Environment-friendly crushing trolley integrated equipment
By designing the main dust reduction mechanism and direct injection assembly in the integrated equipment of the environmentally friendly crushing trolley, and adjusting the spray angle using the rotating frame and arc-shaped guide rail, the problem that existing equipment cannot adjust the dust reduction range according to the construction position is solved, and an efficient environmentally friendly dust reduction effect is achieved.
Patent Information
- Application Number
- CN202510659990.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-22
- Publication Date
- 2025-06-20
- Estimated Expiration
- 2045-05-22
AI Technical Summary
The existing environmentally friendly crushing trolley integrated equipment cannot adjust the dust reduction range according to the obstacles in the crushing construction location, resulting in poor spray dust removal effect.
An environmentally friendly crushing trolley integrated equipment is designed, using a combination of the main dust reduction mechanism and the direct injection assembly. Through the cooperation of the rotating frame and the arcuate guide rail, the main spray pipe and the direct injection assembly can adjust the angle according to the obstacles in the crushing area to achieve adaptive dust reduction spray.
By adjusting the spray angle, the crushed construction area can be effectively covered, the dust reduction effect can be improved, and the efficient environmentally friendly dust reduction can be achieved at different construction locations.
Smart Images

Figure CN120174936A_ABST
Abstract
Description
Technical Field
[0001] The present invention belongs to the technical field of environmental protection trolleys, and specifically relates to an integrated equipment of an environmental protection type crushing trolley. Background Art
[0002] The integrated equipment of the crushing trolley is often used in the processes of building construction, rock wall construction, and mine rock drilling construction. When the existing integrated equipment of the crushing trolley is in use, the trolley is driven to a designated position for demolition or crushing and rock drilling. However, dust diffusion often occurs during the crushing construction. Therefore, environmental protection dust reduction treatment is required when the integrated equipment of the crushing trolley is in use to meet the requirements of environmental protection construction.
[0003] After retrieval, a Chinese patent with the publication number CN114482166A discloses an integrated equipment of an environmental protection type crushing trolley. When using the integrated equipment of the environmental protection type crushing trolley to demolish and crush a building, water mist is sprayed through a dust removal mechanism for real-time dust removal to reduce pollution. At the same time, the vibration during the operation of the trolley is weakened by a buffer table, thereby protecting the physical health of the driver. The overall structure is simple, effectively inhibiting the diffusion of dust, and has strong practicability; When the above equipment is in use, it sprays towards the crushing area through a nozzle for crushing dust reduction, but it cannot adjust the dust reduction range according to the obstruction situation at the crushing construction position, and can only perform small-range spray dust removal on the crushing area. Summary of the Invention
[0004] The purpose of the present invention is to provide an integrated equipment of an environmental protection type crushing trolley to solve the problems raised in the above background art.
[0005] To achieve the above purpose, the present invention provides the following technical solution: An integrated equipment of an environmental protection type crushing trolley, including a trolley body and a water tank. A water tank and a hydraulic arm are installed above the trolley body. The top of the hydraulic arm is movably connected to a mounting seat. A first hydraulic rod is also connected between the mounting seat and the hydraulic arm. A crushing hammer is installed on one side of the mounting seat. A water pump is installed on the side of the water tank. The output end of the water pump is connected to a water supply pipe; A main dust reduction mechanism is arranged on the outer side of the mounting seat. The main dust reduction mechanism includes a rotating frame movably connected to the mounting seat. An arc-shaped plate is fixed on one side of the rotating frame, and an arc-shaped guide rail is fixed on one side of the arc-shaped plate. The arc-shaped guide rail is welded to the arc-shaped pipe of the main spray pipe. The main spray pipe is composed of a horizontal pipe and an arc-shaped pipe connected to form a square structure. Main spray nozzles are connected to the outer walls of the horizontal pipe and the arc-shaped pipe of the main spray pipe. The horizontal pipe at the lower part of the main spray pipe is communicated with a water supply pipe. Straight spray components for lateral dust reduction are arranged on both sides of the breaker hammer. The straight spray component includes a cross pipe fixed on the side surface of the breaker hammer. One end of the cross pipe is hinged with a side spray pipe. A first pressure-resistant hose is connected between the cross pipe and one of the horizontal pipes of the main spray pipe. A front dust reduction component for downward spray dust reduction is arranged above the breaker hammer.
