A vehicle-mounted pump hose pouring anti-stuck device
By designing anti-jamming equipment for casting on-board pump hose, using conical protective caps and related components to prevent the hose from being stuck, buffering the influence of steel mesh, and discharge concrete through vibration and interlacing strips, the problems of hose jamming and blockage are solved, and the pouring efficiency and flexibility are improved.
Patent Information
- Application Number
- CN202310705599.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-06-14
- Publication Date
- 2025-08-12
- Estimated Expiration
- 2043-06-14
AI Technical Summary
The existing concrete vehicle-mounted pump hose is easily affected by the steel mesh during the pouring process, which leads to jamming and blocking, affects the flexibility of use, and is prone to clogging.
A vehicle-mounted pump hose casting anti-jamming equipment is designed, including conical protective caps, semicircular secondary sheets, interleaving strips, top-moving modules, stabilizing components and cleaning components. Through the synergistic effect of these components, the hose ends are prevented from being stuck, buffering the influence of the steel mesh, and the concrete is discharged using vibration and interleaving strips to prevent clogging.
It improves the flexibility and efficiency of pouring, reduces the occurrence of hose blockage, ensures smooth transportation and discharge of concrete, and achieves a self-cleaning effect.
Smart Images

Figure CN116838872B_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of concrete pouring equipment, in particular to a vehicle-mounted pump hose pouring anti-sticking device. Background Art
[0002] With the continuous advancement of science and technology and the progress of society, the construction industry has also experienced rapid growth. Concrete is used extensively. Concrete pouring refers to the process of pouring concrete into a mold until it is plasticized. In civil engineering, concrete and other materials are placed into molds to form a predetermined shape. Concrete pouring is essential to the construction process, and the most widely used method is the concrete pouring method using a truck-mounted pump hose. A concrete pouring truck is a specialized machine for conveying concrete. Equipped with a special pipeline, it transports concrete along the pipeline to the pouring site. Concrete pouring trucks are widely used in various fields, including road construction, bridge construction, underground engineering, and industrial and civil construction. Truck-mounted pump hose pouring equipment features a hose installed near the concrete outlet of the delivery pipe to guide the concrete pouring.
[0003] At present, the existing concrete pouring is easily affected by the steel mesh, which will cause the end of the hose to get stuck and blocked, affecting the flexibility of use during pouring. At the same time, concrete will also adhere to the discharge port of the hose, and in severe cases, it will be blocked, which is not conducive to concrete pouring. Summary of the Invention
[0004] To achieve the above objectives, the present invention is implemented through the following technical solutions: a vehicle-mounted pump hose pouring anti-stuck device, comprising:
[0005] A delivery pump is provided with a feed hopper mounted on the top of the delivery pump, and a power mechanism is mounted on the outer surface of the delivery pump, and a right-angle tube is fixed to the outer surface of the delivery pump and connected to the side away from the power mechanism, and a delivery hose is connected to the end of the right-angle tube away from the delivery pump. The power mechanism is used as a power source to deliver the concrete raw materials dropped from the feed hopper into the delivery pump, and the concrete raw materials are smoothly fed into the delivery hose through the right-angle tube. At this time, the delivery hose can be controlled so that the anti-sticking assembly is overall downward, and the concrete can be delivered through the delivery hose so that the concrete raw materials are discharged from the end of the delivery hose to achieve concrete pouring.
