Laser room electric door mechanism
By designing an electric door mechanism for the laser room, the problems of complex structure, high cost, and poor versatility in existing technologies have been solved. This has enabled convenient disassembly and assembly and flexible adaptation of the laser room's moving door mechanism, improving equipment utilization and efficiency, and ensuring effective blocking of laser radiation and protection of the equipment.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- GUANGZHOU MINO AUTOMOTIVE EQUIP CO LTD
- Filing Date
- 2025-05-12
- Publication Date
- 2026-05-29
AI Technical Summary
Existing laser room sliding door mechanisms are complex, costly, and lack versatility. Their movement direction and travel range are limited, making them unsuitable for separate use in other independent laser rooms.
An electric door mechanism for laser rooms was designed, comprising a door panel assembly, a guide rail assembly, a drive assembly, and an auxiliary support assembly. The door panel assembly can slide freely through the cooperation of the guide rail assembly and the drive assembly, and can be easily disassembled and assembled through the auxiliary support assembly, thus adapting to the needs of different laser rooms.
It enables convenient disassembly and flexible adaptation of the laser room's electric door mechanism, improving versatility, reducing equipment costs, increasing equipment utilization and efficiency, and ensuring effective blocking of laser radiation and protection of the equipment.
Smart Images

Figure CN224295001U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of laser cutting technology, specifically relating to an electric door mechanism for a laser room. Background Technology
[0002] Laser welding is a welding method that uses a focused laser beam as a high-energy-density energy source to bombard the workpiece and generate heat. Due to the optical properties of lasers, such as refraction and focusing, laser welding is very suitable for welding micro-parts and areas with poor accessibility.
[0003] Due to the above characteristics of laser welding, laser radiation is unavoidable during the laser welding process. In order to prevent laser radiation from harming the surrounding environment and personnel, laser welding needs to be carried out in a laser room with certain protection and light-blocking requirements.
[0004] Existing laser processing rooms typically have matching sliding door mechanisms. However, these mechanisms are often specifically designed for use with the entire laser processing system, and cannot be disassembled for use in other independent laser processing rooms. This results in complex structures, high costs, and poor versatility. Furthermore, most existing sliding door mechanisms can only move within a limited range in the horizontal direction, restricting their movement. This limitation in movement direction and travel further restricts the versatility of the sliding door mechanisms. Utility Model Content
[0005] In order to overcome the shortcomings of the prior art, this utility model provides an electric door mechanism for laser rooms, which solves the problems of complex structure, high cost and poor versatility of existing laser room moving door mechanisms, as well as the problem of limited movement direction and travel distance.
[0006] One embodiment of this utility model provides an electric door mechanism for a laser room, comprising:
[0007] Door panel assembly, used to block laser radiation generated during the laser room processing;
[0008] The guide rail assembly is used to support the sliding of the door panel assembly and control the working status of the door panel assembly;
[0009] The drive component is used to control the working state of the guide rail assembly;
[0010] Auxiliary support components are used to connect to the walls of the laser room;
[0011] The door panel assembly is movably mounted on the guide rail assembly, the guide rail assembly is connected to the drive assembly and the auxiliary support assembly respectively, and the guide rail assembly is connected to the laser room wall through the auxiliary support assembly;
[0012] It should be noted that in actual use, the drive component needs to be connected to an external control device to control the working state of the drive component, which in turn controls the working state of the guide rail component, and finally controls the working state of the door panel component through the guide rail component.
[0013] It should be noted that in actual use, the laser room electric door mechanism can be disassembled and reassembled with the laser room by removing and installing the auxiliary support components. This means that the auxiliary support components can be removed from one of the laser room walls that has been processed, and then installed on another laser room wall that is about to be processed to achieve the same effect of blocking laser radiation.
