A prefabricated and assembled roof rainwater bucket component
Through the cutting and heating components of prefabricated assembled roof rainwater bucket components, the problem of loss of drainage function caused by ice and snow blockage is solved, efficient guidance and melting is achieved, and the pipe wall damage is avoided.
Patent Information
- Application Number
- CN202210560802.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-05-20
- Publication Date
- 2025-07-29
- Estimated Expiration
- 2042-05-20
AI Technical Summary
The prior art When the ice and snow melt through heating the pipe wall, it is easy to cause damage to the pipe wall, and the ice and snow block the pipe mouth and lead to loss of drainage function.
A prefabricated roof rainwater bucket component is designed, including a rainwater bucket, a main telescopic rod, a rain stop assembly, an electric telescopic sleeve and multiple cutting components. By cutting and crushing the ice and snow, it is crushed to guide it, and combined with a heater to melt the remaining ice.
It effectively avoids damage to the pipe wall, ensures that the drainage function is not lost, facilitates the guidance and melting of ice and snow, and improves drainage efficiency.
Smart Images

Figure CN114856094B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of rainwater bucket equipment, and particularly to a prefabricated and assembled roof rainwater bucket component. Background Art
[0002] A rainwater bucket is a guiding device for discharging roof water accumulation. Generally, the rainwater accumulation on the roof enters the rainwater pipe at the entrance of the gutter, and the rainwater bucket is arranged at this entrance. Its orifice area is relatively large, facilitating the entry of rainwater.
[0003] For example, Chinese Patent discloses "A snow-melting pressure-flow rainwater bucket" (Patent No.: CN201010261325.7), including a grille cover installed above the bucket body and an anti-vortex device arranged at the bottom of the bucket body, and a heating device is arranged on the bucket body. The snow-melting pressure-flow rainwater bucket disclosed by the present invention can effectively and quickly drain water. Especially in winter or the season of transition between winter and spring, when the power supply of the snow-melting pressure-flow rainwater bucket is turned on, even if the outdoor temperature is below zero degree Celsius, the drain outlet of the rainwater bucket will not freeze, and the drainage function of the rainwater bucket remains normal.
[0004] However, the above patent only melts the ice and snow by heating the pipe wall to increase the pipe wall temperature. Therefore, the first part to melt is often the ice cubes around the pipe wall, and the large ice cubes in the central part directly fall after melting, causing impact on the pipe wall and easily resulting in the situation of pipe wall damage. Summary of the Invention
[0005] (1) Technical Problems to be Solved
[0006] In view of the deficiencies of the prior art, the present invention provides a prefabricated and assembled roof rainwater bucket component.
[0007] (2) Technical Solutions
[0008] To achieve the above objectives, the present invention is realized through the following technical solutions: A prefabricated and assembled roof rainwater bucket component, including a rainwater bucket, a main telescopic rod, a rain shield assembly, an electric telescopic sleeve, and a plurality of cutting components. The electric telescopic sleeve is arranged at the top of the rainwater bucket, and the plurality of cutting components are arranged at equal angles around the electric telescopic sleeve on the inner wall of the rainwater bucket. The main telescopic rod is vertically arranged on the back of the rainwater bucket, and the rain shield assembly is arranged on the movable end of the main telescopic rod. The tops of the plurality of cutting components are all slidably fitted to the bottom of the rain shield assembly.
[0009] Preferably, it further includes a sliding component, and the sliding component is arranged on the inner wall of the rainwater bucket. The sliding component includes an annular slideway and a plurality of sliders. The annular slideway is arranged on the inner wall of the rainwater bucket. The plurality of sliders are all slidably fitted on the annular slideway.
[0010] Preferably, the multiple cutting components correspond to the multiple sliders one by one. The cutting component includes a magnetic connecting rod one, a connecting rod two, and a cutter head. The connecting rod one is connected to the connecting rod two through a spring hinge seat, and the bottom end of the connecting rod two is hinged to the slider. The top of the connecting rod one inclines towards the central axis of the rainwater hopper, and the bottom of the connecting rod one is slidably fitted on the bottom surface of the rain shield assembly. The cutter head is arranged on the surface of the connecting rod one away from the rainwater hopper.
