Plastering mortar ingredient mixing system
By installing a stirring rod inside the mixing pipe and using a power module to stir the mortar, combined with water injection through the connecting pipe, the problems of large volume and inconvenience of use of plastering mortar systems are solved, achieving efficient mixing and convenient movement of small amounts of mortar.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2023-10-26
- Publication Date
- 2026-04-07
AI Technical Summary
The existing plastering mortar mixing system is large in size and cannot adapt to situations where the amount of mortar is small when applying it to some indoor walls, making it inconvenient to use.
A plastering mortar mixing system was designed. By installing a stirring rod inside the mixing pipe and using a power module to drive the stirring rod to rotate, combined with water injection through the connecting pipe, the mortar inside the mixing pipe is mixed. The device is also foldable to reduce space occupation and is easy to move.
It achieves efficient mixing of small amounts of mortar, adapts to different coating needs, and the device is small in size, making it easy to move and store.
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Figure CN121798764A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of mortar mixing, in particular to a plastering mortar mixing system. BACKGROUND
[0002] Plastering mortar refers to mortar applied to the surface of buildings and components and the surface of base materials, which has the functions of protecting the base and meeting the use requirements. When used on site, the plastering mortar needs to be mixed with water first, and then applied after stirring. However, the volume of the plastering mortar mixing system is large, and a large amount of plastering mortar can be mixed at a time. Therefore, the mixing device cannot adapt to the situation of applying to indoor wall surfaces, and the amount of mortar used is small, which is inconvenient to use. SUMMARY
[0003] In order to overcome the above technical problems, the purpose of the present application is to provide a plastering mortar mixing system, which is provided with a stirring rod inside the mixing pipe. The plastering mortar in the discharge cylinder can enter the mixing pipe, and water can be injected into the mixing pipe through the connecting pipe. At this time, the power module can drive the stirring rod to rotate through the adjusting module, so as to stir the mortar in the mixing pipe. In this way, a small amount of mortar can be directly stirred when needed, so as to adapt to the situation of using a small amount of mortar, and facilitate use.
[0004] The purpose of the present application can be achieved by the following technical solutions: A plastering mortar mixing system, comprising a discharge cylinder, a top cover is fixedly connected to the inner side top of the discharge cylinder, a power module is fixedly connected to the top surface of the top cover, an adjusting module is arranged inside the discharge cylinder, a bottom plate is arranged at the bottom of the discharge cylinder, a support mechanism is fixedly connected to the bottom plate and arranged on the side of the discharge cylinder, a mixing module is arranged on the bottom surface of the bottom plate, the mixing module comprises a mixing pipe in contact with the bottom surface of the bottom plate, a screw ring one is fixedly connected to the bottom surface of the bottom plate and screw-connected to the top of the side of the mixing pipe, a stirring rod is arranged inside the mixing pipe, a transmission rod is arranged at the top end of the stirring rod and transmission-connected to the adjusting module, the power module is transmission-connected to the adjusting module, a connecting pipe is communicated to the top of the side of the mixing pipe, a plug is arranged on the bottom of the inner side of the mixing pipe, the plastering mortar in the discharge cylinder can enter the mixing pipe, and water can be injected into the mixing pipe through the connecting pipe. The power module can drive the stirring rod to rotate through the adjusting module, so as to stir the mortar in the mixing pipe. In this way, a small amount of mortar can be directly stirred in the mixing pipe when needed, so as to adapt to the situation of using a small amount of mortar, and the volume of the discharge cylinder is small. A discharge hole can be arranged on the top cover, and a cover is arranged in the discharge hole. In this way, the cover can be opened to place the mortar in the discharge cylinder through the discharge hole. A handle can be arranged on the top cover. In this way, the mixing device can be directly lifted by the handle, so as to facilitate movement.
