Energy-saving construction device for industrial and civil buildings

The filter screen is automatically cleaned by a cleaning brush driven by a mobile motor. Combined with a reinforced structural block and a V-shaped fan blade driven by a hybrid motor, it solves the deficiencies in filtration and cleaning, structural support, material mixing, and water storage in construction equipment, and realizes a highly efficient and energy-saving construction device.

CN121754939AInactive Publication Date: 2026-03-31CHINA CHEMICAL ENGINEERING LIANYUNGANG CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-12-08
Publication Date
2026-03-31
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

Existing construction equipment suffers from several drawbacks during filtration and cleaning. Filters are prone to clogging, manual cleaning is cumbersome and debris tends to accumulate, structural support is insufficient and prone to deformation and displacement, material mixing has dead zones leading to uneven mixing, and storage and water supply designs are inadequate, resulting in water accumulation and residue.

Method used

The cleaning brush driven by a mobile motor automatically cleans the filter screen, and the rectangular debris outlet promptly discharges impurities; the main support plate with reinforced structural blocks and the auxiliary stabilizing plate are combined to enhance structural strength; the mixing motor drives the V-shaped upper mixing fan blades and the arc-shaped lower mixing fan blades to achieve stirring without dead angles; the main water tank is equipped with an auxiliary water supply pipe and an overflow pipe to achieve flexible water supply and overflow protection.

Benefits of technology

It solves the problems of easy filter clogging and tedious manual cleaning, enhances structural stability, improves mixing uniformity and efficiency, ensures the flexibility of water storage and supply and prevents water accumulation, and improves the energy efficiency and synergy of construction as a whole.

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Abstract

The industrial and civil building energy-saving type construction device comprises a device body, the device body comprises a base, a collecting and storing device, a filtering and cleaning device and a machining device, the collecting and storing device is installed at the top of the base through screws, and the filtering and cleaning device is installed at the top of the collecting and storing device through screws; the machining device is installed on the top of the base and located in the collecting and storing device. The filtering and cleaning device comprises a filtering frame, a first mounting block, a second mounting block, a moving motor, a threaded rod, a guide rod, a sliding block body, a cleaning brush plate, cleaning bristles, a first welding plate and a second welding plate, the first welding plate is welded to one end of the filtering frame, and the second welding plate is welded to the other end of the filtering frame. According to the device, optimization and upgrading of the prior art are achieved in the four key dimensions of filtering and cleaning, structure supporting, material mixing and water storage and supply, and the energy-saving performance, the high efficiency and the collaboration of building construction are remarkably improved.
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Description

Technical Field

[0001] This invention relates to the field of building construction equipment technology, specifically to an energy-saving construction device for industrial and civil buildings. Background Technology

[0002] Construction equipment refers to the collective term for mechanical equipment and tools used in construction projects to complete various construction tasks. They are diverse in type and function. During construction, mixing tanks and rainwater harvesting systems are commonly used. The rainwater harvesting system filters, collects, and stores rainwater, which is then used to supply water to the mixing tanks.

[0003] Existing construction equipment has significant deficiencies in filtration and cleaning (filters are prone to clogging, manual cleaning is tedious and debris easily accumulates), structural support (insufficient strength leads to deformation and displacement, and the fixing method is rudimentary and results in poor stability), material mixing (the mixing structure has dead corners, leading to uneven mixing and low efficiency), and storage and water supply (imperfect water replenishment and drainage design, and easy accumulation of water residue inside). Therefore, solutions are needed. Summary of the Invention

[0004] The purpose of this invention is to provide an energy-saving construction device for industrial and civil buildings to solve the problems mentioned in the background art.

[0005] To achieve the above objectives, the present invention provides the following technical solution: An energy-saving construction device for industrial and civil buildings includes a device body. The device body includes a base, a collection and storage device, a filtration and cleaning device, and a processing device. The collection and storage device is screwed onto the top of the base, and the filtration and cleaning device is screwed onto the top of the collection and storage device. The processing device is installed on the top of the base and located inside the collection and storage device. The filtration and cleaning device includes a filter frame, a first mounting block, a second mounting block, a moving motor, a threaded rod, a guide rod, a sliding block, a cleaning brush plate, cleaning bristles, a first welding plate, and a second welding plate. The first welding plate is welded to one end of the filter frame, and the second welding plate is welded to the other end of the filter frame. At one end, the first mounting block is welded to the top of the first welding plate, and the second mounting block is welded to the top of the second mounting block. The threaded rod and the guide rod are both installed between the first mounting block and the second mounting block. A set of guide rods is provided. The sliding block is sleeved on the threaded rod and the guide rod. The cleaning brush plate is fixed to the bottom of the sliding block by screws. Several cleaning bristles are provided and several cleaning bristles are installed at the bottom of the cleaning brush plate. The moving motor is installed on the first mounting block, and the driving end of the moving motor is connected to one end of the threaded rod. Both the first welding plate and the second welding plate have a debris outlet on their surfaces, and the debris outlet has a rectangular structure.

