is a device that uses clean energy to provide heating, aiming to reduce pollutant emissions and energy consumption, while providing safe, green and economical heat.
[0188] Compared with the prior art, in embodiment 8, the improvement of the cleaning heat collection and heating device of the present invention for surface cleaning is as follows: a descaling component 2 for self-cleaning is added to the surface of the housing 1 of the existing cleaning heat collection and heating device, and the arrangement of the suction ring 209 is defined; the specific structure of the suction port 2010 is defined; the specific structure of the suction head 3 is defined; the specific structure of the absorption port 4 is defined; a heat conduction component 5 is added and its specific structure is defined; an isolation component 6 is added and its specific structure is defined; and a transmission component 7 is added.
[0189] The descaling component 2 consists of an assembly box 201, a vacuum motor 202, a vacuum fan blade 203, an isolation net 204, a storage slot 205, a storage box 206, a ventilation hole 207, a vacuum pipe 208, a vacuum ring 209, and a vacuum port 2010.
[0190] Therefore, in the surface-cleaning heat collection and heating device of this utility model, the functions of each component are as follows: Assembly box 201 provides installation space for other components and forms a sealed area to collect and absorb incoming dust.
[0191] The vacuum motor 202 is used to provide power to adsorb and clean the dust on the surface of the housing 1 of the heat collection and heating device.
[0192] The vacuum fan blade 203 converts the power of the vacuum motor 202 into suction to adsorb and clean the dust on the surface of the housing 1 of the heat collection and heating device.
[0193] The isolation net 204 separates the vacuum motor 202 and the vacuum fan blade 203 on the upper part of the isolation net 204, preventing them from mixing with the dust and other impurities collected in the storage box 206.
[0194] Storage slot 205 is used to install storage box 206.
[0195] Storage box 206 is used to store collected dust.
[0196] Ventilation hole 207 provides an air outlet to create airflow.
[0197] The suction tube 208 is used to transmit the generated suction force.
[0198] The suction ring 209 transfers suction power to the surface of the housing 1 of the heat collection and heating device.
[0199] The suction port 2010 is used to remove dust and other debris from the surface of the housing 1.
[0200] The vacuum head 3 can concentrate multiple vacuum ports 2010 together to increase suction power and remove dust from the surface of the housing 1.
[0201] The heat-conducting component 5 is used to collect heat.
[0202] Isolation component 6 is used to enclose isolation netting 204.
[0203] The transmission component 7 is used for heat transfer.
[0204] This utility model discloses a surface cleaning and heat collection device, the working principle of which is as follows: When cleaning the surface of the housing 1, the dust collection motor 202 on the descaling component 2 is activated. The dust collection motor 202 drives the dust collection fan blades 203 to rotate inside the assembly box 201, thereby generating suction. At this time, the suction force passes through the dust collection pipe 208, and the dust collection pipe 208 uses the dust collection ring 209 in conjunction with the dust collection port 2010 to absorb dust and other impurities from the surface of the housing 1. Since the dust collection port 2010 is equipped with a dust collection head 3, the dust collection head 3... The top of the suction head 3 is arranged in a ring shape, with the suction ports 4 evenly distributed on the outer wall of the ring. This allows for comprehensive cleaning of dust and other impurities from the surface of the housing 1 using multiple suction ports 4 on the surface of the suction head 3. This avoids incomplete cleaning of the housing 1 surface and improves the cleaning effect. The absorbed dust and other impurities will enter the storage box 206, facilitating subsequent dust and impurity disposal and preventing dust and impurities from adhering to the housing 1 and accelerating corrosion, thus extending the service life of the housing 1. The heat-conducting component 5 collects the heat from the housing 1 and transfers it to the generated suction force, so that dust on the surface of the housing 1 can be adsorbed at a higher temperature.
[0205] While maintaining the heat on the surface of the enclosure 1, the merging motor 601 on the isolation component 6 can be started first. At this time, the merging motor 601 will rotate by driving the steering rod 602 to achieve the closure of the isolation net 204 by the sealing plate 603.
[0206] Close the first valve 503 on the corresponding guide hole 502, and then open the first valve 503 on one end of the exhaust pipe 501 facing the heat dissipation port on the surface of the box 1. At this time, when the vacuum motor 202 is started and the vacuum fan blade 203 is rotated, the exhaust pipe 501 will absorb the hot airflow discharged from the box 1. Then the hot airflow is conducted to the vacuum pipe 208 through the exhaust pipe 702. Finally, the vacuum pipe 208 uses the vacuum ring 209 in conjunction with the vacuum head 3 and the absorption port 4 on the vacuum port 2010 to evenly spray the heat energy, thereby ensuring the heat balance on the surface of the box 1 and preventing the box 1 from malfunctioning due to excessively low surface temperature.