[0005] Furthermore, the support mechanism includes a support plate, on the top surface of which two support rods are rotatably connected. Each support rod has a fixed rod at its top end that is fixedly connected to the side of the discharge cylinder. The bottom of the inner side of the fixed rod has a threaded rod. Both the top and bottom of the side of each support rod have threads, with the threaded rod at the top engaging with the adjacent threaded rod. Four support rods are circumferentially and equidistantly fixed to the bottom surface of the base plate on the top surface of the support plate. Rotating the support rod disengages the threaded rod at the top from the threaded rod, allowing the discharge cylinder to move downwards, retracting the support rods into the fixed rods and the mixing module into the discharge cylinder. Then, the threaded rod at the bottom of the support rod can be screwed into the threaded rod. This reduces the space occupied by the mixing device, facilitates lifting and moving the mixing device, and makes it easier to store the mixing device.
[0006] Furthermore, a fixed ring is fixedly connected to the side of the mixing pipe, and a sliding ring is slidably connected to the side of the mixing pipe. A spring is fixedly connected to the top surface of the sliding ring and to the bottom surface of the fixed ring. Two L-shaped rods are fixedly connected to the bottom surface of the sliding ring and to the side of the blocking block. The blocking block can block the bottom of the mixing pipe. The sliding ring can be moved downwards directly. The sliding ring can drive the blocking block downwards through the L-shaped rods, causing the blocking block to detach from the mixing pipe. At this time, the mixed mortar can fall out of the mixing pipe. After releasing the sliding ring, the blocking block can be moved upwards to its original position under the action of the spring to block the bottom of the mixing pipe. The operation is simple and easy to use.
[0007] Furthermore, a flexible tube is provided at the end of the connecting pipe opposite to the mixing pipe, and a second engagement ring is provided at one end of the connecting pipe to be screwed into the other end of the flexible tube. The connecting pipe and the flexible tube can be connected through the second engagement ring, and the flexible tube can be connected to a water source. Water can be injected into the discharge cylinder through the flexible tube and the connecting pipe. The second engagement ring can be rotated to separate the flexible tube from the second engagement ring, thereby separating the flexible tube from the connecting pipe.
[0008] Furthermore, the top of the stirring rod is fixedly connected to a rectangular block that slides into the transmission rod. The inner side of the stirring rod is rotatably connected to a lead screw that is rotatably connected to the rectangular block. The top of the lead screw is screwed into the inner side of the bottom of the transmission rod. The transmission rod can drive the stirring rod to rotate through the rectangular block. After use, the mixing tube can be rotated to separate the mixing tube from the screw ring, thereby removing the mixing tube for easy cleaning. After removing the mixing tube, the lead screw can be rotated to separate the lead screw from the transmission rod, thereby separating the stirring rod from the transmission rod for easy cleaning.
[0009] Furthermore, the bottom plate is fixedly connected to a guide plate, the adjustment module includes a fixed tube, a support rod fixedly connected to the top side of the fixed tube and fixedly connected to the guide plate, a sliding tube slidably connected to the inner side of the fixed tube, a stop block slidably connected to the bottom end of the sliding tube and fixedly connected to the inner side of the bottom plate, the side of the transmission rod contacts the inner side of the stop block, a connecting rod is provided on the inner side of the sliding tube, and the bottom end of the connecting rod is fixedly connected to the top end of the transmission rod, a rectangular rod is fixedly connected to the top end of the connecting rod, a round rod slidably connected to the top side of the rectangular rod, the top end of the round rod passes through the top cover, and the output end of the power module is drivenly connected to the top end of the round rod. The power module can drive the round rod to rotate, the round rod can drive the connecting rod to rotate through the rectangular rod, the connecting rod can drive the transmission rod to rotate, and the transmission rod can drive the stirring rod to rotate through the rectangular block, thereby stirring the mortar in the mixing tube. A spring two, which is fixedly connected to the top surface of the sliding tube, is fixedly connected to the top surface of the fixed tube. A spiral groove is formed on the side of the connecting rod, and annular grooves are formed at both the top and bottom of the spiral groove. A circular block is fixedly connected to the inner side of the sliding tube, and the side of the circular block contacts the inner side of the annular groove at the bottom. Two limiting blocks, which are slidably connected to the inner side of the fixed tube, are fixedly connected to the