[0006] In a preferred embodiment of the present invention, the filter frame has a rectangular structure, a filter screen is installed inside the filter frame, and a first positioning hole is provided at each of the four corners of the top of the filter frame.

[0007] In a preferred embodiment of the present invention, a protective device is welded to the outer end of the first mounting block. The protective device is located outside the moving motor and has a U-shaped structure. The protective device includes a first protective plate, a second protective plate, and a third protective plate. The first protective plate, the second protective plate, and the third protective plate are smoothly transitioned and integrally formed. The second protective plate and the third protective plate are both located at the bottom of the first protective plate.

[0008] In a preferred embodiment of the present invention, the collection and storage device includes a first support device, a second support device, and a main storage tank. The first support device, the second support device, and the main storage tank are all smoothly transitioned and integrally formed. The first support device is located at the top left end of the main storage tank, and the second support device is located at the bottom right end of the main storage tank.

[0009] In a preferred embodiment of the present invention, both the first support device and the second support device include a main support plate and an auxiliary stabilizing plate. The main support plate and the auxiliary stabilizing plate are smoothly transitioned and integrally formed. The auxiliary stabilizing plate is located at the bottom outer end of the main support plate. A number of reinforcing structural blocks are provided between the main support plate and the auxiliary stabilizing plate in a horizontally equidistant manner. The reinforcing structural blocks are L-shaped. A number of bottom fixing holes are opened on the surface of the auxiliary stabilizing plate.

[0010] In a preferred embodiment of the present invention, the processing device includes a tank base and a mixing device. The mixing device is installed in the tank base by screws. The tank base includes a first mounting plate, a second mounting plate, and support columns. The first mounting plate is located below the second mounting plate. There are three support columns, and the three support columns are welded between the first mounting plate and the second mounting plate. The surfaces of the first mounting plate and the second mounting plate are provided with several sets of disc holes. The middle of the first mounting plate and the second mounting plate is provided with an insertion port. The bottom of the first mounting plate is provided with a rubber anti-slip pad.

[0011] In a preferred embodiment of the present invention, the mixing device includes a main processing tank, a top cover, and a tank ring. The top cover is installed on the top of the main processing tank, and the tank ring is welded to the outside of the main processing tank. The surface of the tank ring is provided with a plurality of disc holes. The top of the top cover is provided with a feed pipe and a water inlet pipe. The top of the water inlet pipe is provided with a connecting flange, and the surface of the connecting flange is provided with a plurality of flange holes.

[0012] In a preferred embodiment of the present invention, the bottom of the main processing tank is arc-shaped, a discharge pipe is installed at the bottom of the main processing tank, the discharge pipe is L-shaped, and a first electrically controlled valve is installed on the discharge pipe.

[0013] In a preferred embodiment of the present invention, a mixing motor is installed at the center of the top of the top cover, and a mixing rod is installed at the bottom drive end of the mixing motor. The mixing rod is located inside the main processing tank. The bottom of the mixing rod is provided with a bottom mixing fan blade, which has an arc-shaped structure. A set of upper mixing fan blades are provided on both sides of the mixing rod in a symmetrical manner. The upper mixing fan blades have a V-shaped structure, and several sets of flow holes are opened on the surface of the upper mixing fan blades.

[0014] In a preferred embodiment of the present invention, an auxiliary water supply pipe and an overflow pipe are installed on the top right side of the main water tank. The bottom of the main water tank has an arc-shaped structure. A connection discharge is provided at the bottom of the main water tank. A second electrically controlled valve is installed inside the connection discharge pipe. A connection flange is also provided at the bottom of the connection discharge pipe.

[0015] Compared with the prior art, the beneficial effects of the present invention are: In the energy-saving construction device for industrial and civil buildings of this invention, the filter screen is automatically cleaned by a cleaning brush driven by a mobile motor, and the rectangular debris outlet is used to discharge debris in a timely manner, which completely solves the defects of existing technology such as easy clogging of the filter screen, tedious manual cleaning and easy accumulation of debris. In terms of structural support, a combination of a main support plate with reinforced structural blocks and an auxiliary stabilizing plate is adopted, supplemented by reliable fixation of the bottom fixing holes, which effectively enhances the structural strength, avoids the problems of easy deformation and displacement and simple fixation, and ensures stable operation of the device. When mixing materials, the mixing motor drives the V-shaped upper mixing fan blade with flow holes and the arc-shaped bottom mixing fan blade adapted to the arc-shaped bottom of the tank to achieve stirring without dead corners, which greatly improves the mixing uniformity and efficiency and overcomes the shortcomings of stirring dead corners and uneven mixing. In terms of storage and water supply, the main water tank is equipped with an auxiliary water supply pipe and an overflow pipe to achieve flexible water supply and overflow protection. The arc-shaped bottom end of the tank is combined with an electronically controlled discharge pipe to completely drain the accumulated water. At the same time, it is integrated and coordinated with the processing device to solve the problems of imperfect water supply and drainage design and easy water accumulation inside. Overall, the device has achieved optimization and upgrade of existing technologies in four key dimensions: filtration and cleaning, structural support, material mixing, and storage and water supply, significantly improving the energy efficiency, efficiency, and synergy of building construction. Attached Figure Description

