Concrete transport device
By adopting a tank tilting design, drive module heating, scraper wall and separation device in the concrete transportation device, the problem of delayed concrete setting in low temperature environments in winter is solved, the fluidity and uniformity are maintained, and the reduction of setting strength and splashing waste are prevented.
Patent Information
- Application Number
- CN202411360391.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-04-19
- Publication Date
- 2025-09-16
- Estimated Expiration
- 2044-04-19
AI Technical Summary
Existing concrete transportation equipment causes the concrete setting process to be delayed and the fluidity to be poor in the low temperature environment in winter, which affects the uniformity and setting strength of the concrete.
Adopting the tilted tank design, drive module, annular resistance heater, scraper device, separator and discharge device, it mixes, heats, stirs and evenly distributes the concrete to ensure fluidity and uniformity and prevent coagulation.
Maintain the fluidity and uniformity of concrete in low temperature environment, prevent the reduction of setting strength, avoid splashing and waste, and simplify the unloading process.
Smart Images

Figure CN119928065B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of transportation devices, in particular to a concrete transportation device. Background Art
[0002] Concrete transportation devices are mainly used to transport mixed concrete from the mixer to the construction site to ensure that the concrete maintains its uniformity and workability during transportation. With the continuous development of construction projects, the application prospects of concrete transportation devices are very broad.
[0003] Patent number CN211520740U discloses a concrete transport device, wherein a control chamber is fixedly connected to the top of the middle portion of the device body, and feed ports are provided on both sides of the control chamber. The feed ports are opened at the top of the device body, and a placement bucket is provided directly below the control chamber. This concrete transport device is provided with a placement bucket, a control chamber, a cooling fan, a moving device and other structures. During the concrete transportation process, concrete enters the placement bucket from the feed port, and the control motor is started to drive the first half gear and the second half gear to rotate. Since the first half gear and the second half gear face the same direction, when the first half gear contacts the movable column, the second half gear does not contact the movable column. Therefore, the movable column begins to reciprocate under its action, driving the anti-condensation plate to reciprocate, having the advantages of good anti-condensation effect, etc., solving the problem of the general anti-condensation effect of the existing concrete transport device.
[0004] However, the concrete transportation device has the following problems: when the concrete transportation device is used, the low temperature environment in winter will cause the setting process of the concrete to be delayed, making the concrete poor in fluidity during transportation and difficult to maintain uniformity. As a result, the concrete transportation device transports concrete in a low temperature environment in winter, causing poor concrete fluidity and affecting the setting strength of the concrete. Therefore, we propose a concrete transportation device. Summary of the Invention
[0005] In view of the deficiencies in the prior art, the present invention provides a concrete transportation device that solves the problems raised in the above background technology.
[0006] To achieve the above objectives, the present invention is implemented through the following technical solutions: a concrete transport device, including an electric cart, a push handle is fixed on the right side of the top surface of the electric cart, two ring frames are fixed on the top surface of the electric cart, a tank body is fixedly installed on the inner walls of the two ring frames, the tank body is set to be inclined upward at thirty degrees, a feed port is opened in the middle of the top surface of the tank body, a convex round cover is slidably installed on the left inner wall of the tank body, a drive module is fixedly installed in the middle of the right side of the tank body, the drive module includes a heat dissipation shell and a motor, the heat dissipation shell is fixed in the middle of the right side of the tank body, the motor is fixed on the left side of the inner wall of the heat dissipation shell, and a rotation arrangement is passed through the middle of the left side of the tank body. An electric motor shaft is equipped with a driving module, a round rod is fixed on the left side of the electric motor shaft of the driving module, and several cross plates are fixed on the outer wall of the round rod. The electric motor shaft in the driving module drives the round rod to rotate forward, and the round rod drives the cross plates to rotate forward, and the cross plates rotate forward to stir the concrete in the tank body. A concave circular shell is fixed on the right side of the outer wall of the round rod, and an annular resistance heater is fixed on the inner wall of the concave circular shell. A scraping device is provided on the outer wall of the round rod, and a separation device is provided in the middle of the outer wall of the round rod. A discharging device is provided on the left side of the outer wall of the tank. The round rod drives the concave circular shell to rotate forward, and the concave circular shell drives the annular resistance heater to rotate forward, and the annular resistance heater evenly insulates the concrete.