side of the sliding tube. A rotating rod, which is rotatably connected to the top of the connecting rod, is rotatably connected to the top of the inner side of the fixed tube. The guide plate can limit the position of the fixed tube via a support rod. The fixed tube can prevent the sliding tube from rotating via the limiting blocks, and the fixed tube can limit the height of the rotating rod. The rotating rod can limit the height of the connecting rod. The connecting rod can be rotated in the opposite direction via a power module. Thus, when the bottom of the spiral groove rotates to the position of the circular block, under the tension of the spring two, it can... The circular block moves into the spiral groove, causing it to move upwards under the action of the spiral groove. This, in turn, moves the sliding tube and the stop block upwards, so that the stop block no longer blocks the through hole at the center of the base plate. The circular block then remains in the annular groove at the top, keeping the stop block in an open state. When the connecting rod is rotated again via the power module, the circular block moves into the spiral groove under the pressure of the spring. This causes the circular block to move downwards under the action of the spiral groove. At this point, the stop block can block the through hole at the center of the base plate, and the circular block can remain in the annular groove at the bottom, keeping the stop block in a closed state. This facilitates control of mortar entering the mixing pipe. The operation is simple and easy to use. A spiral rail can be installed at the bottom of the stop block. After the stop block no longer blocks the base plate, it can drive the spiral rail to rotate, allowing the mortar in the discharge cylinder to quickly fall into the mixing pipe.
[0010] Furthermore, a stop bar that is fixedly connected to the top cover is slidably connected to the top of the inner side of the rotating rod, and the inner side of the stop bar contacts the side of the round rod, so that the stop bar can block the round rod.
[0011] Furthermore, the length of the second spring in its natural state is less than the distance between the top surface of the sliding tube and the inner top surface of the fixed tube, and the length of the second spring in its natural state is greater than the distance between the inner top surface of the fixed tube and the top surface of the connecting rod. When the circular block is located in the annular groove at the bottom of the spiral groove, the second spring can provide an upward pulling force to the sliding tube, while when the circular block is located in the annular groove at the top of the spiral groove, the second spring can provide a downward squeezing force to the sliding tube.
[0012] The beneficial effects of this invention are: 1. The mixing tube is equipped with a stirring rod inside. The plastering mortar in the discharge cylinder can enter the mixing tube, and water is injected into the mixing tube through the connecting pipe. At this time, the power module can drive the stirring rod to rotate through the adjustment module, thereby stirring the mortar in the mixing tube. In this way, when needed, a small amount of mortar can be stirred directly, which is suitable for situations where a small amount of mortar is used. In addition, the discharge cylinder is small in size, and the mixing device can be lifted directly for easy movement.
[0013] 2. By screwing together thread two and thread one, the support plate can be supported by the feeding cylinder through the fixed rod and the support rod pair. The support plate and the bottom plate can be connected through support rod two. Support rod one can be rotated to disengage thread one from thread two at the top, thereby retracting support rod one into the fixed rod and retracting support rod two and the mixing module into the feeding cylinder. This helps to reduce the space occupied by the mixing device, facilitates lifting and moving the mixing device, and makes it easier to store the mixing device.
[0014] 3. Through the contact between the round block and the inner side of the annular groove, the power module can drive the connecting rod and transmission rod to rotate via the rectangular rod and the round rod, thereby causing the mixing rod to rotate. The power module can also cause the connecting rod to rotate in the opposite direction. When the bottom end of the spiral groove moves to the position of the round block, under the action of the second spring, the round block can move into the spiral groove. This allows the connecting rod to rotate, causing the round block to move along the spiral groove to the top annular groove, thereby causing the sliding tube to drive the stop block to move upward, exposing the through hole in the center of the bottom plate. In this way, the plastering mortar can enter the mixing pipe through the through hole in the bottom plate. When the connecting rod rotates in the original direction, it can cause the stop block to move downward to block the through hole, making it easy to control the mortar entering the mixing pipe. The operation is simple and easy to use. Attached Figure Description
[0015] The invention will now be further described with reference to the accompanying drawings.
