Auxiliary stamping concrete construction equipment and concrete stamping construction method
By using an auxiliary concrete stamping construction device, which combines a stamping wheel and a brush cylinder with a vibration mechanism and a transmission mechanism, the problems of uneven manual stamping and dust pollution are solved, achieving a highly efficient and uniform concrete stamping effect.
Patent Information
- Application Number
- CN202411427610.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-14
- Publication Date
- 2025-11-14
- Estimated Expiration
- 2044-10-14
AI Technical Summary
Current concrete stamping construction relies on manual operation, resulting in uneven stamping effects, discontinuous patterns, and is time-consuming, labor-intensive, and prone to dust pollution.
An auxiliary concrete stamping device is used, which combines a stamping wheel and a brush cylinder. A constant pressure is provided by a vibration mechanism to achieve automatic and uniform powder spreading and stamping. A transmission mechanism is used to ensure the uniform spreading of release powder and the continuity of the pattern.
It achieves automation and uniformity in concrete stamping, reduces human error, lowers dust pollution, and improves construction efficiency and quality.
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Figure CN119308199B_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of concrete stamping construction technology, and in particular to an auxiliary concrete stamping construction device and a concrete stamping construction method. Background Technology
[0002] Concrete stamping has a wide range of applications, including municipal and urban construction projects. The cost of concrete stamping is generally only 30%-50% of that of natural bricks and stone, saving costs and reducing the extraction of natural stone and wood, thus minimizing the damage to natural resources. It is a modern, green, and environmentally friendly material that promotes the coordinated development of the environment, resources, and economy.
[0003] Currently, traditional stamped concrete construction is entirely done manually. After the concrete is poured, before it sets, a hardening agent is applied to the concrete surface. After the agent is applied evenly, the concrete surface is smoothed and release powder is sprinkled. Then, a mold is placed on the concrete surface, and the mold is manually patted and pressed. After the pressing is completed, the mold is moved and the above operation is repeated.
[0004] Therefore, during on-site construction, the embossing effect depends entirely on the embossing technique of the construction workers. The embossing process is time-consuming and labor-intensive, with significant uncertainties due to human operation. Problems such as inconsistent embossing depths between different sections, discontinuities between embossed patterns, and uneven embossing lines are easily encountered during construction. Furthermore, when embossing large areas, multiple construction workers need to work simultaneously, and differences in the experience levels of different workers further amplify this problem. At the same time, when manually spreading release powder, dust is easily generated due to manual throwing, and the uniformity of the release powder application is difficult to control.
[0005] In view of this, and based on actual needs, there is an urgent need to invent a tool that can be mass-produced and assist manual printing, capable of continuous printing in one go, to avoid the problem of discontinuous printing patterns caused by repeated manual mold movements; and capable of automatically applying a constant downward pressure to replace the problem of unclear printing patterns and inconsistent printing depth caused by uneven pressure applied by manual molds; and capable of simultaneously and evenly sprinkling powder before printing to reduce construction steps and reduce dust pollution. Summary of the Invention
[0006] In order to improve the problems of low efficiency, discontinuous imprinted patterns, inconsistent imprinting depth, and easy dust pollution in existing concrete stamping construction, this application provides an auxiliary concrete stamping construction device and a concrete stamping construction method.
[0007] Firstly, this application provides an auxiliary device for concrete stamping construction, which adopts the following technical solution:
[0008] An auxiliary device for concrete stamping construction, comprising:
[0009] The storage compartment is enclosed, with a feeding port at the top and a discharge port at the bottom;
[0010] A brush cylinder is rotatably installed inside the storage compartment and is positioned corresponding to the material discharge port. Brush bristles are distributed in an array on its outer wall.
[0011] An embossing wheel is rotatably mounted below the storage compartment;
[0012] An impression die is detachably installed and wrapped around the outer peripheral wall of the arc surface of the impression wheel;
[0013] A vibration mechanism is provided inside the impression wheel and is used to apply a vertically downward vibration force to the impression wheel;
[0014] The discharge pipe has one end connected to the material discharge port on the storage bin, and the other end extends away from the storage bin; and
[0015] A transmission mechanism is used to drive the brush cylinder to rotate when the impression wheel rotates.
[0016] Furthermore, the embossing roller includes:
[0017] A fixed cylinder is fixedly installed below the storage compartment, and the vibration mechanism is installed inside the fixed cylinder;
[0018] An impression cylinder is coaxially and rotatably mounted on the outer periphery of the fixed cylinder, and the impression mold is mounted on the outer periphery of the impression cylinder.