[0016] Figure 1 This is a schematic diagram of the overall internal structure of the present invention; Figure 2 This is a schematic diagram of the collection and storage device structure of the present invention; Figure 3This is a schematic diagram of the filter cleaning device of the present invention; Figure 4 This is a schematic diagram of the second support device structure of the present invention; Figure 5 This is a schematic diagram of the processing device structure of the present invention; Figure 6 This is a schematic diagram of the tank base structure of the present invention; Figure 7 This is a schematic diagram of the mixing device structure of the present invention; Figure 8 This is a schematic diagram of the collection and storage device structure of the present invention.

[0017] In the diagram: 1. Device body; 2. Base; 3. Collection and storage device; 4. Filtering and cleaning device; 5. Processing device; 6. Filter frame; 7. First mounting block; 8. Second mounting block; 9. Moving motor; 10. Threaded rod; 11. Guide rod; 12. Sliding block; 13. Cleaning brush plate; 14. Cleaning bristles; 15. First welding plate; 16. Second welding plate; 17. Filter screen; 18. First positioning hole; 19. Impurity outlet; 20. Protective device; 21. First protective plate; 22. Second protective plate; 23. Third protective plate; 24. Main support plate; 25. Auxiliary stabilizing plate; 26. Reinforcing structural block; 27. Bottom fixing hole; 28. Tank base; 29. 30. Mixing device; 31. First mounting plate; 32. Second mounting plate; 33. Support column; 34. Rubber anti-slip pad; 35. Insertion port; 36. Disc hole; 37. First support device; 38. Second support device; 39. Main water tank; 40. Main processing tank; 41. Top cover; 42. Tank ring; 43. Feed pipe body; 44. Water inlet pipe; 45. Connecting flange; 46. Flange hole; 47. Discharge pipe; 48. First electrically controlled valve; 49. Mixing motor; 50. Mixing rod; 51. Bottom mixing fan blade; 52. Upper mixing fan blade; 53. Flow hole; 54. Auxiliary water supply pipe; 55. Connecting discharge pipe; 56. Second electrically controlled valve; 57. Overflow pipe. Detailed Implementation

[0018] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0019] Example 1: Please see Figure 1-8 The present invention provides a technical solution: An energy-saving construction device for industrial and civil buildings includes a device body 1. The device body 1 includes a base 2, a collection and storage device 3, a filtration and cleaning device 4, and a processing device 5. The collection and storage device 3 is mounted on the top of the base 2 with screws. The filtration and cleaning device 4 is mounted on the top of the collection and storage device 3 with screws. The processing device 5 is mounted on the top of the base 2 and located inside the collection and storage device 3. The filtration and cleaning device 4 includes a filter frame 6, a first mounting block 7, a second mounting block 8, a moving motor 9, a threaded rod 10, a guide rod 11, a sliding block 12, a cleaning brush plate 13, cleaning bristles 14, a first welding plate 15, and a second welding plate 16. The first welding plate 15 is welded to one end of the filter frame 6, and the second welding plate 16 is welded to the other end of the filter frame 6. The first mounting block 7 is welded to the top of the first welding plate 15, and the second mounting block 8 is welded to the top of the second mounting block 8. The threaded rod 10 and the guide rod 11 are both installed between the first mounting block 7 and the second mounting block 8. A set of guide rods 11 is provided. The sliding block 12 is sleeved on the threaded rod 10 and the guide rod 11. The cleaning brush plate 13 is fixed to the bottom of the sliding block 12 by screws. Several cleaning bristles 14 are provided and several cleaning bristles 14 are installed at the bottom of the cleaning brush plate 13. The moving motor 9 is installed on the first mounting block 7. The driving end of the moving motor 9 is connected to one end of the threaded rod 10. The surfaces of the first welding plate 15 and the second welding plate 16 are both provided with a debris outlet 19, which has a rectangular structure.

[0020] Analysis of the above content: The filter frame 6 serves as the core carrier of the filter, and the internal filter screen 17 intercepts impurities in the fluid; after the moving motor 9 starts, it drives the threaded rod 10 to rotate, which in turn drives the sliding block 12, which is sleeved on the threaded rod 10 and the guide rod 11, to move laterally. The cleaning brush plate 13 moves synchronously with the sliding block 12, and the cleaning bristles 14 at the bottom clean the impurities on the surface of the filter screen 17. The impurities are discharged through the rectangular impurity outlets 19 on the first welding plate 15 and the second welding plate 16; the first mounting block 7 and the second mounting block 8 provide mounting support for the threaded rod 10 and the guide rod 11, and the protective device 20 covers the moving part. The moving motor 9 provides protection; for light impurity filtration (such as preliminary rainwater filtration): only the filter screen 17 is activated for natural filtration, without needing to turn on the moving motor 9. The cleaning function is activated only after impurities have accumulated to a certain level; for heavy impurity filtration (such as construction wastewater containing mud and sand): the moving motor 9 is continuously turned on, allowing the cleaning brush bristles 14 to repeatedly sweep the filter screen 17, preventing impurities from clogging the mesh. This device forms an automated cleaning structure, replacing manual cleaning, solving the problems of easy clogging and tedious cleaning of the filter screen 17, and improving filtration efficiency; the rectangular impurity outlet 19 facilitates the rapid discharge of impurities, preventing them from accumulating in the filter frame 6 and affecting the filtration effect.

