Movable uHPC concrete pouring platform

By designing a mobile UHPC concrete pouring platform and utilizing the linkage of the material feeding and vibration mechanisms, the automated positioning and vibration of the concrete pouring location were achieved. This solved the problem that existing equipment could not automatically adjust its position, improved construction quality and efficiency, and reduced safety risks.

CN119801265BActive Publication Date: 2025-11-07ZHEJIANG LINJI PIPES IND CO LTD
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Patent Information

Application Number
CN202510255056.X
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-03-05
Publication Date
2025-11-07
Estimated Expiration
2045-03-05

AI Technical Summary

Technical Problem

Existing concrete pouring equipment cannot automatically adjust the pouring position and cannot be linked with the vibrator, resulting in uneven construction quality, low efficiency and safety risks.

Method used

A mobile UHPC concrete pouring platform was designed. By setting up a feeding mechanism and a vibration mechanism at both ends of the receiving trough, and using a connecting mechanism to drive the linkage between the guide plate and the vibration mechanism, the automatic positioning and vibration of concrete can be realized. Combined with the automated walking of the tracked wheels, the positioning accuracy and efficiency are improved.

Benefits of technology

It enables precise control of concrete pouring location and automation of vibration, reducing labor intensity, improving construction efficiency, and reducing safety risks.

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Patent Text Reader

Abstract

The application relates to the technical field of building engineering construction, in particular to a movable UHPC concrete pouring platform, which comprises a main body, a receiving groove is formed in the upper surface of the main body, a fixing frame is fixedly installed at the middle position above the receiving groove, a flow guide plate is slidably installed in the receiving groove, the flow guide plate is located directly below the fixing frame, and a first discharging mechanism and a second discharging mechanism are arranged at the bottoms of the two ends of the receiving groove respectively; the UHPC concrete pouring platform has the beneficial effects that: the first discharging mechanism and the second discharging mechanism are arranged at the bottoms of the two ends of the receiving groove respectively, and the flow guide plate drivenly connected with a communication mechanism is slidably arranged at the bottom of the fixing frame; when the communication mechanism slides to the position of one of the discharging mechanisms, the flow guide plate is synchronously driven to slide, so that the falling concrete flows to the position of the communication mechanism; through the arrangement, the falling position of the concrete can be controlled only by controlling the sliding of the communication mechanism, and the operation is convenient.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of building engineering construction, in particular to a movable UHPC concrete pouring platform. BACKGROUND

[0002] In traditional concrete construction, the pouring process usually relies on fixed concrete pump trucks and manually operated handheld vibrating equipment. Workers must manually transport concrete to the designated location and use a vibrating rod to compact the freshly poured concrete to ensure its quality. This method not only has high labor intensity and low efficiency, but also easily leads to uneven concrete vibration due to human factors, affecting the quality and durability of the final structure.

[0003] In addition, when faced with complex-shaped or large-area concrete components, the traditional method requires frequent repositioning of concrete pumping equipment and vibrating devices, which further prolongs the construction period and increases costs. At the same time, manual operation also poses safety risks in areas with dense reinforcement or other difficult-to-reach locations.

[0004] Although some highly automated concrete construction machinery has appeared in recent years, such as automated concrete pump trucks and vibrating systems, most of these devices do not have the function of automatically changing position according to the pouring progress, and cannot achieve the ability to control the vibrator simultaneously with changes in pouring position. Therefore, there is still room for improvement in terms of ensuring concrete construction quality and improving work efficiency.

[0005] Therefore, there is a need for a movable UHPC concrete pouring platform to solve the above problems. SUMMARY

[0006] To solve the above problems, that is, to solve the problem that existing concrete pouring equipment cannot automatically adjust the pouring position and cannot be linked with the vibrator, the present application provides a movable UHPC concrete pouring platform.

[0007] The utility model provides a movable UHPC concrete pouring platform, including the upper surface of main part is equipped with the receiving groove, the middle position of receiving groove top is fixedly installed with the fixed frame, the inside of receiving groove is slidably installed with the flow guide plate, the flow guide plate is located fixed frame's just below, the bottom of receiving groove both ends is provided with first discharging mechanism and second discharging mechanism, the inside of first discharging mechanism and second discharging mechanism is provided with the vibrating mechanism, vibrating mechanism and flow guide plate all with the communication mechanism drive connection, the fixed frame is used for fixing the discharge pipe of pump truck, when the flow guide plate slides to both ends, the top of flow guide plate is flush with both sides of fixed frame respectively, by being provided with first discharging mechanism and second discharging mechanism respectively at the bottom of receiving groove both ends, and being slidably arranged with the flow guide plate of communication mechanism drive connection at the bottom of fixed frame, when the communication mechanism slides to the position of one of discharging mechanisms, will drive flow guide plate to slide simultaneously, makes the concrete that falls to the position of communication mechanism flow, through this setting, only need to control the sliding of communication mechanism to control the falling position of concrete, convenient operation, by being provided with vibrating mechanism in the inside of first discharging mechanism and second discharging mechanism, and make vibrating mechanism and communication mechanism drive connection, when the communication mechanism slides to the position of one of discharging mechanisms, can drive the vibrating mechanism of corresponding operation, and vibrate the concrete that falls nearby, this setting makes vibrating mechanism and pouring equipment linkage, not only improves the accuracy of vibrating position, and reduces the work load, improves work efficiency.