[0014] It should be noted that in actual use, the guide rail assembly includes at least a movable guide rail and an internally installed movable component. The guide rail assembly can control the working state of the door panel assembly through the movable component. Specifically, the movable component can control the entire door panel assembly to achieve complete free sliding on the movable guide rail, that is, any position on the movable guide rail is within the active stroke of the door panel assembly.
[0015] In addition, in the guide rail assembly, the direction of the movable guide rail can be set to vertical or horizontal, so that the sliding direction of the door panel assembly installed on the movable guide rail can be selected according to the actual processing requirements.
[0016] In actual use, the auxiliary support component can connect the entire electric door mechanism of the laser room to the wall of the laser room, the drive component can control the working state of the guide rail component, and thus accurately control the opening and closing state of the door panel component. The door panel component can block laser radiation and prevent laser radiation from causing harm to the surrounding environment and people.
[0017] In this solution, the cooperation of auxiliary support components, drive components, guide rail components, and door panel components enables convenient assembly and disassembly of the overall laser room electric door mechanism, enhancing its versatility. Furthermore, it allows the door panel components to slide freely in the vertical or horizontal direction, reducing limitations on the sliding direction and stroke of the laser room electric door mechanism, further enhancing its versatility. Additionally, it ensures smooth and precise movement of the door panel components, reducing jamming, shaking, and other abnormalities, thereby extending the equipment's lifespan and improving the user experience and work efficiency of the laser room.
[0018] Compared with the prior art, this utility model has the following advantages:
[0019] 1. With the auxiliary support components, the entire electric door mechanism can be easily disassembled and assembled with the laser room wall. The same electric door mechanism can be quickly transferred and used between different laser rooms, which can improve equipment utilization.
[0020] 2. By adjusting the direction of the movable guide rail in the guide rail assembly, it can be set to vertical or horizontal according to processing requirements. With the help of movable parts, it can control the door panel assembly to slide freely in the corresponding direction, meet the diverse spatial layout and processing technology requirements, and can flexibly adapt to long and narrow and tall laser rooms, further improving versatility.
[0021] 3. By connecting the drive component to an external control device, the operator can directly and precisely control the opening and closing status of the door panel component through the external control device, realizing automated door opening and closing. On the one hand, it solves the efficiency problem of manual operation, and on the other hand, it can respond quickly in emergency situations to open and close the door panel quickly.
[0022] 4. Compared with existing moving door mechanisms that are used in conjunction with a complete set of laser processing equipment and systems, this utility model has the obvious advantages of simple structure and relatively low cost.
[0023] In one embodiment, the door panel assembly includes a slider component and a door body component, the slider component being mounted on the door body component, and the door body component being movably connected to the guide rail assembly via the slider component.
[0024] In one embodiment, the door component includes a first door and a second door, wherein the ends of the first door and the second door that are close to each other are closed portions.
[0025] In one embodiment, the slider component includes a slider block movably connected to the guide rail assembly and a connector mounted on the slider block;
[0026] It should be noted that by setting the door body component on the slider component and installing the slider component on the door body component, the first door body and the second door body can be movably connected to the guide rail assembly through the slider component, and the friction of the first door body and the second door body moving on the guide rail assembly is reduced, making the overall opening and closing of the door panel assembly easier, and reducing the power requirements of the drive assembly and reducing the energy consumption of the drive assembly.
[0027] It should be noted that when the first door and the second door abut against each other, the closing parts of the first door and the second door fit tightly together. This design can enhance the airtightness of the door components, thereby effectively blocking laser radiation leakage and providing a reliable airtight environment for high-precision processing in the laser room. In addition, the good airtightness can also prevent external dust, moisture and other impurities from entering the laser room, which can protect the internal precision processing equipment, reduce the equipment failure rate and reduce maintenance costs.
[0028] In this solution, the cooperation between the slider component and the door component reduces the friction of the door component moving on the guide rail assembly, making the overall opening and closing of the door panel assembly easier and reducing the power requirements and energy consumption of the drive component. On the other hand, it enhances the airtightness of the door component, effectively blocking laser radiation leakage and preventing dust, moisture and other impurities from entering, thereby protecting the internal precision machining equipment, reducing equipment failure rate and maintenance costs.