[0207] Example 9 like Figures 1 to 3As shown in Example 1, Example 9 of this utility model also includes a clean heat collection and heating device, similar to Example 1. The surface of the housing 1 of the clean heat collection and heating device is provided with a self-cleaning descaling component 2. The descaling component 2 includes an assembly box 201 fixed to the bottom of the housing 1. A vacuum motor 202 is fixedly installed at the top of the inner cavity of the assembly box 201. A vacuum fan blade 203 is fixedly installed at the output end of the vacuum motor 202. An isolation net 204 is fixedly installed in the inner cavity of the assembly box 201. The assembly box 201 has a storage slot 205 on its surface, located at the bottom of the vacuum motor 202 and the vacuum fan blade 203. A dust collection box 206 is movably installed inside the storage slot 205. A ventilation hole 207 is fixedly installed on the top of the assembly box 201. A vacuum pipe 208 is fixedly installed on the side of the assembly box 201. A vacuum ring 209 is fixedly installed on the surface of the box 1, and one end of the vacuum ring 209 is fixed to one end of the vacuum pipe 208. Multiple vacuum ports 2010 are opened on the surface of the vacuum ring 209.
[0208] like Figure 1 As shown, unlike Embodiment 1, in Embodiment 8, a clean heat collection and heating device of this utility model, a dust suction ring 209 is arranged around the surface of the housing 1, and a dust suction head 3 is fixedly installed on the surface of multiple dust suction ports 2010. The top of the dust suction head 3 is a circular plate, and multiple sets of impurity absorption ports 4 are opened around the circular periphery of the top of the dust suction head 3. A heat conduction component 5 is provided on the top of the assembly box 201. The heat conduction component 5 includes an exhaust pipe 501 fixed outside the ventilation hole 207 on the assembly box 201. A guide hole 502 is opened on one side of the exhaust pipe 501, and one end of the exhaust pipe 501 corresponds to the heat dissipation port on the surface of the housing 1. Two first valves are fixedly installed inside the exhaust pipe 501. 503, the inner cavity of the assembly box 201 is also provided with an isolation component 6. The isolation component 6 includes a merging motor 601 fixed inside the assembly box 201. A steering rod 602 is fixedly installed at the output end of the merging motor 601. A sealing plate 603 is fixedly installed on the outside of the steering rod 602, and the sealing plate 603 is used to cover the isolation net 204. A transmission component 7 is provided on the outside of the assembly box 201. The transmission component 7 includes an exhaust port 701 opened on one side of the assembly box 201. An exhaust pipe 702 is fixedly installed on the outside of the exhaust port 701. One end of the exhaust pipe 702 is fixed to the surface of the suction pipe 208. A second valve 703 is provided in the inner cavity of both the exhaust pipe 702 and the suction pipe 208.
[0209] Compared to Example 1, Example 9 provides an arrangement of the suction ring 209. The principle is that the suction ring 209 is arranged around the surface of the box 1, which can ensure that the surface of the box 1 is cleaned and impurities are removed.
[0210] Compared to Embodiment 1, Embodiment 9 also provides a specific structure for the suction port 2010. The principle is that a suction head 3 is fixedly installed on the surface of each of the multiple suction ports 2010, which can concentrate the multiple suction ports 2010 together to increase the suction power, so as to adsorb dust and other substances on the surface of the box 1.
[0211] Compared to Example 1, Example 9 also provides a vacuum head 3 in the form of a plate, the principle of which is to design the top of the vacuum head 3 as a circular plate to facilitate the concentration of suction power.
[0212] Compared to Example 1, Example 9 adds an absorption port 4. The principle is to open multiple sets of impurity absorption ports 4 around the top circular periphery of the suction head 3 so as to concentrate the output of a larger suction force.
[0213] Compared to Example 1, Example 9 adds an absorption port 4. The principle is to open multiple sets of impurity absorption ports 4 around the top circular periphery of the suction head 3 so as to concentrate the output of a larger suction force.
[0214] Compared to Embodiment 1, Embodiment 9 adds a heat-conducting component 5 and defines the heat-conducting component 5 as including an exhaust pipe 501 fixed outside the ventilation hole 207 on the assembly box 201. A guide hole 502 is opened on one side of the exhaust pipe 501. One end of the exhaust pipe 501 corresponds to the heat dissipation vent on the surface of the box 1. Two first valves 503 are fixedly installed inside the exhaust pipe 501. The principle is that the heat-conducting component 5 is provided on the top of the assembly box 201 to collect heat.