[0008] Preferably, the both ends of the main body are fixedly installed with side frames, the outer ends of the side frames are installed with track wheels, the track wheels are provided with drive motors, the outer part of the main body is fixedly installed with a controller, and the drive motors are connected with the controller; by installing track wheels at both ends of the main body, the device can stably walk on the reinforcement frame body; by connecting the drive motors of the drive track wheels with the controller, the device can automatically change position under the control of the controller, further improving the automation of the device.

[0009] Preferably, the receiving groove is composed of a first receiving groove and a second receiving groove in communication, the first discharging mechanism is located at the bottom of the outer end of the first receiving groove, the second discharging mechanism is located at the bottom of the outer end of the second receiving groove, the fixed frame is in the shape of a door, and both ends of the fixed frame are fixedly installed on the upper surface of the main body.

[0010] Preferably, the bottom of the guide plate is fixedly provided with a first limiting sliding plate, the side of the first limiting sliding plate is in the shape of a Chinese character "N", the bottom of the position where the first material receiving groove is connected with the second material receiving groove is provided with a first limiting sliding groove, the side of the first limiting sliding groove is also in the shape of a Chinese character "N", and the first limiting sliding plate slides in the first limiting sliding groove.

[0011] Preferably, the communication mechanism comprises an intermediate sliding cavity, the intermediate sliding cavity is arranged in the inside of the main body close to the bottom, a material passing frame is slidably arranged in the inside of the intermediate sliding cavity, winding cavities are arranged at the outer sides of both ends of the intermediate sliding cavity, the winding cavities are in communication with the intermediate sliding cavity through first rope penetrating holes, winding rollers are rotatably arranged in the inside of the winding cavities, first pulling ropes are wound on the winding rollers, one end of the first pulling ropes on the two winding rollers respectively penetrates into the intermediate sliding cavity through the two first rope penetrating holes and is fixedly connected with the two sides of the material passing frame, a motor is fixedly arranged on one end of the main body through a motor base, chain wheels are coaxially and fixedly arranged on the output shaft of the motor and one end of the two winding rollers, the three chain wheels are drivingly connected through a chain, and the motor is connected with the controller; the motor can be reversely rotated, the two winding rollers can be synchronously rotated through the chain and the chain wheels, the material passing frame can slide in the intermediate sliding cavity through the two first pulling ropes, the motor is connected with the controller, and the controller can control when the motor is reversely rotated, so that the control is facilitated.

[0012] Preferably, the overfeed frame is vertically provided with an overfeed hole, the upper surface of the overfeed frame is provided with a first sunken groove and a second sunken groove respectively on both sides, the overfeed hole is provided with an inner sunken groove on both sides, the inner sunken groove is rotatably provided with an impeller, a part of the impeller extends into the overfeed hole, the impeller is coaxially and fixedly provided with a driving bevel gear at one end, the overfeed frame is rotatably provided with two linkage rods, the linkage rods are coaxially and fixedly provided with driven bevel gears at top ends, the driven bevel gears at the top ends of the two linkage rods are meshedly connected with the driving bevel gears, the lower surface of the overfeed frame is rotatably provided with a first lower through pipe and a second lower through pipe near both sides, the top view of the inner cavities of the first lower through pipe and the second lower through pipe is a square, the first lower through pipe and the second lower through pipe are drivingly connected with the two linkage rods through a first transmission belt and a second transmission belt respectively, the top end of the first lower through pipe is fixedly provided with a first electromagnet inside, the top end of the second lower through pipe is fixedly provided with a second electromagnet inside, the overfeed frame is embedded with a first coupling head near one side of the first lower through pipe, the first coupling head is connected with the second electromagnet, the overfeed frame is embedded with a second coupling head near one side of the second lower through pipe, the second coupling head is connected with the first electromagnet, the middle sliding cavity is fixedly provided with a first power supply head matched with the first coupling head at one end near the first discharging mechanism, the middle sliding cavity is fixedly provided with a second power supply head matched with the second coupling head at one end near the second discharging mechanism, the first power supply head and the second power supply head are connected with an external power supply, the external power supply is connected with a controller, after the first power supply head contacts the first coupling head, the second electromagnet is powered, after a certain period of time, the external power supply stops supplying power to the first power supply head, the motor operates, the second power supply head contacts the second coupling head, the first electromagnet is powered, after a certain period of time, the external power supply stops supplying power to the second power supply head, the first power supply head contacts the first coupling head by clicking operation, and the like, which can automatically change the building position.

[0013] Preferably, the first discharging mechanism comprises a first upper discharging hole and a first lower discharging hole, the first upper discharging hole is arranged at the bottom of the outer end of the first receiving groove, the bottom end of the first upper discharging hole is communicated with the intermediate sliding cavity, the first lower discharging hole is arranged at the bottom of the main body, the top end of the first lower discharging hole is communicated with the intermediate sliding cavity, the first lower discharging hole is located directly below the first upper discharging hole, a first inner retraction cavity is arranged at the top of the end of the intermediate sliding cavity close to the first upper discharging hole, a first blocking plate is slidably arranged in the first inner retraction cavity through a second spring, a second limiting sliding groove is arranged at the top of the first inner retraction cavity, a second limiting sliding block is fixedly arranged on the upper surface of the first blocking plate, the second limiting sliding block slides in the second limiting sliding groove, the end of the second limiting sliding groove close to the first upper discharging hole is communicated with the end of the first limiting sliding groove away from the first upper discharging hole through a second rope passing hole, a second pull rope is slidably arranged in the second rope passing hole, and the two ends of the second pull rope are connected with the first limiting sliding plate and the second limiting sliding block respectively; in the normal state, the first blocking plate blocks the first upper discharging hole, when the overfeeding frame slides to the position between the first upper discharging hole and the first lower discharging hole, the first blocking plate is abutted by the first sunken groove on the overfeeding frame and retracts into the first inner retraction cavity, so that the first upper discharging hole and the first lower discharging hole are communicated through the overfeeding hole.