[0029] In one embodiment, the guide rail assembly includes a movable guide rail, a movable component, and a guide rail adjusting component, wherein the movable guide rail is mounted on the guide rail adjusting component, and the movable component is mounted in the movable guide rail;
[0030] The movable component is used to cooperate with the drive assembly to control the working state of the movable guide rail, and the guide rail adjustment component is used to adjust the pre-working state of the movable guide rail;
[0031] It should be noted that the guide rail adjustment component can precisely adjust the pre-working state of the movable guide rail to ensure that the movable guide rail is in a suitable working state. Specifically, the guide rail adjustment component can include adjusting the horizontality and verticality of the guide rail to make the movable guide rail fit the overall structure of the laser room and reduce the operational risks caused by installation errors.
[0032] It should be noted that the movable component can control the working state of the movable guide rail under the control of the drive component, and thus control the working state of the door panel component. Specifically, when the drive component controls the movable component to work, the movable component can drive the movable guide rail to work, and the movable guide rail can drive the door panel component to move smoothly and steadily along the predetermined trajectory, realizing fast and precise opening and closing actions, improving the response speed and operation accuracy of the electric door, and meeting the frequent and efficient use needs of the laser room.
[0033] In this solution, the cooperation of movable guide rails, movable components, and guide rail adjustment components can, on the one hand, precisely adjust the working state of the movable guide rails to reduce operational risks caused by installation errors, and on the other hand, control the door panel assembly to move smoothly and steadily on the movable guide rails to achieve fast and precise opening and closing actions, thereby improving the response speed and operating accuracy of the electric door.
[0034] In one embodiment, the movable guide rail includes a first guide rail and a second guide rail, and the movable component is provided inside both the first guide rail and the second guide rail;
[0035] It should be noted that the first guide rail and the second guide rail are respectively connected to the two ends of the door panel assembly, and the moving parts inside the first guide rail and the second guide rail are connected to the drive assembly.
[0036] In actual use, the drive component controls the moving parts to work, and the moving parts control the first guide rail and the second guide rail to enter the working state simultaneously, so as to drive the door panel assembly to slide on the first guide rail and the second guide rail to complete the opening and closing action of the door panel assembly.
[0037] In one embodiment, the drive assembly includes a drive member and a transmission member, one end of the transmission member being connected to the drive member and the other end of the transmission member being connected to the movable member.
[0038] In one embodiment, the movable guide rail is a chain guide rail, and the sliding block of the first door and the sliding block of the second door are respectively located at the front and rear ends of the chain guide rail. The guide rail adjusting component includes a tension adjusting component and a parallelism adjusting component, and both the tension adjusting component and the parallelism adjusting component are disposed at the bottom of the movable guide rail.
[0039] It should be noted that the sliding blocks of the first door and the second door are located at the front and rear ends of the chain guide rail, respectively. Specifically, the moving part can be a sprocket, and the drive component can be a dual-axis motor. By controlling the forward and reverse rotation of the dual-axis motor, the sprocket can be driven to rotate forward and reverse synchronously. When the drive component controls the sprocket to rotate, the sprocket drives the chain guide rail to work, and the sliding blocks of the first door and the second door move in opposite directions to control the opening and closing state of the door panel assembly.
[0040] It should be noted that the structure of the tension adjustment component and the parallel adjustment component is not limited, as long as they can adjust the tension and parallelism of the chain guide rail.
[0041] In this solution, by setting the movable guide rail as a chain guide rail and setting the sliding blocks of the first door and the second door at the front and rear ends of the chain guide rail respectively, the synchronous reverse movement of the two doors can be achieved by controlling the same drive component, thereby controlling the opening and closing state of the door panel assembly.
