Polymer Concrete Conveying Device and Its Usage Method
By designing the combination of support, feeding, mixing and conveying mechanisms, the problem of low efficiency in the configuration and conveying process of polymer concrete is solved, and automated bag breaking, feeding and stirring are realized, improving the configuration efficiency and convenience of polymer concrete.
Patent Information
- Application Number
- CN202411290687.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-14
- Publication Date
- 2025-07-29
- Estimated Expiration
- 2044-09-14
AI Technical Summary
During the configuration and transportation of polymer concrete, it is necessary to shorten the time and the polymer concrete is packaged in woven bags. Manual operation to pour out the concrete affects the configuration efficiency.
A polymer concrete conveying device including a support mechanism, a feeding mechanism, a mixing mechanism and a conveying mechanism is designed. Through the combination of a bag breaking member, a screw conveying rod, agitating member and a conveying belt, it realizes automatic bag breaking, feeding, stirring and conveying.
It improves the configuration efficiency of polymer concrete, shortens the configuration and conveying time, improves the convenience and flexibility of use, and ensures the quality of concrete.
Smart Images

Figure CN119142631B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of concrete conveying, and particularly relates to a polymer concrete conveying device and a using method thereof. Background Art
[0002] Due to various environmental conditions, such as physical or chemical erosion by the atmosphere, water, freeze-thaw, etc., the concrete in hydropower projects in cold regions often suffers varying degrees of damage to its structure, affecting its service life and urgently requiring maintenance and repair. There are many conditional factors involved and to be considered in the reinforcement and strengthening of hydraulic structures, including engineering conditions, engineering environmental conditions, material adaptability, repair quality and effect, comprehensive cost, etc. Through practice, it has been proven that when considering the influence of various conditional factors, it is very necessary and feasible to repair the project using new technologies, new processes, and materials with excellent performance. In the prior art, polymer concrete is often used in the reinforcement and strengthening of hydraulic structures. Compared with traditional concrete materials, it has the advantages of aging resistance and strong deformation adaptability. Its frost resistance index can reach above F300, and its impermeability index can reach above W10.
[0003] Before using polymer concrete to reinforce hydraulic structures, it is necessary to treat the foundation surface of the structure, clean the loose surface layer of the damaged surface, and then configure the polymer concrete. Due to the characteristics of polymer concrete itself, it needs to be used within one hour after configuration to avoid hardening. Therefore, when configuring, transporting, and using polymer concrete, the process needs to be shortened as much as possible. Moreover, polymer concrete is packed in woven bags, and before configuring it, manual operation is required to pour the concrete out of the woven bags, which affects the configuration efficiency. Summary of the Invention
[0004] The purpose of the present invention is to provide a polymer concrete conveying device and a using method thereof to solve the following technical problems:
[0005] When configuring, transporting, and using polymer concrete, the process needs to be shortened as much as possible. Moreover, polymer concrete is packed in woven bags, and before configuring it, manual operation is required to pour the concrete out of the woven bags, which affects the configuration efficiency.
[0006] The purpose of the present invention can be achieved through the following technical solutions: A polymer concrete conveying device, including a support mechanism, and a feeding mechanism is arranged on one side at the top of the support mechanism;
[0007] The feeding mechanism includes a bracket. At the inner top end of the bracket, a bag-breaking member is provided. At the bottom end of the bag-breaking member, a material receiving hopper is provided. At the top end of the material receiving hopper, a vertical pipe is provided. At the bottom end of the outer wall of the vertical pipe, a sleeve plate is sleeved. At the top end of the vertical pipe, a first motor is threadedly connected through a flange. At the top end of the outer wall of the vertical pipe, a discharge hopper is sleeved. Inside the vertical pipe, a spiral conveyor rod is rotatably connected. The side of the sleeve plate is fixedly connected to the side of the bracket. The bottom end of the spiral conveyor rod extends into the interior of the material receiving hopper, and the bottom end of the spiral conveyor rod is rotatably connected to the inner bottom end of the material receiving hopper. At the same time, the top end of the spiral conveyor rod is locked to the outer wall of the output shaft at the bottom end of the first motor through a coupling.
[0008] As a further solution of the present invention, the bag-breaking member includes a feeding hopper. At the inner top end of the feeding hopper, a top plate is fixedly connected. At the inner bottom end of the top plate, two rotating plates are provided. At the inner top ends of the two rotating plates, puncturing rods are fixedly connected, and the two puncturing rods are arranged in a staggered manner at the top ends of the rotating plates. On the sides of the two rotating plates, gear disks are provided. On the sides of the two gear disks, a motor frame is rotatably connected. On the side of the motor frame, a servo motor is threadedly connected through a flange. The feeding hopper is fixedly connected to the inner top end of the bracket, and the bottom end of the feeding hopper is communicated with the top end of the material receiving hopper. The two rotating plates are rotatably connected to the interior of the feeding hopper through a shaft rod, and both ends of the shaft rod penetrate through the inner top end of the bracket. At the same time, one end of the shaft rod is fixedly connected to the gear disk. The two gear disks are rotatably connected to the other top end of the bracket, and the inner sides of the two gear disks are meshed with each other. The front end and the rear end of the side of the motor frame are bolted to the top end of the side of the bracket. The servo motor is threadedly connected to the front end of the side of the motor frame through a flange, and the output shaft on the side of the servo motor is fixedly connected to the front-end gear disk.
[0009] As a further solution of the present invention, the supporting mechanism includes a bottom frame. At the outer bottom end of the bottom frame, a shaft block is fixedly connected. Inside the shaft block, a roller is rotatably connected. At the front end and the rear end of the outer side of the bottom frame, fixing frames are bolted. On the outer side of the fixing frames, first hydraulic rods are fixedly connected. On the side of the bottom frame, a towing hook is threadedly connected through a bolt. The bracket is fixedly connected to one side of the top end of the bottom frame.
[0010] As a further solution of the present invention, at the center of the top end of the supporting mechanism, a mixing mechanism is provided. The mixing mechanism includes a frame. At the inner top end of the frame, a stirring member is provided. Near one side of the feeding mechanism at the top end of the stirring member, a feeding hopper is provided. At the inner bottom end of the frame, a discharging member is provided. Inside the stirring member, a cleaning member is provided. The frame is fixedly connected to the center of the top end of the bottom frame. The feeding hopper is sleeved on the outer wall of the bottom end of the discharge hopper.