[0014] Preferably, the second discharging mechanism comprises a second upper discharging hole and a second lower discharging hole, the second upper discharging hole is arranged at the bottom of the outer end of the second receiving groove, the bottom end of the second upper discharging hole is communicated with the intermediate sliding cavity, the second lower discharging hole is arranged at the bottom of the main body, the top end of the second lower discharging hole is communicated with the intermediate sliding cavity, the second lower discharging hole is located directly below the second upper discharging hole, a second inner retraction cavity is arranged at the top of the end of the intermediate sliding cavity close to the second upper discharging hole, a second blocking plate is slidably arranged in the second inner retraction cavity through a third spring, a third limiting sliding groove is arranged at the top of the second inner retraction cavity, a third limiting sliding block is fixedly arranged on the upper surface of the second blocking plate, the third limiting sliding block slides in the third limiting sliding groove, the end of the third limiting sliding groove close to the second upper discharging hole is communicated with the end of the first limiting sliding groove away from the second upper discharging hole through a third rope passing hole, a third pull rope is slidably arranged in the third rope passing hole, and the two ends of the third pull rope are connected with the first limiting sliding plate and the third limiting sliding block respectively; in the normal state, the second blocking plate blocks the second upper discharging hole, when the overfeeding frame slides to the position between the second upper discharging hole and the second lower discharging hole, the second blocking plate is abutted by the second sunken groove on the overfeeding frame and retracts into the second inner retraction cavity, so that the second upper discharging hole and the second lower discharging hole are communicated through the overfeeding hole.

[0015] Preferably, the vibrating mechanism comprises two reciprocating sliding cavities, the two reciprocating sliding cavities are respectively arranged in the inner side of the first and second falling holes, a connecting sliding plate is slidably arranged in the reciprocating sliding cavity through a first spring, a movable perforation is arranged in the bottom of the reciprocating sliding cavity near the two ends, two electric telescopic rods are fixedly arranged on the lower surface of the connecting sliding plate, the two electric telescopic rods are respectively arranged through the two movable perforations, the electric telescopic rods are connected with the controller, a cam is rotatably arranged in the reciprocating sliding cavity near the outer end through an extension shaft, the cam abuts against the outer end of the connecting sliding plate, an upper through pipe is rotatably arranged on the lower surface of the intermediate sliding cavity near the two ends in a clamping manner, a sliding iron rod is slidably arranged in the inner side of the upper through pipe through a fourth spring, the top view of the sliding iron rod is a square, the upper through pipe is drivingly connected with the extension shaft through a third transmission belt, in the normal state, the top end of the sliding iron rod is flush with the lower surface of the intermediate sliding cavity, when the second electromagnet is powered on, one sliding iron rod near the first falling hole is attracted, when the concrete falls from the material passing hole, the driving impeller rotates to drive the second lower through pipe to rotate, when the inner cavity of the second lower through pipe is aligned with the sliding iron rod, part of the sliding iron rod is attracted into the second lower through pipe, at this time, the rotating second lower through pipe can drive the cam to rotate, so as to abut against the reciprocating sliding of the connecting sliding plate, the electric telescopic rods are used for vibrating the concrete, when the first electromagnet is powered on, the first lower through pipe drives the cam near the second falling hole to rotate, when the second electromagnet is powered on, the telescopic end of the electric telescopic rod near the first falling hole is extended, when the second electromagnet is powered off, the telescopic end of the electric telescopic rod near the first falling hole is retracted, when the second electromagnet is powered on, the telescopic end of the electric telescopic rod near the second falling hole is extended, when the second electromagnet is powered off, the telescopic end of the electric telescopic rod near the second falling hole is retracted.

[0016] The beneficial effects of the present application are:

[0017] 1、The first and second discharging mechanisms are arranged on the bottom of the receiving groove, and the guide plate is slidably arranged on the bottom of the fixed frame and drivingly connected with the communication mechanism, when the communication mechanism slides to the position of one of the discharging mechanisms, the guide plate is synchronously driven to slide, so that the falling concrete flows to the position of the communication mechanism, through the arrangement, the falling position of the concrete can be controlled by controlling the sliding of the communication mechanism, and the operation is convenient.

[0018] 2、The present application is characterized in that the vibrating mechanism is arranged on the inner side of the first and second discharging mechanisms, and the vibrating mechanism is drivingly connected with the communication mechanism, when the communication mechanism slides to the position of one of the discharging mechanisms, the corresponding vibrating mechanism is driven to operate, and the nearby fallen concrete is vibrated, the vibrating mechanism is linked with the pouring equipment, the accuracy of the vibrating position is improved, the workload is reduced, and the work efficiency is improved.

