Photovoltaic laminated piece framing machine
By designing a photovoltaic laminator framing machine with a movable work platform and a rotating lifting device, the problem of traditional framing machines being unable to adapt to diverse photovoltaic module sizes has been solved, achieving efficient and flexible framing operations and a stable production process.
Patent Information
- Application Number
- CN202422617965.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-28
- Publication Date
- 2025-12-23
- Estimated Expiration
- 2034-10-28
AI Technical Summary
Traditional photovoltaic laminator framing machines are difficult to adapt to the diverse sizes and shapes of photovoltaic modules, resulting in insufficient production flexibility and compatibility, which affects production efficiency.
A photovoltaic laminate framing machine was designed, which adopts a movable work platform and combines a rotating device and a lifting device to realize manual adjustment of the size and height of the work platform. By adjusting the extension and retraction of the main platform and the sub-platform, it can adapt to the framing requirements of photovoltaic laminates of different sizes.
It improves the flexibility and production efficiency of photovoltaic laminate framing operations, reduces the complexity and time cost of manual operation, and enhances the stability of the framing process and product quality.
Smart Images

Figure CN223714508U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The application belongs to the technical field of photovoltaic module processing equipment, and particularly relates to a photovoltaic laminated piece framing machine. BACKGROUND
[0002] With the rapid development of the photovoltaic industry, the size specifications and shapes of photovoltaic modules are increasingly diversified. In the traditional photovoltaic laminated piece framing machine, a fixed workbench is usually designed. However, such a platform has been difficult to meet the high requirements of flexibility, compatibility and production efficiency on the production line. CONTENT OF THE INVENTION
[0003] The application aims to at least solve one of the technical problems existing in the prior art. To this end, the application provides a photovoltaic laminated piece framing machine, which is suitable for photovoltaic laminated pieces of various specifications and meets the framing requirements of photovoltaic laminated pieces of different sizes.
[0004] In a first aspect, the application provides a photovoltaic laminated piece framing machine, comprising:
[0005] a base;
[0006] a lifting device installed on the base;
[0007] a rotating device installed on the output end of the lifting device;
[0008] a workbench horizontally installed on the top of the rotating device and having a support surface for placing a photovoltaic laminated piece to be framed; wherein the rotating device is configured to drive the workbench to rotate vertically, the lifting device is configured to drive the workbench to move vertically, and the workbench comprises multiple parts that are relatively movable so that the area of the support surface is different in multiple states.
[0009] The photovoltaic laminated piece framing machine according to the application significantly improves the flexibility of photovoltaic laminated piece framing operations through the design of the movable workbench, is suitable for photovoltaic laminated pieces of various specifications, and meets the framing requirements of photovoltaic laminated pieces of different sizes. In combination with the settings of the rotating device and the lifting device, manual adjustment of the size and height of the workbench and rotation and immediate movement of the workbench on the horizontal plane are realized, which greatly improves the production efficiency while reducing the complexity and time cost of manual operation.
[0010] According to an embodiment of the application, the multiple parts comprise:
[0011] a main table surface, and the rotating device is connected to the bottom surface of the main table surface;
[0012] A sub-table is installed on at least one side of the main table, and the sub-table is slidingly installed on the bottom surface of the main table, so that the overlapping area of the main table and the sub-table is different in different states.
[0013] According to the photovoltaic laminated frame assembling machine, the size of the supporting surface can be conveniently adjusted to adapt to photovoltaic laminates of different sizes. When a large-area supporting surface is not needed, the sub-table can be slid to be completely hidden under the main table, thereby facilitating efficient frame assembling work in a limited working area.
[0014] According to an embodiment of the present application, the main table is provided with the sub-table at both ends in the length direction, and the two sub-tables are symmetrically arranged relative to the main table.