[0011] As a further solution of the present invention, the stirring member includes a stirring barrel. An inlet is opened on one side of the top end of the stirring barrel close to the feeding mechanism. An outlet is opened at the center of the bottom end of the stirring barrel. A stirring rod is rotatably connected inside the stirring barrel. The side surface of the stirring barrel is threadedly connected with a second motor through a flange. A fixed disk is rotatably connected to the outer side of the stirring rod, and the outer side of the fixed disk is fixedly connected to the inner wall of the stirring barrel. The stirring barrel is fixedly connected to the inner top end of the frame. The bottom end of the outer wall of the feeding hopper is inserted into the inner side of the top end of the inlet. The output shaft of the second motor penetrates through the inside of the stirring barrel and the fixed disk, and the output shaft of the second motor is locked with one end of the stirring rod through a coupling.
[0012] As a further solution of the present invention, the discharging member includes a supporting plate. A plurality of supporting springs are uniformly and fixedly connected to the front end and the rear end of the inner side of the supporting plate. A discharging groove is fixedly connected to the inner side of the plurality of supporting springs. A vibration motor is fixedly connected to the bottom end of the discharging groove. A plurality of first electric telescopic rods are uniformly and fixedly connected to the side surface of the inner wall of the supporting plate. A clamping plate is fixedly connected to the outer wall of the plurality of first electric telescopic rods. The supporting plate is fixedly connected to the inner bottom end of the frame. The first electric telescopic rods and the clamping plate are symmetrically arranged around the central axis of the frame at the bottom end of the outer wall of the stirring barrel. The top end of the clamping plate fits against the bottom end of the outlet. A sewage outlet is opened at the bottom end of one of the clamping plates.
[0013] As a further solution of the present invention, the cleaning member includes a shaft block. An electric jack is threadedly connected to the top end of the shaft block through a flange. A support rod is fixedly connected to the bottom end of the shaft block. Second electric telescopic rods are symmetrically arranged on the front surface and the back of the shaft block. A plurality of groove blocks are uniformly and fixedly connected to the outer wall of the second electric telescopic rods. A plurality of scraping plates are fixedly connected to the outer side of the plurality of groove blocks. A brush plate is fixedly connected to the inner side of the plurality of groove blocks. A flow dividing frame is sleeved on the outer wall of the brush plate. The shaft block is sleeved on both sides of the outer wall of the stirring rod. The bottom end of the electric jack is slidably connected to the inside of the top end of the shaft block. The outer side of the bottom end of the support rod is slidably connected to the inside of the fixed disk. The flow dividing frame is fixedly connected to the inner side of the second electric telescopic rods.
[0014] As a further solution of the present invention, a conveying mechanism is provided on the other side of the top end of the supporting mechanism. The conveying mechanism includes a shaft seat. A grooved plate is rotatably connected to the inner side of the shaft seat. A conveyor belt is rotatably connected to the inner side of the grooved plate. One side of the front surface of the grooved plate is threadedly connected to a transmission box through a flange. A third motor is threadedly connected to the side surface of the transmission box through a flange. A baffle is fixedly connected to the top end inside the grooved plate. A scraper is fixedly connected to one end of the inner bottom of the grooved plate away from the shaft seat. An adjusting member is provided on the outer side of the bottom end of the grooved plate. The shaft seat is fixedly connected to the top end of the chassis. One end of the grooved plate is arranged at the bottom end of the discharge chute. The output shaft of the transmission box penetrates through the inside of the grooved plate, and the output shaft of the transmission box is locked with the transmission roller inside the conveyor belt through a coupling. The output shaft on the side surface of the third motor is locked to the outer wall of the transmission shaft of the transmission box through a coupling. The bottom end of the baffle is attached to the top end of the outer wall of the conveyor belt. The top end of the scraper is attached to the bottom end of the outer wall of the conveyor belt.
[0015] As a further solution of the present invention, the adjusting mechanism includes a convex block. A second hydraulic rod is fixedly connected to the side surface of the convex block. A pin shaft is rotatably connected to the end of the second hydraulic rod. The front end and the rear end of the outer wall of the pin shaft are both rotatably connected to a support rod. The bottom end of the support rod is rotatably connected to a swivel joint. The convex block is fixedly connected to the outer side of the bottom end of the grooved plate. The bottom end of the swivel joint is fixedly connected to the outer side of the top end of the chassis.
[0016] The present invention also provides a method for using the polymer concrete conveying device, including the following steps:
[0017] Step 1: First, connect the chassis in the supporting mechanism to the trailer body through a tow hook. After bringing the supporting mechanism to the place where it needs to be used by the vehicle body, lower the first hydraulic rod to support the chassis and make the rollers suspended, then the overall erection of the equipment can be completed.
[0018] Step 2: Secondly, insert the whole woven bag filled with polymer concrete into the inside of the bag-breaking member in the feeding mechanism. During this process, the woven bag filled with polymer concrete is broken by the bag-breaking member, and the polymer concrete contained in the woven bag is put into the inside of the receiving hopper. The first motor drives the spiral conveyor rod to rotate, so as to lift and convey the polymer concrete to the discharge hopper, thereby breaking the bag and feeding the polymer concrete.
[0019] Step 3: Then, after the polymer concrete that has been bag-broken and fed is lifted and conveyed into the inside of the discharge hopper, the concrete is put into the inside of the feeding hopper in the mixing mechanism through the discharge hopper and enters the mixing member to mix and process the polymer concrete, and then the mixed and processed polymer concrete is discharged onto the conveying mechanism through the discharging mechanism.
[0020] Step 4. Finally, after the mixed and stirred polymer concrete is placed on the conveyor belt in the conveying mechanism, the third motor provides power to the transmission box, so that the transmission box drives the conveyor belt to start working, and the mixed and stirred polymer concrete placed on the top can be transported to the place where it is needed.
[0021] Beneficial effects of the present invention:
[0022] (1) By providing a support mechanism, the overall flexibility of the device can be improved, making it easier to move the device as a whole. After moving it to the place where it is needed, the base frame can be propped up to fix the base frame and prevent it from shifting during use.