[0007] A concave block is fixed to the bottom surface of the concave circular shell, an L-shaped plate is fixed to the inner wall of the concave block, a temperature detection module is embedded in the left side of the L-shaped plate, and the L-shaped plate drives the temperature detection module to rotate forward. During the forward rotation of the temperature detection module, the temperature detection module measures the temperature of the concrete.
[0008] According to the above technical solution, the scraping device includes two straight plates, two long rods and two chamfered strips. Two straight plates are fixed on the outer wall of the round rod. Long rods are fixed on the front and bottom surfaces of the two straight plates respectively. Chamfered strips are embedded in the front surfaces of the two long rods respectively. The two chamfered strips are respectively arranged on the inner wall of the tank body. The long rods drive the chamfered strips to rotate forward, and the chamfered strips rotate forward to scrape the concrete on the tank body.
[0009] According to the above technical solution, the scraping device also includes two arc plates, two arc-shaped spring pieces and two short columns. The two long rods are fixed with arc plates on the opposite sides on the left, and the two arc plates are fixed with arc-shaped spring pieces on the opposite sides. The two arc plates are fixed with short columns on the ends away from the two long rods. The long rods drive the arc plates to rotate forward, the arc plates drive the arc-shaped spring pieces to rotate forward, the arc-shaped spring pieces drive the short columns to rotate forward, and the short columns stir the cement under the tank body. Under the elastic force of the arc-shaped spring pieces, the short columns mix the large particles of sand and gravel in the concrete evenly.
[0010] According to the above technical solution, the separation device includes an annular shell, several inclined plates and circular rings. The annular shell is fixed in the middle of the outer wall of the circular rod, and several inclined plates are fixed on the outer wall of the annular shell. Circular rings are fixed on the front of several inclined plates. During the forward rotation of the inclined plate, the inclined plate stirs the concrete in the tank body. Because the tank body is tilted upward by thirty degrees, the concrete flows downward under the action of gravity. During the downward flow of the concrete, the concrete flows downward from the gaps in the inclined plates, causing the inclined plates to rotate forward to quickly break up the concrete.
[0011] According to the above technical solution, the separation device also includes a circular plate, a plurality of arc-shaped spring sheets and a slider. A circular plate is fixedly installed on the left inner wall of the annular shell, and a plurality of arc-shaped spring sheets are fixed on the inner wall of the annular shell respectively. Sliders are slidably installed on the opposite surfaces of the plurality of arc-shaped spring sheets. During the forward rotation of the annular shell, the slider in the annular shell hits and rolls on the arc-shaped spring sheet under the action of centrifugal force. The arc-shaped spring sheet is vibrated by the impact, and the arc-shaped spring sheet transmits the vibration to the annular shell. The annular shell transmits the vibration to the inclined plate, and the inclined plate vibrates the concrete during the forward rotation.
[0012] According to the above technical solution, the discharging device includes four oblique rings, two electric telescopic rods, and two connecting plates. The four oblique rings are fixed on the left side of the outer wall of the tank body, and two electric telescopic rods are fixed on the inner walls of the four oblique rings. Connecting plates are fixed on the left side of the telescopic ends of the two electric telescopic rods, and the convex round cover is fixed on the right side of the two connecting plates. The connecting plate drives the convex round cover to move forward, and the convex round cover moves forward to open the tank body, so that the concrete in the tank body can dump itself.
