Waterproof coiled material steel seal coding mechanism
By using an inclined hot air conveyor and a heat-conducting rotating component in the waterproof membrane steel stamping and coding machine, uniform heating and temperature regulation of the coding wheel are achieved, solving the problems of easy damage to heating equipment and uneven coding quality, and improving coding efficiency and equipment life.
Patent Information
- Application Number
- CN202423241511.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-27
- Publication Date
- 2025-11-04
- Estimated Expiration
- 2034-12-27
AI Technical Summary
The heating equipment of existing waterproof membrane steel stamping and coding machines is easily damaged by vibration, resulting in uneven coding quality. In particular, uneven heating affects the coding effect when coding in multiple areas.
The hot air conveyor is set at an angle, and hot air is delivered intermittently to the coding wheel. Combined with the rotating part made of heat-conducting material for secondary heating, temperature regulation and uniform heating are achieved. Multiple coding wheels moving in sync with a single elastic reset part are used to improve heating efficiency and coding quality.
It improves the uniformity of coding quality and heating efficiency, reduces the risk of equipment damage, and enhances the service life of the coding wheel and the coding progress.
Smart Images

Figure CN223507915U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of coding technology, specifically to a steel stamp coding mechanism for waterproof membranes. Background Technology
[0002] In the field of roll material manufacturing and application, especially in the production process of waterproof rolls, product identification is required. Specifically, to ensure product quality and track the production process, key information such as the production date, product batch number, and company name is usually marked on the roll material.
[0003] In traditional roll material coding methods, steel stamping machines are widely used. These machines imprint the required information onto the roll material surface using a coding wheel. Currently, some steel stamping machines use heating devices such as heating rods to directly contact the coding wheel or indirectly heat the wheel through a supporting heat-conducting structure to improve coding quality. However, this method has the following problems in practical operation:
[0004] 1. In the actual coding process, because the coding wheel needs to move repeatedly along the vertical direction to press against the product to be coded and to separate from the product to be coded, the heating equipment such as the heating rod is easily damaged due to vibration and other reasons.
[0005] 2. When there is a lot of content to be coded, multiple parts of the coding wheel need to alternately press against the product to be coded. Heating equipment such as heating rods can easily cause uneven heating of multiple parts of the coding wheel, especially some parts may overheat, which will affect the coding quality.
[0006] Therefore, how to solve the shortcomings of the existing technology, such as the heating equipment being easily damaged and the coding quality possibly falling short of expectations, has become the research topic to be addressed by this utility model. Utility Model Content
[0007] The purpose of this invention is to provide a steel stamping and coding mechanism for waterproof membrane rolls.
[0008] To achieve the above objectives, the technical solution adopted by this utility model is as follows:
[0009] A steel stamping and coding mechanism for waterproof membrane includes a support, a mounting base, a sliding base, a rotating component, at least one coding wheel, at least one auxiliary wheel, a vertical drive component, a hot air conveying component, and an elastic reset component;
[0010] The support member serves as a component that provides support;
[0011] The mounting base is disposed on the support member;
[0012] The sliding seat is vertically movably disposed on the mounting base;
[0013] The rotating component is rotatably mounted on the sliding seat and is horizontally positioned.
[0014] The coding wheel is fixedly sleeved on the rotating component and can rotate around the axis of the rotating component;
[0015] The auxiliary wheel is fixedly sleeved on the rotating component and can rotate around the axis of the rotating component;
[0016] The vertical drive component is connected to the mounting base and the sliding base and serves as a component for vertically driving the sliding base to move.
[0017] The hot air conveyor is disposed on the sliding seat and is inclined toward the coding wheel;
[0018] One end of the elastic reset member acts on the sliding seat, and the other end acts on any of the coding wheels or any of the auxiliary wheels or rotating members.