[0015] According to the photovoltaic laminated frame assembling machine, the sub-table is installed at both ends of the main table in the length direction, so that the length of the working platform can be adjusted, and the photovoltaic laminated frame assembling machine can be adapted to photovoltaic laminates of different lengths. In combination with the design that the two sub-tables are symmetrically arranged relative to the main table, the photovoltaic laminated frame assembling machine can be balanced and stable when processing photovoltaic laminates, thereby reducing errors and deviations in the frame assembling process and improving product quality.
[0016] According to an embodiment of the present application, the length L1 of the main table and the length L2 of the working platform satisfy: 0 < L1 ≤ 1000 mm; 0 < L2 ≤ 1800 mm.
[0017] According to an embodiment of the present application, the working platform further comprises:
[0018] A limiting structure is installed on the bottom surface of the main table, and is used to limit the limit sliding stroke of the sub-table.
[0019] According to an embodiment of the present application, the working platform further comprises:
[0020] A slide rail is installed on the main table.
[0021] A sliding member is slidingly matched with the slide rail in the length direction of the working platform, and the sub-table is slidingly installed on the main table through the sliding member.
[0022] According to an embodiment of the present application, the working platform further comprises:
[0023] A first self-locking mechanism is used to lock the sub-table at the current position when the working platform is adjusted to the target length.
[0024] According to one embodiment of the present application, the rotating device comprises:
[0025] a central shaft fixedly connected to the lifting device;
[0026] a rotating guide column pivotally sleeved outside the central shaft, and a top surface of the rotating guide column is connected to a bottom surface of the working platform;
[0027] a first support, and the working platform is supported on the first support.
[0028] According to one embodiment of the present application, the rotating device further comprises:
[0029] a second self-locking mechanism for locking the rotating guide column at a current position when the working platform is rotated to a target angle.
[0030] According to one embodiment of the present application, the lifting device comprises:
[0031] a frame fixedly connected to the base;
[0032] a rocker assembly installed on the frame, the rocker assembly comprising a rocker and a rocker disc connected to an output end of the rocker, and the rocker disc is provided with a screw transmission part;
[0033] a lifting guide column, a top portion of the lifting guide column is fixedly connected to the rotating device, and the lifting guide column is provided with a rack, and the lifting guide column moves up and down along the frame through cooperation between the screw transmission part and the rack.
[0034] According to one embodiment of the present application, the base comprises:
[0035] a second support, and the lifting device is supported on the second support;
[0036] a universal wheel installed at a bottom portion of the second support.
[0037] Additional aspects and advantages of the present application will be in part apparent and in part pointed out hereinafter. BRIEF DESCRIPTION OF DRAWINGS
[0038] The above and / or additional aspects and advantages of the present application will become apparent and be readily appreciated from the following description, including the accompanying drawings, wherein:
[0039] Figure 1 is a structural schematic diagram of a photovoltaic laminated frame assembling machine provided by an embodiment of the present application;
[0040] Figure 2is a structural schematic view of a work platform provided by an embodiment of the present application;
[0041] Figure 3 is a structural schematic view of a work platform provided by an embodiment of the present application;
[0042] Figure 4 is a structural schematic view of a work platform and a rotating device provided by an embodiment of the present application;
[0043] Figure 5 is a side view of a central shaft and a lifting device provided by an embodiment of the present application;
[0044] Figure 6 is a back view of a central shaft and a lifting device provided by an embodiment of the present application;
[0045] Figure 7 is a structural schematic view of a base provided by an embodiment of the present application.
[0046] Reference Signs:
[0047] A photovoltaic laminated frame mounting machine 10;
[0048] A work platform 11, a main table top 111, a sub table top 112, a sliding piece 113, a limiting structure 114, a handle 115;
[0049] A rotating device 12, a central shaft 121, a rotating guide column 122, a first support piece 123, a second self-locking mechanism 124, a protective piece 125;
[0050] A lifting device 13, a frame 131, a rocker 132, a rocker disc 133, a screw transmission part 1331, a lifting guide column 134, a rack 1341, a caliper 135;
[0051] A base 14, a second support piece 141, a universal wheel 142. DETAILED DESCRIPTION
[0052] The embodiments of the present application are described in detail below, examples of which are shown in the accompanying drawings, wherein the same or similar notations represent the same or similar elements or elements having the same or similar functions throughout. The embodiments described below by referring to the drawings are exemplary, only for explaining the present application, and cannot be understood as a limitation of the present application.