[0006] Also includes:
[0007] The anti-stuck component comprises a conical protective cap which is slidably connected to the outer surface of the material delivery hose and away from one end of the right-angled tube, and the bottom of the conical protective cap is provided with a circular opening, and the bottom of the outer surface of the conical protective cap is fixedly connected with a semicircular sub-piece, and the inner surface of the conical protective cap is fixedly connected with an insertion strip near the circular opening, and a pushing module is provided at the top of the conical protective cap and near the outer surface of the material delivery hose. At the same time, the conical protective cap is used to protect the end of the material delivery hose, and the semicircular sub-piece increases the diameter of the conical protective cap in the circumferential direction, so that it is not easily affected by the steel grid, and is not easy to get stuck and blocked, thereby facilitating the material delivery hose to pour concrete. At the same time, as the material delivery hose drives the conical protective cap to move, and combined with the conical protective cap, it can slide on the outer surface end of the material delivery hose, thereby playing a buffering role when the material delivery hose contacts the steel grid, which is not easy to cause damage, and has high pouring efficiency;
[0008] The semicircular secondary pieces evenly distributed on the bottom of the outer surface of the conical protective cap can be used to contact the concrete. The vibration during concrete transportation can be used to increase the contact area between the semicircular secondary pieces and the concrete, and transmit the vibration to the concrete, which can not only make the concrete flow and settle, but also help to discharge the bubbles inside the concrete. When the anti-sticking component is moved and poured along with the feed hose, the bottom end of the conical protective cap is used to contact the steel bar, so that the conical protective cap will drive the insertion strip to move upward. At this time, the top end of the insertion strip is inserted into the interior of the feed hose, and then punctures the concrete at the end of the feed hose, which is less likely to cause blockage.
[0009] The stabilizing component comprises a top cover on the outer surface of the material delivery hose and close to the position of the conical protective cap, and the top of the inner surface of the top cover is slidably connected to a support strip, and the bottom end of the support strip is fixedly connected to a compression piece close to the top of the outer surface of the conical protective cap, and the top of the compression piece is fixedly connected to an elastic reset piece close to the position of the support strip, and an anti-sticking module is provided at the top of the inner surface of the top cover and close to the outer surface of the material delivery hose. When the conical protective cap contacts the steel mesh, causing the conical protective cap to move upward, the compression piece is pushed upward. In combination with the support strip, it can slide on the top of the top cover, so that under the guiding action of the support strip, the conical protective cap moves upward more smoothly and is less likely to shake. As the card pressing piece moves upward, the elastic reset part will be compressed. When the anti-stuck component is moved through the feed hose, the top force of the conical protective cap caused by the steel mesh disappears, and under the elastic force of the elastic reset part, the conical protective cap moves downward, and then the conical protective cap moves back and forth, which can drive the insertion strip to move back and forth, thereby facilitating the insertion of concrete inside the bottom end of the feed hose.
[0010] Preferably, the semicircular sub-pieces are evenly distributed on the bottom of the outer surface of the conical protective cap, the insertion strips are configured to be arc-shaped, and the top ends of the insertion strips extend to the inside of the bottom end of the feed hose.
[0011] Preferably, the pushing module includes a connecting base, the bottom of the connecting base is fixedly connected to the top of the conical protective cap by screws, the top of the connecting base is fixedly connected to a pushing body, a pressing protrusion is provided at the central position of the outer surface of the pushing body, and a guide surface is provided on the outer surface of the pushing body near the pressing protrusion. When the conical protective cap moves upward, the pushing body also moves upward under the support of the connecting base, and under the guiding action of the guide surface, the outer surface of the guide surface contacts the bottom of the striking head, and along with the pushing body The body continues to move upward, and the top end of the swing connecting rod is rotatably connected to the top of the inner surface of the top cover, so that the swing connecting rod drives the striking head to rotate to the side away from the material delivery hose, and the elastic bending strip and the arc-shaped spring piece are compressed together. When the pushing body is driven downward by the conical protective cap, the pushing body is separated from the striking head, and under the elastic force of the elastic bending strip and the arc-shaped spring piece, the striking head is reset to the material delivery hose to knock, causing the material delivery hose to vibrate, thereby reducing the adhesion of concrete to the inner surface of the material delivery hose, which is conducive to the rapid discharge of concrete.
[0012] Preferably, the connection bases are evenly distributed on the top of the conical protective cap, the outer surface of the pressing protrusion is set as an arc-shaped convex surface, and the outer surface of the guide surface is set as an arc-shaped concave surface.
