Production equipment of high-solid-content emulsified asphalt
By combining grinding and adsorption mechanisms, the problem of pipe blockage in the production of high-solids-content emulsified asphalt was solved, achieving automated cleaning and improving cleaning efficiency and equipment applicability.
Patent Information
- Application Number
- CN202511650289.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-11-12
- Publication Date
- 2026-01-23
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
High-solids-content emulsified asphalt is prone to deposits and blockages in equipment pipelines during production. It also has a slow flow rate and is difficult to clean after shutdown due to the asphalt hardening. This results in a large amount of maintenance work and low efficiency.
The grinding mechanism and the adsorption mechanism work together. The grinding disc is driven by a motor to rotate at high speed to break up the deposits. The negative pressure fan disc adsorbs and transports the impurities. Combined with the moving mechanism, the cleaning is automated.
It efficiently clears pipe blockages, reduces maintenance time and costs, improves cleaning efficiency, is suitable for pipes of various diameters, and reduces the risks associated with manual operation.
Smart Images

Figure CN121372987A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of emulsified asphalt production, in particular to a production equipment of high solid content emulsified asphalt. BACKGROUND
[0002] Emulsified asphalt is an oil-in-water emulsion formed by dispersing hot-melted asphalt in a water solution containing emulsifier in the form of fine droplets. With the development of the field of road construction and other engineering fields, the demand for high solid content emulsified asphalt is increasing. High solid content emulsified asphalt has better bonding performance and construction performance.
[0003] In the actual production process of high solid content emulsified asphalt, due to its high solid content and high viscosity characteristics, it is prone to deposition and blockage in the equipment pipeline and valve parts. During the flow process of high solid content emulsified asphalt, the flow speed of high viscosity emulsified asphalt is relatively slow, and the asphalt component therein will gradually adhere to the pipe wall. With the passage of time, these adhered asphalt continuously accumulates, gradually reducing the effective flow cross-sectional area of the pipeline, thereby affecting the conveying efficiency of the emulsified asphalt. Especially during shutdown or equipment maintenance, the high solid content emulsified asphalt in the pipeline and valve loses the flow power, and the temperature also rapidly decreases. Since the solidification point of asphalt is relatively high, the asphalt will rapidly solidify during the cooling process. This solidified asphalt is tightly combined with the inner wall of the pipeline and valve, making the cleaning work extremely difficult. When cleaning the blocked pipeline, maintenance personnel often need to spend a lot of time and effort to repeatedly flush and dredge the pipeline. For some stubborn blocked parts, the pipeline needs to be disassembled for manual cleaning, which undoubtedly greatly increases the maintenance workload and prolongs the maintenance time. SUMMARY
[0004] The present application aims to provide a production equipment of high solid content emulsified asphalt, so as to solve the problem of deposition and blockage in the equipment pipeline during the production of high solid content emulsified asphalt due to its high solid content and high viscosity, slow flow speed of emulsified asphalt during production, easy adhesion of asphalt to the pipe wall, resulting in a decrease in the effective cross-sectional area of the pipeline and affecting the conveying efficiency, difficulty in cleaning during shutdown or maintenance due to the cooling and solidification of asphalt and its tight combination with the inner wall, and the need for a large amount of manpower and time, even disassembly of the pipeline, which increases the maintenance workload and time.
[0005] To achieve the above-mentioned purpose, the present application provides the following technical solution: a production equipment of high solid content emulsified asphalt, comprising a grinding mechanism and an adsorption mechanism, the grinding mechanism comprising a driving motor; The rotating end of the driving motor is fixedly connected with a rotating disc, a group of embedded grooves are formed in the outer wall of the rotating disc, an embedded plate is slidably embedded in the inner wall of each embedded groove, an installation disc is fixedly connected to the outer wall of each embedded plate, a group of grinding pieces are fixedly connected to the outer wall of the installation disc near the edge, a grinding disc is fixedly sleeved on the outer wall of the installation disc, a threaded ring is formed in the inner wall of the rotating disc, and a locking disc is threadedly connected to the inner wall of the threaded ring. The adsorption mechanism comprises a negative pressure fan disc, a group of adsorption holes are formed in the inside of the negative pressure fan disc, four built-in frame pipes are fixedly connected to one side of the outer wall of the negative pressure fan disc, and the inside of each of the four built-in frame pipes is fixedly communicated with the output end of the negative pressure fan disc, an installation frame is fixedly connected between the outer walls of the four built-in frame pipes, and an built-in transmission pipe is fixedly inserted into the inner wall of the installation frame.