[0021] Example 2: Please see Figure 1-8The present invention provides a technical solution based on Embodiment 1: the filter frame 6 has a rectangular structure, a filter screen 17 is installed inside the filter frame 6, and a first positioning hole 18 is provided at each of the four corners of the top of the filter frame 6.

[0022] Analysis of the above content: Device installation and calibration: The filter frame 6 is positioned and installed through the first positioning holes 18 at the four corners of the top, ensuring that the filter frame 6 and the collection and storage device 3 are accurately connected. The first positioning holes 18 ensure the installation accuracy and ensure that the filter cleaning device 4 and other components work together.

[0023] Example 3: Please see Figure 1-8 The present invention provides a technical solution based on Embodiment 1: a protective device 20 is welded and installed on the outer end of the first mounting block 7. The protective device 20 is located outside the moving motor 9. The protective device 20 has a U-shaped structure and includes a first protective plate 21, a second protective plate 22 and a third protective plate 23. The first protective plate 21, the second protective plate 22 and the third protective plate 23 are smoothly transitioned and integrally formed. The second protective plate 22 and the third protective plate 23 are both located at the bottom of the first protective plate 21.

[0024] Analysis of the above content: Motor protection scenario: When encountering dust or collision risks during construction, the first protective plate 21, the second protective plate 22, and the third protective plate 23 of the protective device 20 are used to block external interference; the protective device 20 provides all-round protection for the mobile motor 9 and extends the service life of the mobile motor 9.

[0025] Example 4: Please see Figure 1-8 The present invention provides a technical solution based on Embodiment 1: the collection and storage device 3 includes a first support device 36, a second support device 37 and a main storage tank 38. The first support device 36, the second support device 37 and the main storage tank 38 are all smoothly transitioned and integrally formed structures. The first support device 36 is located at the top left end of the main storage tank 38 and the second support device 37 is located at the bottom right end of the main storage tank 38. Both the first support device 36 and the second support device 37 include a main support plate 24 and an auxiliary stabilizing plate 25. The main support plate 24 and the auxiliary stabilizing plate 25 are smoothly transitioned and integrally formed. The auxiliary stabilizing plate 25 is located at the bottom outer end of the main support plate 24. Several sets of reinforcing structural blocks 26 are provided between the main support plate 24 and the auxiliary stabilizing plate 25 in a horizontally equidistant manner. The reinforcing structural blocks 26 are L-shaped. Several sets of bottom fixing holes 27 are opened on the surface of the auxiliary stabilizing plate 25.

[0026] Analysis of the above content: The first support device 36 and the second support device 37 of the storage device 3 provide support for the overall structure. The main support plate 24 bears the longitudinal pressure, the auxiliary stabilizing plate 25 expands the bottom support area, and the L-shaped reinforcing structural block 26 between the two enhances the resistance to deformation. The bottom fixing hole 27 on the auxiliary stabilizing plate 25 can be used to insert fasteners to strengthen the connection between the device and the ground. During installation: expansion screws are inserted through the bottom fixing hole 27 to fix the auxiliary stabilizing plate 25 to the ground. At the same time, rubber anti-slip pads 33 are used to enhance the anti-slip effect. In heavy-load construction scenarios: additional reinforcing parts are added between the reinforcing structural blocks 26 to further improve the connection strength between the main support plate 24 and the auxiliary stabilizing plate 25.

[0027] Example 5: Please see Figure 1-8 The present invention provides a technical solution based on Embodiment 1:

[0028] Analysis of the above content: The processing device 5 includes a tank base 28 and a mixing device 29. The mixing device 29 is installed in the tank base 28 by screws. The tank base 28 includes a first mounting plate 30, a second mounting plate 31, and support columns 32. The first mounting plate 30 is located below the second mounting plate 31. There are three support columns 32, and the three support columns 32 are welded between the first mounting plate 30 and the second mounting plate 31. The surfaces of the first mounting plate 30 and the second mounting plate 31 are provided with several sets of disc holes 35. The middle of the first mounting plate 30 and the second mounting plate 31 are provided with an insertion port 34. The bottom of the first mounting plate 30 is provided with a rubber anti-slip pad 33.