[0023] (2) By setting up a feeding mechanism, when the polymer concrete is fed, the puncture rod can be inserted into the interior of the woven bag through the cooperation of the bag-breaking component, and the puncture rod is driven to expand outward by the rotating plate, so that the woven bag can be torn and the polymer concrete contained therein can be poured out, making it easy to take the polymer concrete. At the same time, when the spiral conveying rod and the vertical pipe lift and convey the polymer concrete, the compacted concrete particles can be crushed, making it easy to mix and process it later;
[0024] (3) By setting up a mixing mechanism, after the polymer concrete is put into the interior of the mixing component, it can be configured and the mixed polymer concrete can be discharged into the interior of the discharge component. Through the cooperation of the discharge chute and the vibration motor, the mixed polymer concrete can be put to the top of the conveying mechanism. In the process of discharging the configured concrete, the configured polymer concrete can be driven to vibrate at the same time, and the bubbles contained therein can be broken, thereby improving the subsequent use effect of the polymer concrete. It can also prevent concrete from adhering to the top of the discharge chute, speeding up the discharge of concrete. By setting up a cleaning component in the mixing component, it is convenient to clean the inner wall of the mixing barrel and the outer side of the mixing rod;
[0025] (4) By setting up a conveying mechanism, the configured polymer concrete can be transported to the place where it is needed, and the overall support angle and support height of the trough plate can be adjusted by adjusting the components, thereby improving the flexibility of use when transporting the polymer concrete;
[0026] (5) Through the cooperation of the above-mentioned mechanisms, the configuration process of polymer concrete can be accelerated, the polymer concrete can be taken out of the woven bag, and the transportation and use time of the mixed concrete can be shortened. The transportation position and transportation angle can also be adjusted to improve the overall convenience of use and speed up the configuration efficiency. BRIEF DESCRIPTION OF THE DRAWINGS
[0027] Figure 1It is a schematic diagram of the connection structure of the polymer concrete conveying device of the present invention;
[0028] Figure 2 It is the present invention Figure 1 Another axonometric connection structure schematic diagram;
[0029] Figure 3 It is the present invention Figure 1 Schematic diagram of the connection structure of the support mechanism in the present invention;
[0030] Figure 4 It is the present invention Figure 1 Schematic diagram of the connection structure of the feeding mechanism in the present invention;
[0031] Figure 5 It is the present invention Figure 4 Schematic diagram of the connection structure of the bag-breaking component in the present invention;
[0032] Figure 6 It is the present invention Figure 4 Schematic diagram of the partial sectional connection structure of the feeding mechanism in the present invention;
[0033] Figure 7 It is the present invention Figure 1 Schematic diagram of the connection structure of the mixing mechanism in the present invention;
[0034] Figure 8 It is the present invention Figure 7 Another axonometric connection structure schematic diagram;
[0035] Figure 9 It is the present invention Figure 7 Schematic diagram of the connection structure of the stirring component and the cleaning component in the present invention;
[0036] Figure 10 It is the present invention Figure 9 Schematic diagram of the connection structure of the cleaning component in the present invention;
[0037] Figure 11 It is the present invention Figure 10 Schematic diagram of the side view sectional connection structure of the present invention;
[0038] Figure 12 It is the present invention Figure 1 Schematic diagram of the connection structure of the conveying mechanism in the present invention;
[0039] Figure 13 It is the present invention Figure 10 Another axonometric connection structure schematic diagram.
[0040] In the figure: 1. Support mechanism; 101. Chassis; 102. Shaft block; 103. Roller; 104. Fixed frame; 105. First hydraulic rod; 106. Hook buckle; 2. Feeding mechanism; 201. Bracket; 202. Bag-breaking component; 2021. Feeding hopper; 2022. Top plate; 2023. Rotating plate; 2024. Piercing rod; 2025. Tooth disc; 2026. Motor bracket; 2027. Servo motor; 203. Receiving hopper; 204. Vertical pipe; 205. Sleeve plate; 206. First motor; 207. Discharge hopper; 208. Screw conveyor rod; 3. Mixing mechanism; 301. Frame; 302. Stirring component; 3021. Stirring barrel; 3022. Feeding port; 3023. Discharge port; 3024. Stirring rod; 3025. Second motor; 3026. Fixed disc; 303. Discharge hopper; 304. Discharge component; 3041. Support plate; 3042. Support spring; 3043. Discharge chute; 3044. Vibration motor; 3045. First electric telescopic rod; 3046. Clamping plate; 305. Cleaning component; 3051. Shaft block; 3052. Electric ejector rod; 3053. Support rod; 3054. Second electric telescopic rod; 3055. Groove block; 3056. Scraper; 3057. Brush plate; 3058. Shunt frame; 4. Conveying mechanism; 401. Shaft seat; 402. Groove plate; 403. Conveyor belt; 404. Transmission box; 405. Third motor; 406. Baffle; 407. Scraper; 408. Adjusting component; 4081. Convex block; 4082. Second hydraulic rod; 4083. Pin shaft; 4084. Support rod; 4085. Adapter joint. Detailed implementation mode
[0041] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with 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. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts belong to the protection scope of the present invention.
[0042] Embodiment 1
[0043] Please refer to Figures 1-6 As shown in the figure, the present invention is a polymer concrete conveying device, including a support mechanism 1. The support mechanism 1 is used to fix the feeding mechanism 2, mixing mechanism 3 and conveying mechanism 4 erected on its top, and can drive the mechanisms erected on its top to move. A feeding mechanism 2 is arranged on one side of the top of the support mechanism 1. The feeding mechanism 2 is used to feed polymer concrete and can perform bag-breaking treatment on the woven bag containing polymer concrete to facilitate the extraction of polymer concrete from the inside of the woven bag;
[0044] The feeding mechanism 2 includes a bracket 201. At the inner top end of the bracket 201, there is a bag-breaking member 202 which is used to break the woven bag containing polymer concrete, so as to take out the polymer concrete from the inside of the woven bag, improving the feeding speed of workers. At the bottom end of the bag-breaking member 202, there is a receiving hopper 203 which is used to hold the polymer concrete discharged from the bag-breaking member 202 and is connected to a vertical pipe 204. At the top end of the receiving hopper 203, there is a vertical pipe 204 which is used to surround the polymer concrete, facilitating the lifting and conveying of the polymer concrete by the spiral conveyor rod 208. And on one side at the outer wall top end of the vertical pipe 204, there is a discharge port. When the polymer concrete is lifted and conveyed to the discharge port, it will be discharged into the inside of the discharge hopper 207 through the discharge port. A sleeve plate 205 is sleeved on the outer wall bottom end of the vertical pipe 204 which is used to fix the vertical pipe 204. The top end of the vertical pipe 204 is threadedly connected to a first motor 206 through a flange plate, and the first motor 206 is used to drive the spiral conveyor rod 208 to rotate. A discharge hopper 207 is sleeved on the outer wall top end of the vertical pipe 204 which is used to discharge the polymer concrete lifted and conveyed into its inside into the inside of the mixing mechanism 3. A spiral conveyor rod 208 is rotatably connected inside the vertical pipe 204 which is used to perform the lifting and conveying work of the polymer concrete, and by cooperating with the vertical pipe 204, it can crush the slightly caked concrete particles in the polymer concrete, facilitating the subsequent stirring and processing of the polymer concrete. The side surface of the sleeve plate 205 is fixedly connected to the side surface of the bracket 201. The bottom end of the spiral conveyor rod 208 extends into the inside of the receiving hopper 203, and the bottom end of the spiral conveyor rod 208 is rotatably connected to the inner bottom end of the receiving hopper 203. At the same time, the top end of the spiral conveyor rod 208 is locked to the outer wall of the bottom output shaft of the first motor 206 through a coupling.