[0011] Preferably, the rain shield assembly includes a rain shield, a motor, a connecting rod, and a main hinge seat. The connecting rod is arranged on the movable end of the main telescopic rod, and the main hinge seat is arranged at the bottom of the connecting rod. The rain shield is arranged on the main hinge seat, and the motor is arranged at the bottom of the rain shield.
[0012] Preferably, the rain shield assembly further includes a piston head, an auxiliary telescopic rod, and a heater with a heat conducting plate made of iron at the bottom. The piston head is arranged on the output end of the motor, and the heater is arranged on the piston head. The auxiliary telescopic rod is arranged at the center of the bottom of the piston head.
[0013] Preferably, the rain shield assembly further includes a connecting plate and multiple movable heat conducting rods. The movable ends of the auxiliary telescopic rods respectively pass through the heater and extend to the bottom of the heater. The connecting plate is arranged on the movable ends of the auxiliary telescopic rods, and the multiple movable heat conducting rods are slidably fitted on the connecting plate in the up and down direction. The movable heat conducting rods are in contact with the heater, and there are also multiple sliding grooves. The multiple sliding grooves are equally angularly distributed on the heater and the connecting plate with the piston head as the center. The connecting rod one corresponds to the sliding grooves one by one, and the top of the connecting rod one passes through the sliding grooves and is in contact with the piston head.
[0014] (III) Advantageous Effects
[0015] The present invention provides a prefabricated and assembled roof rainwater hopper component. It has the following advantageous effects:
[0016] 1. For this prefabricated and assembled roof rainwater hopper component, through the mutual cooperation of the arranged rainwater hopper, main telescopic rod, rain shield assembly, electric telescopic sleeve, and multiple cutting components. The present invention can cut and roll the ice and snow by bending the cutting components, making it in a crushed state, which is convenient for the work of pipeline dredging. At the same time, it also solves the problem that the drainage function is lost due to the ice and snow blocking the pipe orifice in spring. It is convenient for personnel to use. Description of the Drawings
[0017] Figure 1 is the first three-dimensional view of the present invention;
[0018] Figure 2 is the second three-dimensional view of the present invention;
[0019] Figure 3 is the front sectional view of the present invention;
[0020] Figure 4 This is the third three-dimensional view of the present invention;
[0021] Figure 5 This is the front view of the partial components of the present invention.
[0022] In the figure: 1 rainwater bucket, 2 electric telescopic sleeve, 3 cutting assembly, 4 heater, 5 piston head, 6 rain shield, 7 active hinge seat, 8 connecting rod, 9 rain shield assembly, 10 connecting plate, 11 sliding assembly, 12 chute, 13 first connecting rod, 14 annular slideway, 15 slider, 16 second connecting rod, 17 auxiliary telescopic rod, 18 motor, 19 cutter head, 20 movable heat conducting rod, 21 main telescopic rod. Specific embodiments
[0023] An embodiment of the present invention provides a prefabricated and assembled roof rainwater bucket component, as Figures 1-5 shown, including a rainwater bucket 1, a main telescopic rod 21, a rain shield assembly 9, an electric telescopic sleeve 2 and a plurality of cutting assemblies 3. The electric telescopic sleeve 2 is arranged at the top of the rainwater bucket 1, and the plurality of cutting assemblies 3 are arranged at equal angles with the electric telescopic sleeve 2 as the center on the inner wall of the rainwater bucket 1. The main telescopic rod 21 is vertically arranged on the back of the rainwater bucket 1, and the rain shield assembly 9 is arranged on the movable end of the main telescopic rod 21. The tops of the plurality of cutting assemblies 3 are all slidably matched with the bottom of the rain shield assembly 9.