[0029] Analysis of the above content: The tank base 28 of the processing device 5 forms a stable support frame through the first mounting plate 30, the second mounting plate 31, and three support columns 32. The rubber anti-slip pad 33 at the bottom of the first mounting plate 30 increases the friction. The tank base 28 serves as the mounting carrier for the mixing device 29. The first mounting plate 30 and the second mounting plate 31 are connected by three support columns 32 to form a double-layer support structure. The mixing device 29 is placed into the tank base 28 through the insertion port 34. The tank ring 41 is fixed by inserting screws through the disc hole 35, thus achieving a stable connection between the mixing device 29 and the tank base 28. The rubber anti-slip pad 33 at the bottom of the first mounting plate 30 further enhances the overall stability. Mixing device installation: Align the mixing device 29 with the insertion port 34 and place it in. Align the tank ring 41 with the disc hole 35 of the second mounting plate 31 and insert screws to tighten. High-frequency vibration construction scenario: Add a shock-absorbing pad under the rubber anti-slip pad 33 to reduce the vibration transmission during the operation of the mixing device 29.

[0030] Example 6: Please see Figure 1-8The present invention provides a technical solution based on Embodiment 1: The mixing device 29 includes a main processing tank 39, a top cover 40, and a tank ring 41. The top cover 40 is installed on the top of the main processing tank 39, and the tank ring 41 is welded to the outside of the main processing tank 39. The surface of the tank ring 41 is provided with a plurality of sets of disc holes 35. The top of the top cover 40 is provided with a feed pipe body 42 and a water inlet pipe 43. The top of the water inlet pipe 43 is provided with a connecting flange 44, and the surface of the connecting flange 44 is provided with a plurality of sets of flange holes 45. The bottom of the main processing tank 39 has an arc-shaped structure, and a discharge pipe 46 is installed at the bottom of the main processing tank 39. The discharge pipe 46 has an L-shaped structure, and a first electrically controlled valve 47 is installed on the discharge pipe 46. A mixing motor 48 is installed at the center of the top of the top cover 40. A mixing rod 49 is installed at the bottom drive end of the mixing motor 48. The mixing rod 49 is located inside the main processing tank 39. A bottom mixing fan blade 50 is provided at the bottom of the mixing rod 49. The bottom mixing fan blade 50 has an arc-shaped structure. A set of upper mixing fan blades 51 are provided on both sides of the mixing rod 49 in a symmetrical manner. The upper mixing fan blades 51 have a V-shaped structure. Several sets of flow holes 52 are opened on the surface of the upper mixing fan blades 51.

[0031] Analysis of the above content: The main processing tank 39 provides a closed space for material mixing. The feed pipe 42 at the top of the top cover 40 is used to add construction materials. The water inlet pipe 43 is connected to the water collection and storage device 3 through the connecting flange 44. After the mixing motor 48 is started, it drives the mixing rod 49 to rotate, which drives the upper mixing fan blade 51 and the bottom mixing fan blade 50 to stir synchronously. The flow hole 52 of the V-shaped upper mixing fan blade 51 reduces material resistance. The arc-shaped bottom mixing fan blade 50 is adapted to the arc-shaped bottom of the main processing tank 39 to achieve mixing without dead corners. After mixing is completed, the first electrically controlled valve 47 is opened, and the material is discharged through the L-shaped discharge pipe 46. Powder mixing (such as cement, fly ash): Powder is slowly added through the feed pipe 42, the water supply of the water inlet pipe 43 is controlled, the mixing motor 48 is started, and the flow hole 52 is used to reduce powder agglomeration; Particle mixing (such as sand, gravel, additives): The feeding speed of the feed pipe 42 is increased, the mixing motor 48 is started to high speed, and uniformity is ensured by the coordinated mixing of the upper mixing fan blade 51 and the bottom mixing fan blade 50; Mixing of small amounts of materials: Some flow holes 52 are closed, the speed of the mixing motor 48 is reduced, and material splashing and waste are avoided; Emergency shutdown scenario: The mixing motor 48 is directly turned off, and the first electric control valve 47 is closed at the same time to prevent the discharge of unevenly mixed materials.

[0032] Example 7: Please see Figure 1-8The present invention provides a technical solution based on Embodiment 1: an auxiliary water supply pipe 53 and an overflow pipe 56 are installed on the top right side of the main water tank 38. The bottom of the main water tank 38 has an arc-shaped structure. A connecting discharge 54 is provided at the bottom of the main water tank 38. A second electrically controlled valve 55 is installed inside the connecting discharge pipe 54. A connecting flange 44 is also provided at the bottom of the connecting discharge pipe 54.