[0006] Preferably, the output end of each of the four built-in frame pipes is fixedly communicated with a communication pipe, and the output end of each of the four communication pipes is communicated with the inside of the built-in transmission pipe. One side of the outer wall of each of the four built-in frame pipes is fixedly connected with a U-shaped mounting bracket.
[0007] Preferably, the inner wall of the adsorption mechanism is fixedly connected with a main mechanism. The main mechanism comprises an annular frame plate, two groups of fixed lining plates are fixedly connected to the inner wall of the annular frame plate, an built-in motor is fixedly inserted into the inside of one group of the two fixed lining plates, a threaded rod is rotatably connected between the insides of the two fixed lining plates through a bearing, and the rotating end of the built-in motor is fixedly connected to one side of the outer wall of the threaded rod.
[0008] Preferably, a group of sliding rods are fixedly connected between the opposite sides of the two fixed lining plates, a moving plate is slidably embedded on the outer wall of each of the group of sliding rods, and the outer wall of the threaded rod is threadedly connected in the inside of the moving plate.
[0009] Preferably, a group of rotating rods A are fixedly inserted into the inside of the moving plate, and an adjusting plate is fixedly sleeved on the outer wall of each of the group of rotating rods A.
[0010] Preferably, a group of inner installation plates are fixedly connected to one side of the outer wall of each of the two fixed lining plates, a rotating rod B is rotatably connected to the inside of each of the two groups of inner installation plates, and a gear plate is fixedly sleeved on the outer wall of each of the two groups of rotating rods B.
[0011] Preferably, a rotating rod C is rotatably connected to the inside of each of the two groups of gear plates, one adjusting plate is rotatably connected between the outer wall of each of the two groups of rotating rods C, and a linkage plate is movably sleeved between each of the two groups of rotating rods C.
[0012] Preferably, a moving mechanism is fixedly connected to the outer wall of the main mechanism. The moving mechanism comprises two sets of gear boxes, and the rotating ends of the two sets of gear boxes are fixedly connected with built-in tires.
[0013] Preferably, one side of the outer wall of the two sets of gear boxes is fixedly connected with a micro motor, and the rotating ends of the two sets of micro motors are connected with the transmission ends of the gear boxes, respectively.
[0014] Preferably, conveying pipes are arranged between the outer walls of the moving mechanism. The outer wall of the conveying pipe is rotatably connected with a pipe sealing door through a hinge, and one side of the outer wall of the conveying pipe is fixedly connected with an on-off valve body.
[0015] Compared with the prior art, the present application has the following advantages: 1. In the present application, through the cooperative operation of the grinding mechanism and the adsorption mechanism, the deposited substances in the conveying pipe can be efficiently cleaned. When the equipment stops running and the high-solid-content emulsified asphalt solidifies into a solid state in the pipe, the driving motor is started to drive the grinding plate to rotate at a high speed, so that the stubborn deposits can be broken down. The broken-down substances are sucked into the built-in frame pipe, the communication pipe and the built-in delivery pipe under the negative pressure generated by the negative pressure fan disc, so that the high-solid-content emulsified asphalt is efficiently removed, the pipe is prevented from being blocked, the time and effort of the maintenance personnel for cleaning the pipe are greatly reduced, and the maintenance cost is reduced.