[0013] Preferably, three supporting strips are provided, and the three supporting strips are evenly distributed on the top of the inner surface of the top cover, and the top of the inner surface of the top cover is provided with sliding holes adapted to the supporting strips.
[0014] Preferably, the top end of the elastic reset member is fixedly connected to the top of the inner surface of the top cover, and the inner surface of the pressing piece is fitted with the top of the nearly conical protective cap.
[0015] Preferably, the anti-sticking module includes a swing link, the top end of the swing link is rotatably connected to the top of the inner surface of the top cover, the bottom end of the swing link and the position close to the outer surface of the feed hose are fixedly connected to a striking head, the outer surface of the swing link is fixedly connected to an elastic bending strip, and the outer surface of the elastic bending strip is fixedly connected to an arc-shaped spring piece.
[0016] Preferably, the outer surface of the striking head is configured to be arc-shaped, and the end of the elastic bending strip away from the swing link is fixedly connected to the top of the inner surface of the top cover.
[0017] The top of the elastic support ring is fixedly connected to the outer end of the material delivery hose, and the bottom of the elastic support ring is fixedly connected to the conical cylinder, and the bottom of the conical cylinder is fixedly connected to the stabilizing ring, and the outer surface of the stabilizing ring is connected to the position close to the inner surface of the conical protective cap with a ball, and the bottom of the stabilizing ring is fixedly connected to a ring-shaped scraper. The conical cylinder supports the stabilizing ring, and the stabilizing ring is tightly attached to the inner surface of the conical protective cap, so that the conical protective cap is supported, so that the conical protective cap will not tilt when it moves up and down, thereby making the discharge end of the material delivery hose always aligned with the circular opening, thereby facilitating the discharge and pouring of concrete, and utilizing the rolling of the ball to create rolling friction between the conical protective cap and the stabilizing ring, thereby reducing frictional resistance. At the same time, as the conical protective cap moves back and forth, the ring-shaped scraper can timely scrape off concrete attached to the inner surface of the conical protective cap, thereby achieving a self-cleaning effect.
[0018] Preferably, the bottom end of the outer surface of the feed hose passes through the center position of the elastic support ring, the center position of the conical cylinder, the center position of the stabilizing ring and the center position of the circular scraper, and the outer surface of the stabilizing ring is provided with a rolling groove adapted to the ball.
[0019] The present invention provides a vehicle-mounted pump hose pouring anti-stuck device. It has the following beneficial effects:
[0020] 1. The vehicle-mounted pump hose pouring anti-stuck equipment uses a conical protective cap to protect the end of the feed hose, and the semicircular secondary piece increases the circumferential diameter of the conical protective cap, so it is not easily affected by the steel grid, and is not prone to getting stuck or blocked, which helps the feed hose to pour concrete. At the same time, as the feed hose drives the conical protective cap to move, it acts as a buffer when the feed hose contacts the steel grid, which is not easily damaged and increases the pouring efficiency.
[0021] 2. The vehicle-mounted pump hose casting anti-stuck equipment can use the semi-circular secondary piece to contact with the concrete, and then use the vibration during concrete transportation to increase the contact area of the semi-circular secondary piece with the concrete, and transmit the vibration to the concrete, which not only allows the concrete to flow and settle, but also helps to discharge the bubbles inside the concrete. When the anti-stuck component as a whole moves with the feeding hose for casting, the bottom end of the conical protective cap contacts the steel bar, so that the conical protective cap will drive the insertion strip to move upward. At this time, the top end of the insertion strip is inserted into the interior of the feeding hose, and then punctures the concrete at the end of the feeding hose, which is less likely to cause blockage.
[0022] 3. The vehicle-mounted pump hose casting anti-stuck equipment, when the conical protective cap pushes the card pressure piece upward, the conical protective cap moves upward more smoothly under the guiding action of the support pressure strip, and is less likely to shake. When the anti-stuck component is moved through the feed hose, the top force of the conical protective cap by the steel mesh disappears, and under the elastic force of the elastic reset part, the conical protective cap moves downward, and then the conical protective cap moves back and forth, which can drive the insertion strip to move back and forth, thereby facilitating the insertion of concrete inside the bottom end of the feed hose.