[0024] It further includes a sliding assembly 11, and the sliding assembly 11 is arranged on the inner wall of the rainwater bucket 1. The sliding assembly 11 includes an annular slideway 14 and a plurality of sliders 15, and the annular slideway 14 is arranged on the inner wall of the rainwater bucket 1. The plurality of sliders 15 are all slidably matched on the annular slideway 14.
[0025] The plurality of cutting assemblies 3 correspond to the plurality of sliders 15 one by one. The cutting assembly 3 includes a magnetic first connecting rod 13, a second connecting rod 16 and a cutter head 19. The first connecting rod 13 is connected to the second connecting rod 16 through a spring hinge seat, and the bottom end of the second connecting rod 16 is hinged on the slider 15. The top of the first connecting rod 13 inclines towards the central axis of the rainwater bucket 1, and the bottom of the first connecting rod 13 is slidably matched with the bottom surface of the rain shield assembly 9. The cutter head 19 is arranged on the surface of the first connecting rod 13 away from the rainwater bucket 1.
[0026] The rain shield assembly 9 includes a rain shield 6, a motor 18, a connecting rod 8 and an active hinge seat 7. The connecting rod 8 is arranged on the movable end of the main telescopic rod 21, and the active hinge seat 7 is arranged at the bottom of the connecting rod 8. The rain shield 6 is arranged on the active hinge seat 7, and the motor 18 is arranged at the bottom of the rain shield 6.
[0027] The rain shield assembly 9 further includes a piston head 5, an auxiliary telescopic rod 17 and a heater 4 with a heat conducting plate made of iron at the bottom. The piston head 5 is arranged on the output end of the motor 18, and the heater 4 is arranged on the piston head 5. The auxiliary telescopic rod 17 is arranged at the center of the bottom of the piston head 5.
[0028] The rain shield assembly 9 further includes a connecting plate 10 and a plurality of movable heat conducting rods 20. The movable ends of the auxiliary telescopic rods 17 respectively pass through the heater 4 and extend to the bottom of the heater 4. The connecting plate 10 is arranged on the movable ends of the auxiliary telescopic rods 17, and the plurality of movable heat conducting rods 20 are slidably fitted on the connecting plate 10 in the vertical direction. The movable heat conducting rods 20 are in contact with the heater 4, and further includes a plurality of sliding grooves 12. The plurality of sliding grooves 12 are equiangularly distributed around the piston head 5 on the heater 4 and the connecting plate 10. The first connecting rods 13 correspond to the sliding grooves 12 one by one. The tops of the first connecting rods 13 pass through the sliding grooves 12 and are in contact with the piston head 5.
[0029] Working principle: During use, first, when ice and snow block the rainwater bucket 1, the electric telescopic sleeve 2 is first pulled out, and then the main telescopic rod 21 retracts. At this time, the piston head 5 presses the cutting assembly 3, and then the plurality of first connecting rods 13 all approach the center of the piston head 5, and at the same time the first connecting rods 13 squeeze the second connecting rods 16 to cut the ice and snow located between the first connecting rods 13 and the second connecting rods 16. At the same time, by the operation of the motor 18, the plurality of cutting assemblies 3 rotate to complete the operation of cutting the ice cubes. At this time, the small ice cubes fall into it along the rainwater bucket 1. For the remaining larger ice cubes after cutting, the present invention can heat the heater 4 to make the movable heat conducting rods 20 have a high temperature. Then the auxiliary telescopic rods 17 extend downward so that the connecting plate 10 contacts the remaining ice cubes. Since the movable heat conducting rods 20 only have residual heat, they melt at the moment of contact and then freeze again. The ice cubes stick to the movable heat conducting rods 20, and then the main telescopic rod 21 extends to take the ice cubes out of the electric telescopic sleeve 2 for convenient sun drying. Moreover, the rain shield assembly 9 can be tilted by rotating the active hinge seat 7 to force the ice cubes to completely separate from directly above the pipe orifice. In this way, after being irradiated by the sun, the ice cubes will not fall back into the rainwater bucket 1 when falling from the movable heat conducting rods 20.