[0019] In the above scheme, we take coding of the roll material as an example. The roll material is conveyed on the conveyor line. After being conveyed to the coding area, the waterproof roll material steel stamp coding mechanism performs coding processing on it. The coding process is as follows: the vertical drive component drives the sliding seat to move down, and the sliding seat drives the coding wheel to press against the stationary roll material. Then the conveyor line continues to transport the roll material. The roll material causes the coding wheel to rotate around the axis of the rotating component through friction. The coding process is completed in this process. After coding is completed, the elastic reset component resets the coding wheel to prepare for the subsequent coding process.
[0020] Optionally, the hot air conveyor can be a hot air blower or a hot air gun. Traditional methods use heating elements such as heating rods to directly contact the coding wheel or indirectly heat it through rotating parts. However, these methods suffer from poor heating effect, lack of adjustment function or poor adjustment function, and susceptibility to damage due to vibration. This application uses a hot air conveyor to intermittently deliver hot air to the coding wheel according to actual needs. On the one hand, the heating effect is better, as it can directly heat the coding wheel while also providing secondary heating through heating rotating parts and other structures. On the other hand, the hot air conveyor has an adjustment function, allowing adjustment of the hot air volume and thus the coding wheel temperature according to actual needs. Furthermore, the hot air conveyor can operate intermittently as needed, reducing the risk of damage from prolonged use.
[0021] It should also be noted that the hot air conveyor is tilted for several reasons. First, the tilted hot air conveyor changes the heat distribution pattern, allowing the heat to act more evenly on the coding roller, helping to avoid localized overheating and improving the uniformity of print quality. Second, the tilted design allows for better control of the airflow direction and intensity generated by the hot air conveyor, ensuring that heat is accurately transferred to the coding roller while reducing unnecessary heat loss. Third, the tilted hot air conveyor helps optimize the space utilization of the waterproof membrane steel stamping and coding mechanism, making it more compact and efficient.
[0022] One more point to emphasize regarding the above structure is that, taking multiple coding wheels as an example, each coding wheel is fixedly sleeved on the outside of the rotating component, thus ensuring that the rotating component and multiple coding wheels move synchronously. The effects are as follows: Firstly, only a single elastic reset component is needed to reset all coding wheels and the rotating component; secondly, compared to the method where each coding wheel moves separately, for the sake of synchronous coding, some coding wheels need to wait for other coding wheels to reset and stabilize, delaying the coding progress. However, with multiple coding wheels reset by a single elastic reset component, there is no waiting time, and the time for each coding wheel to enter a stable state from a wobbling state is shorter, improving the coding progress.
[0023] In a further technical solution, the support member includes two first support rods extending vertically and at least one second support rod extending horizontally and connected to the first support rods; the mounting seat is disposed on the second support rod.
[0024] In a further technical solution, the coding wheels are provided in multiple form, and the multiple coding wheels are distributed at intervals along the length extension direction of the rotating component.
[0025] Each coding wheel is fixedly sleeved on the outside of the rotating component, so that the rotating component and the multiple coding wheels move synchronously.
[0026] In a further technical solution, the vertical driving component is configured as a driving cylinder.
[0027] In a further technical solution, the hot air conveying component is configured as a hot air gun.
[0028] The hot air gun is tilted and has an air outlet. The air outlet is tilted and aimed at the product to be coded.
[0029] In a further technical solution, the elastic reset element is either a compression spring or a torsion spring.
[0030] In a further technical solution, the auxiliary wheel is made of rubber.
[0031] In a further technical solution, the sliding seat is made of a thermally conductive material; and / or the rotating component is made of a thermally conductive material.
[0032] This explanation uses a thermally conductive material for the rotating component as an example, with the following effects: Firstly, the thermally conductive material can quickly transfer the heat from the hot air conveyor to the coding wheel, which helps to accelerate the heating speed of the coding wheel and improve coding efficiency. Secondly, the thermally conductive material can ensure that the heat is evenly distributed on the rotating component, thereby avoiding the problem of local overheating or uneven temperature of the coding wheel, which helps to ensure the stability and consistency of coding quality. Furthermore, since there may be a difference in the coefficient of thermal expansion between the coding wheel and the rotating component, the thermally conductive material can help alleviate the resulting thermal stress, which helps to extend the service life of the coding wheel and the rotating component and reduce damage caused by thermal stress.