[0053] The present application provides a photovoltaic laminated frame mounting machine 10.
[0054] The photovoltaic laminated frame mounting machine 10 is suitable for assisting the frame mounting operation of the photovoltaic laminated frame. Exemplarily, the frame mounting mode of the photovoltaic laminated frame mounting machine 10 of the present application is manual installation by manpower.
[0055] Reference is made below to Figures 1-7A photovoltaic laminated frame assembling machine 10 according to an embodiment of the present application is described.
[0056] In some embodiments, as shown in Figure 1 The photovoltaic laminated frame assembling machine 10 includes a base 14, a lifting device 13, a rotating device 12 and a working platform 11.
[0057] The lifting device 13 is installed on the base 14, the rotating device 12 is installed on the output end of the lifting device 13, and the working platform 11 is horizontally installed on the top of the rotating device 12. The working platform 11 has a support surface for placing the photovoltaic laminated frame to be framed. The rotating device 12 is configured to drive the working platform 11 to rotate vertically, the lifting device 13 is configured to drive the working platform 11 to move vertically, and the working platform 11 includes multiple parts that can move relative to each other to change the area of the support surface in multiple states.
[0058] The base 14 serves as the support structure of the entire photovoltaic laminated frame assembling machine 10 and bears various forces and weights during the working process of the photovoltaic laminated frame assembling machine 10. The base 14 can be made of high-strength materials such as steel or cast iron.
[0059] The base 14 can be a fixed base or a movable base, which is not limited here.
[0060] For example, in some embodiments, as shown in Figure 1 and Figure 7 The base 14 is designed as a movable base.
[0061] The lifting device 13 is responsible for driving the working platform 11 to move vertically. The photovoltaic laminated frame assembling machine 10 according to the present application is a manual frame assembling machine, and the lifting device 13 can realize the lifting of the working platform 11 by manually rotating a handle, pulling a lever or other manual auxiliary components.
[0062] Exemplarily, the height of the working platform 11 can be varied between 800 mm and 1200 mm.
[0063] Specifically, the height of the working platform 11 can be 800 mm, 960 mm, 1000 mm, 1105 mm, 1200 mm or other values between 800 mm and 1200 mm, which is not limited here.
[0064] Through the setting of the lifting device 13, the relevant operating personnel can easily adjust the height of the working platform 11 to adapt to different working environments and the height conditions of the relevant operating personnel.
[0065] The rotating device 12 can drive the work platform 11 to rotate 360° around the vertical axis. The photovoltaic laminate framing machine 10 based on this application is a manual framing machine. The rotating device 12 can be used to raise and lower the work platform 11 by manually rotating the crank, turning the wheel, or other manual auxiliary parts. Alternatively, with the structural support of the rotating device, the relevant operators can directly rotate the work platform 11 around the rotation axis of the rotating device.
[0066] The work platform 11 forms a support surface, which is the location for placing the photovoltaic laminate and performing the framing operation. The main body of the work platform 11 can be made of high-strength lightweight materials, such as aluminum alloy, while the bottom of the work platform 11 can be made of steel structure or heavy-duty aluminum alloy to maintain stability under high loads.
[0067] In some implementations, the edges of the work platform 11 may be covered with anti-slip pads to improve safety during operation.
[0068] In some implementations, the support surface may be covered with a soft protective material as needed to reduce the risk of damage to the photovoltaic modules during the framing process.
[0069] It should be noted that the design of the height, rotation speed and corresponding adjustment mechanism of the work platform 11 should take into account the comfort of the relevant operators, and minimize the occurrence of strenuous movements such as bending over and lifting during operation.