[0023] 4. The vehicle-mounted pump hose pouring anti-sticking equipment, when the jacking body moves upward with the conical protective cap, and under the guidance of the guide surface, the striking head is subjected to an outward jacking force, and then the swing connecting rod drives the striking head to rotate to the side away from the material delivery hose. When the jacking body moves downward, the jacking body is separated from the striking head, and under the elastic force of the elastic zigzag strip and the arc-shaped spring sheet, the striking head is reset to strike the material delivery hose, causing the material delivery hose to vibrate, thereby reducing the adhesion of concrete to the inner surface of the material delivery hose.
[0024] 5. The vehicle-mounted pump hose pouring anti-stuck equipment uses the conical cylinder to support the stabilizing ring, so that the conical protective cap is supported, so that the conical protective cap will not tilt when moving up and down, so that the discharge end of the feeding hose is always aligned with the circular mouth, which facilitates the discharge and pouring of concrete. The ball rolling friction between the conical protective cap and the stabilizing ring is used to reduce the friction resistance. At the same time, as the conical protective cap moves back and forth, the circular scraper can scrape off the concrete attached to the inner surface of the conical protective cap in time, achieving a self-cleaning effect. BRIEF DESCRIPTION OF THE DRAWINGS
[0025] Figure 1 This is a schematic diagram of the overall structure of the vehicle-mounted pump hose pouring anti-stuck device of the present invention;
[0026] Figure 2 This is a bottom-up structural diagram of the vehicle-mounted pump hose pouring anti-stuck device of the present invention;
[0027] Figure 3 This is a schematic diagram of the cross-sectional structure of the anti-jamming assembly of the present invention;
[0028] Figure 4 This is a schematic diagram of the overall structure of the jacking module of the present invention;
[0029] Figure 5 This is a schematic diagram of the overall structure of the stabilizing assembly of the present invention;
[0030] Figure 6 This is a bottom view structural diagram of the anti-sticking module of the present invention;
[0031] Figure 7This is a schematic diagram of the cleaning assembly of the present invention when viewed from above;
[0032] Figure 8 It is a schematic cross-sectional structural diagram of the cleaning component of the present invention.
[0033] In the figure: 1. Conveying pump; 2. Feed hopper; 3. Power mechanism; 4. Right-angle pipe; 5. Conveying hose; 6. Anti-sticking assembly; 7. Stabilizing assembly; 8. Cleaning assembly; 61. Conical protective cap; 62. Round mouth; 63. Semicircular secondary piece; 64. Insertion strip; 65. Pushing module; 651. Connecting base; 652. Pushing body; 653. Pressing protrusion; 654. Guide surface; 71. Top cover; 72. Supporting pressure strip; 73. Pressing piece; 74. Elastic reset part; 75. Anti-sticking module; 751. Swinging connecting rod; 752. Striking head; 753. Elastic zigzag strip; 754. Arc-shaped spring piece; 81. Elastic supporting ring; 82. Conical cylinder; 83. Stabilizing ring; 84. Ball; 85. Circular scraper. DETAILED DESCRIPTION
[0034] The present invention will be described in further detail below with reference to the accompanying drawings and specific embodiments. The embodiments of the present invention are provided for purposes of illustration and description and are not intended to be exhaustive or to limit the invention to the disclosed forms. Many modifications and variations will be apparent to those skilled in the art. The embodiments are chosen and described to better illustrate the principles of the invention and its practical application, and to enable those skilled in the art to understand the invention and design various embodiments with various modifications suitable for specific applications.