[0030] In summary, for the prefabricated roof rainwater bucket component, through the mutual cooperation of the rainwater bucket 1, the main telescopic rod 21, the rain shield assembly 9, the electric telescopic sleeve 2 and the plurality of cutting assemblies 3 provided, the present invention can bend the cutting assembly 3 to cut and roll the ice and snow, making it in a crushed state, facilitating the work of pipeline dredging, and at the same time solving the problem of the drainage function loss caused by the pipe orifice being blocked by ice and snow in spring, which is convenient for personnel to use.
Claims
1. A prefabricated and assembled roof rainwater bucket component, characterized in that: It includes a rainwater bucket (1), a main telescopic rod (21), a rain shield assembly (9), an electric telescopic sleeve (2), and a plurality of cutting assemblies (3). The electric telescopic sleeve (2) is arranged at the top of the rainwater bucket (1). The plurality of cutting assemblies (3) are arranged on the inner wall of the rainwater bucket (1) at equal angles with the electric telescopic sleeve (2) as the center. The main telescopic rod (21) is vertically arranged on the back of the rainwater bucket (1). The rain shield assembly (9) is arranged at the movable end of the main telescopic rod (21). The tops of the plurality of cutting assemblies (3) are all slidably fitted to the bottom of the rain shield assembly (9); It further includes a sliding assembly (11). The sliding assembly (11) is arranged on the inner wall of the rainwater bucket (1). The sliding assembly (11) includes an annular slideway (14) and a plurality of sliders (15). The annular slideway (14) is arranged on the inner wall of the rainwater bucket (1). The plurality of sliders (15) are all slidably fitted on the annular slideway (14); The plurality of cutting assemblies (3) correspond to the plurality of sliders (15) one by one. The cutting assembly (3) includes a magnetic connecting rod one (13), a connecting rod two (16), and a cutter head (19). The connecting rod one (13) and the connecting rod two (16) are connected by a spring hinge seat. The bottom end of the connecting rod two (16) is hinged to the slider (15). The top of the connecting rod one (13) inclines towards the central axis of the rainwater bucket (1). The bottom of the connecting rod one (13) is slidably fitted to the bottom surface of the rain shield assembly (9). The cutter head (19) is arranged on the surface of the connecting rod one (13) away from the rainwater bucket (1); The rain shield assembly (9) includes a rain shield (6), a motor (18), a connecting rod (8), and a main hinge seat (7). The connecting rod (8) is arranged at the movable end of the main telescopic rod (21). The main hinge seat (7) is arranged at the bottom of the connecting rod (8). The rain shield (6) is arranged on the main hinge seat (7). The motor (18) is arranged at the bottom of the rain shield (6); The rain shield assembly (9) further includes a piston head (5), an auxiliary telescopic rod (17), and a heater (4) with a heat conducting plate made of iron at the bottom. The piston head (5) is arranged at the output end of the motor (18). The heater (4) is arranged on the piston head (5). The auxiliary telescopic rod (17) is arranged at the center of the bottom of the piston head (5); The rain shield assembly (9) further includes a connecting plate (10) and a plurality of movable heat conducting rods (20). The movable ends of the auxiliary telescopic rods (17) respectively pass through the heater (4) and extend to the bottom of the heater (4). The connecting plate (10) is arranged at the movable ends of the auxiliary telescopic rods (17). The plurality of movable heat conducting rods (20) are slidably fitted on the connecting plate (10) in the up and down direction. The movable heat conducting rods (20) are in contact with the heater (4). It further includes a plurality of chutes (12). The plurality of chutes (12) are distributed at equal angles with the piston head (5) as the center on the heater (4) and the connecting plate (10). The connecting rod one (13) corresponds to the chutes (12) one by one. The top of the connecting rod one (13) passes through the chutes (12) and is in contact with the piston head (5).
Citation Information
Patent Citations
Snow-melting pressure flow rain hopper
CN101906854A
Pipeline dredging equipment for water drainage
CN107869184A
Anti-freezing roof drain for roof
CN215407005U
Device to reduce clogging of gutters
US20090193723A1