[0016] Figure 1 This is a schematic diagram of the overall structure of a plastering mortar mixing system according to the present invention; Figure 2 This is a schematic diagram of the support mechanism structure in this invention; Figure 3 This is a front view schematic diagram of the internal structure of the feeding cylinder in this invention; Figure 4This is a schematic diagram of the internal front view structure of the hybrid module in this invention; Figure 5 This is a front view of the internal structure of the fixed tube in this invention; Figure 6 This is a front view schematic diagram of the internal structure of the rotating rod in this invention; Figure 7 This is a schematic diagram of the limiting block structure in this invention; Figure 8 This is a schematic diagram of the spiral groove structure in this invention.
[0017] In the diagram: 100, Feeding cylinder; 110, Top cover; 120, Base plate; 121, Guide plate; 130, Support mechanism; 131, Fixing rod; 132, Support rod one; 133, Support plate; 134, Support rod two; 200, Mixing module; 210, Mixing pipe; 211, Fixing ring; 212, Spring one; 213, Sliding ring; 214, L-shaped rod; 215, Block; 220, Engaging ring one; 230, Stirring rod; 231, Rectangular block; 232 1. Lead screw 1; 233. Transmission rod; 240. Connecting pipe; 241. Engaging ring 2; 250. Flexible hose; 300. Adjustment module; 310. Fixed pipe; 311. Support rod; 312. Spring 2; 320. Sliding pipe; 321. Round block; 322. Limiting block; 330. Connecting rod; 331. Spiral groove; 332. Ring groove; 340. Stop block; 350. Rotating rod; 360. Rectangular rod; 370. Round rod; 380. Stop rod; 400. Power module. Implementation
[0018] The technical solutions of the present invention will be clearly and completely described below with reference to the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of the present invention.
[0019] Please see Figures 1-8As shown, a plastering mortar mixing system includes a discharge cylinder 100, a top cover 110 fixedly connected to the top of the inner side of the discharge cylinder 100, a power module 400 fixedly connected to the top surface of the top cover 110, an adjustment module 300 inside the discharge cylinder 100, a base plate 120 at the bottom inside the discharge cylinder 100, a support mechanism 130 fixedly connected to the side of the discharge cylinder 100 and to the base plate 120, a mixing module 200 on the bottom surface of the base plate 120, a mixing pipe 210 in contact with the bottom surface of the base plate 120, a screw-on ring 220 screwed onto the top side of the mixing pipe 210 and fixedly connected to the bottom surface of the base plate 120, a stirring rod 230 inside the mixing pipe 210, a transmission rod 233 at the top of the stirring rod 230 and connected to the adjustment module 300, and the power module 400 and the adjustment module 300 are connected to each other. The mixing pipe 210 has a transmission connection, with a connecting pipe 240 connected to the top side of the mixing pipe 210. A block 215 is provided at the bottom of the inner side of the mixing pipe 210. The plastering mortar in the discharge cylinder 100 can enter the mixing pipe 210, and water can be injected into the mixing pipe 210 through the connecting pipe 240. The power module 400 can drive the stirring rod 230 to rotate through the adjustment module 300, thereby stirring the mortar in the mixing pipe 210. In this way, when needed, a small amount of mortar can be stirred in the mixing pipe 210, which is suitable for situations where the amount of mortar used is small. Since the discharge cylinder 100 has a small volume, a discharge hole can be provided on the top cover 110, and a baffle can be provided in the discharge hole. In this way, the baffle can be opened to put mortar into the discharge cylinder 100 through the discharge hole. A handle can be provided on the top cover 110, so that the mixing device can be lifted directly by the handle for easy movement.