[0019] Furthermore, an upwardly extending handrail is installed at the end of the fixed cylinder or on the storage compartment.
[0020] Furthermore, the transmission mechanism includes:
[0021] The first transmission wheel is coaxially fixed to one end of the impression cylinder;
[0022] The second drive wheel is rotatably mounted on the outer wall of the storage compartment, and the second drive wheel is connected to the first drive wheel in the same direction.
[0023] A first gear is coaxially mounted at the end of the brush cylinder; and
[0024] The second gear is coaxially fixed to the second transmission wheel, and the second gear meshes with the first gear.
[0025] Furthermore, the bottom wall of the storage compartment is inclined, and the end of it near the discharge port is lower than the end of it away from the discharge port.
[0026] Furthermore, the storage compartment is equipped with a baffle that surrounds the outer periphery of the brush cylinder.
[0027] Furthermore, the feeding port is located above the brush cylinder, the baffle separates the feeding port and the brush cylinder, and the side of the baffle facing the feeding port is provided with a transition curved surface.
[0028] Furthermore, the outlet tube is configured to be curved, and its inner arc side is positioned away from the imprinting wheel.
[0029] Furthermore, the outlet tube is made of metal, and the straight-line distance between the free end of the outlet tube and the storage compartment is less than the straight-line distance between the embossing wheel and the storage compartment.
[0030] Secondly, this application provides a concrete stamping construction method based on the aforementioned auxiliary concrete stamping construction device, comprising the following steps:
[0031] S1. The embossing mold for the desired embossing pattern is mounted on the outer periphery of the embossing wheel;
[0032] S2. Add release powder to the storage compartment;
[0033] S3. Transfer the construction device of this application to the concrete pavement to be compacted, start the vibration mechanism, and pull the storage bin continuously towards the direction where the operator is standing. The brush cylinder rotates under the drive of the transmission mechanism to transport the release powder in the storage bin to the outlet pipe, and then falls from the bottom of the outlet pipe and is spread on the concrete pavement. The compaction wheel compacts the concrete pavement after the powder is spread while rotating, and the compaction quality is ensured under the action of the vibration mechanism.
[0034] S4. After one area of the concrete pavement to be imprinted is completed, push the storage bin away from the direction where the operator is standing to transfer the construction device to the next area. Repeat step S3 until all areas are imprinted.
[0035] In summary, this application includes at least one of the following beneficial technical effects:
[0036] 1. Imprinting is performed by combining an imprinting mold with an imprinting wheel to form a roller-type mechanical structure, which replaces traditional manual imprinting, saves labor, avoids differences caused by different workers, and makes the imprinting lines straight, the printing effect uniform, and the printing pattern continuous.
[0037] 2. By setting a cylindrical impression wheel device, the impression contact area is reduced, thereby reducing the downward force required during the impression process and reducing the weight of the tool; moreover, the impression mold on the outside of the impression wheel can be replaced, making it suitable for various projects;
[0038] 3. By setting up a vibration mechanism, it can automatically provide downward pressure to complete the molding process, thereby replacing manual force application and avoiding the uncontrollability of manual force application, thus improving the quality of the embossing effect;
[0039] 4. By setting up a uniform powder-spreading device formed by a brush cylinder, the release powder is evenly spread on the imprinting area to avoid dust pollution and uneven distribution of release powder caused by manual sprinkling of release powder;
[0040] 5. Through the transmission mechanism between the impression wheel and the brush cylinder, the impression wheel and the brush cylinder rotate synchronously in opposite directions to ensure that the release powder is evenly sprinkled only when the construction device of this application is pulled to make impressions, and will not be sprinkled when the device is pushed to move. Attached Figure Description
[0041] To more clearly illustrate the technical solutions in this invention or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are some embodiments of this invention. For those skilled in the art, other drawings can be obtained from these drawings without creative effort.
[0042] Figure 1 This is a cross-sectional structural diagram of an embodiment of this application;
[0043] Figure 2 This is a side view of the overall structure of an embodiment of this application;
[0044] Figure 3 This is a cross-sectional structural schematic diagram of the embossing wheel according to an embodiment of this application.