[0070] In actual implementation, such as Figure 2 and Figure 3 As shown, the work platform 11 can be composed of multiple detachable or foldable parts, where "multiple" refers to two or more parts. These parts can be connected by hinges, sliding mechanisms, or other connectors. A certain number of these parts are allowed to be unfolded and folded at any time to change the area of the support surface. In this case, the adjustable work platform 11 can adjust the number of parts and the overall layout of the multiple parts according to the size and shape of the photovoltaic laminate. This design allows the photovoltaic laminate framing machine 10 to adapt to photovoltaic laminates of different sizes and shapes, improving its versatility and efficiency.
[0071] The photovoltaic laminate framing machine 10 provided in this application significantly improves the flexibility of photovoltaic laminate framing operations through the design of the movable work platform 11. It is applicable to photovoltaic laminates of various specifications and meets the framing requirements of photovoltaic laminates of different sizes. Combined with the setting of the rotating device 12 and the lifting device 13, it realizes the manual adjustment of the size and height of the work platform 11 as well as the rotation and instant movement of the work platform 11 on the horizontal plane, which greatly improves production efficiency while reducing the complexity and time cost of manual operation.
[0072] In some embodiments, as shown in Figure 2 and Figure 3 the plurality of parts include a main table 111 and a sub table 112.
[0073] The rotating device 12 is connected to the bottom surface of the main table 111; at least one side of the main table 111 is provided with the sub table 112, and the sub table 112 is slidingly installed on the bottom surface of the main table 111, so that the overlapping area of the main table 111 and the sub table 112 is different in different states.
[0074] The rotating device 12 can be connected to the bottom surface of the main table 111 by means of bolt connection, buckle connection, riveting or welding, etc., which is not limited here.
[0075] For example, in some embodiments, the rotating device 12 can be connected to the bottom surface of the main table 111 by means of bolt connection.
[0076] In this embodiment, as shown in Figure 2 and Figure 3 the main table 111 is rectangular, and the opposite two sides of the main table 111 are provided with the sub table 112.
[0077] In other embodiments, one side of the main table 111 is provided with the sub table 112.
[0078] In yet other embodiments, each side of the main table 111 is provided with the sub table 112.
[0079] The driving mode of the sub table 112 can be manual, electric or a combination of electric and manual, which is not limited here.
[0080] For example, in some embodiments, as shown in Figure 2 and Figure 3 the driving mode of the sub table 112 is manual, and in order to cooperate with the manual operation mode, the working platform 11 can further include a handle 115, which can be installed at the outward end of the sub table 112 along the length direction of the working platform 11, and the relevant operating personnel can hold the handle 115 to push or pull the sub table 112.
[0081] It can be understood that, as shown in Figure 2 and Figure 3As shown, the main table 111 is the main part of the working platform 11, which is used to directly support the photovoltaic laminates, and the sub-table 112 is the movable part of the working platform 11, which can be adjusted in position as needed. The main table 111 and the sub-table 112 jointly constitute the support surface for placing the photovoltaic laminates to be framed. The relevant operating personnel can push or pull the sub-table 112 to realize the telescopic movement of the sub-table 112 relative to the main table 111, and can change the overlapping area of the main table 111 and the sub-table 112, so as to adjust the size of the support surface.
[0082] The photovoltaic laminate framing machine 10 provided by the embodiment of the present application can conveniently adjust the size of the support surface to adapt to photovoltaic laminates of different sizes. When a large-area support surface is not needed, the sub-table 112 can be slid to be completely hidden under the main table 111, thereby facilitating efficient framing work in a limited working area.
[0083] In some embodiments, as shown in Figure 2 and Figure 3 The main table 111 is provided with the sub-table 112 at both ends in the length direction, and the two sub-tables 112 are symmetrically arranged relative to the main table 111.