[0020] The support mechanism 130 includes a support plate 133. Two support rods 132 are rotatably connected to the top surface of the support plate 133. The top of the support rod 132 is provided with a fixing rod 131 that is fixedly connected to the side of the discharge cylinder 100. The bottom of the inner side of the fixing rod 131 is provided with a thread 1. The top and bottom of the side of the support rod 132 are provided with threads 2, and the thread 2 at the top is screwed into the adjacent thread 1. Four support rods 2 134 are fixedly connected to the bottom surface of the base plate 120 in a ring at equal intervals on the top surface of the support plate 133. Rotating the support rod 132 disengages the thread 2 at the top from the thread 1. At this time, the discharge cylinder 100 can be moved downward, so that the support rod 132 is retracted into the fixing rod 131 and the mixing module 200 is retracted into the discharge cylinder 100. Then, the thread 2 at the bottom of the support rod 132 can be screwed into the thread 1. This helps to reduce the space occupied by the mixing device, facilitates lifting and moving the mixing device, and makes it easier to store the mixing device.
[0021] A fixing ring 211 is fixedly connected to the side of the mixing pipe 210, and a sliding ring 213 is slidably connected to the side of the mixing pipe 210. A spring 212, which is fixedly connected to the bottom of the fixing ring 211, is fixedly connected to the top surface of the sliding ring 213. Two L-shaped rods 214, which are fixedly connected to the side of the blocking block 215, are fixedly connected to the bottom surface of the sliding ring 213. The blocking block 215 can block the bottom of the mixing pipe 210. The sliding ring 213 can be moved downwards directly. The sliding ring 213 can drive the blocking block 215 downwards through the L-shaped rods 214, so that the blocking block 215 is detached from the mixing pipe 210. At this time, the mixed mortar can fall out of the mixing pipe 210. After the sliding ring 213 is released, the blocking block 215 can be moved upwards to its original position under the action of the spring 212, blocking the bottom of the mixing pipe 210. The operation is simple and easy to use.
[0022] A flexible hose 250 is provided at one end of the connecting pipe 240 away from the mixing pipe 210. A second engagement ring 241 is provided at one end of the connecting pipe 240 and screwed into one end of the flexible hose 250. The connecting pipe 240 and the flexible hose 250 can be connected through the second engagement ring 241, and the flexible hose 250 can be connected to a water source. Water can be injected into the discharge cylinder 100 through the flexible hose 250 and the connecting pipe 240. The second engagement ring 241 can be rotated to separate the flexible hose 250 from the second engagement ring 241, thereby separating the flexible hose 250 from the connecting pipe 240.
[0023] A rectangular block 231 is fixedly connected to the top of the stirring rod 230 and slidably inserted into the transmission rod 233. A lead screw 232, which is rotatably connected to the rectangular block 231, is rotatably connected to the inner side of the stirring rod 230. The top of the lead screw 232 is screwed into the bottom inner side of the transmission rod 233. The transmission rod 233 can drive the stirring rod 230 to rotate through the rectangular block 231. After use, the mixing tube 210 can be rotated to separate the mixing tube 210 from the screw ring 220, thereby removing the mixing tube 210 for easy cleaning. After removing the mixing tube 210, the lead screw 232 can be rotated to separate the lead screw 232 from the transmission rod 233, thereby separating the stirring rod 230 from the transmission rod 233 for easy cleaning.