[0045] In this embodiment, preferably, the bag breaking component 202 includes an upper hopper 2021, and the inner top of the upper hopper 2021 is fixedly connected to a top plate 2022. The top plate 2022 is used to enclose the top of the upper hopper 2021 to reduce the dust overflowing when the woven bag containing polymer concrete is broken, and the movement trajectory of the rotating plate 2023 can be limited. Two rotating plates 2023 are provided at the inner bottom end of the top plate 2022. The rotating plate 2023 is used to fix the puncture rod 2024 and can drive the puncture rod 2024 to move. The inner sides of the tops of the two rotating plates 2023 are fixedly connected to the puncture rod 2024. The puncture rod 2024 is used to puncture the woven bag, and when the puncture rod is driven by the rotating plate 2023, the puncture rod When 2024 is opened outward, the woven bag can be torn apart from the puncture point, so that the polymer concrete contained in the woven bag can be discharged from the inside. The two puncture rods 2024 are staggered at the top of the rotating plate 2023. The middle part of the outer side of the puncture rod 2024 is provided with a barb notch. When the puncture rod 2024 expands outward, the woven bag can be hung to prevent the woven bag from slipping off the outer wall of the puncture rod 2024. The sides of the two rotating plates 2023 are provided with toothed discs 2025, which are used to drive the rotating plate 2023 to rotate. The side rotation of the two toothed discs 2025 is connected to a motor frame 2026, which is used to support the servo motor 2027. The side of the motor frame 2026 is used to support the servo motor 2027. The servo motor 2027 is connected to the surface through a flange thread. The servo motor 2027 is used to drive the toothed disc 2025 at the front end to rotate in the forward or reverse direction. The upper hopper 2021 is fixed to the inner top of the bracket 201, and the bottom end of the upper hopper 2021 is connected to the top of the receiving hopper 203. The upper hopper 2021 is used to rotate the rotating plate 2023 and can put the polymer concrete poured from the inside of the woven bag into the inside of the receiving hopper 203. The two rotating plates 2023 are rotatably connected to the inside of the upper hopper 2021 through a shaft, and both ends of the shaft are arranged through the inner top of the bracket 201. At the same time, one end of the shaft is fixedly connected to the toothed disc 2025, and the two toothed discs 2025 rotate in conjunction. It is connected to the top of the other side of the bracket 201, and the inner sides of the two gear discs 2025 are meshed with each other. Since the two gear discs 2025 are meshed with each other, when one of the gear discs 2025 rotates, the other gear disc 2025 can be driven to rotate in the opposite direction, so that the two gear discs 2025 can drive the rotating plate 2023 connected thereto to rotate in the opposite direction, even if the two rotating plates 2023 expand outward or retract inward, the front and rear ends of the side of the motor frame 2026 are bolted to the top of the side of the bracket 201, and the servo motor 2027 is threadedly connected to the front end of the side of the motor frame 2026 through a flange, and the output shaft of the side of the servo motor 2027 is fixedly connected to the front end gear disc 2025.
[0046] In summary, when it is necessary to feed polymer concrete, just place the woven bag filled with polymer concrete on the top of the bag-breaking member 202. When the woven bag falls into the top inside of the feeding hopper 2021, the puncture rod 2024 will pierce the woven bag. Then, through the operation of the servo motor 2027, the two toothed discs 2025 can be driven to rotate in opposite directions, so as to drive the rotating plate 2023 to open outward simultaneously through the toothed discs 2025. During the expansion of the rotating plate 2023, the puncture rod 2024 fixedly connected to its top will be driven to move together, so that the woven bag can be torn open by the puncture rod 2024, and the polymer concrete contained in it can be put into the feeding hopper 2021, and the polymer concrete discharged from the inside of the woven bag can be put into the receiving hopper 203 through the feeding hopper 2021. After pouring out the cement in the woven bag, the servo motor 2027 drives the toothed disc 2025 to rotate in the reverse direction, so that the rotating plate 2023 is closed again, and the torn woven bag can be removed from the top of the bag-breaking member 202, which is convenient for subsequent bag-breaking treatment of the woven bag filled with polymer concrete and convenient for feeding the polymer concrete. After the polymer concrete enters the inside of the receiving hopper 203, through the operation of the first motor 206, the spiral conveyor rod 208 can be driven to rotate inside the receiving hopper 203 and the vertical pipe 204, so as to lift and convey the polymer concrete accumulated inside the receiving hopper 203 to the top of the vertical pipe 204 and discharge it into the discharge hopper 207 through the discharge port, and the feeding work of the polymer concrete can be completed. During the process of lifting and conveying the polymer concrete, through the mutual cooperation of the spiral conveyor rod 208 and the vertical pipe 204, the polymer concrete that is agglomerated into fine particles can be rolled and crushed, so as to facilitate subsequent mixing and stirring of the polymer concrete.
[0047] Embodiment 2
[0048] Please refer to Figures 1-3As shown in the figure, on the basis of Embodiment 1, the support mechanism 1 includes a chassis 101, which is used to support the feeding mechanism 2, the mixing mechanism 3, and the conveying mechanism 4. An axle block 102 is fixedly connected to the outer side of the bottom end of the chassis 101, and the axle block 102 is used to support the roller 103. A roller 103 is rotatably connected inside the axle block 102, and the roller 103 is used to drive the chassis 101 to move. Fixed frames 104 are bolted to the front and rear outer sides of the chassis 101, and the fixed frames 104 are used to fix the first hydraulic rod 105. A first hydraulic rod 105 is fixedly connected to the outer side of the fixed frame 104, and the first hydraulic rod 105 is used to fix the chassis 101 and can lift the chassis 101 to separate the roller 103 from the ground. A tow hook 106 is connected to the side of the chassis 101 by bolt threads, and the tow hook 106 is used to connect the chassis 101 to the trailer hook of the vehicle body, facilitating the vehicle body to drive the chassis 101 to move through the tow hook 106, so that the feeding mechanism 2, the mixing mechanism 3, and the conveying mechanism 4 installed on the top of the chassis 101 can be transferred. The bracket 201 is fixedly connected to one side of the top of the chassis 101.
[0049] In summary, when the whole device needs to be transported, the tow hook 106 needs to be connected to the trailer hook of the vehicle body, so that the chassis 101 can be driven to move through the tow hook 106, facilitating the overall movement of the mechanism installed on the top of the chassis 101. After moving the chassis 101 to the place where it needs to be used, the first hydraulic rod 105 is lifted. Through the operation of the first hydraulic rod 105, the whole chassis 101 can be driven to rise until the bottom end of the roller 103 is separated from the ground, so that the whole chassis 101 can be fixed, facilitating the subsequent processing and use of polymer concrete.