[0013] According to the above technical solution, the discharging device also includes an arc-shaped baffle, a convex strip and a mudguard. An arc-shaped baffle is fixed to the top left side of the two connecting plates, a convex strip is fixed to the end of the arc-shaped baffle away from the arc-shaped baffle, and a mudguard is fixed to the right side of the convex strip. The arc-shaped baffle drives the convex strip to move forward, and the convex strip drives the mudguard to move forward, and the mudguard blocks the splashing of concrete.
[0014] The present invention provides a concrete transport device having the following beneficial effects:
[0015] (1) The present invention is combined with a temperature detection module through a tank body, a convex round cover, a driving module, a round rod, a cross plate, a concave round shell, an annular resistance heater, a concave block and an L-shaped plate. The motor shaft in the driving module drives the round rod to rotate forward, and the round rod drives the cross plate to rotate forward. The cross plate rotates forward to stir the concrete in the tank body, thereby preventing the concrete from solidifying in the tank body during transportation and causing the quality of the concrete to deteriorate. The round rod drives the concave round shell to rotate forward, and the concave round shell drives the annular resistance heater to rotate forward. The annular resistance heater rotates forward to transfer heat to the concrete, so that the annular resistance heater evenly insulates the concrete, making the concrete become less fluid and difficult to maintain uniformity during transportation, thereby preventing the concrete transportation device from transporting concrete in a low temperature environment in winter, resulting in poor concrete fluidity and affecting the concrete setting strength. The L-shaped plate drives the temperature detection module to rotate forward, and during the forward rotation of the temperature detection module, the temperature detection module measures the temperature of the concrete, so that the temperature detection module evenly detects the temperature of the concrete during the forward rotation, thereby preventing the concrete transportation device from transporting concrete in an excessively low temperature environment and causing the strength and durability of the concrete to deteriorate.
[0016] (2) The present invention arranges a scraping device so that a straight plate, a long rod, a chamfered strip, an arc plate and an arc-shaped spring piece cooperate with a short column. The straight plate drives the long rod to rotate forward, and the long rod drives the chamfered strip to rotate forward. The chamfered strip rotates forward to scrape the concrete on the tank body, and the chamfered strip rotates forward to scrape the concrete into the tank body, thereby preventing the concrete transport device from splashing onto the tank body and causing concrete lumps when transporting concrete. In addition, the short column stirs the cement under the tank body. Under the elastic force of the arc-shaped spring piece, the short column stirs the large-grained sand and gravel in the concrete evenly, so that the large-grained sand and gravel in the concrete in the tank body can be evenly distributed, thereby preventing the concrete transport device from unevenly distributing the sand and gravel inside the concrete and causing poor concrete quality during the process of transporting concrete.
[0017] (3) The present invention sets a separation device so that the ring shell, inclined plate, circular ring, circular plate and arc-shaped spring sheet cooperate with the slider. The ring shell drives the inclined plate to rotate forward, and the inclined plate drives the circular ring to rotate forward. During the forward rotation of the inclined plate, the inclined plate stirs the concrete in the tank body, and the concrete flows downward from the gap of the inclined plate, so that the inclined plate rotates forward to quickly break up the concrete, thereby preventing the sand and stone materials of the concrete from piling up together during the transportation of concrete by the concrete transport device, resulting in the concrete uniform distribution strength not meeting the standard. In addition, during the forward rotation of the ring shell, the slider in the ring shell is subjected to the action of centrifugal force, and the slider hits and rolls on the arc-shaped spring sheet, and the arc-shaped spring sheet is vibrated by the impact, and the arc-shaped spring sheet transmits the vibration to the ring shell, and the ring shell transmits the vibration to the inclined plate, so that the inclined plate vibrates the concrete during the forward rotation, so that the fine particles in the concrete are shaken away, thereby preventing the small particles of the concrete from being too dense during the transportation of the concrete transport device, resulting in the degradation of the concrete quality.