[0024] A guide plate 121 is fixedly connected to the top surface of the base plate 120. The adjustment module 300 includes a fixed tube 310. A support rod 311, which is fixedly connected to the guide plate 121, is fixedly connected to the top side of the fixed tube 310. A sliding tube 320 is slidably connected to the inner side of the fixed tube 310. A stop block 340, which is slidably connected to the inner side of the base plate 120, is fixedly connected to the bottom end of the sliding tube 320. The side of the transmission rod 233 contacts the inner side of the stop block 340. A connecting rod 330 is provided on the inner side of the sliding tube 320, and the bottom end of the connecting rod 330 is fixedly connected to the top end of the transmission rod 233. A rectangular rod 360 is fixedly connected to the top of the rod 330. A round rod 370 is slidably connected to the top side of the rectangular rod 360. The top of the round rod 370 passes through the top cover 110, and the output end of the power module 400 is connected to the top of the round rod 370. The power module 400 can drive the round rod 370 to rotate. The round rod 370 can drive the connecting rod 330 to rotate through the rectangular rod 360. The connecting rod 330 can drive the transmission rod 233 to rotate. The transmission rod 233 can drive the stirring rod 230 to rotate through the rectangular block 231, thereby stirring the mortar in the mixing tube 210.
[0025] A spring 312 is fixedly connected to the top surface of the fixed tube 310 and to the top surface of the sliding tube 320. A spiral groove 331 is formed on the side of the connecting rod 330, and annular grooves 332 are formed at both the top and bottom of the spiral groove 331. A round block 321 is fixedly connected to the inner side of the sliding tube 320, and the side of the round block 321 contacts the inner side of the annular groove 332 located at the bottom. Two limiting blocks 322 are fixedly connected to the side of the sliding tube 320 and are slidably connected to the inner side of the fixed tube 310. A spring 312 is rotatably connected to the top of the inner side of the fixed tube 310 and to the connecting rod 320. The rotating rod 350 is rotatably connected to the top of the spiral groove 331. The guide plate 121 can limit the position of the fixed tube 310 through the support rod 311. The fixed tube 310 can prevent the sliding tube 320 from rotating through the limit block 322. The fixed tube 310 can also limit the height of the rotating rod 350. The rotating rod 350 can limit the height of the connecting rod 330. The connecting rod 330 can be rotated in the opposite direction through the power module 400. In this way, when the bottom of the spiral groove 331 rotates to the position of the circular block 321, under the action of the tension of the spring 312, the circular block 321 can be rotated. 21 moves into the spiral groove 331, causing the circular block 321 to move upward under the action of the spiral groove 331, thereby driving the sliding tube 320 and the stop block 340 to move upward, so that the stop block 340 no longer blocks the through hole at the center of the bottom plate 120, and the circular block 321 stays in the annular groove 332 at the top, thus keeping the stop block 340 in the open state. When the connecting rod 330 is rotated again by the power module 400, under the pressure of the spring 2 312, the circular block 321 can move into the spiral groove 331, thus causing the circular block 321 to move upward. 1. Moves downward under the action of the spiral groove 331. At this time, the stop block 340 can block the through hole at the center of the bottom plate 120, and the round block 321 can stay in the bottom annular groove 332, so that the stop block 340 keeps the through hole closed, which is convenient to control the mortar entering the mixing pipe 210. The operation is simple and easy to use. A spiral rail can be set at the bottom of the stop block 340. After the stop block 340 no longer blocks the bottom plate 120, the stop block 340 can drive the spiral rail to rotate, so that the mortar in the discharge cylinder 100 falls quickly into the mixing pipe 210.
[0026] A stop bar 380, which is fixedly connected to the top cover 110, is slidably connected to the top of the inner side of the rotating rod 350. The inner side of the stop bar 380 contacts the side of the round rod 370, and the stop bar 380 can block the round rod 370. The length of the second spring 312 in its natural state is less than the distance between the top surface of the sliding tube 320 and the inner top surface of the fixed tube 310, and the length of the second spring 312 in its natural state is greater than the distance between the inner top surface of the fixed tube 310 and the top surface of the connecting rod 330. When the round block 321 is located in the annular groove 332 at the bottom of the spiral groove 331, the second spring 312 can provide an upward pulling force to the sliding tube 320, and when the round block 321 is located in the annular groove 332 at the top of the spiral groove 331, the second spring 312 can provide a downward compressive force to the sliding tube 320.