[0033] The terms "first," "second," etc., used in this article do not specifically refer to order or sequence, nor are they intended to limit this case; they are merely used to distinguish components or operations described using the same technical terms.
[0034] The terms "connection" or "positioning" as used in this article can refer to two or more components or devices making direct physical contact with each other, or making indirect physical contact with each other, or to two or more components or devices operating or moving with each other.
[0035] The terms “include,” “including,” and “have” used in this article are all open-ended, meaning they include but are not limited to.
[0036] Unless otherwise specified, the terms used herein generally have their ordinary meaning in the context of the art, the subject matter, and the specific context. Certain terms used to describe this case will be discussed below or elsewhere in this specification to provide additional guidance to those skilled in the art in describing the case.
[0037] The terms “front,” “back,” “up,” “down,” “left,” and “right” used in this article are directional terms. In this case, they are only used to describe the positional relationship between the structures and are not intended to limit the specific direction of the protection scheme or its actual implementation.
[0038] The working principle and advantages of this utility model are as follows: The vertical drive component drives the sliding seat to move downward, and the sliding seat drives the coding wheel to press against the stationary roll material. Then, the conveyor line continues to transport the roll material, and the roll material causes the coding wheel to rotate around the axis of the rotating component through friction. During this process, the coding process is completed. After coding is completed, the elastic reset component resets the coding wheel to prepare for the subsequent coding process. This application uses a hot air conveyor to intermittently deliver hot air to the coding wheel according to actual needs. On the one hand, the heating effect is better, as it can directly heat the coding wheel and also provide secondary heating by heating the rotating component and other structures. On the other hand, the hot air conveyor has an adjustment function, which can adjust the amount of hot air and thus the temperature of the coding wheel according to actual needs. Furthermore, the hot air conveyor can operate intermittently as needed and is not easily damaged by long-term use. Furthermore, the hot air conveyor is tilted towards the coding wheel. On one hand, the tilted hot air conveyor can change the heat distribution pattern, making the heat act more evenly on the coding wheel, which helps to avoid local overheating of the coding wheel and improve the uniformity of printing quality. On the other hand, the tilted setting can better control the direction and intensity of the airflow generated by the hot air conveyor, which helps to ensure that the heat can be accurately transferred to the coding wheel while reducing unnecessary heat loss. Moreover, the tilted hot air conveyor helps to optimize the space utilization of the waterproof membrane steel stamping and coding mechanism, making the waterproof membrane steel stamping and coding mechanism more compact and efficient. Attached Figure Description
[0039] Figure 1 This is a schematic diagram of the steel stamping and coding mechanism for waterproof membrane according to an embodiment of the present invention;
[0040] Figure 2 This is a top view of the steel stamping and coding mechanism for waterproof membrane according to an embodiment of this utility model;
[0041] Figure 3 This is a partial structural schematic diagram of the steel stamping and coding mechanism for waterproof membrane according to an embodiment of this utility model.
[0042] In the above attached diagrams: 1. Support component; 11. First support rod; 12. Second support rod; 2. Mounting base;
[0043] 3. Sliding seat; 4. Rotating component; 5. Coding wheel; 6. Vertical drive component; 7. Hot air conveyor component; 8. Elastic reset component; 9. Product to be coded; 10. Conveyor line; 13. Auxiliary wheel. Detailed Implementation
[0044] The present invention will be further described below with reference to the accompanying drawings and embodiments:
[0045] Example: The present invention will be clearly described below with illustrations and detailed description. Any person skilled in the art who understands the examples of the present invention can make changes and modifications based on the technology taught in the present invention without departing from the spirit and scope of the present invention.
[0046] The terminology used herein is for the purpose of describing specific embodiments only and is not intended to limit the scope of this work. Singular forms such as “a,” “this,” “this,” “the,” and “the” as used herein also include plural forms.
[0047] See Figures 1-3 A waterproof membrane steel stamping and coding mechanism includes a support component 1, a mounting base 2, a sliding base 3, a rotating component 4, at least one coding wheel 5, at least one auxiliary wheel 13, a vertical drive component 6, a hot air conveying component 7, and an elastic reset component 8.