[0006] Preferably, a counterweight convex block is fixed on the side of the rotating frame away from the arc-shaped plate.
[0007] Preferably, brackets are fixed on both side edges of the mounting seat, and a second hydraulic rod is connected between the brackets and the counterweight convex block.
[0008] Preferably, an arc-shaped cavity is formed on the surface of the arc-shaped guide rail, and one end of the cross pipe passes through the arc-shaped cavity on the surface of the arc-shaped guide rail.
[0009] Preferably, an I-shaped moving wheel is sleeved on the outer side of the cross pipe, and an adjusting strip is welded on the outer arc surface of the arc-shaped plate of the rotating frame.
[0010] Preferably, the adjusting strip is of a spiral structure, and the I-shaped moving wheel is slidably lapped on one side of the adjusting strip.
[0011] Preferably, a push-pull arm is rotatably connected to one side of the I-shaped moving wheel, and a lever rod movably connected to the push-pull arm is fixed on one side of the side spray pipe.
[0012] Preferably, a support rod is fixed between the two arc-shaped guide rails above the breaker hammer. An extrusion arm is sleeved on the outer side of the support rod. One end of the extrusion arm away from the support rod is rotatably connected to a sliding seat.
[0013] Preferably, the sliding seat is slidably connected to the upper surface of the breaker hammer. A swing arm rail is rotatably connected to the top of the sliding seat. Symmetrically distributed limit pins are also fixed on the upper surface of the breaker hammer.
[0014] Preferably, the limit pins are slidably connected to the middle part of the swing arm rail. An arc-shaped conduit is welded to one side of the swing arm rail. A secondary spray nozzle is installed downward at one end of the arc-shaped conduit. The other end of the arc-shaped conduit is connected upward to a second pressure-resistant hose, and the second pressure-resistant hose is communicated with one of the horizontal pipes of the main spray pipe.
[0015] Compared with the prior art, the beneficial effects of the present invention are: When the main spray pipe of the main dust reduction mechanism of the present invention is adjusted at the construction position where the rock wall is broken, it can adapt to different diffusion positions of dust through range spraying, and use the direct injection component to adjust adaptively with the angle deflection of the main spray pipe, so as to conveniently change the direct injection angle according to the obstruction conditions existing at the top or bottom of the broken area, ensure that the broken construction area can be wetted in advance, and at the same time, the angle deflection of the main spray pipe can drive the front dust reduction component to adjust the position of the downward direct spray water mist, so that the present invention can adaptively adjust the dust reduction spray range according to the needs of broken construction. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Figure 1 is a three-dimensional structural schematic diagram of the present invention; Figure 2 is a three-dimensional structural schematic diagram of the middle part of the main spray pipe of the present invention near the breaker; Figure 3 is a three-dimensional structural schematic diagram of the main spray pipe of the present invention; Figure 4 is a three-dimensional structural schematic diagram of the linkage between the rotating frame and the direct injection component of the present invention; Figure 5 is a first perspective three-dimensional structural schematic diagram of the linkage between the main dust reduction mechanism, the direct injection component and the front dust reduction component of the present invention; Figure 6 is a second perspective three-dimensional structural schematic diagram of the linkage between the main dust reduction mechanism, the direct injection component and the front dust reduction component of the present invention; Figure 7 is a third perspective three-dimensional structural schematic diagram of the linkage between the main dust reduction mechanism, the direct injection component and the front dust reduction component of the present invention; Figure 8 is a fourth perspective three-dimensional structural schematic diagram of the linkage between the main dust reduction mechanism, the direct injection component and the front dust reduction component of the present invention.