[0050] Embodiment 3
[0051] Please refer to Figure 1 and Figures 7-11As shown, based on the first and second embodiments, a mixing mechanism 3 is provided at the center of the top end of the support mechanism 1. The mixing mechanism 3 is used for mixing and stirring polymer concrete, and can discharge the stirred polymer concrete onto the top end of the conveying mechanism 4. The mixing mechanism 3 includes a frame 301. At the inner top end of the frame 301, a stirring member 302 is provided. The stirring member 302 is used for stirring and processing polymer concrete. Near the side of the feeding mechanism 2 at the top end of the stirring member 302, a feeding hopper 303 is provided. The feeding hopper 303 is used for discharging polymer concrete into the interior of the stirring member 302. At the inner bottom end of the frame 301, a discharging member 304 is provided. The discharging member 304 is used for discharging the concrete that has completed the stirring process. Inside the stirring member 302, a cleaning member 305 is provided. The cleaning member 305 is used for cleaning the stirring member 302. The frame 301 is fixedly connected to the center of the top end of the chassis 101. The frame 301 is used for supporting the stirring member 302 and the discharging member 304. The feeding hopper 303 is sleeved on the outer wall of the bottom end of the discharging hopper 207.
[0052] In this embodiment, preferably, the stirring member 302 includes a stirring barrel 3021. Near the side of the feeding mechanism 2 at the top end of the stirring barrel 3021, a feeding port 3022 is opened. The feeding port 3022 is used for discharging polymer concrete into the interior of the stirring barrel 3021. At the center of the bottom end of the stirring barrel 3021, a discharging port 3023 is opened. The discharging port 3023 is used for discharging the polymer concrete that has completed the stirring. Inside the stirring barrel 3021, a stirring rod 3024 is rotatably connected. The stirring rod 3024 is used for stirring and processing polymer concrete. On the side of the stirring barrel 3021, a second motor 3025 is threadedly connected through a flange. On the outer side of the stirring rod 3024, a fixing plate 3026 is rotatably connected. And the outer side of the fixing plate 3026 is fixedly connected to the inner wall of the stirring barrel 3021. The fixing plate 3026 is used for supporting the support rod 3053 in the cleaning member 305. And an annular chute is opened on the side of the fixing plate 3026. The bottom end of the support rod 3053 can slide inside the annular chute. The second motor 3025 is used for driving the stirring rod 3024 to rotate. The stirring barrel 3021 is fixedly connected to the inner top end of the frame 301. The stirring barrel 3021 is used for mixing and stirring polymer concrete and water. The outer bottom end of the feeding hopper 303 is inserted into the inner top end of the feeding port 3022. The output shaft of the second motor 3025 penetrates through the interior of the stirring barrel 3021 and the fixing plate 3026, and the output shaft of the second motor 3025 is locked with one end of the stirring rod 3024 through a coupling.
[0053] In this embodiment, preferably, the discharging member 304 includes a support plate 3041. A plurality of support springs 3042 are uniformly and fixedly connected to the front end and the rear end of the inner side of the support plate 3041. The support springs 3042 are used to support the discharging chute 3043. A discharging chute 3043 is fixedly connected to the inner side of the plurality of support springs 3042. The discharging chute 3043 is used to guide the concrete discharged from the inside of the mixing barrel 3021 and discharge it to the top of the conveying mechanism 4. The discharging chute 3043 is integrally inclined, so as to accelerate the flow rate of the concrete. A vibration motor 3044 is fixedly connected to the bottom end of the discharging chute 3043. The vibration motor 3044 is used to drive the whole discharging chute 3043 to shake, which can accelerate the discharging speed of the mixed concrete and prevent the concrete from sticking to the top end of the discharging chute 3043. At the same time, when the vibration motor 3044 drives the discharging chute 3043 to shake, the air bubbles contained in the mixed concrete discharged at the top end of the discharging chute 3043 can be shaken out, avoiding too many air bubbles contained in the mixed concrete and affecting its subsequent use effect. A plurality of first electric telescopic rods 3045 are uniformly and fixedly connected to the inner wall side of the support plate 3041. The first electric telescopic rods 3045 are used to drive the clamping plate 3046 to move. The clamping plate 3046 is fixedly connected to the outer wall of the plurality of first electric telescopic rods 3045. The clamping plate 3046 is used to surround the discharge port 3023. A sewage discharge port is opened at the bottom end of one side of the clamping plate 3046, and a sewage discharge pipe is threadedly connected to the bottom end of the sewage discharge port through a flange for discharging the sewage after cleaning the cleaning member 302. The support plate 3041 is fixedly connected to the inner bottom end of the frame 301. The support plate 3041 is used to fix the support springs 3042 and the first electric telescopic rods 3045. The first electric telescopic rods 3045 and the clamping plate 3046 are symmetrically arranged on the outer bottom end of the mixing barrel 3021 with the central axis of the frame 301 as the axis. The top end of the clamping plate 3046 is attached to the bottom end of the discharge port 3023.