[0042] In one embodiment, the auxiliary support assembly includes a support column and mounting components, the mounting components being installed at both ends of the support column, and the support column being installed on the guide rail assembly via the mounting components;
[0043] In this solution, the combination of support columns and mounting components facilitates the connection between the support columns and the guide rail assembly and the laser room wall, thereby ensuring the stability of the connection. It also facilitates the installation, disassembly, and subsequent maintenance of the overall laser electric door.
[0044] In one embodiment, both the guide rail assembly and the drive assembly are provided with a support base at their bottom;
[0045] In this solution, the support base increases the contact area between the overall laser room electric door and the mounting surface, thereby evenly distributing the weight of the guide rail assembly and drive assembly, reducing the pressure on the installation area, preventing damage to the ground due to excessive local pressure, or unstable equipment installation. In addition, the support base can absorb some of the vibration generated by the operation of the equipment, thereby reducing the transmission of vibration to the surrounding environment and achieving the effect of noise reduction. Attached Figure Description
[0046] To more clearly illustrate the technical solutions in the embodiments of this utility model 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 only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on the structures shown in these drawings without creative effort.
[0047] Figure 1 This is a schematic diagram of one working state of one embodiment of the electric door mechanism for a laser room according to the present invention;
[0048] Figure 2 This is a schematic diagram of another working state of one embodiment of the electric door mechanism for a laser room according to this utility model;
[0049] Figure 3 for Figure 2 Schematic diagram at point A in the diagram;
[0050] Figure 4 This is a schematic diagram of one working state of one embodiment of the electric door mechanism for a laser room installed on the wall of a laser room according to the present invention;
[0051] Figure 5 This is a schematic diagram of another working state of one embodiment of the electric door mechanism for a laser room installed on the wall of the laser room according to the present invention.
[0052] The components include: 1. Door panel assembly; 11. Slider component; 111. Sliding block; 112. Connector; 12. Door body component; 121. First door body; 122. Second door body; 123. Closing part; 2. Guide rail assembly; 21. Movable guide rail; 211. First guide rail; 212. Second guide rail; 3. Drive assembly; 31. Drive component; 32. Transmission component; 4. Auxiliary support assembly; 41. Support column; 42. Mounting component; 5. Support base; 6. Laser room wall. Detailed Implementation
[0053] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0054] It should be noted that if the embodiments of this utility model involve directional indicators (such as up, down, left, right, front, back, etc.), the directional indicators are only used to explain the relative positional relationship and movement of the components in a specific posture. If the specific posture changes, the directional indicators will also change accordingly.
[0055] Furthermore, if the embodiments of this utility model involve descriptions such as "first" or "second," these descriptions are for descriptive purposes only and should not be construed as indicating or implying their relative importance or implicitly specifying the number of technical features indicated. Therefore, a feature defined with "first" or "second" may explicitly or implicitly include at least one of those features. Additionally, the use of "and / or" or "and / or" throughout the text includes three parallel solutions. For example, "A and / or B" includes solution A, solution B, or a solution where both A and B are satisfied simultaneously. Furthermore, the technical solutions of the various embodiments can be combined with each other, but this must be based on the ability of those skilled in the art to implement them. When the combination of technical solutions is contradictory or impossible to implement, it should be considered that such a combination of technical solutions does not exist and is not within the scope of protection claimed by this utility model.
[0056] Please refer to Figure 1-5 One embodiment of this utility model provides an electric door mechanism for a laser room, comprising:
[0057] Door panel assembly 1 is used to block laser radiation generated during the laser room processing.
[0058] The guide rail assembly 2 is used to support the sliding of the door panel assembly 1 and control the working state of the door panel assembly 1;
[0059] Drive component 3 is used to control the working state of guide rail component 2;
[0060] Auxiliary support component 4 is used to connect to the laser room wall 6;
[0061] The door panel assembly 1 is movably mounted on the guide rail assembly 2. The guide rail assembly 2 is connected to the drive assembly 3 and the auxiliary support assembly 4 respectively. The guide rail assembly 2 is connected to the laser room wall 6 through the auxiliary support assembly 4.