[0017] In the figure: 1, trolley body; 2, water tank; 201, water pump; 202, water supply pipe; 3, hydraulic arm; 301, first hydraulic rod; 302, mounting seat; 4, breaker; 5, main dust reduction mechanism; 501, rotating frame; 502, arc guide rail; 503, main spray pipe; 504, main nozzle; 505, counterweight convex block; 506, second hydraulic rod; 507, bracket; 6, direct injection component; 601, cross pipe; 602, side spray pipe; 603, I-shaped moving wheel; 604, adjusting strip; 605, push-pull arm; 606, lever; 607, first pressure-resistant hose; 7, front dust reduction component; 701, support rod; 702, extrusion arm; 703, sliding seat; 704, swing arm rail; 705, limit pin; 706, arc conduit; 707, auxiliary nozzle; 708, second pressure-resistant hose. DETAILED DESCRIPTION OF THE INVENTION
[0018] The technical solutions in the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.
[0019] Please refer to Figures 1 - 8 , the present invention provides a technical solution: an environmentally friendly integrated crushing trolley device, including a trolley body 1 and a water tank 2. A water tank 2 and a hydraulic arm 3 are installed above the trolley body 1. The top of the hydraulic arm 3 is movably connected to a mounting seat 302. A first hydraulic rod 301 is also connected between the mounting seat 302 and the hydraulic arm 3. A crushing hammer 4 is installed on one side of the mounting seat 302. When the first hydraulic rod 301 is started to drive the mounting seat 302 to adjust the angle, the angle of the crushing hammer 4 can be changed to adapt to different crushing construction environments; a water pump 201 is installed on the side of the water tank 2, and the output end of the water pump 201 is connected to a water supply pipe 202; A main dust reduction mechanism 5 is arranged outside the mounting seat 302. The main dust reduction mechanism 5 includes a rotating frame 501 movably connected to the mounting seat 302. An arc-shaped plate is fixed on one side of the rotating frame 501, and an arc-shaped guide rail 502 is fixed on one side of the arc-shaped plate. The arc-shaped guide rail 502 is welded to the arc-shaped pipe of the main spray pipe 503. The main spray pipe 503 is composed of a horizontal pipe and an arc-shaped pipe connected to form a square structure. Main spray nozzles 504 are connected to the outer walls of the horizontal pipe and the arc-shaped pipe of the main spray pipe 503. The horizontal pipe at the lower part of the main spray pipe 503 is connected to the water supply pipe 202. Straight spray components 6 for lateral dust reduction are arranged on both sides of the crushing hammer 4. The straight spray component 6 includes a cross pipe 601 fixed on the side of the crushing hammer 4. One end of the cross pipe 601 is hinged to a side spray pipe 602. The hinge between the cross pipe 601 and the side spray pipe 602 is communicated through a hose. A first pressure-resistant hose 607 is connected between one of the horizontal pipes of the cross pipe 601 and the main spray pipe 503.
[0020] During specific implementation, the water pump 201 on one side of the water tank 2 is started to pump the water inside the water tank 2. The water is conveyed into the lower horizontal pipe of the main spray pipe 503 through the water supply pipe 202. At this time, the water circulates evenly through the square-structured main spray pipe 503, and a frame-shaped range of spray will be generated in front of the crushing hammer 4 through the main spray nozzles 504 on the main spray pipe 503. When the front end of the crushing hammer 4 breaks the rock wall, the water mist sprayed through the main spray pipe 503 can diffusively cover the area of the crushing construction; While the water inside the main spray pipe 503 is flowing, it will enter the cross pipe 601 through the first pressure-resistant hose 607. And the cross pipe 601 uses the hose to introduce the water flow into the side spray pipe 602, and then sprays straight out through the direct spray nozzle near the front of the rock breaker 4 in the side spray pipe 602. The straight spray water column can impact the rock wall, wet the rocks on the surface of the rock wall in advance, and reduce the amount of dust generated during the crushing of the rock wall surface and the vibration of the rocks. At the same time, the straight spray water flow can wash the lateral position of the rock broken by the rock breaker 4, making the water flow downward along the horizontal line of the wetted position of the rock, ensuring that the straight spray water flow can cover the area where the rock breaks.