[0045] Figure label:
[0046] 1. Storage compartment; 11. Feeding port; 12. Discharge port; 13. Handrail; 14. Baffle; 141. Transition surface; 15. Support frame;
[0047] 2. Brush holder; 21. Brush bristles;
[0048] 3. Imprinting roller; 31. Fixing cylinder; 32. Imprinting cylinder;
[0049] 4. Imprinting mold;
[0050] 5. Vibration mechanism;
[0051] 6. Warehouse exit management;
[0052] 71. First transmission wheel; 72. Second transmission wheel; 73. First gear; 74. Second gear. Detailed Implementation
[0053] To make the objectives, technical solutions, and advantages of this invention clearer, the technical solutions of this invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some, not all, of the embodiments of this invention. All other embodiments obtained by those skilled in the art based on the embodiments of this invention without creative effort are within the scope of protection of this invention.
[0054] Reference Figure 1 and Figure 2 This application discloses an auxiliary device for stamping concrete construction, which includes:
[0055] Storage compartment 1 is enclosed, with a feeding port 11 at the top and a discharge port 12 at the bottom. In the specific design, the feeding port 11 and the discharge port 12 are not directly connected.
[0056] The brush cylinder 2 is rotatably installed in the storage compartment 1 and is set corresponding to the discharge port 12. The brush bristles 21 are arrayed on the outer peripheral wall of the arc surface of the brush cylinder 2.
[0057] Imprinting wheel 3 is rotatably mounted below storage compartment 1;
[0058] The impression mold 4 is detachable and can be installed and wrapped around the outer peripheral wall of the arc surface of the impression wheel 3;
[0059] The excitation mechanism 5 is located inside the impression wheel 3 and is used to apply a vertically downward excitation force to the impression wheel 3. Specifically, it is configured as a vibration motor with the vibration direction in the vertical plane.
[0060] The discharge pipe 6 has one end connected to the discharge port 12 on the storage bin 1, and the other end extends away from the storage bin 1; and
[0061] The transmission mechanism is used to drive the brush cylinder 2 to rotate when the impression wheel 3 rotates. Specifically, when the travel direction of the storage bin 1 is along the arrangement direction of the impression wheel 3 and the outlet pipe 6, the brush cylinder 2 rotates to transport the release powder in the storage bin 1 to the discharge port 12; otherwise, it transports the release powder at the discharge port 12 into the storage bin 1.
[0062] Thus, when it is necessary to perform stamping construction on concrete pavement, first install the corresponding stamping mold 4 on the stamping wheel 3 to ensure that the stamping mold 4 completely covers the outer peripheral wall of the arc surface of the stamping wheel 3, add an appropriate amount of release powder into the storage bin 1, and then transfer the construction device of this application to the concrete pavement to be stamped. The operator stands on the side of the storage bin 1 where the outlet pipe 6 is set, and pulls the storage bin 1 to move at a uniform speed along the arrangement direction of the stamping wheel 3 and the outlet pipe 6; at the same time, the vibration mechanism 5 is also turned on.
[0063] In this way, when the stamping wheel 3 rotates, it can drive the brush cylinder 2 to rotate via the transmission mechanism. When the brush cylinder 2 rotates, it sweeps the release powder in the storage bin 1 and delivers it to the discharge port 12. After being guided by the discharge pipe 6, it is spread on the concrete ground, which can improve the uniformity of powder spreading and also prevent the release powder from hardening due to long-term storage, thus affecting the powder spreading effect. Then, when the stamping wheel 3 moves to the road surface with the release powder, the stamping mold 4 set on it can stamp the preset pattern on the concrete road surface. With the excitation effect of the vibration mechanism 5, a stable downward pressure can be applied to the stamping mold 4, which can effectively ensure the consistency of the stamping effect and the clarity of the pattern. Moreover, the vibration effect of the vibration mechanism 5 is also transmitted to the storage bin 1, which can vibrate the release powder contained in the storage bin 1, which can further reduce the probability of the release powder in the storage bin 1 hardening. When the storage compartment 1 is continuously pulled, the rolling of the embossing wheel 3 can imprint a continuous pattern on the concrete road surface, ensuring construction quality.