[0054] In this embodiment, preferably, the cleaning member 305 includes a shaft block 3051. The top end of the shaft block 3051 is threadedly connected with an electric jack 3052 through a flange. The bottom end of the electric jack 3052 is processed with a pressing block, which can slide inside the top end of the shaft block 3051. The electric jack 3052 is used to lock the shaft block 3051 to both ends of the outer wall of the stirring rod 3024. A support rod 3053 is fixedly connected to the bottom end of the shaft block 3051. The support rod 3053 is used to support the shaft block 3051 and increase the overall stability of the cleaning member 305. Second electric telescopic rods 3054 are symmetrically arranged on the front surface and the back of the shaft block 3051. The second electric telescopic rods 3054 are used to drive a plurality of groove blocks 3055 to move. When the stirring rod 3024 rotates, it will not drive the shaft block 3051 to rotate together. When it is necessary to clean the outer wall of the second electric telescopic rod 3054, a plurality of groove blocks 3055 are fixedly connected to the outer wall of the second electric telescopic rod 3054. The groove blocks 3055 are used to fix the scraping plate 3056 and the brushing plate 3057, and can drive the scraping plate 3056 and the brushing plate 3057 to move when the groove blocks 3055 move. A scraping plate 3056 is fixedly connected to the outside of a plurality of groove blocks 3055. The scraping plate 3056 is used to scrape the inner wall of the mixing barrel 3021, so as to clean the polymer concrete adhering to the inner wall of the mixing barrel 3021. A brushing plate 3057 is fixedly connected to the inside of a plurality of groove blocks 3055. The brushing plate 3057 is used to clean the stirring rod 3024 and can clean the concrete adhering to the stirring rod. A flow dividing frame 3058 is sleeved on the outer wall of the brushing plate 3057. The flow dividing frame 3058 is used to disperse the bristles on the brushing plate 3057 and improve the cleaning contact surface of the stirring rod 3024, so as to improve the cleaning effect on the stirring rod 3024. The shaft block 3051 is sleeved on both sides of the outer wall of the stirring rod 3024. The shaft block 3051 is used to support the second electric telescopic rod 3054. The bottom end of the electric jack 3052 is slidably connected inside the top end of the shaft block 3051. The outer side of the bottom end of the support rod 3053 is slidably connected inside the inner side of the fixed disk 3026. The flow dividing frame 3058 is fixedly connected to the inner side of the second electric telescopic rod 3054. The second electric telescopic rods 3054 are in the extended state in the normal state, that is, the outer side of the scraping plate 3056 is attached to the inner wall of the mixing barrel 3021. Through the mutual cooperation between the second electric telescopic rod 3054 and the scraping plate 3057, and supplemented by the work of the support rod 3053, the whole cleaning member 305 can be supported on the outer side of the outer wall of the stirring rod 3024. And at this time, the pressing block processed at the bottom end of the electric jack 3052 is also in the contracted state. Therefore, when it is necessary to clean the inner wall of the mixing barrel 3021, through the work of the electric jack 3052, the pressing block processed at its bottom end can be driven to press against the end of the outer wall of the stirring rod 3024, so as to lock the shaft block 3051 and the stirring rod 3024 to each other. At this time, when the stirring rod 3024 rotates, it can drive the scraping plate 3056 to clean the inner wall of the mixing barrel 3021. After the inner wall of the mixing barrel 3021 is cleaned,The electric ejector rod 3052 drives the pressing block to contract to the inner top end of the shaft block 3051, thereby canceling the pressing on the stirring rod 3024. At this time, when the stirring rod 3024 rotates, it will no longer drive the shaft block 3051 to rotate together. Then, the second electric telescopic rod 3054 contracts, driving the multiple groove blocks 3055 to move together, so that the inner side of the brush plate 3057 can also contract inward and fit on the outer wall of the stirring rod 3024. When the brush plate 3057 moves inward, the brush head of the brush plate 3057 will pass through the inner side of the flow dividing frame 3058, so that the brush head at the inner side of the brush plate 3057 can be more expanded, increasing the contact area between the brush plate 3057 and the stirring rod 3024, thereby improving the cleaning effect on the stirring rod 3024. After cleaning the stirring rod 3024, the second electric push rod 3054 returns to its original position, driving the scraping plate 3056 to fit on the inner wall of the stirring barrel 3021 again, facilitating the next cleaning of the inside of the stirring member 302.
[0055] In this embodiment, preferably, a plurality of water inlets are evenly arranged on the other side of the top end of the outer wall of the stirring barrel 3021, and the water inlets are communicated with each other through a connecting pipe. The connecting pipe is connected to an external water source through a water pump. Through the operation of the water pump, water can be pumped into the inside of the connecting pipe and discharged into the stirring barrel 3021 through the water inlets, so as to facilitate adding water into the stirring barrel 3021 when stirring and processing polymer concrete. The inner side of the discharge port 3023 is processed into a wedge shape. When the buckle plate 3046 slides outward, the wedge-shaped surface processed on the inner side of the discharge port 3023 will scrape the top end of the buckle plate 3046, thereby preventing the stirred concrete from adhering to the top end of the buckle plate 3046.
[0056] In summary, after the feeding mechanism 2 discharges the polymer concrete into the interior of the hopper 303, the polymer concrete enters the interior of the mixing barrel 3021 through the feeding port 3022 opened on one side of the top end of the mixing barrel 3021. After the polymer concrete enters the mixing barrel 3021, through the operation of the water pump connected to the external water source, water can be pumped through the connecting pipe into the interior of the water inlet, so that the water for mixing concrete is poured into the interior of the mixing barrel 3021 through the water inlet. Through the operation of the second motor 3025, the mixing rod 3024 can be driven to rotate, so as to mix the concrete and water together, completing the mixing process of the polymer concrete. After the mixing is completed, through the operation of the first electric telescopic rod 3045, during the contraction of the first electric telescopic rod 3045, the clamping plate 3046 will be driven to slide outward, so as to slide away from the bottom end of the outer wall of the mixing barrel 3021, canceling the enclosure of the discharge port 3023, so that the polymer concrete after mixing can be discharged from the discharge port 3023 to the top end of the discharge chute 3043. At the same time, through the operation of the vibration motor 3044, the concrete after mixing can be shaken, accelerating its discharge speed from the top end of the discharge chute 3043, preventing the concrete from adhering to its top end, and the bubbles mixed in the stirred concrete can be shaken out, improving the subsequent use effect of the polymer concrete.
[0057] Embodiment 4
[0058] Please refer to Figure 1 、 Figure 12 and Figure 13, on the basis of the first, second, and third embodiments, a conveying mechanism 4 is provided on the other side of the top end of the support mechanism 1. The conveying mechanism 4 is used to transport the polymer concrete that has completed the stirring process and convey it to the place where it is needed. The conveying mechanism 4 includes a shaft seat 401. The inner side of the shaft seat 401 is rotatably connected to a groove plate 402. The groove plate 402 is used to support the conveyor belt 403. The inner side of the groove plate 402 is rotatably connected to a conveyor belt 403. The conveyor belt 403 is used to transport the stirred polymer concrete. One side of the front surface of the groove plate 402 is threadedly connected to a transmission box 404 through a flange. The transmission box 404 is used to drive the conveyor belt 403 to work. The side of the transmission box 404 is threadedly connected to a third motor 405 through a flange. The third motor 405 is used to provide power for the transmission box 404. The inner top end of the groove plate 402 is fixedly connected to a baffle 406. The baffle 406 is used to enclose the concrete discharged on the top end of the conveyor belt 403 to prevent it from entering the gap between the conveyor belt 403 and the groove plate 402. The inner bottom end of the groove plate 402, away from one end of the shaft seat 401, is fixedly connected to a scraper 407. The scraper 407 is used to scrape the outer bottom end of the conveyor belt 403 to prevent concrete from adhering to the outer wall of the conveyor belt 403. An adjusting member 408 is provided outside the bottom end of the groove plate 402. The adjusting member 408 is used to adjust the support height of the groove plate 402. The shaft seat 401 is fixedly connected to the top end of the chassis 101. The shaft seat 401 is used to support the groove plate 402 and enable the groove plate 402 to rotate around the center of the shaft seat 401. One end of the groove plate 402 is arranged at the bottom end of the discharge chute 3043. The output shaft of the transmission box 404 is arranged through the inside of the groove plate 402, and the output shaft of the transmission box 404 is locked to the transmission roller inside the conveyor belt 403 through a coupling. The output shaft on the side of the third motor 405 is locked to the outer wall of the transmission shaft of the transmission box 404 through a coupling. The bottom end of the baffle 406 fits on the top end of the outer wall of the conveyor belt 403. The top end of the scraper 407 fits on the bottom end of the outer wall of the conveyor belt 403.