[0021] Please refer to Figure 2 、 Figures 4 - 8 On the side of the rotary frame 501 away from the arc plate, a counterweight convex block 505 is fixed. By setting the counterweight convex block 505, the weights of the rotary frame 501 and the main spray pipe 503 can be balanced, reducing the pressure of the telescopic movement of the second hydraulic rod 506; on both sides of the mounting seat 302, brackets 507 are fixed, and a second hydraulic rod 506 is connected between the brackets 507 and the counterweight convex block 505.
[0022] During specific implementation, according to Figure 2 it can be known that when the rock wall without upper and lower obstacles needs to be broken, the second hydraulic rod 506 is started. When driving the middle position of the main spray pipe 503 on the rotary frame 501 to rotate and approach the side of the rock breaker 4, the middle of the adjustment strip 604 on the arc plate will be docked with the I-shaped moving wheel 603. At this time, the cross pipe 601 and the side spray pipe 602 are on a straight line. Therefore, the water flow sprayed straight by the side spray pipe 602 will directly impact the front position of the rock wall to be broken. At the same time, the main spray pipe 503 will be aligned with the upper and lower sides of the crushing area for spray dust reduction; According to Figure 5 and Figure 6 it can be known that when the crushing area is close to the upper obstacle or the top surface of the rock wall, the dust generated by crushing will be blocked by the upper obstacle or the top surface of the rock wall, causing the dust to spread downward. At the same time, the falling distance of the broken rocks is relatively high, and the falling of the crushed stones will cause the dust to spread horizontally along the rock wall. At this time, the output end of the second hydraulic rod 506 is retracted to drive the counterweight convex block 505 to deflect upward. The counterweight convex block 505 will drive the main spray pipe 503 on one side of the rotary frame 501 to rotate downward. The downward-deflected main spray pipe 503 will spray dust reduction at an inclined downward angle through the main nozzles 504 on the side and the lower part. The dust spreading downward and towards the rock breaking trolley direction can be blocked by the inclined spray at an inclined downward angle. At the same time, the main nozzles 504 on the upper part of the main spray pipe 503 will directly spray a small area towards the crushing area, ensuring that the small-area spray can cover the central position of the crushing area, so as to achieve efficient dust reduction when breaking the rock wall close to the upper obstacle or the top surface of the rock wall; According to Figure 7 andFigure 8 It can be seen that when the crushing area is close to the lower obstacle or the bottom surface of the rock wall, the dust generated by crushing will be blocked by the lower obstacle or the bottom surface of the rock wall, causing the dust to spread upward. At the same time, the falling distance of the crushed rock is relatively low, and the falling of the crushed stones will make the dust more concentrated. At this time, by extending the output end of the second hydraulic rod 506 to drive the counterweight convex block 505 to deflect downward, the counterweight convex block 505 will drive the main spray pipe 503 on one side of the rotating frame 501 to rotate upward. The upward rotating main spray pipe 503 will spray and dust fall at an inclined upward angle through the main nozzles 504 on the side and the upper part. At this time, the inclined upward spray can cover the upward spreading dust downward when it falls back. At the same time, the main nozzles 504 at the lower part of the main spray pipe 503 will directly face the crushing area for small-range spraying to prevent the dust from spreading towards the direction of the crushing trolley, ensuring that the spray ejected from the main spray pipe 503 can produce a concentrated dust reduction effect on the dust close to the lower obstacle or the bottom surface of the rock wall.