[0019] 3、The present application is characterized in that the track wheels are arranged at the two ends of the main body, the device can stably walk on the reinforcing frame body, the driving motor of the driving track wheel is connected with the controller, the device can automatically change the position under the control of the controller, and the automation of the device is further improved. BRIEF DESCRIPTION OF DRAWINGS

[0020] Figure 1 It is the whole structure schematic diagram of the present application;

[0021] Figure 2 It is the main body cross section structure schematic diagram of the present application;

[0022] Figure 3 It is the guide plate structure schematic diagram of the present application;

[0023] Figure 4 It is the structure schematic diagram of the present application Figure 2 in A place amplification;

[0024] Figure 5 It is the structure schematic diagram of the present application Figure 2 in B place amplification;

[0025] Figure 6 It is the structure schematic diagram of the present application Figure 2 in C place amplification;

[0026] Figure 7 It is the material passing frame structure schematic diagram of the present application;

[0027] Figure 8 It is the material passing frame cross section structure schematic diagram of the present application;

[0028] Figure 9 It is the cam structure schematic diagram of the present application;

[0029] Figure 10 It is the upper through pipe cross section structure schematic diagram of the present application.

[0030] In the drawing:

[0031] 1, main body; 2, fixed frame; 3, guide plate; 4, side frame; 5, track wheel; 6, controller; 7, first receiving groove; 8, second receiving groove; 9, first limiting sliding plate; 10, first limiting sliding groove; 11, middle sliding cavity; 12, passing frame; 13, winding cavity; 14, first rope passing hole; 15, winding roller; 16, first pulling rope; 17, motor base; 18, motor; 19, chain wheel; 20, chain; 21, passing hole; 22, first sunken groove; 23, second sunken groove; 24, inner sunken groove; 25, impeller; 26, driving bevel gear; 27, linkage rod; 28, driven bevel gear; 29, first lower through pipe; 30, second lower through pipe; 31, first transmission belt; 32, second transmission belt; 33, first electromagnet; 34, second electromagnet; 35, first coupling head; 36, second coupling head; 37, first power supply head; 38, second power supply head; 39, first upper material falling hole; 40, first lower material falling hole; 41, first inner retraction cavity; 42, second spring; 43, first blocking plate; 44, second limiting sliding groove; 45, second limiting sliding block; 46, second rope passing hole; 47, second pulling rope; 48, second upper material falling hole; 49, second lower material falling hole; 50, second inner retraction cavity; 51, third spring; 52, second blocking plate; 53, third limiting sliding groove; 54, third limiting sliding block; 55, third rope passing hole; 56, third pulling rope; 57, reciprocating sliding cavity; 58, first spring; 59, connecting sliding plate; 60, movable perforation; 61, electric telescopic rod; 62, extension shaft; 63, cam; 64, upper through pipe; 65, fourth spring; 66, sliding iron rod; 67, third transmission belt. DETAILED DESCRIPTION

[0032] The preferred embodiments of the present application will be described below with reference to the accompanying drawings. Those skilled in the art will understand that these embodiments are only used to explain the technical principles of the present application, and are not intended to limit the protection scope of the present application.

[0033] As Figures 1-2As shown, the embodiment of the present application discloses a movable UHPC concrete pouring platform, which comprises a main body 1, the upper surface of the main body 1 is provided with a receiving groove, a fixed frame 2 is fixedly installed at the middle position above the receiving groove, a flow guide plate 3 is slidably installed in the receiving groove, the flow guide plate 3 is located directly below the fixed frame 2, a first discharging mechanism and a second discharging mechanism are arranged at the bottom of both ends of the receiving groove respectively, a communication mechanism is arranged at the position close to the bottom of the main body 1, the first discharging mechanism and the second discharging mechanism are communicated with the communication mechanism, a vibrating mechanism is arranged at the inner side of the first discharging mechanism and the second discharging mechanism respectively, and the vibrating mechanism and the flow guide plate 3 are drivingly connected with the communication mechanism; the fixed frame 2 is used for fixing the discharging pipe of the pump truck, when the flow guide plate 3 slides to both ends, the top end of the flow guide plate is flush with the two sides of the fixed frame 2 respectively, by arranging the first discharging mechanism and the second discharging mechanism at the bottom of both ends of the receiving groove respectively, and slidably arranging the flow guide plate 3 which is drivingly connected with the communication mechanism at the bottom of the fixed frame 2, when the communication mechanism slides to the position of one of the discharging mechanisms, the flow guide plate 3 is synchronously driven to slide, so that the falling concrete flows to the position of the communication mechanism, by this arrangement, the falling position of the concrete can be controlled only by controlling the sliding of the communication mechanism, which is convenient to operate; by arranging the vibrating mechanism at the inner side of the first discharging mechanism and the second discharging mechanism respectively, and drivingly connecting the vibrating mechanism with the communication mechanism, when the communication mechanism slides to the position of one of the discharging mechanisms, the corresponding vibrating mechanism can be driven to operate, and the nearby falling concrete can be vibrated, this arrangement makes the vibrating mechanism link with the pouring equipment, which not only improves the accuracy of the vibrating position, but also reduces the workload and improves the work efficiency.

[0034] As shown in the figure, Figure 1 The both ends of the main body 1 are fixedly installed with side frames 4, the outer ends of the side frames 4 are installed with track wheels 5, the track wheels 5 are provided with driving motors, the outer part of the main body 1 is fixedly installed with a controller 6, and the driving motors are connected with the controller 6; by installing the track wheels 5 at the both ends of the main body 1, the device can stably walk on the reinforcement frame body, by connecting the driving motors of the driving track wheels 5 with the controller 6, the device can automatically change position under the control of the controller 6, which further improves the automation of the device.