[0016] 2. In the present application, the movement and cleaning operation of the equipment are highly automated. The built-in motor drives the threaded rod to rotate, drives the moving plate to slide on the slide rod, and then drives the built-in tire of the moving mechanism to contact and rotate on the inner wall of the pipe through the cooperation of the adjusting plate, the rotating rod and the linkage plate. The plurality of micro motors provide power for the gear boxes to drive the built-in tire to rotate, so that the equipment can automatically move in the pipe. In the moving process, the grinding mechanism continuously cleans the pipe, which not only improves the cleaning efficiency, but also reduces the risks that may be caused by manual operation. Moreover, this processing mode ensures that the equipment can maintain good cleaning effect in pipes with different diameters, improves the universality and applicability of the equipment, and makes the equipment widely applicable to various high-solid-content emulsified asphalt production scenes.
[0017] 3. In the present application, the negative pressure fan disc, the built-in frame pipe, the communication pipe and the built-in delivery pipe in the adsorption mechanism cooperate with each other to form an efficient impurity conveying system. The negative pressure generated by the negative pressure fan disc can quickly adsorb the broken-down impurities, and the corrugated pipe connected to one side of the built-in delivery pipe can flexibly change the conveying path. No matter how complex the direction of the pipe is, the impurities can be smoothly conveyed to the designated position, so that the overall efficiency and reliability of the cleaning work are improved. BRIEF DESCRIPTION OF DRAWINGS
[0018] Figure 1This is a perspective view of the main structure of a high-solids-content emulsified asphalt production equipment according to the present invention. Figure 2 This is a side view sectional plan of a high-solids-content emulsified asphalt production equipment according to the present invention; Figure 3 This is a partial structural plan view of a high-solids-content emulsified asphalt production equipment according to the present invention; Figure 4 This is a perspective view of the internal components of a high-solids-content emulsified asphalt production device according to the present invention. Figure 5 This is a three-dimensional view of the adsorption mechanism structure in a high-solids-content emulsified asphalt production equipment according to the present invention. Figure 6 This is a three-dimensional cross-sectional view of a portion of the structure in a high-solids-content emulsified asphalt production equipment according to the present invention. Figure 7 In the production equipment for high solids content emulsified asphalt of the present invention, Figure 6 Enlarged view of the A-structure; Figure 8 This invention relates to a production equipment for high-solids-content emulsified asphalt. Figure 6 Three-dimensional diagram of the main structure; Figure 9 This is a three-dimensional structural view of the main structure of a high-solids-content emulsified asphalt production equipment according to the present invention. Figure 10 This is a three-dimensional exploded view of the connection structure between the grinding mechanism and the moving mechanism in a high-solids-content emulsified asphalt production equipment according to the present invention. Figure 11 This invention relates to a production equipment for high-solids-content emulsified asphalt. Figure 10 Enlarged view of the B-structure.
[0019] In the diagram: 1. Switch valve body; 2. Conveying pipeline; 201. Pipeline sealing door; 3. Main mechanism; 301. Annular frame plate; 302. Fixed inner lining plate; 303. Built-in motor; 304. Threaded rod; 305. Slide rod; 306. Moving plate; 3061. Rotating rod A; 307. Adjusting plate; 308. Inner mounting plate; 3081. Rotating rod B; 309. Gear plate; 3091. Rotating rod C; 310. Linkage plate; 4. Moving mechanism; 401. Gearbox; 40 2. Built-in tire; 403. Micro motor; 5. Grinding mechanism; 501. Drive motor; 502. Rotary disk; 503. Embedding slot; 504. Embedding plate; 505. Mounting plate; 506. Grinding disc; 507. Grinding disc; 508. Threaded ring; 509. Locking disc; 6. Adsorption mechanism; 601. Negative pressure fan plate; 602. Adsorption hole; 603. Built-in frame tube; 604. Mounting frame; 605. Built-in transfer tube; 606. Connecting tube; 607. U-shaped mounting bracket. DETAILED DESCRIPTION
[0020] The technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only some of the embodiments of the present application, but not all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative work fall within the scope of protection of the present application.