[0062] It should be noted that in actual use, the drive component 3 needs to be connected to an external control device to control the working state of the drive component 3, and then control the working state of the guide rail component 2 through the drive component 3, and finally control the working state of the door panel component 1 through the guide rail component 2.
[0063] It should be noted that in actual use, the laser room electric door mechanism can be disassembled and reassembled with the laser room by disassembling and assembling the auxiliary support component 4. That is, by removing the auxiliary support component 4 from one of the laser room walls 6 that has been processed, and then installing the removed auxiliary support component 4 onto another laser room wall 6 that is ready to be processed, the same effect of blocking laser radiation can be achieved.
[0064] It should be noted that in actual use, the guide rail assembly 2 includes at least a movable guide rail 21 and an internally installed movable component. The guide rail assembly 2 can control the working state of the door panel assembly 1 through the movable component. Specifically, the movable component can control the entire door panel assembly 1 to achieve complete free sliding on the movable guide rail 21, that is, any position on the movable guide rail 21 is within the active stroke of the door panel assembly 1.
[0065] In addition, in the guide rail assembly 2, the direction of the movable guide rail 21 can be set to vertical or horizontal, so that the sliding direction of the door panel assembly 1 installed on the movable guide rail 21 can be selected according to the actual processing requirements.
[0066] In actual use, the auxiliary support component 4 can connect the laser room electric door mechanism to the laser room wall 6 as a whole, the drive component 3 can control the working state of the guide rail component 2, and thus accurately control the opening and closing state of the door panel component 1. The door panel component 1 can block laser radiation and prevent laser radiation from causing harm to the surrounding environment and people.
[0067] In this embodiment, through the cooperation of the auxiliary support component 4, the drive component 3, the guide rail component 2, and the door panel component 1, the overall laser room electric door mechanism can be easily disassembled and assembled, enhancing its versatility. Furthermore, the door panel component 1 can slide freely in the vertical or horizontal direction, reducing the limitations on the sliding direction and stroke of the laser room electric door mechanism, further enhancing its versatility. Additionally, it enables smooth and precise movement of the door panel component 1, reducing jamming, shaking, and other abnormalities, thereby extending the equipment's lifespan and improving the user experience and work efficiency of the laser room.
[0068] Compared with the prior art, this utility model has the following advantages:
[0069] 1. The auxiliary support component 4 allows for easy assembly and disassembly of the entire electric door mechanism from the laser room wall 6. The same electric door mechanism can be quickly transferred between different laser rooms, which can improve equipment utilization.
[0070] 2. By adjusting the direction of the movable guide rail 21 in the guide rail assembly 2, it can be set to vertical or horizontal according to processing requirements. With the help of the movable parts, the door panel assembly 1 can be controlled to slide freely in the corresponding direction, which can meet the diverse spatial layout and processing technology requirements. It can be flexibly adapted to long and narrow and tall laser rooms, further improving its versatility.
[0071] 3. By connecting the drive component 3 to an external control device, the operator can directly and precisely control the opening and closing state of the door panel component 1 through the external control device to realize automated door opening and closing. On the one hand, it solves the efficiency problem of manual operation, and on the other hand, it can respond quickly in emergency situations to open and close the door panel quickly.
[0072] 4. Compared with existing moving door mechanisms that are used in conjunction with a complete set of laser processing equipment and systems, this utility model has the obvious advantages of simple structure and relatively low cost.
[0073] In one embodiment, the door panel assembly 1 includes a slider component 11 and a door body component 12. The slider component 11 is mounted on the door body component 12, and the door body component 12 is movably connected to the guide rail assembly 2 through the slider component 11.
[0074] In one embodiment, the door component 12 includes a first door 121 and a second door 122, wherein the ends of the first door 121 and the second door 122 that are close to each other are both closed portions 123.