[0018] (4) The present invention arranges the discharging device so that the oblique ring, the electric telescopic rod, the connecting plate, the arc-shaped baffle and the convex strip cooperate with the mudguard. The telescopic end of the electric telescopic rod starts to move forward, and the telescopic end of the electric telescopic rod drives the connecting plate to move forward, and the connecting plate drives the convex round cover to move forward, and the convex round cover moves forward to open the tank body, so that the concrete in the tank body can be dumped by itself, preventing the concrete transport device from unloading inconveniently and causing the equipment to be cumbersome to use. In addition, the connecting plate drives the arc-shaped baffle to move forward, and the arc-shaped baffle drives the convex strip to move forward, and the convex strip drives the mudguard to move forward. The mudguard blocks the splashing of concrete, preventing the concrete transport device from splashing and causing waste when pouring concrete. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] Figure 1 A schematic diagram of the present invention as a whole;
[0020] Figure 2 It is a schematic diagram of the overall cross-section of the present invention;
[0021] Figure 3 It is a schematic diagram of a cross-section of the tank body of the present invention;
[0022] Figure 4 It is a partially enlarged schematic diagram of the tank body of the present invention;
[0023] Figure 5 Schematic diagram of a cross-section of the wall scraping device of the present invention;
[0024] Figure 6 It is a partially enlarged schematic diagram of the wall scraping device of the present invention;
[0025] Figure 7 is a schematic cross-sectional view of the separation device of the present invention;
[0026] Figure 8 It is a partially enlarged schematic diagram of the separation device of the present invention;
[0027] Figure 9 It is a schematic cross-sectional view of the discharging device of the present invention;
[0028] Figure 10 It is a partially enlarged schematic diagram of the discharging device of the present invention.
[0029] In the figure: 1. Electric cart; 2. Push handle; 3. Ring frame; 4. Tank body; 5. Convex round cover; 6. Drive module; 7. Scraper device; 71. I-shaped plate; 72. Long rod; 73. Chamfered strip; 74. Arc plate; 75. Arc spring piece; 76. Short column; 8. Separation device; 81. Ring shell; 82. Inclined plate; 83. Circular ring; 84. Circular plate; 85. Arc spring piece; 86. Slider; 9. Discharging device; 91. Inclined ring; 92. Electric telescopic rod; 93. Connecting plate; 94. Arc baffle; 95. Convex strip; 96. Fender; 10. Round rod; 11. Cross plate; 12. Concave round shell; 13. Ring-shaped resistance heater; 14. Concave block; 15. L-shaped plate; 16. Temperature detection module. DETAILED DESCRIPTION
[0030] The technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, rather than all the embodiments.
[0031] See also Figure 1-10 One embodiment of the present invention is: a concrete transport device. A concrete transport device includes an electric cart 1, a push handle 2 is fixed on the right side of the top surface of the electric cart 1, two ring frames 3 are fixed on the top surface of the electric cart 1 to reduce the force required for the staff to push the electric cart 1, a tank body 4 is fixedly installed on the inner wall of the two ring frames 3, the tank body 4 is set to be tilted upward by 30 degrees, a feed port is opened in the middle of the top surface of the tank body 4, a convex round cover 5 is slidably installed on the left inner wall of the tank body 4, a drive module 6 is fixedly installed in the middle of the right side of the tank body 4, the drive module 6 includes a heat dissipation shell and a motor, the heat dissipation shell is fixed in the middle of the right side of the tank body 4, and the motor is fixed on the left side of the inner wall of the heat dissipation shell. The motor shaft of the drive module 6 is rotatably mounted through the middle of the left side. A round rod 10 is fixed to the left side of the motor shaft of the drive module 6. A plurality of cross plates 11 are fixed to the outer wall of the round rod 10 to prevent the concrete from solidifying in the tank body 4 during transportation, thereby preventing the concrete from deteriorating in quality. A concave shell 12 is fixed to the right side of the outer wall of the round rod 10. An annular resistance heater 13 is fixed to the inner wall of the concave shell 12. The annular resistance heater 13 evenly insulates the concrete, thereby preventing the concrete from having poor fluidity and affecting the concrete setting strength when the concrete transport device transports concrete in a low-temperature environment in winter.