[0021] Please refer to the drawings Figure 1 - the drawings Figure 11 As shown in the drawings, the present application provides a technical solution: a production equipment of high solid content emulsified asphalt, which comprises a grinding mechanism 5 and an adsorption mechanism 6, the grinding mechanism 5 comprises a driving motor 501; The rotating end of the driving motor 501 is fixedly connected with a rotating disc 502, a group of embedded grooves 503 are formed in the outer wall of the rotating disc 502, the inner wall of the group of embedded grooves 503 is slidably embedded with a group of embedded plates 504, the outer wall of the group of embedded plates 504 is fixedly connected with a group of mounting discs 505, the outer wall of the mounting disc 505 is fixedly connected with a group of grinding pieces 506 near one side of the edge, the outer wall of the mounting disc 505 is fixedly sleeved with a grinding disc 507, the inner wall of the rotating disc 502 is provided with a threaded ring 508, and the inner wall of the threaded ring 508 is threadedly connected with a locking disc 509; The adsorption mechanism 6 comprises a negative pressure fan disc 601, a group of adsorption holes 602 are formed in the inside of the negative pressure fan disc 601, three built-in frame pipes 603 are fixedly connected on one side of the outer wall of the negative pressure fan disc 601, and the inside of the built-in frame pipe 603 is fixedly communicated with the output end of the negative pressure fan disc 601, an installation frame 604 is fixedly connected between the outer walls of the built-in frame pipes 603, and an built-in delivery pipe 605 is fixedly inserted in the inner wall of the installation frame 604.
[0022] According to Figures 3-5 As shown in the drawings: the output end of the three built-in frame pipes 603 is fixedly communicated with a communication pipe 606, and the output end of the three communication pipes 606 is respectively communicated with the inside of the built-in delivery pipe 605, and one side of the outer wall of the three built-in frame pipes 603 is fixedly connected with a U-shaped mounting bracket 607. First, the inside of the built-in frame pipe 603 remains a hollow state, which is used to realize the transmission path of impurities, and the communication pipe 606 fixedly communicated at the leftmost side of each built-in frame pipe 603 is used to finally deliver the impurities in the built-in frame pipe 603 to the inside of the built-in delivery pipe 605 respectively, and the front end of the built-in delivery pipe 605 adopts a metal pipe, and the rear end adopts a corrugated pipe, which can not only adjust the length of itself, but also adjust the bending angle of itself at the bending position, further meeting the delivery demand.
[0023] According to Figure 6 , Figure 8As shown: the inner wall of the adsorption mechanism 6 is fixedly connected with the main body mechanism 3; The main body mechanism 3 comprises a ring-shaped frame plate 301, the built-in frame tubes 603 are respectively installed between the outer walls of the ring-shaped frame plate 301 through U-shaped mounting frames 607, the inner walls of the ring-shaped frame plate 301 are fixedly connected with two groups of fixed inner lining plates 302, the interiors of one group of the two groups of fixed inner lining plates 302 are fixedly inserted with built-in motors 303, the interiors of the two fixed inner lining plates 302 are rotatably connected with threaded rods 304 through bearings, and the rotating end of the built-in motor 303 is fixedly connected with one side of the outer wall of the threaded rod 304. First, the two groups of fixed inner lining plates 302 are installed between the inner walls of the ring-shaped frame plate 301, and remain in a fixed state, the threaded rod 304 is driven by the built-in motor 303, and is rotatably connected between the inner walls of one group of the fixed inner lining plates 302 through the bearing as a receiving point.
[0024] According to Figure 8 As shown: one side of the outer wall of the threaded rod 304 is fixedly connected with a group of sliding rods 305, the outer wall of the group of sliding rods 305 is slidingly embedded with a moving plate 306, the outer wall of the threaded rod 304 is threadedly connected in the interior of the moving plate 306, the sliding rod 305 is fixedly installed between the opposite sides of the two groups of fixed inner lining plates 302, and remains in a state of relative fixation with the two groups of fixed inner lining plates 302. Under the driving of the built-in motor 303, when the threaded rod 304 rotates, the threaded rod 304 can threadedly rotate in the interior of the moving plate 306, a threaded drive is generated between the two, and the moving plate 306 slides on the outer wall of the group of sliding rods 305. Under this cooperation, the moving plate 306 can effectively move on the outer wall of the group of sliding rods 305.