[0035] The first embodiment, as Figure 1-Figure 3 As shown, the present invention provides a technical solution: a vehicle-mounted pump hose pouring anti-stuck device, comprising:
[0036] A delivery pump 1 is provided with a feed hopper 2 mounted on the top of the delivery pump 1, and a power mechanism 3 is mounted on the outer surface of the delivery pump 1. A right-angle tube 4 is fixed to and connected to the outer surface of the delivery pump 1 on a side away from the power mechanism 3, and a delivery hose 5 is connected to the end of the right-angle tube 4 away from the delivery pump 1. The power mechanism 3 is used as a power source to transport the concrete raw materials that fall from the feed hopper 2 into the delivery pump 1, and the concrete raw materials are smoothly fed into the delivery hose 5 through the right-angle tube 4.
[0037] Also includes:
[0038] The anti-stuck component 6 can control the material delivery hose 5 so that the anti-stuck component 6 is downward as a whole, and the concrete can be transported through the material delivery hose 5 so that the concrete raw materials are discharged from the end of the material delivery hose 5 to realize the concrete pouring work. The anti-stuck component 6 has a conical protective cap 61 that is slidably connected to the outer surface of the material delivery hose 5 and away from one end of the right-angle tube 4. At the same time, the conical protective cap 61 is used to protect the end of the material delivery hose 5, and a circular opening 62 is opened at the bottom of the conical protective cap 61, and a semicircular sub-piece 63 is fixedly connected to the bottom of the outer surface of the conical protective cap 61, and the semicircular sub-piece 63 increases the straightness of the conical protective cap 61 in the circumferential direction. The conical protective cap 61 is provided on the top of the conical protective cap 61 and is provided on the top of the conical protective cap 61. The conical protective cap 61 is provided on the top of the conical protective cap 61 and is provided on the top of the conical protective cap 61. The conical protective cap 61 is provided on the top of the conical protective cap 61 and is provided on the top of the conical protective cap 61. The conical protective cap 61 is provided on the top of the conical protective cap 61 and is provided on the top of the conical protective cap 61. The conical protective cap 61 is provided on the top of the conical protective cap 61 and is provided on the top of the conical protective cap 61. The conical protective cap 61 is provided on the top of the conical protective cap 61.
[0039] The insertion strip 64 is set to be arc-shaped, and the top end of the insertion strip 64 extends to the inside of the bottom end of the material delivery hose 5, which is convenient for puncturing the concrete inside the material delivery hose 5 by moving upward through the conical protective cap 61. The semicircular secondary pieces 63 evenly distributed on the bottom of the outer surface of the conical protective cap 61 can be used to contact with the concrete. The vibration during concrete transportation is used to increase the contact area of the semicircular secondary pieces 63 with the concrete, and the vibration is transmitted to the concrete, which not only makes the concrete flow and settle, but also helps to discharge the bubbles inside the concrete. When the anti-stuck component 6 is moved and poured as a whole along with the material delivery hose 5, the bottom end of the conical protective cap 61 is used to contact the steel bar, so that the conical protective cap 61 will drive the insertion strip 64 to move upward. At this time, the top end of the insertion strip 64 is inserted into the interior of the material delivery hose 5, thereby puncturing the concrete at the end of the material delivery hose 5, and it is not easy to get blocked.
[0040] The second embodiment, as Figures 1-6 As shown, based on the first embodiment,
[0041] The stabilizing component 7 has a top cover 71 on the outer surface of the feeding hose 5 and close to the position of the conical protective cap 61, and the top of the inner surface of the top cover 71 is slidably connected to a support strip 72, and the bottom end of the support strip 72 is fixedly connected to the top position of the outer surface of the conical protective cap 61 with a pressing piece 73. When the conical protective cap 61 contacts the steel mesh, the conical protective cap 61 moves upward. At this time, the pressing piece 73 is pushed upward and can slide on the top of the top cover 71 in combination with the support strip 72, so that under the guiding action of the support strip 72, the conical protective cap 61 moves upward more smoothly and is not prone to shaking. The top of 3 and near the support strip 72 is fixedly connected with an elastic reset member 74, and as the card pressing piece 73 moves upward, the elastic reset member 74 will be compressed. When the anti-sticking assembly 6 is moved by the delivery hose 5, the top force of the conical protective cap 61 on the steel mesh disappears, and under the elastic force of the elastic reset member 74, the conical protective cap 61 moves downward, and then the conical protective cap 61 moves back and forth, which can drive the insertion strip 64 to move back and forth, thereby facilitating the insertion of concrete inside the bottom end of the delivery hose 5, and an anti-sticking module 75 is provided at the top of the inner surface of the top cover 71 and near the outer surface of the delivery hose 5.