[0027] Working principle: In use, open the cover on the top cover 110, pour the plastering mortar into the discharge cylinder 100, close the cover, connect the hose 250 to the water source, and start the power module 400. The power module 400 can drive the round rod 370 to rotate. The round rod 370 can drive the connecting rod 330 to rotate via the rectangular rod 360. The connecting rod 330 can drive the transmission rod 233 to rotate. The transmission rod 233 can drive the stirring rod 230 to rotate via the rectangular block 231. The power module 400 can cause the connecting rod 330 to rotate in the opposite direction. Thus, when the bottom of the spiral groove 331 rotates to the position of the round block 321, the spring 23... Under the action of the tension, the round block 321 can be moved into the spiral groove 331, thereby causing the round block 321 to move upward under the action of the spiral groove 331, which in turn drives the sliding tube 320 and the stop block 340 to move upward, so that the stop block 340 no longer blocks the through hole at the center of the bottom plate 120. At this time, the plastering mortar in the discharge cylinder 100 can fall into the mixing tube 210 through the through hole. After the round block 321 moves upward into the top annular groove 332, the rotation of the spiral groove 331 can cause the round block 321 to move upward, so that the round block 321 can stay in the top annular groove 332, thereby keeping the stop block 340 in the open state.
[0028] After injecting a certain amount of mortar into the mixing pipe 210, the connecting rod 330 is rotated by the power module 400, causing it to rotate in its original direction. When the top of the spiral groove 331 rotates to the position of the circular block 321, the circular block 321 moves into the spiral groove 331 under the pressure of the spring 312. This causes the circular block 321 to move downwards under the action of the spiral groove 331. At this time, the stop block 340 can block the through hole at the center of the bottom plate 120. Because the rotation of the spiral groove 331 causes the circular block 321 to move downwards, the circular block 321 can remain in the bottom annular groove 332, thus keeping the stop block 340 in a closed state. Then, the through hole can be opened. Water is injected into the mixing pipe 210 through the hose 250 and the connecting pipe 240. The power module 400 can drive the stirring rod 230 to rotate, thereby stirring the mortar and water in the mixing pipe 210. After stirring, the power module 400 is stopped, and then the sliding ring 213 is moved downward. The sliding ring 213 can drive the block 215 downward through the L-shaped rod 214, so that the block 215 is disengaged from the mixing pipe 210. At this time, the stirred mortar can fall out of the mixing pipe 210. After the sliding ring 213 is released, under the action of the spring 212, the block 215 can be moved upward to its original position to block the bottom of the mixing pipe 210. Then the next stirring of mortar can be carried out.
[0029] After the mortar application is completed, rotate the engagement ring 241 to separate the hose 250 from the connecting pipe 240. Then rotate the support rod 132 to disengage the thread 2 at the top from the thread 1. At this time, the discharge cylinder 100 can be moved downwards to retract the support rod 132 into the fixing rod 131 and the mixing module 200 into the discharge cylinder 100. Then, the thread 2 at the bottom of the support rod 132 can be screwed into the thread 1. Then, the mixing device can be moved for storage.
[0030] In the description of this specification, references to terms such as "an embodiment," "example," "specific example," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of the invention. In this specification, illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples.
[0031] The above description is merely an example and illustration of the present invention. Those skilled in the art can make various modifications or additions to the specific embodiments described, or use similar methods to replace them, as long as they do not deviate from the invention or exceed the scope defined in the claims, all of which should fall within the protection scope of the present invention.