[0025] According to Figures 8-9 As shown: a group of rotating rods A3061 are fixedly inserted in the interior of the moving plate 306, the outer wall of the group of rotating rods A3061 is fixedly sleeved with an adjusting plate 307. Through the rotating rod A3061 and the adjusting plate 307 as a medium, when the moving plate 306 moves, it can drive the relatively fixed components to move at the same frequency.
[0026] According to Figures 8-9 As shown: one side of the outer wall of the two groups of fixed inner lining plates 302 is fixedly connected with a group of inner mounting plates 308, the interiors of the two groups of inner mounting plates 308 are rotatably connected with rotating rods B3081, the outer walls of the two groups of rotating rods B3081 are fixedly sleeved with gear plates 309, and when the rotating rod B3081 rotates in the interior of the inner mounting plate 308, it can drive the two groups of gear plates 309 to rotate with the rotating rod B3081 as the base point.
[0027] According to Figure 9As shown: the inner part of the two sets of gear plates 309 are rotatably connected with the rotating rods C3091, and one set of adjusting plates 307 are rotatably connected between the outer walls of one set of the rotating rods C3091, and the linkage plates 310 are movably sleeved between every two of the two sets of rotating rods C3091, when one set of the adjusting plates 307 moves, it can rotate between the outer walls of one set of the rotating rods C3091, and can rotate around the rotating rods B3081 as the base point through the linkage plates 310 as the linkage medium, so as to keep the two sets of gear plates 309 at a relative inclination angle.
[0028] According to Figure 2 , Figure 7 , Figure 10 As shown: the outer walls of the main body mechanism 3 are fixedly connected with the moving mechanism 4; The moving mechanism 4 includes two sets of gear boxes 401, the rotating ends of the two sets of gear boxes 401 are fixedly connected with the built-in tires 402, and the built-in tires 402 can be in contact with the inner walls of the conveying pipeline 2, and the built-in tires 402 have friction with the inside of the conveying pipeline 2, so as to ensure that the equipment can be stably inside the conveying pipeline 2. The moving mechanism 4 has an annular driving path inside, which can be properly adjusted according to an inner diameter of the conveying pipeline 2, and by changing the inclination angle of the two sets of gear plates 309, the annular path of the moving mechanism 4 can be adjusted at the same time.
[0029] According to Figure 7 and Figure 9 As shown: the outer walls of the two sets of gear boxes 401 are fixedly connected with the micro-motors 403, and the rotating ends of the two sets of micro-motors 403 are connected with the transmission ends of the gear boxes 401 respectively.
[0030] According to Figures 1-2 As shown: the outer walls of the moving mechanism 4 are provided with the conveying pipeline 2; The outer wall of the conveying pipeline 2 is rotatably connected with the pipeline sealing door 201 through a hinge, and one side of the outer wall of the conveying pipeline 2 is fixedly connected with the on-off valve body 1. First, a pipeline sealing door 201 is arranged outside the conveying pipeline 2, and the pipeline sealing door 201 can be kept rotating through the hinge, so as to open a port on one side of the conveying pipeline 2, and the equipment can be effectively delivered to the inside of the conveying pipeline 2.
[0031] The working principle of the whole equipment is as follows: before the equipment is put into use, the mounting disc 505 of the grinding mechanism 5 needs to be replaced according to the inner diameter of the conveying pipeline 2, when operating, first, a set of the embedded plates 504 are slid into the inside of the embedded grooves 503, so that the mounting disc 505 can be installed on the outer wall of the rotating disc 502, finally, the locking disc 509 is screwed to the inner wall of the threaded ring 508, and the whole equipment is locked, so as to complete the installation work of the whole replacement of the grinding mechanism 5.