[0064] Therefore, the construction device of this application can achieve continuous stamping on concrete pavement in one go, avoiding the problem of discontinuous stamping patterns caused by repeated manual mold movement; moreover, the vibration mechanism 5 can automatically apply a constant downward force to the stamping mold to solve the problem of unclear stamping patterns and uneven stamping depth caused by uneven force application of the manual stamping mold; it can also uniformly sprinkle powder before stamping to reduce construction steps and reduce dust pollution; and with the construction device of this application, only one operator is needed to complete the concrete stamping operation, which greatly saves manpower and reduces construction costs compared to the conventional technology that requires multiple construction workers to work together, resulting in significant economic benefits.
[0065] In addition, after the construction device of this application has completed the work in an area of the concrete pavement to be compacted, it pushes the storage bin 1 in the direction opposite to the arrangement of the compaction wheel 3 and the discharge pipe 6 to transfer the construction device to the next area. During this process, under the action of the transmission mechanism, the brush cylinder 2 rotates in the opposite direction, which can transport the release powder at the discharge port 12 into the storage bin 1. This achieves the effect that the release powder in the storage bin 1 will not be spilled during the transfer of the construction device, which greatly improves the convenience of using this application.
[0066] Specifically, refer to Figure 1 and Figure 3 The aforementioned embossing roller 3 includes:
[0067] The fixed cylinder 31 is fixedly installed below the storage compartment 1. The vibration mechanism 5 is installed inside the fixed cylinder 31, and the brackets 15 are fixedly connected to the lower sides of the storage compartment 1. The two ends of the fixed cylinder 31 are respectively fixedly connected to the two brackets 15.
[0068] The impression cylinder 32 is coaxially rotatably mounted on the outer periphery of the fixed cylinder 31, and the impression mold 4 is mounted on the outer periphery of the impression cylinder 32. Specifically, the impression mold 4 can be bolted and fixed to the outer peripheral wall of the arc surface of the printing cylinder, and both ends of the impression cylinder 32 are coaxially fixed with convex rings to restrict the lateral movement of the impression mold 4 and to position the impression mold 4. The radial thickness of the convex ring is less than the thickness of the impression mold 4 to prevent imprint marks from being generated during the impression process.
[0069] Furthermore, an upwardly extending handrail 13 is installed at the end of the fixed cylinder 31 or on the storage compartment 1. In this embodiment, the handrail 13 is installed at the end of the fixed cylinder 31 to facilitate the operator's grip.
[0070] In addition, the aforementioned transmission mechanism includes:
[0071] The first transmission wheel 71 is coaxially fixed to one end of the imprinting cylinder 32, and this end of the imprinting cylinder 32 is flush with the outer wall of the storage compartment 1. The length of the fixed cylinder 31 is greater than the width of the storage compartment 1.
[0072] The second drive wheel 72 is rotatably mounted on the outer wall of the storage compartment 1. The second drive wheel 72 is connected to the first drive wheel 71 in the same direction. Specifically, it can be driven by a belt, a synchronous pulley, a synchronous belt, a sprocket, a chain, etc. The belt, synchronous belt, chain, etc. used for transmission pass through the bracket 15 on the storage compartment 1 and connect the first drive wheel 71 and the second drive wheel 72.
[0073] The first gear 73 is coaxially mounted on the end of the brush cylinder 2. Specifically, the end of the brush cylinder 2 is fixedly connected to a fixed shaft extending outside the storage compartment 1, and the first gear 73 is coaxially fixedly connected to the fixed shaft; and
[0074] The second gear 74 is coaxially fixed to the second transmission wheel 72, and the second gear 74 meshes with the first gear 73.
[0075] Thus, when the operator pulls the lever 13, the storage bin 1 moves along the arrangement direction of the impression wheel 3 and the outlet pipe 6. At this time, when the impression cylinder 32 rotates, it drives the second transmission wheel 72 to rotate through the first transmission wheel 71. When the second transmission wheel 72 rotates, it drives the brush cylinder 2 to rotate in the opposite direction by means of the meshing transmission effect of the second gear 74 and the first gear 73. At this time, the release powder in the storage bin 1 is swept towards the discharge port 12 by the bristles 21 on the brush cylinder 2. Conversely, when the operator pushes the lever 13, the storage bin 1 moves in a direction opposite to the arrangement direction of the impression wheel 3 and the outlet pipe 6. At this time, when the brush cylinder 2 rotates, it conveys the release powder at the discharge port 12 into the storage bin 1, so as to prevent the release powder from falling from the discharge port 12 when the construction device of this application needs to be transferred.