[0084] In actual implementation, the main table 111 can be provided with an interface or a sliding rail at both ends in the length direction for connecting the sub-table 112. The sub-table 112 can be designed to match the shape and size of the main table 111. The bottom of the main table 111 can be equipped with a sliding mechanism, such as a sliding block, a sliding rail or a roller, etc., so as to slide relative to the main table 111. The two sub-tables 112 are symmetrically arranged relative to the main table 111, in other words, the shape, size and mounting position of the two sub-tables 112 are mirror-symmetrically arranged under the condition that the two sub-tables 112 are in the same sliding stroke. One of the two sub-tables 112 can be pulled to adjust the length of the working platform 11, or both of the two sub-tables can be pulled to adjust the length of the working platform 11, so as to match the length of the working platform 11 to the size of the photovoltaic laminates.
[0085] The photovoltaic laminate framing machine 10 provided by the embodiment of the present application is provided with the sub-table 112 at both ends in the length direction of the main table 111, which realizes the telescopic adjustment of the length of the working platform 11, so that the photovoltaic laminate framing machine 10 can be adapted to photovoltaic laminates of different lengths. In combination with the design that the two sub-tables 112 are symmetrically arranged relative to the main table 111, the photovoltaic laminate framing machine 10 can keep balance and stability when processing photovoltaic laminates, thereby helping to reduce errors and deviations in the framing process and improve product quality.
[0086] In some embodiments, as shown inFigure 2 and Figure 3 As shown in
[0087] Specifically, the length L1 of the main table 111 can be 150 mm, 384 mm, 500 mm, 762.4 mm, 928.25 mm, 1000 mm, or other values between 0 mm and 1000 mm.
[0088] The length L2 of the working platform 11 can be 300 mm, 826 mm, 1000 mm, 1432.4 mm, 1500 mm, 1753.67 mm, 1800 mm, or other values between 0 mm and 1800 mm.
[0089] The photovoltaic laminated frame assembling machine 10 provided by the embodiments of the present application limits the length L1 of the main table 111 and the length L2 of the working platform 11, allowing the photovoltaic laminated frame assembling machine 10 to provide sufficient support area for the main table 111 when processing shorter length photovoltaic laminates, even without installing the sub-table 112, and enabling the photovoltaic laminated frame assembling machine 10 to process larger size photovoltaic laminates, and by sliding the sub-table 112 and unfolding the working platform 11, the photovoltaic laminated frame assembling machine 10 can adapt to laminates of different lengths, enhancing the versatility and adaptability of the frame assembling machine, and helping to perform efficient frame assembling work in a limited working area, improving the space utilization.
[0090] In some embodiments, as shown in Figure 2 and Figure 3 The working platform 11 further comprises a limiting structure 114.
[0091] The limiting structure 114 is installed on the bottom surface of the main table 111, and the limiting structure 114 is used to limit the extreme sliding stroke of the sub-table 112.
[0092] The limiting structure 114 can be designed as a limiting block, a limiting baffle, a limiting switch, or a limiting sensor matched with a guide rail or a sliding rail system.
[0093] For example, in some embodiments, as shown in Figure 2 and Figure 3 The limiting structure 114 can be designed as a limiting block.
[0094] The limiting structure 114 can be provided with one or more, and more means two or more.
[0095] For example, in some embodiments, as shown in Figure 2 and Figure 3As shown, the working platform 11 includes two sub-tables 112 and four limiting structures, each sub-table 112 is used in cooperation with two limiting structures 114.
[0096] In actual implementation, the limiting structure 114 functions to limit the further sliding of the sub-table 112 when the sub-table 112 is retracted inward to the limit position through physical contact or electrical signal triggering, so as to prevent it from exceeding the predetermined travel range, thereby avoiding the situation of directly falling off or interfering with other structures. In addition, the limiting structure 114 can also be equipped with a buffer device such as a rubber pad, a spring, etc. to reduce the impact and vibration of the sub-table 112 at the limit position.