[0048] The support member 1 serves as a component that provides support;
[0049] The mounting base 2 is disposed on the support member 1;
[0050] The sliding seat 3 is vertically movably disposed on the mounting seat 2;
[0051] The rotating component 4 is rotatably mounted on the sliding seat 3 and is horizontally positioned.
[0052] The coding wheel 5 is fixedly sleeved on the rotating part 4 and can rotate around the axis of the rotating part 4;
[0053] The auxiliary wheel 13 is fixedly sleeved on the rotating member 4 and can rotate around the axis of the rotating member 4;
[0054] The vertical drive component 6 is connected to the mounting base 2 and the sliding base 3 and serves as a component for vertically driving the sliding base 3 to move.
[0055] The hot air conveyor 7 is disposed on the sliding seat 3 and is inclined toward the coding wheel 5;
[0056] One end of the elastic reset member 8 acts on the sliding seat 3, and the other end acts on any of the coding wheels 5, any of the auxiliary wheels 13, or the rotating member 4.
[0057] This section uses the coding of roll material as an example. The roll material is conveyed on the conveyor line 10. After being conveyed to the coding area, the waterproof roll material steel stamp coding mechanism performs coding processing on it. The coding process is as follows: the vertical drive component 6 drives the sliding seat 3 to move down. The sliding seat 3 drives the coding wheel 5 to press against the stationary roll material. Then the conveyor line 10 continues to transport the roll material. The roll material causes the coding wheel 5 to rotate around the axis of the rotating component 4 through friction. The coding process is completed in this process. After the coding is completed, the elastic reset component 8 resets the coding wheel 5 to prepare for the subsequent coding process. The auxiliary wheel 13 also rubs against the roll material, thereby avoiding the coding quality from being affected by the high rotation speed of the coding wheel 5.
[0058] It should be emphasized that the improvement of this application does not lie in the specific coding process. The coding principle is the same as that of the existing waterproof membrane steel stamp coding mechanism. The coding object is not limited to the membrane, and there are no specific restrictions on the coding content.
[0059] For support component 1, taking the above coding process as an example, support component 1 is installed on conveyor line 10 to provide support for other structures.
[0060] The vertical drive component 6 has a drive end and a non-drive end. The non-drive end is located on the mounting base 2, and the drive end is located on the sliding base 3. During the coding process, the mounting base 2 remains stationary while the sliding base 3 moves. The vertical drive component 6 not only allows the coding wheel 5 to adhere to the product 9 (such as roll material) to be coded, but also serves as a limit to prevent excessive pressure applied by the coding wheel 5 from damaging the product 9. Furthermore, the vertical drive component 6 is not directly connected to the coding wheel 5, and therefore does not affect the rotation of the coding wheel 5.
[0061] Optionally, the rotating component 4 is set as a pivot. The horizontal setting of the rotating component 4 facilitates the installation of multiple coding wheels 5.
[0062] Optionally, the hot air conveyor 7 can be configured as a hot air blower or a hot air gun. Traditional methods use heating elements such as heating rods to directly contact the coding wheel 5 or indirectly heat the coding wheel 5 through the rotating component 4. However, these methods suffer from poor heating effect, lack of adjustment function, and susceptibility to damage due to vibration. This application uses the hot air conveyor 7 to intermittently supply hot air to the coding wheel 5 according to actual needs. On the one hand, the heating effect is better, as it can directly heat the coding wheel 5 while also providing secondary heating through heating the rotating component 4 and other structures. On the other hand, the hot air conveyor 7 has a flexible adjustment function, allowing adjustment of the hot air volume and thus the temperature of the coding wheel 5 according to actual needs. Furthermore, the hot air conveyor 7 can operate intermittently as needed, making it less prone to damage from long-term use.