[0033] Analysis of the above content: The main water tank 38 is used to store construction water, the auxiliary water supply pipe 53 can be connected to an external water source to replenish the water volume, and the overflow pipe 56 prevents the water level from overflowing due to excessive water level; the arc-shaped structure at the bottom of the main water tank 38 guides the accumulated water to the bottom to collect, and the discharge pipe 54 controls the water output through the second electrically controlled valve 55. The bottom connecting flange 44 connects to the water inlet pipe 43 of the processing device 5 to achieve precise water supply. Rainwater collection scenario: the auxiliary water supply pipe 53 is closed, and rainwater is collected through the filter cleaning device 4, filtered by the filter screen 17, and stored in the main water tank 38. The overflow pipe 56 discharges excess rainwater. Drought and water shortage scenario: water is continuously replenished through the auxiliary water supply pipe 53 to maintain a stable water level in the main water tank 38, and the water supply is adjusted by the second electrically controlled valve 55. Equipment maintenance scenario: the second electrically controlled valve 55 is opened to drain the water in the main water tank 38 to facilitate the cleaning of internal residual impurities. Emergency water supply scenario: the external emergency water source is quickly connected through the connecting flange 44 to provide continuous water supply to the processing device 5.

[0034] Solution Analysis The core of this solution is to create an energy-saving construction device that integrates four major functions: filtration and cleaning, structural support, material mixing, storage and water supply. The device body 1 consists of a base 2, a collection and storage device 3, a filtration and cleaning device 4, and a processing device 5. The components are assembled by fixing with screws or welding, working together to achieve high efficiency and energy saving in the construction process.

[0035] Filter cleaning module The core components include a filter frame 6, a moving motor 9, a threaded rod 10, a guide rod 11, a sliding block 12, a cleaning brush plate 13, cleaning bristles 14, a first welding plate 15, a second welding plate 16, a filter screen 17, and a debris outlet 19.

[0036] The filter frame 6 has a rectangular structure, with a filter screen 17 installed inside. The top four corners are provided with first positioning holes 18 to ensure accurate installation.

[0037] The moving motor 9 drives the threaded rod 10 to rotate, causing the sliding block 12 to move along the guide rod 11. Several cleaning bristles 14 at the bottom of the cleaning brush plate 13 simultaneously clean the filter screen 17, and the debris is discharged through the rectangular debris outlet 19 on the surface of the first welding plate 15 and the second welding plate 16.

[0038] The protective device 20 (including the first protective plate 21, the second protective plate 22, and the third protective plate 23) at the outer end of the first mounting block 7 provides protection for the moving motor 9.

[0039] Structural support module The first support device 36 and the second support device 37 of the collection and storage device 3 are the core support components, both of which are composed of a main support plate 24, an auxiliary stabilizing plate 25, and a reinforcing structural block 26.

[0040] The main support plate 24 and the auxiliary stabilizing plate 25 are integrally formed, and several L-shaped reinforcing structural blocks 26 are provided between them in a horizontally equidistant manner. The bottom fixing holes 27 on the surface of the auxiliary stabilizing plate 25 are used for reinforcement and fixation.

[0041] The tank base 28 of the processing device 5 is composed of a first mounting plate 30, a second mounting plate 31, and three support columns 32. The rubber anti-slip pad 33 at the bottom of the first mounting plate 30 improves stability, and the disc hole 35 and the insertion mounting port 34 facilitate the installation of the mixing device 29.

[0042] Material mixing module The mixing device 29 of the processing device 5 includes a main processing tank 39, a top cover 40, a tank ring 41, a mixing motor 48, a mixing rod 49, a bottom mixing fan blade 50, an upper mixing fan blade 51, a discharge pipe 46, and a first electrically controlled valve 47.

[0043] The feed pipe 42 and water inlet pipe 43 on the top of the top cover 40 are used for feeding materials and water respectively. The water inlet pipe 43 is connected to the external pipeline through the connecting flange 44.

[0044] The mixing motor 48 drives the mixing rod 49 to rotate, which in turn drives the V-shaped upper mixing fan blade 51 (with open flow holes 52 on the surface) and the arc-shaped bottom mixing fan blade 50 to stir. The arc-shaped structure at the bottom of the main processing tank 39, together with the stirring components, eliminates the mixing dead corners.

[0045] Water supply storage module The main water tank 38 of the collection and storage device 3 is the core storage component. An auxiliary water supply pipe 53 and an overflow pipe 56 are provided on the top right side, and a discharge pipe 54 and a second electrically controlled valve 55 are provided at the bottom.

[0046] The bottom of the main water tank 38 has an arc-shaped structure to facilitate the drainage of accumulated water. The drain pipe 54 is externally connected through the connecting flange 44, and works with the water inlet pipe 43 of the processing device 5 to ensure water supply.

[0047] Working principle: After the device is assembled, it is fixed in the construction area through the bottom fixing hole 27 of the auxiliary stabilizing plate 25 and the disc hole 35 of the tank base 28, and the rubber anti-slip pad 33 enhances the bottom stability.

[0048] Filtration and cleaning stage: External fluid enters the filter frame 6, the filter screen 17 intercepts impurities, the moving motor 9 is started, the threaded rod 10 drives the sliding block 12 to move, the cleaning bristles 14 sweep the impurities on the surface of the filter screen 17, the impurities are discharged through the impurity outlet 19, and the protective device 20 protects the moving motor 9 from external interference.