[0032] A concave block 14 is fixed to the bottom surface of the concave circular shell 12, an L-shaped plate 15 is fixed to the inner wall of the concave block 14, and a temperature detection module 16 is embedded on the left side of the L-shaped plate 15. The temperature detection module 16 rotates forward and evenly detects the temperature of the concrete, thereby preventing the concrete transportation device from transporting concrete in an excessively low temperature environment, which may cause a reduction in the strength and durability of the concrete.
[0033] During use, the staff pushes the push handle 2 to move forward, and the push handle 2 drives the electric trolley 1 to move forward, and the electric trolley 1 drives the ring frame 3 to move forward. At the same time, the electric trolley 1 is started by an electric wire. Under the drive of the motor, the roller of the electric trolley 1 rotates forward, reducing the force required by the staff to push the electric trolley 1. The staff pushes it to the side of the concrete and places the concrete into the feed port of the tank body 4 of the ring frame 3. The concrete enters the tank body 4. The convex round cover 5 on the tank body 4 prevents the concrete from falling. At the same time, the driving module 6 is started by an electric wire, and the motor shaft in the driving module 6 starts to rotate forward. The motor shaft drives the round rod 10 to rotate forward, and the round rod 10 drives the cross plate 11 to rotate forward. The cross plate 11 rotates forward to stir the concrete in the tank body 4, preventing the concrete from In order to solve the problem of concrete quality degradation caused by solidification in the tank body 4 during transportation, while the motor shaft drives the round rod 10 to rotate forward, the round rod 10 drives the concave shell 12 to rotate forward, and the concave shell 12 drives the annular resistance heater 13 to rotate forward. When transporting concrete in winter, the annular resistance heater 13 is started by an electric wire, and the annular resistance heater 13 begins to heat up. The annular resistance heater 13 rotates forward to transfer heat to the concrete, so that the annular resistance heater 13 evenly insulates the concrete, preventing the concrete's solidification process from being delayed, making the concrete become less fluid during transportation and difficult to maintain uniformity, thereby avoiding the problem of poor concrete fluidity affecting the concrete's solidification strength caused by the concrete transportation device transporting concrete in a low temperature environment in winter.
[0034] While the round rod 10 drives the concave shell 12 to rotate forward, the concave shell 12 drives the concave block 14, the concave block 14 drives the L-shaped plate 15 to rotate forward, and the L-shaped plate 15 drives the temperature detection module 16 to rotate forward. During the forward rotation of the temperature detection module 16, the temperature detection module 16 measures the temperature of the concrete, so that the temperature detection module 16 can evenly detect the temperature of the concrete during the forward rotation, preventing the temperature of the concrete from being too low, thereby avoiding the problem of reduced concrete strength and durability caused by the concrete transportation device having an excessively low temperature environment during the transportation of concrete.
[0035] See also Figure 1-10 On the basis of the above embodiment, another embodiment of the present invention further includes a scraping device 7, a separating device 8 and a discharging device 9. The scraping device 7 is provided on the outer wall of the round rod 10. The scraping device 7 includes two straight plates 71, two long rods 72 and two chamfered strips 73. Two straight plates 71 are fixed on the outer wall of the round rod 10. Long rods 72 are fixed on the front and bottom surfaces of the two straight plates 71 respectively. Chamfered strips 73 are embedded in the front surfaces of the two long rods 72 respectively. The two chamfered strips 73 are respectively provided on the inner wall of the tank body 4. The chamfered strips 73 rotate forward to scrape concrete into the tank body 4, thereby preventing the concrete transportation device from splashing onto the tank body 4 when transporting concrete and causing concrete lumps.