[0042] There are three support strips 72, and the three support strips 72 are evenly distributed on the top of the inner surface of the top cover 71. The top of the inner surface of the top cover 71 is provided with sliding holes that are compatible with the support strips 72, which facilitates the sliding of the support strips 72 and promotes the smooth up and down movement of the conical protective cap 61.
[0043] The pushing module 65 includes a connecting base 651, the bottom of the connecting base 651 is fixedly connected to the top of the conical protective cap 61 by screws, and the top of the connecting base 651 is fixedly connected to the pushing body 652. When the conical protective cap 61 moves upward, the pushing body 652 also moves upward under the support of the connecting base 651. A pushing protrusion 653 is provided at the center of the outer surface of the pushing body 652, and a guide surface 654 is provided on the outer surface of the pushing body 652 near the pushing protrusion 653.
[0044] The connection bases 651 are evenly distributed on the top of the conical protective cap 61 , the outer surface of the pressing protrusion 653 is configured as an arc-shaped convex surface, and the outer surface of the guide surface 654 is configured as an arc-shaped concave surface.
[0045] The anti-sticking module 75 includes a swing link 751, the top of the swing link 751 is rotatably connected to the top of the inner surface of the top cover 71, and the bottom end of the swing link 751 is fixedly connected to a striking head 752 near the outer surface of the material delivery hose 5, and under the guidance of the guide surface 654, the outer surface of the guide surface 654 contacts the bottom of the striking head 752, and continues to move upward with the top moving body 652, and combined with the top end of the swing link 751 being rotatably connected to the top of the inner surface of the top cover 71, the swing link 751 drives the striking head 752 to rotate to the side away from the material delivery hose 5, and the swing link The outer surface of the rod 751 is fixedly connected to an elastic bending strip 753, and the outer surface of the elastic bending strip 753 is fixedly connected to an arc-shaped spring piece 754, and the elastic bending strip 753 and the arc-shaped spring piece 754 are compressed together. When the pushing body 652 is driven downward by the conical protective cap 61, the pushing body 652 is separated from the striking head 752, and under the elastic force of the elastic bending strip 753 and the arc-shaped spring piece 754, the striking head 752 is reset to strike the material delivery hose 5, causing the material delivery hose 5 to vibrate, thereby reducing the adhesion of concrete to the inner surface of the material delivery hose 5, which helps to quickly discharge the concrete.
[0046] The outer surface of the striking head 752 is set to be arc-shaped, so that the striking head 752 is not easily stuck when it is pushed upward by the top pressure protrusion 653. The end of the elastic bending strip 753 away from the swing link 751 is fixedly connected to the top of the inner surface of the top cover 71, so that the elastic bending strip 753 can be compressed when the swing link 751 rotates.
[0047] The third embodiment, as Figure 7-Figure 8 As shown, a cleaning assembly 8 is provided at the outer surface end of the material delivery hose 5 and near the conical protective cap 61. The cleaning assembly 8 includes an elastic support ring 81. The top of the elastic support ring 81 is fixedly connected to the outer surface end of the material delivery hose 5. The bottom of the elastic support ring 81 is fixedly connected to a conical cylinder 82. The bottom of the conical cylinder 82 is fixedly connected to a stabilizing ring 83. The conical cylinder 82 supports the stabilizing ring 83, and the stabilizing ring 83 is closely attached to the inner surface of the conical protective cap 61, so that the conical protective cap 61 is supported and does not tilt when the conical protective cap 61 moves up and down. In this way, the discharge end of the material delivery hose 5 is always aligned with the circular opening 62, which facilitates the discharge and pouring of concrete. The outer surface of the stabilizing ring 83 and the position close to the inner surface of the conical protective cap 61 are connected in a rolling manner with a ball 84. The rolling of the ball 84 creates rolling friction between the conical protective cap 61 and the stabilizing ring 83, reducing frictional resistance. The bottom of the stabilizing ring 83 is fixedly connected to a circular scraper 85. At the same time, as the conical protective cap 61 moves back and forth, the circular scraper 85 can scrape off the concrete attached to the inner surface of the conical protective cap 61 in time, achieving a self-cleaning effect.