[0023] Please refer to Figures 2 - 8 , an arc-shaped cavity is provided on the surface of the arc-shaped guide rail 502, and one end of the cross pipe 601 passes through the arc-shaped cavity on the surface of the arc-shaped guide rail 502; an I-shaped moving wheel 603 is sleeved outside the cross pipe 601, and an adjusting strip 604 is welded on the outer arc surface of the arc-shaped plate of the rotating frame 501; the adjusting strip 604 is a spiral structure, and the I-shaped moving wheel 603 is slidably lapped on one side of the adjusting strip 604; One side of the I-shaped moving wheel 603 is rotatably connected with a push-pull arm 605, and a lever 606 movably connected with the push-pull arm 605 is fixed on one side of the side spray pipe 602.
[0024] During specific implementation, according to Figure 5 and Figure 6 It can be seen that when the main spray pipe 503 drives the arc-shaped guide rail 502 to deflect downward, the spiral-shaped adjusting strip 604 on the arc-shaped plate will push the I-shaped moving wheel 603 away from the main spray pipe 503. The I-shaped moving wheel 603 will squeeze the lever 606 through the push-pull arm 605, causing the lever 606 to drive the side spray pipe 602 to horizontally deflect away from the rock wall. At this time, the side spray pipe 602 will make the direct spray water flow tilt to both sides, so that the direct spray water flow is far from the central position of the rock wall crushing, ensuring that the direct spray water flow can impact the position farther from the crushing center, and can wet the surface of the rock at the position farther from the crushing center in advance, so as to produce an adsorption effect on the laterally spreading dust; According to Figure 7 and Figure 8It can be seen that when the main spray pipe 503 drives the arc-shaped guide rail 502 to deflect upward, the spiral adjustment strip 604 on the arc-shaped plate will push the I-shaped moving wheel 603 to move closer to the main spray pipe 503, so that the I-shaped moving wheel 603 drives the push-pull arm 605 to pull the lever 606, and then the lever 606 drives the side spray pipe 602 to deflect horizontally in the direction close to the rock wall. At this time, the side spray pipe 602 will spray the straight spray water flow close to the central position of the rock wall where it is broken, ensuring that the straight spray water flow can impact the position closer to the breaking center, so as to wet the rock surface at the position closer to the breaking center in advance, ensure that the dust on the broken rock surface is adsorbed, and at the same time can wet the rock wall at the breaking center, so that the amount of dust generated on the broken rock surface is less.
[0025] Please refer to Figure 2 、 Figures 5 - 8 Above the breaker 4, a front dust suppression assembly 7 for downward spraying and dust suppression is provided. A support rod 701 is fixed between two arc-shaped guide rails 502 above the breaker 4. An extrusion arm 702 is sleeved outside the support rod 701. One end of the extrusion arm 702 away from the support rod 701 is rotatably connected to a sliding seat 703; The sliding seat 703 is slidably connected to the upper surface of the breaker 4. The top of the sliding seat 703 is rotatably connected to a swing arm rail 704. Symmetrically distributed limit pins 705 are also fixed on the upper surface of the breaker 4; The limit pin 705 is slidably connected to the middle of the swing arm rail 704. An arc-shaped conduit 706 is welded to one side of the swing arm rail 704. A secondary nozzle 707 is installed downward at one end of the arc-shaped conduit 706. The other end of the arc-shaped conduit 706 is connected upward to a second pressure-resistant hose 708, and the second pressure-resistant hose 708 is communicated with one of the horizontal pipes of the main spray pipe 503.