[0049] Water storage and supply stage: Water is supplied to the main water tank 38 through the auxiliary water supply pipe 53, and the overflow pipe 56 prevents the water level from being too high. The water stored in the main water tank 38 is controlled by the connecting discharge pipe 54 and the second electric control valve 55, and is connected to the water inlet pipe 43 through the connecting flange 44 to supply water to the processing device 5.

[0050] Material mixing stage: Construction materials are added to the main processing tank 39 through the feed pipe 42, and an appropriate amount of water is injected through the water inlet pipe 43. The mixing motor 48 is started, and the mixing rod 49 drives the upper mixing fan blade 51 and the bottom mixing fan blade 50 to rotate. The flow hole 52 of the V-shaped upper mixing fan blade 51 improves the material flowability, and the arc-shaped bottom mixing fan blade 50 is adapted to the bottom structure of the tank to achieve uniform mixing of materials without dead corners.

[0051] After mixing is completed, the first electrically controlled valve 47 is opened, and the mixed material is transported to the construction station through the L-shaped discharge pipe 46 to complete the construction operation.

[0052] Technical effect Filtration and cleaning effect Automated cleaning improves efficiency: The cleaning brush assembly driven by the mobile motor 9 replaces manual cleaning, avoids clogging of the filter screen 17, and promptly discharges impurities from the waste outlet 19, reducing manual maintenance costs and improving filtration continuity.

[0053] Enhanced filtration stability: The first positioning hole 18 of the filter frame 6 ensures installation accuracy, the filter screen 17 provides stable filtration, and the protective device 20 extends the service life of the moving motor 9 and reduces the failure rate.

[0054] Structural support effect Enhanced strength and stability: The L-shaped reinforcing structural block 26 of the first support device 36 and the second support device 37 enhances the support strength and prevents the device from deforming and shifting. The bottom fixing hole 27 of the auxiliary stabilizing plate 25 strengthens the fixing effect.

[0055] Optimized installation convenience: The insertion port 34 and disc hole 35 of the tank base 28 simplify the installation process of the mixing device 29, and the rubber anti-slip pad 33 reduces device shaking during construction and ensures operational safety.

[0056] Material mixing effect Improved mixing uniformity: The V-shaped structure of the upper mixing fan blade 51 and the arc-shaped structure of the flow hole 52 and the bottom mixing fan blade 50, combined with the arc-shaped design of the bottom of the main processing tank 39, eliminate mixing dead corners and significantly improve the mixing uniformity of materials.

[0057] Improved mixing efficiency: The mixing motor 48 drives the dual-set fan blades for synchronous mixing, and the flow hole 52 reduces the material mixing resistance, shortens the mixing time, and improves the construction progress.

[0058] Water storage effect Enhanced water supply flexibility: The auxiliary water supply pipe 53 and overflow pipe 56 enable flexible water supply and overflow protection, while the second electrically controlled valve 55 precisely controls the water supply to adapt to different construction scenarios.

[0059] Solution to residual water problem: The arc-shaped bottom of the main water tank 38 is connected to the drain pipe 54 to completely drain the accumulated water, avoid corrosion or pollution caused by internal residue, and extend the service life of the device.

[0060] Overall energy-saving synergistic effect The integrated design of each module reduces the equipment footprint and the use of construction site resources. The screw installation and welding connection methods facilitate disassembly and maintenance, reducing the later operation and maintenance costs.

[0061] Automated cleaning, efficient mixing, and precise water supply reduce energy consumption and material waste, meet energy-saving requirements for building construction, and improve the overall coordination and economy of construction.

[0062] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. An energy-saving construction device for industrial and civil buildings, characterized in that: The device includes a main body (1), which includes a base (2), a collection and storage device (3), a filtration and cleaning device (4), and a processing device (5). The collection and storage device (3) is mounted on the top of the base (2) by screws, the filtration and cleaning device (4) is mounted on the top of the collection and storage device (3) by screws, and the processing device (5) is mounted on the top of the base (2) and located inside the collection and storage device (3). The filter cleaning device (4) includes a filter frame (6), a first mounting block (7), a second mounting block (8), a moving motor (9), a threaded rod (10), a guide rod (11), a sliding block (12), a cleaning brush plate (13), cleaning bristles (14), a first welding plate (15), and a second welding plate (16). The first welding plate (15) is welded to one end of the filter frame (6), and the second welding plate (16) is welded to the other end of the filter frame (6). The first mounting block (7) is welded to the top of the first welding plate (15), and the second mounting block (8) is welded to the top of the second mounting block (8). The threaded rod (10) and guide rod (11) are both installed between the first mounting block (7) and the second mounting block (8). The guide rod (11) is provided in a set. The sliding block (12) is sleeved on the threaded rod (10) and the guide rod (11). The cleaning brush plate (13) is fixed to the bottom of the sliding block (12) by screws. The cleaning bristles (14) are provided with a number of bristles and a number of the cleaning bristles (14) are installed at the bottom of the cleaning brush plate (13). The moving motor (9) is installed on the first mounting block (7). The driving end of the moving motor (9) is connected to one end of the threaded rod (10). Both the first welding plate (15) and the second welding plate (16) have a debris outlet (19) on their surfaces, and the debris outlet (19) has a rectangular structure.