[0048] The bottom end of the outer surface of the material delivery hose 5 passes through the center position of the elastic support ring 81, the center position of the conical cylinder 82, the center position of the stabilizing ring 83 and the center position of the circular scraper 85, so that the material delivery hose 5 is in the central position. The outer surface of the stabilizing ring 83 is provided with a rolling groove adapted to the ball 84 to facilitate the rolling of the ball 84.
[0049] By placing the material delivery hose 5 at the center of the elastic support ring 81, the conical cylinder 82, the stabilizing ring 83 and the circular scraper 85, the material delivery hose 5 and the circular opening 62 form concentric circles, so that the conical protective cap 61 can not only protect the end of the material delivery hose 5, but also facilitate the discharge and pouring of concrete. At the same time, the elastic force of the elastic support ring 81 itself elastically supports the conical cylinder 82, and the outer surface of the ball 84 fits with the inner surface of the conical protective cap 61, so that the conical protective cap 61 can move back and forth up and down, causing the ball 84 to roll, thereby making the conical protective cap 61 move smoothly.
[0050] Obviously, the embodiments described are only some of the embodiments of the present invention, not all of them. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field and related fields without making creative efforts should fall within the scope of protection of the present invention. Structures, devices, and operating methods not specifically described and explained in the present invention shall be implemented in accordance with conventional means in the field unless otherwise specified or limited.
Claims
1. A vehicle-mounted pump hose pouring anti-stuck device, comprising: A delivery pump (1), a feed hopper (2) is installed on the top of the delivery pump (1), a power mechanism (3) is installed on the outer surface of the delivery pump (1), and a right-angle pipe (4) is fixed to and connected to the outer surface of the delivery pump (1) at a side away from the power mechanism (3), and a delivery hose (5) is connected to the end of the right-angle pipe (4) away from the delivery pump (1); It is characterized by further comprising: An anti-jamming component (6) includes a conical protective cap (61) slidably connected to the outer surface of the material delivery hose (5) and away from one end of the right-angle tube (4), and a circular opening (62) is provided at the bottom of the conical protective cap (61), and a semicircular secondary piece (63) is fixedly connected to the bottom of the outer surface of the conical protective cap (61), and a penetration strip (64) is fixedly connected to the inner surface of the conical protective cap (61) near the circular opening (62), and a top moving module (65) is provided at the top of the conical protective cap (61) near the outer surface of the material delivery hose (5); The push module (65) includes a connecting base (651), the bottom of the connecting base (651) is fixedly connected to the top of the conical protective cap (61) by screws, the top of the connecting base (651) is fixedly connected to a push body (652), a push protrusion (653) is provided at the center of the outer surface of the push body (652), and a guide surface (654) is provided on the outer surface of the push body (652) near the push protrusion (653); A stabilizing component (7), the stabilizing component (7) having a top cover (71) on the outer surface of the feeding hose (5) and close to the position of the conical protective cap (61), and a support strip (72) is slidably connected to the top of the inner surface of the top cover (71), and a clamping piece (73) is fixedly connected to the bottom end of the support strip (72) and close to the top position of the outer surface of the conical protective cap (61), and an elastic reset piece (74) is fixedly connected to the top of the clamping piece (73) and close to the position of the support strip (72), and an anti-sticking module (75) is provided on the top of the inner surface of the top cover (71) and close to the outer surface of the feeding hose (5); The anti-sticking module (75) includes a swing link (751), the top end of the swing link (751) is rotatably connected to the top of the inner surface of the top cover (71), the bottom end of the swing