[0075] In one embodiment, the slider component 11 includes a slider block 111 movably connected to the guide rail assembly 2 and a connector 112 mounted on the slider block 111;
[0076] It should be noted that by setting the door body component 12 on the slider component 11 and installing the slider component 11 on the door body component 12, the first door body 121 and the second door body 122 can be movably connected to the guide rail assembly 2 through the slider component 11, and the friction of the first door body 121 and the second door body 122 moving on the guide rail assembly 2 is reduced, making the overall opening and closing of the door panel assembly 1 easier, and reducing the power requirement of the drive assembly 3 and reducing the energy consumption of the drive assembly 3.
[0077] It should be noted that when the first door 121 and the second door 122 abut against each other, the closing part 123 of the first door 121 and the second door 122 fits tightly. This design can enhance the airtightness of the door component 12, thereby effectively blocking laser radiation leakage and providing a reliable airtight environment for high-precision processing in the laser room. In addition, the good airtightness can also prevent external dust, moisture and other impurities from entering the laser room, which can protect the internal precision processing equipment, reduce the equipment failure rate and reduce maintenance costs.
[0078] In this embodiment, the cooperation between the slider component 11 and the door component 12 can reduce the friction of the door component 12 moving on the guide rail assembly 2, making the overall opening and closing of the door panel assembly 1 easier and reducing the power requirements of the drive assembly 3, thus reducing the energy consumption of the drive assembly 3. On the other hand, it can enhance the airtightness of the door component 12 to effectively block laser radiation leakage and prevent dust, moisture and other impurities from entering, thereby protecting the internal precision processing equipment, reducing the equipment failure rate and reducing maintenance costs.
[0079] In one embodiment, the guide rail assembly 2 includes a movable guide rail 21, a movable component, and a guide rail adjusting component. The movable guide rail 21 is mounted on the guide rail adjusting component, and the movable component is mounted in the movable guide rail 21.
[0080] The movable component is used to cooperate with the drive assembly 3 to control the working state of the movable guide rail 21, and the guide rail adjustment component is used to adjust the pre-working state of the movable guide rail 21.
[0081] It should be noted that the guide rail adjustment component can precisely adjust the pre-working state of the movable guide rail 21 to ensure that the movable guide rail 21 is in a suitable working state. Specifically, the guide rail adjustment component may include adjusting the horizontality and verticality of the guide rail to make the movable guide rail 21 fit the overall structure of the laser room and reduce the operational risks caused by installation errors.
[0082] It should be noted that the movable component can control the working state of the movable guide rail 21 under the control of the drive component 3, and thus control the working state of the door panel assembly 1. Specifically, when the drive component 3 controls the movable component to work, the movable component can drive the movable guide rail 21 to work, and the movable guide rail 21 can drive the door panel assembly 1 to move smoothly and steadily along the predetermined trajectory, realizing fast and precise opening and closing actions, improving the response speed and operation accuracy of the electric door, and meeting the frequent and efficient use needs of the laser room.
[0083] In this embodiment, through the cooperation of the movable guide rail 21, the movable component and the guide rail adjustment component, on the one hand, the working state of the movable guide rail 21 can be precisely adjusted to reduce the operational risks caused by installation errors. On the other hand, the door panel assembly 1 can be controlled to move smoothly and steadily on the movable guide rail 21 to achieve fast and precise opening and closing actions, thereby improving the response speed and operation accuracy of the electric door.
[0084] In one embodiment, the movable guide rail 21 includes a first guide rail 211 and a second guide rail 212, and the movable component is provided inside both the first guide rail 211 and the second guide rail 212;
[0085] It should be noted that the first guide rail 211 and the second guide rail 212 are respectively connected to the two ends of the door panel assembly 1, and the moving parts inside the first guide rail 211 and the second guide rail 212 are all connected to the drive assembly 3.