2. The energy-saving construction device for industrial and civil buildings according to claim 1, characterized in that: The filter frame (6) has a rectangular structure, and a filter screen (17) is installed inside the filter frame (6). A first positioning hole (18) is provided at each of the four corners of the top of the filter frame (6).

3. The energy-saving construction device for industrial and civil buildings according to claim 1, characterized in that: A protective device (20) is welded to the outer end of the first mounting block (7). The protective device (20) is located outside the moving motor (9). The protective device (20) has a U-shaped structure. The protective device (20) includes a first protective plate (21), a second protective plate (22), and a third protective plate (23). The first protective plate (21), the second protective plate (22), and the third protective plate (23) are smoothly transitioned and integrally formed. The second protective plate (22) and the third protective plate (23) are both located at the bottom of the first protective plate (21).

4. The energy-saving construction device for industrial and civil buildings according to claim 1, characterized in that: The collection and storage device (3) includes a first support device (36), a second support device (37) and a main water tank (38). The first support device (36), the second support device (37) and the main water tank (38) are all smoothly transitioned and integrally formed. The first support device (36) is located at the top left end of the main water tank (38) and the second support device (37) is located at the bottom right end of the main water tank (38).

5. The energy-saving construction device for industrial and civil buildings according to claim 4, characterized in that: Both the first support device (36) and the second support device (37) include a main support plate (24) and an auxiliary stabilizing plate (25). The main support plate (24) and the auxiliary stabilizing plate (25) are smoothly transitioned and integrally formed. The auxiliary stabilizing plate (25) is located at the bottom outer end of the main support plate (24). Between the main support plate (24) and the auxiliary stabilizing plate (25), there are several sets of reinforcing structural blocks (26) distributed in a horizontally equidistant manner. The reinforcing structural blocks (26) are L-shaped. Several sets of bottom fixing holes (27) are opened on the surface of the auxiliary stabilizing plate (25).

6. The energy-saving construction device for industrial and civil buildings according to claim 1, characterized in that: The processing device (5) includes a tank base (28) and a mixing device (29). The mixing device (29) is installed in the tank base (28) by screws. The tank base (28) includes a first mounting plate (30), a second mounting plate (31), and a support column (32). The first mounting plate (30) is located below the second mounting plate (31). There are three support columns (32), and the three support columns (32) are welded between the first mounting plate (30) and the second mounting plate (31). The surfaces of the first mounting plate (30) and the second mounting plate (31) are provided with several sets of disc holes (35). The middle of the first mounting plate (30) and the second mounting plate (31) is provided with an insertion port (34). The bottom of the first mounting plate (30) is provided with a rubber anti-slip pad (33).

7. The energy-saving construction device for industrial and civil buildings according to claim 6, characterized in that: The mixing device (29) includes a main processing tank (39), a top cover (40) and a tank ring (41). The top cover (40) is installed on the top of the main processing tank (39). The tank ring (41) is welded to the outside of the main processing tank (39). The surface of the tank ring (41) is provided with several sets of disc holes (35). The top of the top cover (40) is provided with a feed pipe body (42) and a water inlet pipe (43). The top of the water inlet pipe (43) is provided with a connecting flange (44). The surface of the connecting flange (44) is provided with several sets of flange holes (45).

8. The energy-saving construction device for industrial and civil buildings according to claim 7, characterized in that: The bottom of the main processing tank (39) is arc-shaped, and a discharge pipe (46) is installed at the bottom of the main processing tank (39). The discharge pipe (46) is L-shaped, and a first electrically controlled valve (47) is installed on the discharge pipe (46).

9. The energy-saving construction device for industrial and civil buildings according to claim 7, characterized in that: A mixing motor (48) is installed at the center of the top of the top cover (40). A mixing rod (49) is installed at the bottom drive end of the mixing motor (48). The mixing rod (49) is located inside the main processing tank (39). A bottom mixing fan blade (50) is provided at the bottom of the mixing rod (49). The bottom mixing fan blade (50) has an arc-shaped structure. A set of upper mixing fan blades (51) are provided on both sides of the mixing rod (49) in a symmetrical manner. The upper mixing fan blades (51) have a V-shaped structure. Several sets of flow holes (52) are opened on the surface of the upper mixing fan blades (51).

10. The energy-saving construction device for industrial and civil buildings according to claim 4, characterized in that: The main water tank (38) is equipped with an auxiliary water supply pipe (53) and an overflow pipe (56) on the top right side. The bottom of the main water tank (38) has an arc-shaped structure. The bottom of the main water tank (38) is provided with a connecting drain (54). The connecting drain pipe (54) is equipped with a second electrically controlled valve (55). The bottom of the connecting drain pipe (54) is also provided with a connecting flange (44).