[0026] During specific implementation, according to Figure 5 and Figure 6 It can be seen that when the breaking area is close to the upper obstacle or the top surface of the rock wall, the dust generated by breaking will be blocked by the upper obstacle or the top surface of the rock wall, causing the dust to spread downward. At the same time, the broken rock falls from a relatively high distance, and the falling of the broken stones will cause the dust to spread horizontally along the rock wall. When the main spray pipe 503 drives the arc-shaped guide rail 502 to deflect downward, the support rod 701 on the arc-shaped guide rail 502 will push the sliding seat 703 to slide forward to the front end of the breaker 4 through the extrusion arm 702. At this time, the sliding seat 703 will drive the swing arm rail 704 to slide along the limit pin 705, so that the arc-shaped conduit 706 deflects and moves to the side of the breaker 4, making the secondary nozzle 707 at one end of the arc-shaped conduit 706 away from the breaking center. At this time, the water inside the main spray pipe 503 will be introduced into the arc-shaped conduit 706 through the second pressure-resistant hose 708, and downward straight spray water mist will be sprayed through the two separated secondary nozzles 707 to cover the dust spreading horizontally close to the rock wall; According toFigure 7 and Figure 8 It can be seen that when the crushing area is close to the lower obstacle or the bottom surface of the rock wall, the dust generated by crushing will be blocked by the lower obstacle or the bottom surface of the rock wall, causing the dust to spread upward. At the same time, the falling distance of the crushed rock is relatively low, and the falling crushed stones will make the dust more concentrated. When the main spray pipe 503 drives the arc guide rail 502 to deflect upward, the support rod 701 on the arc guide rail 502 will pull the sliding seat 703 to slide towards the tail end of the breaker 4 through the extrusion arm 702. At this time, the sliding seat 703 will drive the swing arm rail 704 to slide along the limit pin 705, so that the arc-shaped conduit 706 deflects and moves towards the center position of the breaker 4, making the secondary spray head 707 at one end of the arc-shaped conduit 706 close to the position of the crushing center. At this time, the water inside the main spray pipe 503 will be introduced into the arc-shaped conduit 706 through the second pressure-resistant hose 708, and the concentrated dust close to the rock wall will be covered by spraying water mist downward through the two mutually approaching secondary spray heads 707.
[0027] In summary, by moving the position of the driving trolley body 1 and using the hydraulic arm 3 to drive the breaker 4 to align with the position to be crushed, the water in the water tank 2 is pumped by the water pump 201 and conveyed into the main spray pipe 503 through the water supply pipe 202. At this time, the water sprays out water mist through the main spray head 504 on the main spray pipe 503 to diffusely cover the crushing construction area, and the side spray pipe 602 is used to spray straight through the direct spray port in front of the crushing operation of the breaker 4, and then the secondary spray heads 707 on the arc-shaped conduit 706 spray water mist downward to cover the dust, ensuring that the integrated crushing trolley equipment has an efficient and environmentally friendly dust reduction effect during crushing construction. The content not described in detail in this specification belongs to the prior art well-known to those skilled in the art.
[0028] Although the present invention has been described in detail with reference to the foregoing embodiments, for those skilled in the art, they can still modify the technical solutions described in the foregoing embodiments, or perform equivalent replacements for some of the technical features. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present invention shall be included within the protection scope of the present invention.
Claims
1. An environmentally friendly integrated crushing trolley equipment, comprising a trolley body (1) and a water tank (2). Above the trolley body (1), a water tank (2) and a hydraulic arm (3) are installed. The top of the hydraulic arm (3) is movably connected to a mounting seat (302). A first hydraulic rod (301) is also connected between the mounting seat (302) and the hydraulic arm (3). A crushing hammer (4) is installed on one side of the mounting seat (302). A water pump (201) is installed on the side of the water tank (2). The output end of the water pump (201) is connected to a water supply pipe (202); it is characterized in that: A main dust reduction mechanism (5) is provided on the outer side of the mounting base (302). The main dust reduction mechanism (5) includes a rotating frame (501) movably connected to the mounting base (302). One side of the rotating frame (501) is fixed with an arc-shaped plate, and an arc-shaped guide rail (502) is fixed on one side of the arc-shaped plate. The arc-shaped guide rail (502) is welded to the arc-shaped pipe of the main spray pipe (503). The main spray pipe (503) is composed of a horizontal pipe and an arc-shaped pipe connected to form a square structure. Main spray nozzles (504) are connected to the outer walls of the horizontal pipe and the arc-shaped pipe of the main spray pipe (503). The horizontal pipe at the lower part of the main spray pipe (503) is communicated with a water supply pipe (202). Straight spray components (6) for lateral dust reduction are arranged on both sides of the breaker hammer (4). The straight spray component (6) includes a cross pipe (601) fixed to the side surface of the breaker hammer (4). One end of the cross pipe (601) is hinged with a side spray pipe (602). A first pressure-resistant hose (607) is connected between the cross pipe (601) and one of the horizontal pipes of the main spray pipe (503). A front dust reduction component (7) for downward spraying dust reduction is arranged above the breaker hammer (4).