[0086] In actual use, the drive component 3 controls the movable part to work, and the movable part controls the first guide rail 211 and the second guide rail 212 to enter the working state simultaneously, so as to drive the door panel assembly 1 to slide on the first guide rail 211 and the second guide rail 212 to complete the opening and closing action of the door panel assembly 1.
[0087] In one embodiment, the drive assembly 3 includes a drive member 31 and a transmission member 32, one end of the transmission member 32 is connected to the drive member 31, and the other end of the transmission member 32 is connected to the movable member.
[0088] In one embodiment, the movable guide rail 21 is a chain guide rail, and the sliding block 111 of the first door body 121 and the sliding block 111 of the second door body 122 are respectively located at the front and rear ends of the chain guide rail. The guide rail adjusting component includes a tension adjusting component and a parallelism adjusting component, and both the tension adjusting component and the parallelism adjusting component are disposed at the bottom of the movable guide rail 21.
[0089] It should be noted that the sliding block 111 of the first door body 121 and the sliding block 111 of the second door body 122 are located at the front and rear ends of the chain guide rail, respectively. Specifically, the moving part can be a sprocket, and the drive component 3 can be a dual-axis motor. By controlling the forward and reverse rotation of the dual-axis motor, the sprocket can be driven to rotate forward and reverse synchronously. When the drive component 3 controls the sprocket to rotate, the sprocket drives the chain guide rail to work, and the sliding block 111 of the first door body 121 and the sliding block 111 of the second door body 122 move in opposite directions to control the opening and closing state of the door panel assembly 1.
[0090] It should be noted that the structure of the tension adjustment component and the parallel adjustment component is not limited, as long as they can adjust the tension and parallelism of the chain guide rail.
[0091] In this embodiment, by setting the movable guide rail 21 as a chain guide rail, and setting the sliding block 111 of the first door body 121 and the sliding block 111 of the second door body 122 at the front and rear ends of the chain guide rail respectively, the synchronous reverse movement of the two doors can be achieved by controlling the same drive component 3, thereby controlling the opening and closing state of the door panel component 1.
[0092] In one embodiment, the auxiliary support assembly 4 includes a support column 41 and a mounting member 42, the mounting member 42 being mounted at both ends of the support column 41, and the support column 41 being mounted on the guide rail assembly 2 via the mounting member 42;
[0093] In this solution, the cooperation between the support column 41 and the mounting component 42 facilitates the connection between the support column 41 and the guide rail assembly 2 and the laser room wall 6, thereby ensuring the stability of the connection and facilitating the installation, disassembly and subsequent maintenance of the overall laser electric door.
[0094] In one embodiment, both the guide rail assembly 2 and the drive assembly 3 are provided with a support base 5 at their bottoms;
[0095] In this embodiment, the support base 5 can increase the contact area between the overall laser room electric door and the installation surface, thereby evenly distributing the weight of the guide rail assembly 2 and the drive assembly 3, reducing the pressure on the installation part, preventing damage to the ground due to excessive local pressure, or unstable equipment installation. In addition, the support base 5 can absorb some of the vibration generated by the operation of the equipment, thereby reducing the transmission of vibration to the surrounding environment and achieving the effect of noise reduction.
[0096] The overall structure and working principle of a preferred embodiment of this utility model are described below:
[0097] The driving component 31 is specifically a dual-axis motor, the transmission component 32 is specifically a telescopic universal coupling, the guide rail assembly 2 specifically includes a first chain guide rail and a second chain guide rail, the chain guide rail is provided with a movable component, the movable component specifically includes a sprocket and a sprocket drive shaft, and the door panel assembly 1 includes a first door body 121 and a second door body 122.