[0076] Furthermore, to improve the ease of use of the construction device of this application, refer to Figure 1 and Figure 2The bottom wall of the storage chamber 1 is inclined, with the end near the discharge port 12 lower than the end away from the discharge port 12. This causes the release powder in the storage chamber 1 to tend to slide towards the discharge port 12, ensuring the continuity of powder discharge from the discharge port 12. Furthermore, a baffle 14 is installed inside the storage chamber 1, surrounding the outer periphery of the brush cylinder 2. The feeding port 11 is located above the brush cylinder 2, and the baffle 14 separates the feeding port 11 from the brush cylinder 2. The side of the baffle 14 facing the feeding port 11 has a transition curved surface 141. This design facilitates the addition of release powder to the storage chamber 1, reduces the probability of dust generation when the brush cylinder 2 rotates and sweeps the powder, and prevents excessive release powder from covering the bristles 21 of the brush cylinder 2, thus affecting rotation and the amount of powder spread.
[0077] Furthermore, the discharge pipe 6 is curved, with its inner arc side facing away from the impression wheel 3. This design appropriately increases the sliding stroke of the release powder within the discharge pipe 6, allowing the release powder to be spread out as widely as possible, thus ensuring the uniformity of the release powder's distribution on the concrete pavement. Moreover, the discharge pipe 6 is made of metal, and the straight-line distance from the free end of the discharge pipe 6 to the storage compartment 1 is less than the straight-line distance from the impression wheel 3 to the storage compartment 1. This allows the discharge pipe 6 to serve as a support when the construction device is not in operation, facilitating the parking of the construction device.
[0078] This application also discloses a concrete stamping construction method, which, based on the above-mentioned auxiliary concrete stamping construction device, adopts the following technical solution:
[0079] A concrete stamping construction method includes the following steps:
[0080] S1. Install the embossing mold 4 of the desired embossing pattern on the outer periphery of the embossing wheel 3, ensuring that the embossing mold 4 completely covers the outer periphery of the arc surface of the embossing cylinder 32 in the embossing wheel 3;
[0081] S2. Add release powder to storage compartment 1;
[0082] S3. Transfer the construction device of this application to the concrete pavement to be compacted, start the vibration mechanism 5, and pull the storage bin 1 to move continuously in the direction where the operator is standing. The brush cylinder 2 rotates under the drive of the transmission mechanism to transport the release powder in the storage bin 1 to the outlet pipe 6, and then falls from the bottom of the outlet pipe 6 to be spread on the concrete pavement. The compaction wheel 3 compacts the concrete pavement after the powder is spread while rotating, and ensures the compaction quality under the action of the vibration mechanism 5.
[0083] S4. After one area of the concrete pavement to be imprinted is completed, push the storage bin 1 away from the direction where the operator is standing to transfer the construction device to the next area. Repeat step S3 until all areas are imprinted.
[0084] The implementation principle of the auxiliary stamping concrete construction device in this application is as follows:
[0085] When it is necessary to perform stamping construction on concrete pavement, first install the corresponding stamping mold 4 on the stamping cylinder 32 of the stamping wheel 3, ensuring that the stamping mold 4 completely covers the outer peripheral wall of the arc surface of the stamping cylinder 32. Add an appropriate amount of release powder into the storage bin 1, and then transfer the construction device of this application to the concrete pavement to be stamped. The operator stands on the side of the storage bin 1 where the outlet pipe 6 is set, and pulls the storage bin 1 to move at a uniform speed along the arrangement direction of the stamping wheel 3 and the outlet pipe 6. At the same time, the vibration mechanism 5 is also turned on.
[0086] In this way, when the stamping wheel 3 rotates, it can drive the brush cylinder 2 to rotate in the opposite direction. When the brush cylinder 2 rotates, it sweeps the release powder in the storage bin 1 and delivers it to the discharge port 12. After being guided by the discharge pipe 6, it is spread on the concrete ground, which can improve the uniformity of powder spreading and at the same time, it can also prevent the release powder from hardening after long-term storage, thus affecting the powder spreading effect. Then, when the stamping wheel 3 moves to the road surface with the release powder, the stamping mold 4 set on it can stamp the preset pattern on the concrete road surface. With the excitation effect of the vibration mechanism 5, a stable downward pressure can be applied to the stamping mold 4, which can effectively ensure the consistency of the stamping effect and the clarity of the pattern. Moreover, the vibration effect of the vibration mechanism 5 will also be transmitted to the storage bin 1, which can vibrate the release powder contained in the storage bin 1, which can further reduce the probability of the release powder in the storage bin 1 hardening. When the storage compartment 1 is continuously pulled, the rolling of the embossing wheel 3 can imprint a continuous pattern on the concrete road surface, ensuring construction quality.