[0059] In this embodiment, preferably, the adjusting member 408 includes a convex block 4081. A second hydraulic rod 4082 is fixedly connected to the side of the convex block 4081. The second hydraulic rod 4082 is used to drive the pin shaft 4083 to move. The end of the second hydraulic rod 4082 is rotatably connected to a pin shaft 4083. The pin shaft 4083 is used to support the top end of the support rod 4084. The front and rear outer walls of the pin shaft 4083 are rotatably connected to support rods 4084. The support rods 4084 are used to support the groove plate 402. The bottom end of the support rod 4084 is rotatably connected to a swivel joint 4085. The swivel joint 4085 is used to support the bottom end of the support rod 4084. The convex block 4081 is fixedly connected to the outside of the bottom end of the groove plate 402. The convex block 4081 is used to fix the second hydraulic rod 4082. The bottom end of the swivel joint 4085 is fixedly connected to the outside of the top end of the chassis 101.
[0060] In summary, when discharging the agitated polymer concrete onto the top of the conveyor belt 403 in the conveying mechanism 4, the third motor 405 starts to work. When the third motor 405 is working, it can provide power for the transmission case 404, thereby driving the conveyor belt 403 to rotate through the transmission case 404, and the agitated polymer concrete can be conveyed to the place where it is needed. Through the work of the scraper 407, the concrete adhering to the outer wall of the conveyor belt 403 can be scraped off, preventing concrete from adhering to the outer wall of the conveyor belt 403. When it is necessary to adjust the support height of the trough plate 402, by controlling the second hydraulic rod 4082, when the second hydraulic rod 4082 contracts, it can drive the pin shaft 4083 to move simultaneously, thereby driving the top of the support rod 4084 to move, and thus the overall support height of the support rod 4084 can be changed to adjust the support height of the trough plate 402.
[0061] Example Five
[0062] Please refer to Figures 1-13 , combining Example One to Example Four to obtain this example, the usage method of the polymer concrete conveying device includes the following steps:
[0063] Step One: First, connect the chassis 101 in the support mechanism 1 to the trailer body through the tow hook 106, so that the chassis 101 can be driven by the vehicle body to move to the place where it is needed. Lower the first hydraulic rod 105. Through the work of the first hydraulic rod 105, the chassis 101 can be lifted and fixed. After lifting the chassis 101, the rollers 103 will be separated from the ground, preventing the chassis 101 from shifting when using other mechanisms arranged at the top of the support mechanism 1, and facilitating the erection of the entire device;
[0064] Step Two: Secondly, insert the whole woven bag filled with polymer concrete into the inside of the bag-breaking member 202 in the feeding mechanism 2. During this process, the bag-breaking member 202 breaks the woven bag filled with polymer concrete and discharges the polymer concrete contained in the woven bag into the inside of the receiving hopper 203. Drive the spiral conveyor rod 208 to rotate through the first motor 206, thereby lifting and conveying the polymer concrete to the discharging hopper 207, thus breaking the bag and feeding the polymer concrete, improving the feeding speed of the polymer concrete, reducing the process of manual bag-breaking, and only need to place the woven bag filled with polymer concrete into the inside of the bag-breaking member 202, which is convenient for operation. And during the process of the spiral conveyor rod 208 and the vertical pipe 204 lifting and conveying the polymer concrete, the agglomerated concrete particles in the polymer concrete can also be rolled, so as to crush the agglomerated concrete particles and facilitate the subsequent stirring and processing of the polymer concrete;
[0065] Step 3: Then, after the polymer concrete that has been bag-broken and fed is lifted and conveyed into the interior of the discharge hopper 207, the concrete is discharged into the interior of the feed hopper 303 in the mixing mechanism 3 through the discharge hopper 207, and enters the stirring member 302 through the feed hopper 303, where the polymer concrete can be stirred and processed. After that, the stirred polymer concrete is discharged onto the conveying mechanism 4 through the discharge member 304. When discharging the stirred polymer concrete, through the mutual cooperation of the vibration motor 3044 and the discharge chute 3043, the discharge chute 3043 can be driven to vibrate, bursting the small air bubbles contained in the concrete, so as to ensure the subsequent use effect of the polymer concrete. When it is necessary to clean the stirring member 302, through the operation of the electric ejector rod 3052 in the cleaning member, the shaft block 3051 and the stirring rod 3024 can be locked together, so that the cleaning member 305 as a whole can be driven to rotate by the stirring rod 3024, thereby cleaning the inner wall of the stirring barrel 3021 and the outer side of the stirring rod 3024. The sewage after cleaning will be discharged through the sewage discharge port opened at the bottom end of the side buckle plate 3046;
[0066] Step 4: Finally, after the mixed and stirred polymer concrete is placed on the conveyor belt 403 in the conveying mechanism 4, power is provided to the transmission box 404 by the third motor 405, so that the transmission box 404 drives the conveyor belt 403 to start working, and the mixed and stirred polymer concrete placed on its top can be conveyed to the place where it is needed. By providing a scraper 407 at the bottom end of the outer wall of the conveyor belt 403, the concrete adhering to the outer wall of the conveyor belt 403 can be cleaned. By providing an adjusting member 408, the overall support angle of the trough plate 402 can be adjusted to improve the flexibility of concrete conveying.
[0067] The above has described an embodiment of the present invention in detail, but the content described is only the preferred embodiment of the present invention and cannot be considered as used to limit the scope of implementation of the present invention. All equal changes and improvements made according to the scope of the application of the present invention should still fall within the scope covered by the patent of the present invention.