[0098] The dual-axis motor is connected to the sprocket drive shaft in the first and second chain guides via a telescopic universal coupling. The sprocket drive shaft is connected to the sprocket, and the sprocket is connected to the corresponding chain guide. Sliding blocks 111 are connected to the chain guides. The first door 121 and the second door 122 are movably connected to the first and second chain guides via two sliding blocks 111 located at the front end of the chain guide and two sliding blocks 111 located at the rear end of the chain guide, respectively. The auxiliary support assembly 4 is set on the top of the first and second chain guides. The guide rail assembly 2 is installed on the laser room wall 6 via the auxiliary support assembly 4.
[0099] When the dual-axis motor receives a positive working signal from an external control device, it can simultaneously control the sprocket output shafts in the first and second chain guides to rotate synchronously in the forward direction via a telescopic universal coupling. This drives the sprockets to rotate synchronously in the forward direction, and the sprockets drive the corresponding chain guides to rotate synchronously in the forward direction. Ultimately, this controls the first door 121 and the second door 122 to move closer to each other until the closing part 123 comes into contact and stops. When the dual-axis motor receives a positive working signal from an external control device, the aforementioned working process is reversed, but the working principle is the same.
[0100] The above description is only a preferred embodiment of the present utility model and does not limit the patent scope of the present utility model. All equivalent structural transformations made under the inventive concept of the present utility model using the contents of the present utility model specification and drawings, or direct / indirect applications in other related technical fields, are included within the patent protection scope of the present utility model.
Claims
1. A laser room electric door mechanism, characterized in that, include: Door panel assembly, used to block laser radiation generated during the laser room processing; The guide rail assembly is used to support the sliding of the door panel assembly and control the working status of the door panel assembly; The drive component is used to control the working state of the guide rail assembly; Auxiliary support components are used to connect to the walls of the laser room; The door panel assembly is movably mounted on the guide rail assembly, the guide rail assembly is connected to the drive assembly and the auxiliary support assembly respectively, and the guide rail assembly is connected to the laser room wall through the auxiliary support assembly.
2. The laser room electric door mechanism as described in claim 1, characterized in that, The door panel assembly includes a slider component and a door body component. The slider component is mounted on the door body component, and the door body component is movably connected to the guide rail assembly through the slider component.
3. The laser room electric door mechanism as described in claim 2, characterized in that, The door component includes a first door and a second door, and the ends of the first door and the second door that are close to each other are closed portions.
4. The laser room electric door mechanism as described in claim 3, characterized in that, The slider component includes a slider block movably connected to the guide rail assembly and a connector mounted on the slider block.
5. The laser room electric door mechanism as described in claim 4, characterized in that, The guide rail assembly includes a movable guide rail, a movable component, and a guide rail adjusting component. The movable guide rail is mounted on the guide rail adjusting component, and the movable component is mounted in the movable guide rail. The movable component is used to cooperate with the drive assembly to control the working state of the movable guide rail, and the guide rail adjustment component is used to adjust the pre-working state of the movable guide rail.
6. The laser room electric door mechanism as described in claim 5, characterized in that, The movable guide rail includes a first guide rail and a second guide rail, and the movable component is provided inside both the first guide rail and the second guide rail.
7. The laser room electric door mechanism as described in claim 5, characterized in that, The drive assembly includes a drive component and a transmission component, one end of the transmission component is connected to the drive component, and the other end of the transmission component is connected to the movable component.
8. The laser room electric door mechanism as described in claim 7, characterized in that, The movable guide rail is a chain guide rail. The sliding block of the first door and the sliding block of the second door are respectively located at the front and rear ends of the chain guide rail. The guide rail adjusting component includes a tension adjusting component and a parallelism adjusting component, both of which are located at the bottom of the movable guide rail.
9. The laser room electric door mechanism as described in claim 1, characterized in that, The auxiliary support assembly includes a support column and mounting components. The mounting components are installed at both ends of the support column, and the support column is installed on the guide rail assembly via the mounting components.
10. The laser room electric door mechanism as described in claim 1, characterized in that, Both the guide rail assembly and the drive assembly have a support base at their bottom.