[0087] After one area of the concrete pavement to be compacted is completed, the storage bin 1 is pushed in the direction opposite to the arrangement of the compaction wheel 3 and the discharge pipe 6 to transfer the construction device to the next area. During this process, the brush cylinder 2 can transport the release powder at the discharge port 12 into the storage bin 1 when it rotates, so as to achieve the effect that the release powder in the storage bin 1 will not be spilled during the transfer of the construction device, which greatly improves the convenience of using this application.
[0088] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention, and not to limit them; although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features; and these modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of the present invention.
Claims
1. An auxiliary device for concrete stamping construction, characterized in that, include: The storage compartment is enclosed, with a feeding port at the top and a discharge port at the bottom; A brush cylinder is rotatably installed inside the storage compartment and is positioned corresponding to the material discharge port. Brush bristles are distributed in an array on its outer wall. An embossing wheel is rotatably mounted below the storage compartment; An impression die is detachably installed and wrapped around the outer peripheral wall of the arc surface of the impression wheel; A vibration mechanism is provided inside the impression wheel and is used to apply a vertically downward vibration force to the impression wheel; The discharge pipe has one end connected to the discharge port on the storage bin, and the other end extends away from the storage bin. as well as A transmission mechanism is used to drive the brush cylinder to rotate when the impression wheel rotates; The embossing wheel includes: A fixed cylinder is fixedly installed below the storage compartment, and the vibration mechanism is installed inside the fixed cylinder; An impression cylinder is coaxially and rotatably mounted on the outer periphery of the fixed cylinder, and the impression mold is mounted on the outer periphery of the impression cylinder; The transmission mechanism includes: The first transmission wheel is coaxially fixed to one end of the impression cylinder; The second drive wheel is rotatably mounted on the outer wall of the storage compartment, and the second drive wheel is connected to the first drive wheel in the same direction. A first gear is coaxially mounted at the end of the brush cylinder; and The second gear is coaxially fixed to the second transmission wheel, and the second gear meshes with the first gear. The bottom wall of the storage compartment is inclined, and the end of it near the discharge port is lower than the end of it away from the discharge port; a baffle is provided inside the storage compartment surrounding the outer periphery of the brush cylinder.
2. The auxiliary stamping concrete construction device according to claim 1, characterized in that, An upwardly extending handrail is installed at the end of the fixed cylinder or on the storage compartment.
3. The auxiliary stamping concrete construction device according to claim 1, characterized in that, The feeding port is located above the brush cylinder, and the baffle separates the feeding port from the brush cylinder. The side of the baffle facing the feeding port has a transition curved surface.
4. The auxiliary stamping concrete construction device according to claim 1, characterized in that, The outlet tube is curved, and its inner arc side is positioned away from the imprinting wheel.
5. The auxiliary stamping concrete construction device according to claim 1, characterized in that, The outlet tube is made of metal, and the straight-line distance between the free end of the outlet tube and the storage compartment is less than the straight-line distance between the embossing wheel and the storage compartment.
6. A concrete stamping construction method, based on the auxiliary stamping concrete construction device as described in any one of claims 1-5, characterized in that, Includes the following steps: S1. The embossing mold for the desired embossing pattern is mounted on the outer periphery of the embossing wheel; S2. Add release powder to the storage compartment; S3. Transfer the construction device to the concrete pavement to be compacted, start the vibration mechanism, and pull the storage bin continuously towards the direction where the operator is standing. The brush cylinder rotates under the drive of the transmission mechanism to transport the release powder in the storage bin to the outlet pipe, and then the powder falls from the bottom of the outlet pipe and is spread on the concrete pavement. The compaction wheel compacts the concrete pavement after the powder is spread while rotating, and the compaction quality is ensured by the action of the vibration mechanism. S4. After one area of the concrete pavement to be imprinted is completed, push the storage bin away from the direction where the operator is standing to transfer the construction device to the next area. Repeat step S3 until all areas are imprinted.
Citation Information
Patent Citations
Colored concrete coining floor equipment and process thereof
CN117513704A
Lime scattering device
CN213029535U
Imprint roller for stamping concrete
US20140270957A1