[0035] As shown in the figure, Figures 1-2 The receiving groove is composed of a first receiving groove 7 and a second receiving groove 8 in communication, the first discharging mechanism is arranged at the bottom of the outer end of the first receiving groove 7, the second discharging mechanism is arranged at the bottom of the outer end of the second receiving groove 8, the fixed frame 2 is in the shape of a door, and the both ends of the fixed frame 2 are fixedly installed on the upper surface of the main body 1.

[0036] As shown in the figure, Figures 3-4As shown, the bottom of the flow guide plate 3 is fixedly provided with a first limiting sliding plate 9, the side of the first limiting sliding plate 9 is in the shape of a Chinese character "N", the bottom of the position where the first material receiving groove 7 is connected with the second material receiving groove 8 is provided with a first limiting sliding groove 10, the side of the first limiting sliding groove 10 is also in the shape of a Chinese character "N", and the first limiting sliding plate 9 slides in the first limiting sliding groove 10; this arrangement can ensure the stability of the flow guide plate 3.

[0037] As shown in Figures 1-2 The communication mechanism includes an intermediate sliding cavity 11, which is arranged in the interior of the main body 1 near the bottom, and a material passing frame 12 is slidingly arranged in the interior of the intermediate sliding cavity 11. The outer side of both ends of the intermediate sliding cavity 11 is provided with a winding cavity 13, and the winding cavity 13 is connected with the intermediate sliding cavity 11 through a first rope passing hole 14. A winding roller 15 is rotatably arranged in the interior of the winding cavity 13, and a first pull rope 16 is wound on the winding roller 15. One end of the first pull rope 16 on the two winding rollers 15 respectively passes through two first rope passing holes 14 and extends into the intermediate sliding cavity 11 and is fixedly connected with the two sides of the material passing frame 12. One end of the main body 1 is fixedly provided with a motor 18 through a motor base 17. A sprocket 19 is coaxially fixedly arranged on the output shaft of the motor 18 and one end of the two winding rollers 15. The three sprockets 19 are drivingly connected through a chain 20, and the motor 18 is connected with the controller 6. The motor 18 can drive the two winding rollers 15 to synchronously rotate through the chain 20 and the sprocket 19, so as to drive the material passing frame 12 to slide in the intermediate sliding cavity 11 through the two first pull ropes 16. The motor 18 is connected with the controller 6, so that the controller 6 can control when the motor 18 is reversed, thereby being convenient to control.

[0038] As shown in Figure 2 and Figure 8As shown, the overfeed frame 12 is vertically provided with an overfeed hole 21, the upper surface of the overfeed frame 12 is provided with a first sunken groove 22 and a second sunken groove 23 respectively, the overfeed hole 21 is provided with an inner sunken groove 24 on both sides, the inner sunken groove 24 is rotatably provided with an impeller 25, part of the impeller 25 extends into the overfeed hole 21, the impeller 25 is coaxially and fixedly provided with a driving bevel gear 26 at one end, the overfeed frame 12 is rotatably provided with two linkage rods 27, the linkage rod 27 is coaxially and fixedly provided with a driven bevel gear 28 at the top end, the driven bevel gears 28 at the top ends of the two linkage rods 27 are meshingly connected with the two driving bevel gears 26 respectively, the lower surface of the overfeed frame 12 is rotatably provided with a first lower through pipe 29 and a second lower through pipe 30 near the positions on both sides, the top view of the inner cavities of the first lower through pipe 29 and the second lower through pipe 30 is a square, the first lower through pipe 29 and the second lower through pipe 30 are drivingly connected with the two linkage rods 27 through a first transmission belt 31 and a second transmission belt 32 respectively, the top end of the first lower through pipe 29 is fixedly provided with a first electromagnet 33 inside, the top end of the second lower through pipe 30 is fixedly provided with a second electromagnet 34 inside, the overfeed frame 12 is embedded with a first coupling head 35 on the side near the first lower through pipe 29, the first coupling head 35 is connected with the second electromagnet 34, the overfeed frame 12 is embedded with a second coupling head 36 on the side near the second lower through pipe 30, the second coupling head 36 is connected with the first electromagnet 33, the middle sliding cavity 11 is fixedly provided with a first power supply head 37 matching the first coupling head 35 at one end near the first lower discharge mechanism, the middle sliding cavity 11 is fixedly provided with a second power supply head 38 matching the second coupling head 36 at one end near the second lower discharge mechanism, the first power supply head 37 and the second power supply head 38 are connected with an external power supply, the external power supply is connected with a controller 6; when the impeller 25 rotates, the linkage rod 27 is driven to rotate through the driving bevel gear 26 and the driven bevel gear 28, the first lower through pipe 29 is driven to rotate through the first transmission belt 31 by the linkage rod 27, after the first power supply head 37 contacts with the first coupling head 35, the second electromagnet 34 is electrified, after a certain period of time, the external power supply stops supplying power to the first power supply head 37, the motor 18 operates, the second power supply head 38 contacts with the second coupling head 36, the first electromagnet 33 is electrified, after a certain period of time, the external power supply stops supplying power to the second power supply head 38, the first power supply head 37 contacts with the first coupling head 35 by clicking operation, and the like, which can automatically change the building position.