link (751) and the position close to the outer surface of the feeding hose (5) are fixedly connected to a striking head (752), the outer surface of the swing link (751) is fixedly connected to an elastic bending strip (753), the outer surface of the elastic bending strip (753) is fixedly connected to an arc-shaped spring piece (754), and under the guidance of the guide surface (654), the outer surface of the guide surface (654) is in contact with the bottom of the striking head (752). The jacking body (652) is in contact with the jacking body (652), and as the jacking body (652) continues to move upward, the swing connecting rod (751) drives the striking head (752) to rotate toward the side away from the feeding hose (5), and the elastic bending strip (753) and the arc-shaped spring piece (754) are compressed together. When the jacking body (652) is driven to move downward by the conical protective cap (61), the jacking body (652) is separated from the striking head (752), and under the elastic force of the elastic bending strip (753) and the arc-shaped spring piece (754), the striking head (752) is reset to strike the feeding hose (5), causing the feeding hose (5) to vibrate.
2. The vehicle-mounted pump hose pouring anti-stuck device according to claim 1 is characterized in that: The semicircular secondary pieces (63) are evenly distributed on the bottom of the outer surface of the conical protective cap (61), and the insertion strips (64) are arranged in an arc shape, with the top end of the insertion strips (64) extending to the inside of the bottom end of the material delivery hose (5).
3. The vehicle-mounted pump hose pouring anti-stuck device according to claim 1 is characterized in that: The connection base (651) is evenly distributed on the top of the conical protective cap (61), the outer surface of the pressing protrusion (653) is set as an arc-shaped convex surface, and the outer surface of the guide surface (654) is set as an arc-shaped concave surface.
4. The vehicle-mounted pump hose pouring anti-stuck device according to claim 1 is characterized in that: There are three support strips (72), and the three support strips (72) are evenly distributed on the top of the inner surface of the top cover (71). The top of the inner surface of the top cover (71) is provided with sliding holes that are compatible with the support strips (72).
5. The vehicle-mounted pump hose pouring anti-stuck device according to claim 1 is characterized in that: The top end of the elastic reset member (74) is fixedly connected to the top of the inner surface of the top cover (71), and the inner surface of the pressing piece (73) is fitted with the top of the nearly conical protective cap (61).
6. The vehicle-mounted pump hose pouring anti-stuck device according to claim 1, characterized in that: The outer surface of the striking head (752) is configured to be arc-shaped, and one end of the elastic bending strip (753) away from the swing link (751) is fixedly connected to the top of the inner surface of the top cover (71).
7. The vehicle-mounted pump hose pouring anti-stuck device according to claim 1, characterized in that: A cleaning assembly (8) is provided at the end of the outer surface of the feed hose (5) and near the conical protective cap (61). The cleaning assembly (8) includes an elastic support ring (81). The top of the elastic support ring (81) is fixedly connected to the end of the outer surface of the feed hose (5). The bottom of the elastic support ring (81) is fixedly connected to a conical cylinder (82). The bottom of the conical cylinder (82) is fixedly connected to a stabilizing ring (83). The outer surface of the stabilizing ring (83) and a position close to the inner surface of the conical protective cap (61) are rollingly connected to a ball (84). The bottom of the stabilizing ring (83) is fixedly connected to a circular scraper (85).
8. The vehicle-mounted pump hose pouring anti-stuck device according to claim 7, characterized in that: The bottom end of the outer surface of the feeding hose (5) passes through the center position of the elastic support ring (81), the center position of the conical cylinder (82), the center position of the stabilizing ring (83) and the center position of the circular scraper (85), and the outer surface of the stabilizing ring (83) is provided with a rolling groove adapted to the ball (84).
Citation Information
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