[0036] The scraper device 7 also includes two arc plates 74, two arc-shaped spring pieces 75 and two short columns 76. The arc plates 74 are fixed to the opposite sides of the left side of the two long rods 72, and the arc-shaped spring pieces 75 are fixed to the opposite sides of the two arc plates 74. The short columns 76 are fixed to the ends of the two arc-shaped spring pieces 75 away from the two long rods 72. The short columns 76 mix the large particles of sand and gravel in the concrete evenly, thereby avoiding the uneven distribution of sand and gravel inside the concrete during the transportation of concrete by the concrete transportation device, resulting in poor concrete quality.
[0037] A separation device 8 is provided in the middle of the outer wall of the round rod 10. The separation device 8 includes an annular shell 81, several inclined plates 82 and a circular ring 83. The annular shell 81 is fixed in the middle of the outer wall of the round rod 10. Several inclined plates 82 are fixed on the outer wall of the annular shell 81. Circular rings 83 are fixed on the front of several inclined plates 82. The inclined plates 82 rotate forward to quickly break up the concrete, thereby preventing the sand and stone materials of the concrete from piling up during the transportation of concrete by the concrete transport device, resulting in the concrete uniform distribution strength not meeting the standard.
[0038] The separation device 8 also includes a circular plate 84, a plurality of arc-shaped spring leaves 85 and a slider 86. The circular plate 84 is fixedly installed on the left inner wall of the annular shell 81, and a plurality of arc-shaped spring leaves 85 are fixed on the inner wall of the annular shell 81. The slider 86 is slidably installed on the opposite surface of the plurality of arc-shaped spring leaves 85. The inclined plate 82 vibrates the concrete during the forward rotation process, so that the fine particles in the concrete are shaken away, thereby avoiding the concrete transportation device from causing the small particles of the concrete to be too dense during transportation, resulting in a decrease in the quality of the concrete.
[0039] A discharging device 9 is provided on the left side of the outer wall of the tank body 4. The discharging device 9 includes four oblique rings 91, two electric telescopic rods 92, and two connecting plates 93. The four oblique rings 91 are fixed to the left side of the outer wall of the tank body 4, and two electric telescopic rods 92 are fixed to the inner walls of the four oblique rings 91. Connecting plates 93 are fixed to the left sides of the telescopic ends of the two electric telescopic rods 92, and the convex round cover 5 is fixed to the right side of the two connecting plates 93. The concrete in the tank body 4 can be dumped by itself, thereby avoiding the inconvenience of unloading the concrete transportation device and causing cumbersome use of the equipment.
[0040] The discharging device 9 also includes an arc-shaped baffle 94, a ridge 95 and a mudguard 96. An arc-shaped baffle 94 is fixed to the top left side of the two connecting plates 93. A ridge 95 is fixed to the end of the arc-shaped baffle 94 away from the arc-shaped baffle 94. A mudguard 96 is fixed to the right side of the ridge 95. The concrete is blocked by the mudguard 96 when being poured, thereby avoiding splashing and waste caused by the concrete transportation device when pouring concrete.
[0041] While the motor shaft drives the round rod 10 to rotate forward, the round rod 10 drives the straight plate 71 to rotate forward, the straight plate 71 drives the long rod 72 to rotate forward, and the long rod 72 drives the chamfering strip 73 to rotate forward. The chamfering strip 73 rotates forward to scrape the concrete on the tank body 4. When the tank body 4 is moving, the shaking of the tank body 4 will splash concrete onto the tank body 4. If it is not handled for a long time, it is easy to cause the concrete to agglomerate on the tank body 4. The chamfering strip 73 rotates forward to scrape the concrete into the tank body 4, preventing the concrete from agglomerating on the tank body 4, thereby avoiding the problem of concrete agglomeration caused by the concrete transport device splashing onto the tank body 4 when transporting concrete.