[0032] After the device is in long-term operation, once it stops working, the high solid content emulsified asphalt in the pipeline will lose the flow power, and the temperature will also decrease rapidly. Due to the solidification characteristics of asphalt, solid substances will be formed on the inner wall of the conveying pipeline 2. When the inside of the conveying pipeline 2 needs to be cleaned, first, the pipeline sealing door 201 is rotated by using the hinge, an opening is opened on the side of the conveying pipeline 2 close to the switch valve body 1, then the cleaning device is put into the inside of the conveying pipeline 2 through the opening, and the grinding mechanism 5 is directed towards the lower part of the pipeline.
[0033] When the pipeline needs to be cleaned, the driving motor 501 is started, and the output end continuously rotates to drive the rotating disc 502 and the components fixed therewith to rotate rapidly. When the grinding mechanism 5 rotates at high speed, a group of grinding pieces 506 at the front end rapidly operate to preliminarily crush the substances remaining on the inner wall of the conveying pipeline 2. The crushed substances are sucked into the inside of the negative pressure fan disc 601 under the negative pressure generated by the negative pressure fan disc 601, then are transmitted to the built-in frame tube 603, are conveyed to the communication pipe 606 by the built-in frame tube 603 respectively, and finally are collected in the built-in transmission pipe 605. The built-in transmission pipe 605 is connected with the corrugated pipe on one side, the conveying path can be flexibly changed, the efficient conveying of impurities is realized, and the extended adjustable part of the built-in transmission pipe 605 can be connected with the external collecting device to complete the collection of the cleaning substances.
[0034] At this time, the built-in motor 303 is powered on, and the output end rotates to drive the threaded rod 304 to rotate in the fixed lining plate 302. When the threaded rod 304 rotates, a threaded action is generated in the inside of the moving plate 306, and the moving plate 306 is slidably sleeved on a group of slide rods 305, so that the effective movement of the moving plate 306 is realized. When the moving plate 306 moves, a group of adjusting plates 307 are moved to one side. Since the other side of the group of adjusting plates 307 is rotationally connected to the rotating rod C 3091, a group of gear plates 309 are pulled to move to one side, and a group of linkage plates 310 realize the linkage between the two groups of gear plates 309. One side of each group of gear plates 309 is connected with the moving mechanism 4. The three moving mechanisms 4 form a group to form a ring-shaped contact driving state, so that the built-in tires 402 in the inside of the two groups of moving mechanisms 4 respectively contact the inner wall of the conveying pipeline 2.
[0035] At the same time, a plurality of micro motors 403 are powered on, and the output end transmits power to the gear box 401 to drive the built-in tires 402 on both sides of the gear box 401 to rotate. The two groups of built-in tires 402 rub against each other on the inner wall of the conveying pipeline 2 to drive the device to move in the pipeline. In the moving process, the impurities in the pipeline are continuously cleaned to complete the overall cleaning work.
[0036] Although the present application has been described in detail with reference to the foregoing embodiments, the technical solutions recorded in the foregoing embodiments can be modified, or some of the technical features can be replaced by equivalent features, by those skilled in the art, any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the present application shall be included in the protection scope of the present application.
Claims
1. A production device of high solid content emulsified asphalt, comprising a main body mechanism (3), a grinding mechanism (5) and an adsorption mechanism (6), characterized in that: The inner wall of the adsorption mechanism (6) is fixedly connected with the main body mechanism (3), and the grinding mechanism (5) comprises a driving motor (501), which is fixedly connected with the main body mechanism (3); The rotating end of the driving motor (501) is fixedly connected with a rotating disc (502), the outer wall of the rotating disc (502) is provided with a group of embedded grooves (503), the inner wall of the embedded grooves (503) is slidably embedded with an embedded plate (504), the outer wall of the embedded plate (504) is fixedly connected with a mounting disc (505), the outer wall of the mounting disc (505) is fixedly connected with a group of grinding pieces (506) near the edge side, the outer wall of the mounting disc (505) is fixedly sleeved with a grinding disc (507), the inner wall of the rotating disc (502) is provided with a threaded ring (508), and the inner wall of the threaded ring (508) is threadedly connected with a locking disc (509). The adsorption mechanism (6) comprises a negative pressure fan disc (601), a group of adsorption holes (602) are formed in the inside of the negative pressure fan disc (601), a plurality of built-in frame pipes (603) are fixedly connected to one side of the outer wall of the negative pressure fan disc (601), and the inside of the built-in frame pipe (603) is fixedly communicated with the output end of the negative pressure fan disc (601).