Claims
1. Polymer concrete conveying device, comprising a support mechanism, characterized in that, One side of the top end of the support mechanism is provided with a feeding mechanism; The feeding mechanism includes a bracket. At the inner top end of the bracket, a bag-breaking member is provided. At the bottom end of the bag-breaking member, a material receiving hopper is provided. At the top end of the material receiving hopper, a vertical pipe is provided. At the bottom end of the outer wall of the vertical pipe, a sleeve plate is sleeved. At the top end of the vertical pipe, a first motor is threadedly connected through a flange. At the top end of the outer wall of the vertical pipe, a discharge hopper is sleeved. Inside the vertical pipe, a spiral conveyor rod is rotationally connected. The side of the sleeve plate is fixedly connected to the side of the bracket. The bottom end of the spiral conveyor rod extends into the interior of the material receiving hopper, and the bottom end of the spiral conveyor rod is rotationally connected to the inner bottom end of the material receiving hopper. At the same time, the top end of the spiral conveyor rod is locked to the outer wall of the output shaft at the bottom end of the first motor through a coupling; At the center of the top end of the support mechanism, a mixing mechanism is provided. The mixing mechanism includes a frame. At the inner top end of the frame, a stirring member is provided. Inside the stirring member, a cleaning member is provided; The cleaning member includes an axle block. At the top end of the axle block, an electric push rod is threadedly connected through a flange. At the bottom end of the axle block, a support rod is fixedly connected. On the front surface and the back of the axle block, second electric telescopic rods are symmetrically arranged. On the outer wall of the second electric telescopic rods, a plurality of groove blocks are evenly fixedly connected. On the outer sides of the plurality of groove blocks, scraping plates are fixedly connected. On the inner sides of the plurality of groove blocks, brush plates are fixedly connected. A flow dividing frame is sleeved on the outer wall of the brush plate; The axle block is sleeved on both sides of the outer wall of the stirring rod. The bottom end of the electric push rod is slidably connected to the inner part of the top end of the axle block. The outer side of the bottom end of the support rod is slidably connected to the inner part of the fixed disk. The flow dividing frame is fixedly connected to the inner side of the second electric telescopic rod.
2. The polymer concrete conveying device according to claim 1, characterized in that, The bag-breaking member includes a feeding hopper. At the inner top end of the feeding hopper, a top plate is fixedly connected. At the inner bottom end of the top plate, two rotating plates are provided. At the inner top ends of the two rotating plates, puncture rods are fixedly connected. And the two puncture rods are arranged in a staggered manner at the top ends of the rotating plates. On the sides of the two rotating plates, toothed disks are provided. On the sides of the two toothed disks, a motor frame is rotationally connected. On the side of the motor frame, a servo motor is threadedly connected through a flange. The feeding hopper is fixedly connected to the inner top end of the bracket, and the bottom end of the feeding hopper is communicated with the top end of the material receiving hopper. The two rotating plates are rotationally connected to the inside of the feeding hopper through a shaft rod, and both ends of the shaft rod penetrate through the inner top end of the bracket. At the same time, one end of the shaft rod is fixedly connected to the toothed disk. The two toothed disks are rotationally connected to the other top end of the bracket, and the inner sides of the two toothed disks are meshed with each other. The front end and the rear end of the side of the motor frame are bolted to the top end of the side of the bracket. The servo motor is threadedly connected to the front end of the side of the motor frame through a flange, and the output shaft on the side of the servo motor is fixedly connected to the front toothed disk; 3. The polymer concrete conveying device according to claim 1, characterized in that The support mechanism includes a bottom frame. At the outer bottom end of the bottom frame, an axle block is fixedly connected. Inside the axle block, a roller is rotationally connected. At the front end and the rear end of the outer side of the bottom frame, fixing frames are bolted. On the outer side of the fixing frames, first hydraulic rods are fixedly connected. On the side of the bottom frame, a towing hook buckle is threadedly connected through a bolt. The bracket is fixedly connected to one side of the top end of the bottom frame.
4. The polymer concrete conveying device according to claim 1, wherein A discharge hopper is provided on one side of the top end of the stirring member close to the feeding mechanism. A discharging member is provided at the inner bottom end of the frame. The frame is fixedly connected to the center of the top end of the chassis. The discharge hopper is sleeved on the outer wall of the bottom end of the discharge chute.
5. The polymer concrete conveying device according to claim 4, wherein The stirring member includes a stirring barrel. An inlet is provided on one side of the top end of the stirring barrel close to the feeding mechanism. An outlet is provided at the center of the bottom end of the stirring barrel. A stirring rod is rotatably connected inside the stirring barrel. A second motor is threadedly connected to the side surface of the stirring barrel through a flange. A fixed disk is rotatably connected to the outer side of the stirring rod, and the outer side of the fixed disk is fixedly connected to the inner wall of the stirring barrel. The stirring barrel is fixedly connected to the inner top end of the frame. The outer bottom end of the discharge hopper is inserted into the inner top end of the inlet. The output shaft of the second motor penetrates through the stirring barrel and the fixed disk, and the output shaft of the second motor is locked to one end of the stirring rod through a coupling.
6. The polymer concrete conveying device according to claim 4, wherein, The discharging member includes a support plate. A plurality of support springs are evenly fixedly connected to the front end and the rear end of the inner side of the support plate. A discharge chute is fixedly connected to the inner side of the plurality of support springs. A vibration motor is fixedly connected to the bottom end of the discharge chute. A plurality of first electric telescopic rods are evenly fixedly connected to the side surface of the inner wall of the support plate. A clamping plate is fixedly connected to the outer wall of the plurality of first electric telescopic rods. The support plate is fixedly connected to the inner bottom end of the frame. The first electric telescopic rods and the clamping plate are symmetrically arranged around the central axis of the frame at the outer bottom end of the stirring barrel. The top end of the clamping plate is attached to the bottom end of the outlet. A sewage discharge port is provided at the bottom end of one of the clamping plates.
7. The polymer concrete conveying device according to claim 1, characterized in that, A conveying mechanism is provided on the other side of the top end of the support mechanism. The conveying mechanism includes a shaft seat. A trough plate is rotatably connected to the inner side of the shaft seat. A conveyor belt is rotatably connected to the inner side of the trough plate. A transmission box is threadedly connected to one side of the front surface of the trough plate through a flange. A third motor is threadedly connected to the side surface of the transmission box through a flange. A baffle is fixedly connected to the inner top end of the trough plate. A scraper is fixedly connected to one end of the inner bottom of the trough plate away from the shaft seat. An adjusting member is provided on the outer side of the bottom end of the trough plate. The shaft seat is fixedly connected to the top end of the chassis. One end of the trough plate is arranged at the bottom end of the discharge chute. The output shaft of the transmission box penetrates through the trough plate, and the output shaft of the transmission box is locked to the transmission roller inside the conveyor belt through a coupling. The output shaft on the side surface of the third motor is locked to the outer wall of the transmission shaft of the transmission box through a coupling. The bottom end of the baffle is attached to the outer wall top end of the conveyor belt. The top end of the scraper is attached to the outer wall bottom end of the conveyor belt.
8. The polymer concrete conveying device according to claim 7, wherein The adjusting member includes a convex block. A second hydraulic rod is fixedly connected to the side surface of the convex block. A pin shaft is rotatably connected to the end of the second hydraulic rod. The front end and the rear end of the outer wall of the pin shaft are both rotatably connected to a support rod. The bottom end of the support rod is rotatably connected to a swivel joint. The convex block is fixedly connected to the outer side of the bottom end of the trough plate. The bottom end of the swivel joint is fixedly connected to the outer side of the top end of the chassis.
Citation Information
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