[0039] As Figure 2 and Figures 4-5As shown, the first blanking mechanism comprises a first upper blanking hole 39 and a first lower blanking hole 40. The first upper blanking hole 39 is arranged at the bottom of the outer end of the first receiving groove 7, and the bottom end of the first upper blanking hole 39 is in communication with the intermediate sliding cavity 11. The first lower blanking hole 40 is arranged at the bottom of the main body 1, and the top end of the first lower blanking hole 40 is in communication with the intermediate sliding cavity 11. The first lower blanking hole 40 is located directly below the first upper blanking hole 39. A first inward cavity 41 is arranged at the top of the end of the intermediate sliding cavity 11 close to the first upper blanking hole 39. A first blocking plate 43 is slidably arranged in the first inward cavity 41 through a second spring 42. A second limiting sliding groove 44 is arranged at the top of the first inward cavity 41. A second limiting sliding block 45 is fixedly arranged on the upper surface of the first blocking plate 43 and slides in the second limiting sliding groove 44. The end of the second limiting sliding groove 44 close to the first upper blanking hole 39 is in communication with the end of the first limiting sliding groove 10 away from the first upper blanking hole 39 through a second rope passing hole 46. A second pull rope 47 is slidably arranged in the second rope passing hole 46, and the two ends of the second pull rope 47 are connected with the first limiting sliding plate 9 and the second limiting sliding block 45, respectively. In the normal state, the first blocking plate 43 blocks the first upper blanking hole 39. When the passing frame 12 slides to the position between the first upper blanking hole 39 and the first lower blanking hole 40, the first blocking plate 43 is pushed by the first sunken groove 22 on the passing frame 12 and retracts into the first inward cavity 41, so that the first upper blanking hole 39 and the first lower blanking hole 40 are in communication through the passing hole 21.

[0040] As Figure 2 , Figure 4 and Figure 6As shown, the second blanking mechanism includes a second upper blanking hole 48 and a second lower blanking hole 49. The second upper blanking hole 48 is formed in the bottom of the outer end of the second receiving chute 8, and the bottom end of the second upper blanking hole 48 is in communication with the intermediate sliding cavity 11. The second lower blanking hole 49 is formed in the bottom of the main body 1, and the top end of the second lower blanking hole 49 is in communication with the intermediate sliding cavity 11. The second lower blanking hole 49 is located directly below the second upper blanking hole 48. A second inward cavity 50 is formed in the top of the end of the intermediate sliding cavity 11 close to the second upper blanking hole 48. A second blocking plate 52 is slidingly installed inside the second inward cavity 50 through a third spring 51. A third limiting sliding groove 53 is formed in the top of the second inward cavity 50. A third limiting sliding block 54 is fixedly installed on the upper surface of the second blocking plate 52. The third limiting sliding block 54 slides in the third limiting sliding groove 53. The end of the third limiting sliding groove 53 close to the second upper blanking hole 48 is in communication with the end of the first limiting sliding groove 10 away from the second upper blanking hole 48 through a third rope passing hole 55. A third pull rope 56 is slidingly installed inside the third rope passing hole 55. The two ends of the third pull rope 56 are respectively connected to the first limiting sliding plate 9 and the third limiting sliding block 54.

[0041] As Figure 2 and Figures 9-10As shown, the vibrating mechanism comprises two reciprocating sliding cavities 57 respectively arranged at the inner side of the first and second falling material holes 40 and 49, a connecting sliding plate 59 is slidingly arranged in the reciprocating sliding cavity 57 through a first spring 58, two movable perforations 60 are respectively arranged at the bottom of the reciprocating sliding cavity 57 near the two ends, two electric telescopic rods 61 are fixedly arranged on the lower surface of the connecting sliding plate 59 and respectively pass through the two movable perforations 60, the electric telescopic rod 61 is connected with the controller 6, a cam 63 is rotatably arranged in the reciprocating sliding cavity 57 near the outer end through an extension shaft 62, the cam 63 abuts against the outer end of the connecting sliding plate 59, upper through pipes 64 are rotatably arranged on the lower surface of the middle sliding cavity 11 near the two ends in a clamping manner, a sliding iron rod 66 is slidingly arranged in the upper through pipe 64 through a fourth spring 65, the sliding iron rod 66 has a square top surface, the upper through pipe 64 is drivingly connected with the extension shaft 62 through a third transmission belt 67, in the normal state, the top end of the sliding iron rod 66 is flush with the lower surface of the middle sliding cavity 11, when the second electromagnet 34 is electrified, one sliding iron rod 66 near the first falling material hole 40 is attracted, when the concrete falls from the material passing hole 21, the driving impeller 25 rotates to drive the second lower through pipe 30 to rotate, when the inner cavity of the second lower through pipe 30 is aligned with the sliding iron rod 66, part of the sliding iron rod 66 is attracted into the second lower through pipe 30, at this time, the rotating second lower through pipe 30 can drive the cam 63 to rotate to abut against the connecting sliding plate 59 to reciprocate, the electric telescopic rod 61 vibrates the concrete, when the first electromagnet is electrified, the first lower through pipe 29 drives the cam 63 near the second falling material hole 49 to rotate, when the second electromagnet 34 is electrified, the telescopic end of the electric telescopic rod 61 near the first falling material hole 40 extends, when the second electromagnet 34 is de-energized, the telescopic end of the electric telescopic rod 61 near the first falling material hole 40 retracts, when the second electromagnet 34 is electrified, the telescopic end of the electric telescopic rod 61 near the second falling material hole 49 extends, when the second electromagnet 34 is de-energized, the telescopic end of the electric telescopic rod 61 near the second falling material hole 49 retracts.