[0215] Compared to Embodiment 1, Embodiment 9 adds a heat-conducting component 5 and defines the heat-conducting component 5 as including an exhaust pipe 501 fixed outside the ventilation hole 207 on the assembly box 201. A guide hole 502 is opened on one side of the exhaust pipe 501. One end of the exhaust pipe 501 corresponds to the heat dissipation vent on the surface of the box 1. Two first valves 503 are fixedly installed inside the exhaust pipe 501. The principle is that the heat-conducting component 5 is provided on the top of the assembly box 201 to collect heat.
[0216] Compared to Example 1, Example 9 adds an isolation component 6. The principle is that the inner cavity of the assembly box 201 is also provided with an isolation component 6, which is used to seal the isolation net 204.
[0217] Compared to Example 1, Example 9 adds an isolation component 6. The principle is that the inner cavity of the assembly box 201 is also provided with a transmission component 7 for heat transfer.
[0218] The following is a detailed description of a surface-cleaning heat collection and heating device of the present invention, which is described in Example 9.
[0219] The clean thermal energy collection and heating device here is an existing clean thermal energy collection and heating device. This device is a device that uses clean energy to provide heating, aiming to reduce pollutant emissions and energy consumption, while providing safe, green and economical heat.
[0220] Compared with the prior art, in Embodiment 9, the improvement of the cleaning heat collection and heating device of the present invention for surface cleaning is as follows: a descaling component 2 for self-cleaning is added to the surface of the housing 1 of the existing cleaning heat collection and heating device, and the arrangement of the suction ring 209 is defined; the specific structure of the suction port 2010 is defined; the specific structure of the suction head 3 is defined; the specific structure of the absorption port 4 is defined; a heat conduction component 5 is added and its specific structure is defined; an isolation component 6 is added and its specific structure is defined; and a transmission component 7 is added and its specific structure is defined.
[0221] The descaling component 2 consists of an assembly box 201, a vacuum motor 202, a vacuum fan blade 203, an isolation net 204, a storage slot 205, a storage box 206, a ventilation hole 207, a vacuum pipe 208, a vacuum ring 209, and a vacuum port 2010.
[0222] Therefore, in the surface-cleaning heat collection and heating device of this utility model, the functions of each component are as follows: Assembly box 201 provides installation space for other components and forms a sealed area to collect and absorb incoming dust.
[0223] The vacuum motor 202 is used to provide power to adsorb and clean the dust on the surface of the housing 1 of the heat collection and heating device.
[0224] The vacuum fan blade 203 converts the power of the vacuum motor 202 into suction to adsorb and clean the dust on the surface of the housing 1 of the heat collection and heating device.
[0225] The isolation net 204 separates the vacuum motor 202 and the vacuum fan blade 203 on the upper part of the isolation net 204, preventing them from mixing with the dust and other impurities collected in the storage box 206.
[0226] Storage slot 205 is used to install storage box 206.
[0227] Storage box 206 is used to store collected dust.
[0228] Ventilation hole 207 provides an air outlet to create airflow.
[0229] The suction tube 208 is used to transmit the generated suction force.
[0230] The suction ring 209 transfers suction power to the surface of the housing 1 of the heat collection and heating device.
[0231] The suction port 2010 is used to remove dust and other debris from the surface of the housing 1.
[0232] The vacuum head 3 can concentrate multiple vacuum ports 2010 together to increase suction power and remove dust from the surface of the housing 1.
[0233] The heat-conducting component 5 is used to collect heat.
[0234] Isolation component 6 is used to enclose isolation netting 204.
[0235] The transmission component 7 is used for heat transfer.
[0236] This utility model discloses a surface cleaning and heat collection device, the working principle of which is as follows: When cleaning the surface of the housing 1, the dust collection motor 202 on the descaling component 2 is activated. The dust collection motor 202 drives the dust collection fan blades 203 to rotate inside the assembly box 201, thereby generating suction. At this time, the suction force passes through the dust collection pipe 208, and the dust collection pipe 208 uses the dust collection ring 209 in conjunction with the dust collection port 2010 to absorb dust and other impurities from the surface of the housing 1. Since the dust collection port 2010 is equipped with a dust collection head 3, the dust collection head 3... The top of the suction head 3 is arranged in a ring shape, with the suction ports 4 evenly distributed on the outer wall of the ring. This allows for comprehensive cleaning of dust and other impurities from the surface of the housing 1 using multiple suction ports 4 on the surface of the suction head 3. This avoids incomplete cleaning of the housing 1 surface and improves the cleaning effect. The absorbed dust and other impurities will enter the storage box 206, facilitating subsequent dust and impurity disposal and preventing dust and impurities from adhering to the housing 1 and accelerating corrosion, thus extending the service life of the housing 1. The heat-conducting component 5 collects the heat from the housing 1 and transfers it to the generated suction force, so that dust on the surface of the housing 1 can be adsorbed at a higher temperature.