[0063] It should also be noted that the hot air conveyor 7 is tilted. On the one hand, the tilted hot air conveyor 7 can change the heat distribution pattern, making the heat act more evenly on the coding roller 5, which helps to avoid local overheating of the coding roller 5 and improve the uniformity of printing quality. On the other hand, by tilting, the direction and intensity of the airflow generated by the hot air conveyor 7 can be better controlled, which helps to ensure that the heat can be accurately transferred to the coding roller 5 while reducing unnecessary heat loss. Furthermore, the tilted hot air conveyor 7 helps to optimize the space utilization of the waterproof membrane steel stamping and coding mechanism, making the waterproof membrane steel stamping and coding mechanism more compact and efficient.
[0064] It should be noted that heating the coding wheel 5 can improve the coding effect and enhance the adhesion of ink or pigment. For example, to enhance the coding effect, ink or pigment can be applied to the coding wheel 5. During the coding process, the ink or pigment will transfer to the product 9 to be coded, forming clear characters or patterns. After the coding wheel 5 is heated, the ink or pigment generally penetrates more easily to the surface of the product 9 to be coded, forming a stronger adhesion. This helps prevent the coded content from falling off or becoming blurred during subsequent processing or use. The heating structure is a conventional setting, known to those skilled in the art, and will not be described in detail here.
[0065] One more point to emphasize regarding the above structure is that, taking multiple coding wheels 5 as an example, each coding wheel 5 is fixedly sleeved on the outside of the rotating member 4, so that the rotating member 4 and the multiple coding wheels 5 move synchronously. The effects are as follows: On the one hand, only a single elastic reset member 8 is needed to reset all coding wheels 5 and the rotating member 4; on the other hand, compared with the method of separate movement of each coding wheel 5, for the sake of synchronous coding, some coding wheels 5 need to wait for other coding wheels 5 to reset and stabilize, which delays the coding progress. However, with multiple coding wheels 5 being reset by a single elastic reset member 8, there is no waiting time, and the time for each coding wheel 5 to enter a stable state from the shaking state is shorter, thus improving the coding progress.
[0066] Taking the coding wheel 5 and the rotating part 4 as an example, the two are snapped together in various ways. After snapping together, they can be set as an integrated unit or as separate units. This is a conventional setting, which is known to those skilled in the art, and will not be described in detail here.
[0067] See Figure 1 In this embodiment, the support member 1 includes two first support rods 11 extending vertically and at least one second support rod 12 extending horizontally and connected to the first support rods 11; the mounting base 2 is disposed on the second support rod 12.
[0068] This embodiment describes the specific configuration of the support member 1. All the second support rods 12 are connected to the mounting base 2, and the two first support rods 11 can be set at both ends of the above-mentioned conveyor line 10 along its width direction to achieve the function of raising the coding wheel 5.
[0069] Optionally, the first support rod 11 is configured as a telescopic rod.
[0070] Optionally, there are two second support rods 12, which are distributed vertically at intervals, and both second support rods 12 are connected to the mounting base 2 and each first support rod 11.
[0071] See Figure 1 In this embodiment, there are multiple coding wheels 5, and the multiple coding wheels 5 are distributed at intervals along the length extension direction of the rotating member 4.
[0072] Each coding wheel 5 is fixedly sleeved on the outside of the rotating member 4, so that the rotating member 4 and the multiple coding wheels 5 move synchronously. The arrangement of the multiple coding wheels 5 has been described above and will not be further described here.
[0073] See Figure 3 In this embodiment, the vertical drive component 6 is configured as a drive cylinder.
[0074] It should be noted that the vertical drive component 6 can also be an electric slide or other components, as long as it meets the purpose of setting the vertical drive component 6 as described above.
[0075] See Figure 1 In this embodiment, the hot air conveyor 7 is a hot air gun.
[0076] It should be noted that the hot air conveyor 7 can also be a hot air blower or other components, as long as it meets the purpose of setting up the hot air conveyor 7.
[0077] The hot air gun is tilted and has an air outlet. The air outlet is tilted and aimed at the product to be coded.
[0078] See Figure 3 In this embodiment, the elastic reset member 8 is either a compression spring or a torsion spring.