2. The production device of high solid content emulsified asphalt according to claim 1, characterized in that: The outer wall of the built-in frame pipe (603) is fixedly connected with a mounting frame (604), the inner wall of the mounting frame (604) is fixedly inserted with a built-in transmission pipe (605), and the output end of the built-in frame pipe (603) is fixedly communicated with a communication pipe (606), and the output end of the communication pipe (606) is respectively communicated with the inside of the built-in transmission pipe (605).
3. The production device of high solid content emulsified asphalt according to claim 1, characterized in that: The outer wall of the built-in frame pipe (603) is fixedly connected with a mounting frame (604), the inner wall of the mounting frame (604) is fixedly inserted with a built-in transmission pipe (605), and the output end of the built-in frame pipe (603) is fixedly communicated with a communication pipe (606), and the output end of the communication pipe (606) is respectively communicated with the inside of the built-in transmission pipe (605).
4. The production apparatus of high solid content emulsified asphalt according to claim 3, characterized in that: The main body mechanism (3) comprises an annular frame plate (301), the inner wall of the annular frame plate (301) is fixedly connected with two groups of fixed inner lining plates (302), one group of the fixed inner lining plates (302) is fixedly inserted with a built-in motor (303) in the inside, the other group is connected with the driving motor (501), and the inside of the two fixed inner lining plates (302) is rotatably connected with a threaded rod (304) through a bearing.
5. The production apparatus of high solid content emulsified asphalt according to claim 4, characterized in that: A group of sliding rods (305) are fixedly connected between the two groups of fixed inner lining plates (302), and the outer wall of the sliding rod (305) is slidably embedded with a moving plate (306). The inside of the moving plate (306) is fixedly inserted with a group of rotating rods A (3061), and the outer wall of the rotating rod A (3061) is fixedly sleeved with an adjusting plate (307).
6. The production apparatus of high solid content emulsified asphalt according to claim 5, characterized in that: The outer wall side of the fixed inner lining plate (302) is fixedly connected with a group of inner mounting plates (308), the inner part of the two groups of inner mounting plates (308) is rotatably connected with a rotating rod B (3081), and the outer surface wall of the two groups of rotating rods B (3081) is fixedly sleeved with a gear plate (309).
7. The production apparatus of high solid content emulsified asphalt according to claim 6, characterized in that: The inner part of the two groups of gear plates (309) is rotatably connected with a rotating rod C (3091), and a group of adjusting plates (307) are rotatably connected between the outer surface walls of one group of rotating rods C (3091), respectively, and the two groups of rotating rods C (3091) are movably sleeved with a linkage plate (310) between every two of them.
8. The production apparatus of high solid content emulsified asphalt according to claim 1, characterized in that: The outer surface wall of the main mechanism (3) is fixedly connected with a moving mechanism (4); The moving mechanism (4) comprises two groups of gear boxes (401), and the rotating end of the two groups of gear boxes (401) is fixedly connected with an inner tire (402).
9. The production apparatus of high solid content emulsified asphalt according to claim 8, characterized in that: The outer wall side of the two groups of gear boxes (401) is fixedly connected with a micro motor (403), and the rotating end of the two groups of micro motors (403) is connected with the transmission end of the gear box (401), respectively.
10. The production apparatus of high solid content emulsified asphalt according to claim 8, characterized in that: The outer surface wall of the moving mechanism (4) is provided with a conveying pipeline (2); The outer surface wall of the conveying pipeline (2) is rotatably connected with a pipeline sealing door (201) through a hinge, and the outer wall side of the conveying pipeline (2) is fixedly connected with an on-off valve body (1).