[0042] It should be noted that, in the description of the present application, the terms "center", "upper", "lower", "left", "right", "vertical", "horizontal", "inner", "outer" and other terms indicating direction or positional relationship are based on the direction or positional relationship shown in the drawings, which is only for the convenience of description, and does not indicate or imply that the device or element must have a specific orientation, be constructed and operated in a specific orientation, and therefore cannot be understood as a limitation on the present application. In addition, the terms "first", "second", "third" are only for the purpose of description, and cannot be understood as indicating or implying relative importance.

[0043] In addition, it needs to be explained that in the description of the present application, unless otherwise explicitly specified and limited, the terms "mounting", "connection", "connecting" should be understood in a broad sense, for example, can be fixed connection, can also be detachable connection, or integrally connected; can be mechanical connection, can also be electrical connection; can be directly connected, can also be indirectly connected through an intermediate medium, can be the communication inside two elements. For those skilled in the art, the specific meaning of the above terms in the present application can be understood according to the specific circumstances.

[0044] So far, the technical solutions of the present application have been described in combination with the preferred embodiments shown in the drawings, but those skilled in the art can easily understand that the protection scope of the present application is obviously not limited to these specific embodiments. Those skilled in the art can make equivalent changes or replacements to the related technical features without departing from the principles of the present application, and the technical solutions after the changes or replacements will fall within the protection scope of the present application.

Claims

1. A mobile UHPC concrete pouring platform, characterized in that, The utility model provides a kind of material receiving device, including main body (1), the upper surface of the main body (1) is equipped with material receiving groove, the middle position above the material receiving groove is fixedly installed with fixed frame (2), the inside of the material receiving groove is slidably installed with guide plate (3), the guide plate (3) is located in the right below of the fixed frame (2), the bottom of the both ends of the material receiving groove is provided with first discharging mechanism and second discharging mechanism respectively, the inside of the main body (1) is close to the position of bottom and is provided with intercommunication mechanism, the first discharging mechanism and the second discharging mechanism are all communicated with the intercommunication mechanism, the inside of the first discharging mechanism and the second discharging mechanism is provided with vibrating mechanism, the vibrating mechanism and the guide plate (3) are all driven connection with the intercommunication mechanism; The both ends of the main body (1) are fixedly installed with side frame (4), the outer end of the side frame (4) is installed with track wheel (5), the track wheel (5) is provided with driving motor, the outside of the main body (1) is fixedly installed with controller (6), the driving motor is connected with the controller (6). The material receiving groove is connected by first material receiving groove (7) and second material receiving groove (8), the first discharging mechanism is located at the bottom of the outer end of the first material receiving groove (7), the second discharging mechanism is located at the bottom of the outer end of the second material receiving groove (8), the fixed frame (2) is in the shape of door, the both ends of the fixed frame (2) are fixedly installed on the upper surface of the main body (1). The bottom of the guide plate (3) is fixedly installed with first limiting sliding plate (9), the side of the first limiting sliding plate (9) is in the shape of convex, the bottom of the position where the first material receiving groove (7) is connected with the second material receiving groove (8) is equipped with first limiting sliding groove (10), the side of the first limiting sliding groove (10) is also in the shape of convex, the first limiting sliding plate (9) is slid in the first limiting sliding groove (10).

2. The mobile UHPC concrete placement platform of claim 1, wherein, The intercommunication mechanism includes middle sliding cavity (11), the middle sliding cavity (11) is equipped in the inside of the main body (1) close to the position of bottom, the inside of the middle sliding cavity (11) is slidably installed with material passing frame (12), the outside of the both ends of the middle sliding cavity (11) is equipped with winding cavity (13), the winding cavity (13) is communicated with the middle sliding cavity (11) through first rope passing hole (14), the inside of the winding cavity (13) is rotatably installed with winding roller (15), the winding roller (15) is wound with first pull rope (16), the one end of the first pull rope (16) on two winding rollers (15) respectively passes two first rope passing holes (14) and extends into the middle sliding cavity (11) and is fixedly connected with the both sides of the material passing frame (12) respectively, one end of the main body (1) is fixedly installed with motor (18) through motor base (17), the output shaft of the motor (18) and the one end of two winding rollers (15) are coaxially fixedly installed with sprocket (19), three sprockets (19) are drivingly connected through chain (20), the motor (18) is connected with the controller (6).