[0079] This embodiment further explains the specific configuration of the elastic reset member 8. It should be noted that the elastic reset member 8 can be made of other types of springs or elastic metal sheets, as long as the effect of the elastic reset member 8 described above is satisfied.
[0080] In this embodiment, the auxiliary wheel 13 is made of rubber.
[0081] In this embodiment, the sliding seat 3 is made of a thermally conductive material; and / or the rotating component 4 is made of a thermally conductive material.
[0082] The sliding seat 3 and the rotating part 4 are made of thermally conductive materials, such as copper or other metal thermally conductive materials.
[0083] Here, we will use a heat-conducting material for the rotating component 4 as an example. The effects are as follows: First, the heat-conducting material can quickly transfer the heat from the hot air conveyor 7 to the coding wheel 5, which helps to accelerate the heating speed of the coding wheel 5 and improve coding efficiency. Second, the heat-conducting material can ensure that the heat is evenly distributed on the rotating component 4, thereby avoiding the problem of local overheating or uneven temperature of the coding wheel 5, which helps to ensure the stability and consistency of coding quality. Third, since there may be a difference in the coefficient of thermal expansion between the coding wheel 5 and the rotating component 4, the heat-conducting material can help alleviate the resulting thermal stress, which helps to extend the service life of the coding wheel 5 and the rotating component 4 and reduce damage caused by thermal stress.
[0084] The above embodiments are only for illustrating the technical concept and features of this utility model, and are intended to enable those skilled in the art to understand the content of this utility model and implement it accordingly. They should not be construed as limiting the scope of protection of this utility model. All equivalent changes or modifications made in accordance with the spirit and essence of this utility model should be included within the scope of protection of this utility model.
Claims
1. A steel stamping and coding mechanism for waterproof membrane, characterized in that: Includes a support (1), a mounting base (2), a sliding base (3), a rotating component (4), at least one coding wheel (5), at least one auxiliary wheel (13), a vertical drive component (6), a hot air conveyor component (7), and an elastic reset component (8); The support member (1) serves as a component that provides support; The mounting base (2) is provided on the support member (1); The sliding seat (3) is vertically movable on the mounting seat (2); The rotating component (4) is rotatably mounted on the sliding seat (3) and is horizontally positioned; The coding wheel (5) is fixedly sleeved on the rotating part (4) and can rotate around the axis of the rotating part (4); The auxiliary wheel (13) is fixedly sleeved on the rotating part (4) and can rotate around the axis of the rotating part (4); The vertical drive member (6) is connected to the mounting base (2) and the sliding base (3) and serves as a component for vertically driving the sliding base (3) to move. The hot air conveyor (7) is disposed on the sliding seat (3) and is inclined toward the coding wheel (5); One end of the elastic reset member (8) acts on the sliding seat (3), and the other end acts on any of the coding wheels (5), any of the auxiliary wheels (13), or the rotating member (4).
2. The waterproof membrane steel stamping and coding mechanism according to claim 1, characterized in that: The support member (1) includes two first support rods (11) extending vertically and at least one second support rod (12) extending horizontally and connected to the first support rods (11); the mounting base (2) is disposed on the second support rod (12).
3. The waterproof membrane steel stamping and coding mechanism according to claim 1, characterized in that: The coding wheels (5) are multiple, and each coding wheel (5) is distributed at intervals along the length extension direction of the rotating member (4).
4. The waterproof membrane steel stamping and coding mechanism according to claim 1, characterized in that: The vertical drive component (6) is configured as a drive cylinder.
5. The waterproof membrane steel stamping and coding mechanism according to claim 1, characterized in that: The hot air conveyor (7) is a hot air gun.
6. The waterproof membrane steel stamping and coding mechanism according to claim 1, characterized in that: The elastic reset element (8) is either a compression spring or a torsion spring.
7. The waterproof membrane stamping and coding mechanism according to any one of claims 1-6, characterized in that: The auxiliary wheel (13) is made of rubber.
8. The waterproof membrane stamping and coding mechanism according to any one of claims 1-6, characterized in that: The sliding seat (3) is made of a thermally conductive material; and / or the rotating component (4) is made of a thermally conductive material.