[0042] When the straight plate 71 drives the long rod 72 to rotate forward, the long rod 72 drives the arc plate 74 to rotate forward, the arc plate 74 drives the arc spring piece 75 to rotate forward, and the arc spring piece 75 drives the short column 76 to rotate forward. The short column 76 stirs the cement under the tank body 4. Under the elastic force of the arc spring piece 75, the short column 76 mixes the large particles of sand and gravel in the concrete evenly, so that the large particles of sand and gravel in the concrete in the tank body 4 can be evenly distributed, preventing the uneven distribution of large particles of sand and gravel in the concrete, thereby avoiding the problem of poor concrete quality caused by uneven distribution of sand and gravel inside the concrete during the concrete transportation device.
[0043] While the motor shaft drives the round rod 10 to rotate forward, the round rod 10 drives the annular shell 81 to rotate forward, the annular shell 81 drives the inclined plate 82 to rotate forward, and the inclined plate 82 drives the circular ring 83 to rotate forward. During the forward rotation of the inclined plate 82, the inclined plate 82 stirs the concrete in the tank body 4. Because the tank body 4 is tilted upward by thirty degrees, the concrete flows downward under the action of gravity. During the downward flow of the concrete, the concrete flows downward from the gap of the inclined plate 82, so that the inclined plate 82 rotates forward to quickly break up the concrete and prevent the concrete materials from piling up, thereby avoiding the problem of concrete uniformity strength not meeting the standard due to the accumulation of concrete sand and stone materials in the concrete transport device during the transportation of concrete.
[0044] While the round rod 10 drives the annular shell 81 to rotate forward, the annular shell 81 drives the circular plate 84 to rotate forward, and the annular shell 81 drives the arc spring piece 85 to rotate forward. During the forward rotation of the annular shell 81, the slider 86 in the annular shell 81 hits and rolls on the arc spring piece 85 under the action of centrifugal force. The arc spring piece 85 is vibrated by the impact, and the arc spring piece 85 transmits the vibration to the annular shell 81, and the annular shell 81 transmits the vibration to the inclined plate 82, so that the inclined plate 82 vibrates the concrete during the forward rotation, so that the fine particles in the concrete are shaken away, preventing the fine concrete particles in the tank body 4 from piling up too densely, thereby avoiding the problem of the concrete quality being reduced due to the excessive density of small particles of concrete during transportation by the concrete transport device.
[0045] When the concrete is transported to the destination, the staff uses an electric wire to start the electric telescopic rod 92 on the oblique ring 91, and the telescopic end of the electric telescopic rod 92 begins to move forward, and the telescopic end of the electric telescopic rod 92 drives the connecting plate 93 to move forward, and the connecting plate 93 drives the convex round cover 5 to move forward, and the convex round cover 5 moves forward to open the tank body 4, so that the concrete in the tank body 4 can be dumped by itself, preventing the inconvenience of unloading the concrete in the tank body 4, thereby avoiding the problem of cumbersome equipment use caused by the inconvenience of unloading the concrete transportation device.
[0046] When the telescopic end of the electric telescopic rod 92 drives the connecting plate 93 to move forward, the connecting plate 93 drives the arc baffle 94 to move forward, the arc baffle 94 drives the convex strip 95 to move forward, and the convex strip 95 drives the mudguard 96 to move forward. When the concrete in the tank body 4 is poured out, the concrete will splash. The mudguard 96 blocks the splashing of the concrete, so that the concrete is blocked by the mudguard 96 when being poured, preventing the concrete in the tank body 4 from splashing when pouring, thereby avoiding the problem of waste caused by splashing when the concrete transport device pours concrete.
[0047] The above description is only a preferred specific embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any technician familiar with the technical field, within the technical scope disclosed by the present invention, who makes equivalent replacements or changes based on the technical solution and inventive concept of the present invention, should be covered by the scope of protection of the present invention.