[0237] To maintain the heat on the surface of the housing 1, the merging motor 601 on the isolation assembly 6 can be started first. The merging motor 601 will rotate the steering rod 602 to close the isolation mesh 204 via the sealing plate 603. Then, the second valve 703 located inside the suction pipe 208 will be activated, closing the connection point of the assembly housing 201. Next, the second valve 703 installed inside the exhaust pipe 702 will be opened, forming a fan structure. The first valve 503 on the corresponding guide hole 502 will then be closed. When the first valve 503 of the exhaust pipe 501 facing the heat dissipation vent on the surface of the housing 1 is opened, the vacuum motor 202 is started and the vacuum fan blade 203 is rotated. The exhaust pipe 501 will absorb the hot airflow discharged from the housing 1. The hot airflow is then conducted to the vacuum pipe 208 through the exhaust pipe 702. Finally, the vacuum pipe 208 uses the vacuum ring 209 in conjunction with the vacuum head 3 and the absorption port 4 on the vacuum port 2010 to evenly spray the heat energy, thereby ensuring the heat balance on the surface of the housing 1 and preventing the housing 1 from malfunctioning due to excessively low surface temperature.
[0238] The foregoing description illustrates and describes several preferred embodiments of the utility model. However, as previously stated, it should be understood that the utility model is not limited to the forms disclosed herein and should not be construed as excluding other embodiments. It can be used in various other combinations, modifications, and environments, and can be altered within the scope of the utility model concept described herein through the foregoing teachings or the technology or knowledge in related fields. Any modifications and variations made by those skilled in the art that do not depart from the spirit and scope of the utility model should be within the protection scope of the appended claims.
Claims
1. A surface cleanable solar thermal heating and power plant, characterised in that: The surface of the housing of the clean heat collection and heating device is equipped with a descaling component. The descaling component includes an assembly box fixed to the bottom of the housing. A vacuum motor is fixedly installed at the top of the inner cavity of the assembly box. A vacuum fan blade is fixedly installed at the output end of the vacuum motor. An isolation net is fixedly installed in the inner cavity of the assembly box and is located at the bottom of the vacuum motor and the vacuum fan blade. A storage groove is opened on the surface of the assembly box. A dust collection box is movably installed inside the storage groove. A ventilation hole is fixedly installed on the top of the assembly box. A vacuum pipe is fixedly installed on the side of the assembly box. A vacuum ring is fixedly installed on the surface of the housing, and one end of the vacuum ring is fixed to one end of the vacuum pipe. Multiple vacuum ports are opened on the surface of the vacuum ring.
2. The surface cleanable, hydronic heating and cooling apparatus of claim 1, wherein, The dust suction ring is arranged around the surface of the box.
3. The surface cleanable, hydronic heating and cooling apparatus of claim 2, wherein, Each of the multiple suction ports has a suction head fixedly installed on its surface.
4. The surface cleanable, hydronic heating and cooling apparatus of claim 3, wherein, The top of the vacuum head is a circular plate.
5. The surface cleanable, hydronic heating and cooling apparatus of claim 4, wherein, The top circular periphery of the vacuum head has multiple sets of impurity absorption ports.
6. The surface-cleaning heat collection and heating device according to claim 5, characterized in that, A heat-conducting component is provided on the top of the assembly box.
7. The surface cleanable, hydronic heating and cooling apparatus of claim 6, wherein, The heat-conducting component includes an exhaust pipe fixed to the outside of the ventilation hole on the assembly box. A guide hole is opened on one side of the exhaust pipe, and one end of the exhaust pipe corresponds to the heat dissipation vent on the surface of the box. Two first valves are fixedly installed inside the exhaust pipe.
8. The surface cleanable, hydronic heating and cooling apparatus of claim 7, wherein, The inner cavity of the assembly box is also equipped with an isolation component.
9. The surface cleanable, hydronic heating and cooling apparatus of claim 8, wherein, The isolation assembly includes a combined motor fixed inside the assembly box, a steering rod fixedly installed at the output end of the combined motor, and a sealing plate fixedly installed on the outside of the steering rod, the sealing plate being used to cover the isolation net.
10. The surface cleanable, hydronic heating and cooling apparatus of claim 9, wherein, A transmission component is provided on the outside of the assembly box.
11. The surface cleanable, hydronic heating and cooling apparatus of claim 10, wherein, The transmission component includes an exhaust vent on one side of the assembly box, an exhaust pipe is fixedly installed on the outside of the exhaust vent, one end of the exhaust pipe is fixed to the surface of the suction pipe, and a second valve is provided in the inner cavity of both the exhaust pipe and the suction pipe.