Claims
1. A plastering mortar mixing system, characterized in that, The device includes a discharge cylinder, a top cover fixedly connected to the top of its inner side, a power module fixedly connected to the top surface of the top cover, an adjustment module inside the discharge cylinder, a bottom plate inside the discharge cylinder, a support mechanism fixedly connected to the bottom plate on the side of the discharge cylinder, a mixing module on the bottom surface of the bottom plate, a mixing tube in contact with the bottom surface of the bottom plate, a screw-fitting ring fixedly connected to the bottom surface of the bottom plate on the top side of the mixing tube, a stirring rod inside the mixing tube, a transmission rod connected to the adjustment module at the top of the stirring rod, the power module being connected to the adjustment module, a connecting pipe connected to the top side of the mixing tube, and a blockage block on the bottom of the inner side of the mixing tube.
2. The plastering mortar mixing system according to claim 1, characterized in that, The support mechanism includes a support plate, on the top surface of which two support rods are rotatably connected. The top of each support rod is provided with a fixing rod that is fixedly connected to the side of the discharge cylinder. The bottom of the inner side of the fixing rod is provided with a thread. The top and bottom of the side of each support rod are provided with threads, and the thread at the top is screwed into the adjacent thread. The top surface of the support plate is circumferentially and equidistantly connected with four support rods that are fixedly connected to the bottom surface of the base plate.
3. The plastering mortar mixing system according to claim 1, characterized in that, A fixed ring is fixedly connected to the side of the mixing pipe, and a sliding ring is slidably connected to the side of the mixing pipe. A spring is fixedly connected to the top surface of the sliding ring and to the bottom surface of the fixed ring. Two L-shaped rods are fixedly connected to the bottom surface of the sliding ring and to the side of the block.
4. The plastering mortar mixing system according to claim 1, characterized in that, The end of the connecting pipe opposite to the mixing pipe is provided with a flexible tube, and a screw ring is provided at one end of the connecting pipe that is screwed into the flexible tube.
5. The plastering mortar mixing system according to claim 1, characterized in that, The top of the stirring rod is fixedly connected to a rectangular block that slides into the transmission rod. The inner side of the stirring rod is rotatably connected to a lead screw that is rotatably connected to the rectangular block, and the top of the lead screw is screwed into the inner side of the bottom of the transmission rod.
6. The plastering mortar mixing system according to claim 1, characterized in that, A guide plate is fixedly connected to the top surface of the base plate. The adjustment module includes a fixed tube. A support rod fixedly connected to the top side of the fixed tube and fixedly connected to the guide plate is fixedly connected to the top side of the fixed tube. A sliding tube is slidably connected to the inner side of the fixed tube. A stop block slidably connected to the bottom end of the sliding tube and slidably connected to the inner side of the base plate is fixedly connected to the bottom end of the sliding tube. The side of the transmission rod contacts the inner side of the stop block. A connecting rod is provided on the inner side of the sliding tube, and the bottom end of the connecting rod is fixedly connected to the top end of the transmission rod. A rectangular rod is fixedly connected to the top end of the connecting rod. A round rod is slidably connected to the top side of the rectangular rod. The top end of the round rod passes through the top cover, and the output end of the power module is connected to the top end of the round rod in a transmission connection. A spring is fixedly connected to the top surface of the fixed tube and to the top surface of the sliding tube. A spiral groove is provided on the side of the connecting rod. A ring groove is provided at both the top and bottom of the spiral groove. A round block is fixedly connected to the inner side of the sliding tube, and the side of the round block contacts the inner side of the ring groove at the bottom. Two limiting blocks are fixedly connected to the side of the sliding tube and are slidably connected to the inner side of the fixed tube. A rotating rod is rotatably connected to the top of the inner side of the fixed tube and is rotatably connected to the top of the connecting rod.
7. The plastering mortar mixing system according to claim 6, characterized in that, The top of the inner side of the rotating rod is slidably connected to a stop bar that is fixedly connected to the top cover, and the inner side of the stop bar is in contact with the side of the round rod.
8. The plastering mortar mixing system according to claim 6, characterized in that, The length of the second spring in its natural state is less than the distance between the top surface of the sliding tube and the inner top surface of the fixed tube, and the length of the second spring in its natural state is greater than the distance between the inner top surface of the fixed tube and the top surface of the connecting rod.