2. The environmentally friendly integrated crushing trolley equipment according to claim 1, characterized in that: A counterweight convex block (505) is fixed on the side of the rotating frame (501) away from the arc-shaped plate.
3. The environmentally friendly integrated crushing trolley equipment according to claim 2, characterized in that: Brackets (507) are fixed on the two side edges of the mounting base (302). A second hydraulic rod (506) is connected between the brackets (507) and the counterweight convex block (505).
4. The environmentally friendly integrated crushing trolley equipment according to claim 1, characterized in that: An arc-shaped cavity is formed on the surface of the arc-shaped guide rail (502). One end of the cross pipe (601) passes through the arc-shaped cavity on the surface of the arc-shaped guide rail (502).
5. The environmentally friendly integrated crushing trolley equipment according to claim 1, characterized in that: An I-shaped moving wheel (603) is sleeved on the outer side of the cross pipe (601). An adjusting strip (604) is welded on the outer arc surface of the arc-shaped plate of the rotating frame (501).
6. The environmentally friendly integrated crushing trolley equipment according to claim 5, characterized in that: The adjusting strip (604) is of a spiral structure. The I-shaped moving wheel (603) is slidably lapped on one side of the adjusting strip (604).
7. The environmentally friendly integrated crushing trolley equipment according to claim 6, characterized in that: One side of the I-shaped moving wheel (603) is rotatably connected with a push-pull arm (605). A lever (606) movably connected to the push-pull arm (605) is fixed on one side of the side spray pipe (602).
8. The environmentally friendly integrated crushing trolley equipment according to claim 1, characterized in that: A support rod (701) is fixed between the two arc-shaped guide rails (502) above the breaker hammer (4). An extrusion arm (702) is sleeved on the outer side of the support rod (701). One end of the extrusion arm (702) away from the support rod (701) is rotatably connected with a sliding seat (703).
9. The environmentally friendly integrated crushing trolley equipment according to claim 8, characterized in that: The sliding seat (703) is slidably connected with the upper surface of the breaker hammer (4). A swing arm rail (704) is rotatably connected to the top of the sliding seat (703). Symmetrically distributed limit pins (705) are also fixed on the upper surface of the breaker hammer (4).
10. The environmentally friendly integrated crushing trolley equipment according to claim 9, characterized in that: The limit pin (705) is slidably connected to the middle of the swing arm rail (704). An arc-shaped conduit (706) is welded to one side of the swing arm rail (704). A secondary spray head (707) is installed downward at one end of the arc-shaped conduit (706). The other end of the arc-shaped conduit (706) is connected upward to a second pressure-resistant hose (708), and the second pressure-resistant hose (708) communicates with one of the horizontal pipes of the main spray pipe (503).
Citation Information
Patent Citations
Environment-friendly crushing trolley integrated equipment
CN114482166A
Spraying dust settling system for construction site
CN110075641A
Vehicle-mounted construction device for land improvement and ecological restoration
CN114250816A
Dustproof device for engineering machinery vehicle
CN115305983A
Dust falling device of breaking and removing equipment
CN216856134U