3. A mobile UHPC concrete placement platform according to claim 2, characterized in that, The overfeed frame (12) is vertically provided with an overfeed hole (21), the upper surface of the overfeed frame (12) is provided with a first sunken groove (22) and a second sunken groove (23) respectively, the overfeed hole (21) is provided with an inner sunken groove (24) on both sides, the inner sunken groove (24) is rotatably provided with an impeller (25), a part of the impeller (25) extends into the overfeed hole (21), one end of the impeller (25) is coaxially and fixedly provided with a driving bevel gear (26), the overfeed frame (12) is rotatably provided with two linkage rods (27), the top end of the linkage rod (27) is coaxially and fixedly provided with a driven bevel gear (28), the driven bevel gears (28) at the top ends of the two linkage rods (27) are meshed and connected with the two driving bevel gears (26) respectively, the lower surface of the overfeed frame (12) is rotatably provided with a first lower through pipe (29) and a second lower through pipe (30) near the two sides respectively, the top view of the inner cavities of the first lower through pipe (29) and the second lower through pipe (30) is a square, the first lower through pipe (29) and the second lower through pipe (30) are drivingly connected with the two linkage rods (27) through a first transmission belt (31) and a second transmission belt (32) respectively, the top end of the first lower through pipe (29) is fixedly provided with a first electromagnet (33) inside, the top end of the second lower through pipe (30) is fixedly provided with a second electromagnet (34) inside, the overfeed frame (12) is embedded with a first coupling head (35) near the side of the first lower through pipe (29), the first coupling head (35) is connected with the second electromagnet (34), the overfeed frame (12) is embedded with a second coupling head (36) near the side of the second lower through pipe (30), the second coupling head (36) is connected with the first electromagnet (33), the middle sliding cavity (11) is fixedly provided with a first power supply head (37) matching the first coupling head (35) at one end near the first blanking mechanism, the middle sliding cavity (11) is fixedly provided with a second power supply head (38) matching the second coupling head (36) at one end near the second blanking mechanism, the first power supply head (37) and the second power supply head (38) are connected with an external power supply, the external power supply is connected with the controller (6).

4. The mobile UHPC concrete placement platform of claim 3, wherein, The first blanking mechanism comprises a first upper blanking hole (39) and a first lower blanking hole (40), the first upper blanking hole (39) is arranged at the bottom of the outer end of the first material receiving groove (7), the bottom end of the first upper blanking hole (39) is communicated with the intermediate sliding cavity (11), the first lower blanking hole (40) is arranged at the bottom of the main body (1), the top end of the first lower blanking hole (40) is communicated with the intermediate sliding cavity (11), the first lower blanking hole (40) is located directly below the first upper blanking hole (39), the top of the end of the intermediate sliding cavity (11) close to the first upper blanking hole (39) is provided with a first retracted cavity (41), the first retracted cavity (41) is internally slidably provided with a first blocking plate (43) through a second spring (42), the top of the first retracted cavity (41) is provided with a second limiting sliding groove (44), the upper surface of the first blocking plate (43) is fixedly provided with a second limiting sliding block (45), the second limiting sliding block (45) slides in the second limiting sliding groove (44), the end of the second limiting sliding groove (44) close to the first upper blanking hole (39) is communicated with the end of the first limiting sliding groove (10) away from the first upper blanking hole (39) through a second rope passing hole (46), the second rope passing hole (46) is slidably provided with a second pull rope (47) inside, and the two ends of the second pull rope (47) are connected with the first limiting sliding plate (9) and the second limiting sliding block (45) respectively.

5. A mobile UHPC concrete placement platform according to claim 4, characterized in that, The second blanking mechanism comprises a second upper blanking hole (48) and a second lower blanking hole (49), the second upper blanking hole (48) is arranged at the bottom of the outer end of the second material receiving groove (8), the bottom end of the second upper blanking hole (48) is communicated with the intermediate sliding cavity (11), the second lower blanking hole (49) is arranged at the bottom of the main body (1), the top end of the second lower blanking hole (49) is communicated with the intermediate sliding cavity (11), the second lower blanking hole (49) is located directly below the second upper blanking hole (48), the top of the end of the intermediate sliding cavity (11) close to the second upper blanking hole (48) is provided with a second retracted cavity (50), the second retracted cavity (50) is internally slidably provided with a second blocking plate (52) through a third spring (51), the top of the second retracted cavity (50) is provided with a third limiting sliding groove (53), the upper surface of the second blocking plate (52) is fixedly provided with a third limiting sliding block (54), the third limiting sliding block (54) slides in the third limiting sliding groove (53), the end of the third limiting sliding groove (53) close to the second upper blanking hole (48) is communicated with the end of the first limiting sliding groove (10) away from the second upper blanking hole (48) through a third rope passing hole (55), the third rope passing hole (55) is slidably provided with a third pull rope (56) inside, and the two ends of the third pull rope (56) are connected with the first limiting sliding plate (9) and the third limiting sliding block (54) respectively.

6. A mobile UHPC concrete placement platform according to claim 5, characterized in that, The vibrating mechanism comprises two reciprocating sliding cavities (57), the reciprocating sliding cavities (57) are respectively arranged in the inner side of the first lower material hole (40) and the second lower material hole (49), the reciprocating sliding cavity (57) is internally slidably provided with a connecting sliding plate (59) through a first spring (58), the bottom of the reciprocating sliding cavity (57) is provided with a movable perforation (60) near both ends, the lower surface of the connecting sliding plate (59) is fixedly provided with two electric telescopic rods (61), the electric telescopic rods (61) are respectively arranged through the movable perforations (60), the electric telescopic rod (61) is connected with the controller (6), the reciprocating sliding cavity (57) is rotatably provided with a cam (63) near the outer end through an extension shaft (62), the cam (63) abuts against the outer end of the connecting sliding plate (59), the lower surface of the middle sliding cavity (11) is rotatably provided with an upper through pipe (64) in an embedded mode near both ends, the inner side of the upper through pipe (64) is slidably provided with a sliding iron rod (66) through a fourth spring (65), the top view of the sliding iron rod (66) is a square, the upper through pipe (64) is drivingly connected with the extension shaft (62) through a third transmission belt (67), in a normal state, the top end of the sliding iron rod (66) is flush with the lower surface of the middle sliding cavity (11).

Citation Information

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