Claims
1. A concrete transport device, comprising an electric trolley (1), a push handle (2) being fixed on the right side of the top surface of the electric trolley (1), and two ring frames (3) being fixed on the top surface of the electric trolley (1), characterized in that: The inner walls of the two ring frames (3) are fixedly mounted with a tank body (4), the tank body (4) is set to be tilted upward by thirty degrees, a feed port is opened in the middle of the top surface of the tank body (4), a convex round cover (5) is slidably mounted on the inner wall of the left side of the tank body (4), a driving module (6) is fixedly mounted in the middle of the right side of the tank body (4), a motor shaft of the driving module (6) is passed through and rotatably mounted in the middle of the left side of the tank body (4), a round rod (10) is fixed on the left side of the motor shaft of the driving module (6), a plurality of cross plates (11) are fixed on the outer wall of the round rod (10), a concave round shell (12) is fixed on the right side of the outer wall of the round rod (10), an annular resistance heater (13) is fixed on the inner wall of the concave round shell (12), a scraping device (7) is arranged on the outer wall of the round rod (10), a separation device (8) is arranged in the middle of the outer wall of the round rod (10), and a discharging device (9) is arranged on the left side of the outer wall of the tank body (4); A concave block (14) is fixed to the bottom surface of the concave circular shell (12), an L-shaped plate (15) is fixed to the inner wall of the concave block (14), and a temperature detection module (16) is embedded on the left side of the L-shaped plate (15); The scraping device (7) comprises two straight plates (71), two long rods (72) and two chamfered strips (73), the two straight plates (71) are fixed on the outer wall of the round rod (10), the long rods (72) are fixed on the front and bottom surfaces of the two straight plates (71), the chamfered strips (73) are embedded in the front surfaces of the two long rods (72), and the two chamfered strips (73) are respectively arranged on the inner wall of the tank body (4); The scraping device (7) further comprises two arc plates (74), two arc-shaped spring pieces (75) and two short posts (76), wherein the arc plates (74) are fixed to the left opposite surfaces of the two long rods (72), the arc-shaped spring pieces (75) are fixed to the opposite surfaces of the two arc plates (74), and the short posts (76) are fixed to the ends of the two arc-shaped spring pieces (75) away from the two long rods (72). The separation device (8) comprises an annular shell (81), a plurality of inclined plates (82) and a circular ring (83); the annular shell (81) is fixed in the middle of the outer wall of the round rod (10); a plurality of inclined plates (82) are fixed on the outer wall of the annular shell (81); and circular rings (83) are fixed on the front faces of the plurality of inclined plates (82); The discharging device (9) comprises four oblique rings (91), two electric telescopic rods (92), and two connecting plates (93); the four oblique rings (91) are fixed to the left side of the outer wall of the tank body (4); the two electric telescopic rods (92) are fixed to the inner walls of the four oblique rings (91); the connecting plates (93) are fixed to the left side of the telescopic ends of the two electric telescopic rods (92); and the convex round cover (5) is fixed to the right side of the two connecting plates (93); The separation device (8) further comprises a circular plate (84), a plurality of arc-shaped spring sheets (85) and a slider (86), wherein the circular plate (84) is fixedly mounted on the left inner wall of the annular shell (81), the plurality of arc-shaped spring sheets (85) are respectively fixed on the inner wall of the annular shell (81), and the slider (86) is slidably mounted on the opposite surfaces of the plurality of arc-shaped spring sheets (85).
2. A concrete transport device according to claim 1, characterized in that: The discharging device (9) further comprises an arc-shaped baffle (94), a convex strip (95) and a fender (96), wherein the arc-shaped baffle (94) is fixed to the top of the left side of the two connecting plates (93), the convex strip (95) is fixed to one end of the arc-shaped baffle (94) away from the arc-shaped baffle (94), and the fender (96) is fixed to the right side of the convex strip (95).
Citation Information
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