[0097] The photovoltaic laminated frame assembling machine 10 provided by the embodiment of the present application, through the setting of the limiting structure 114, makes the sub-table 112 not exceed the predetermined travel range in the process of retracting and sliding inward, thereby reducing the probability of the sub-table 112 directly falling off or interfering with other structures, and further avoiding the potential collision and damage risk.
[0098] In some embodiments, as shown in Figure 2 and Figure 3 The working platform 11 further includes a slide rail and a sliding piece 113.
[0099] The slide rail is installed on the main table 111; the sliding piece 113 is in sliding cooperation with the slide rail along the length direction of the working platform 11, and the sub-table 112 is slidably installed on the main table 111 through the sliding piece 113.
[0100] The slide rail can be installed on the bottom surface or side surface of the main table 111 along the length direction of the working platform 11, to provide a smooth and stable sliding track for the sliding piece 113. In addition, the slide rail can also be equipped with a lubrication system such as grease lubrication or self-lubricating material, etc. to reduce friction and wear, and improve sliding efficiency.
[0101] The sliding piece 113 is in sliding cooperation with the slide rail, and the design of the pulley allows it to move smoothly on the slide rail, while having certain load-bearing capacity and wear resistance. When the sub-table 112 slides on the slide rail through the sliding piece 113, the cooperation between the two should be smooth and without jamming, and can be easily unlocked and relocked when needed.
[0102] Among them, the sliding piece can include but is not limited to a telescopic pulley or a sliding block, etc. which is not limited here.
[0103] For example, in some embodiments, the sliding piece is a telescopic pulley.
[0104] The photovoltaic laminated frame assembling machine 10 provided by the embodiment of the present application can easily adjust the length of the working platform 11 according to the requirement through the accurate cooperation of the slide rail and the sliding piece 113, thereby improving the adaptability of the photovoltaic laminated frame assembling machine 10 to photovoltaic laminates of different sizes, and facilitating the layout and adjustment of the relevant operating personnel in the operating process.
[0105] In some embodiments, the working platform 11 further comprises a first self-locking mechanism.
[0106] The first self-locking mechanism is used to lock the sub-platform 112 at the current position when the working platform 11 is stretched to the target length
[0107] The first self-locking mechanism is designed to automatically or manually lock the sub-platform 112 at the current position after sliding to the required position, preventing accidental sliding.
[0108] The first self-locking mechanism should be easy to operate while providing sufficient locking force to maintain the stability of the sub-platform 112 during the operation. Specifically, the first self-locking mechanism can include but is not limited to a ratchet-pawl mechanism, a locking bolt, a spring-loaded lock, or other reliable locking mechanisms, which are not limited here.
[0109] In actual implementation, when the sub-platform 112 slides to the target length, the operator can activate the first self-locking mechanism through manual operation (such as rotating the locking bolt, pressing the lock button, etc.) or automatic sensing (such as sensor triggering the locking mechanism). Once locked, the sub-platform 112 will remain at the current position until the operator unlocks it again.
[0110] The photovoltaic laminated frame assembling machine 10 provided by the embodiment of the present application can keep the working platform 11 stable after stretching to the target length through the accurate cooperation of the slide rail and the sliding piece 113, and the locking function of the first self-locking mechanism, preventing accidental sliding of the sub-platform 112 during the operation, thereby improving the safety and stability in the operating process. The design of the sliding piece 113 allows the sub-platform 112 to slide flexibly on the slide rail, so that the length of the working platform 11 can be easily adjusted according to the requirement, thereby improving the adaptability of the photovoltaic laminated frame assembling machine 10 to photovoltaic laminates of different sizes, and facilitating the layout and adjustment of the relevant operating personnel in the operating process.
[0111] In some embodiments, as shown in Figure 4 The rotating device 12 comprises a central shaft 121, a rotating guide column 122, and a first support 123.
[0112] The central shaft 121 is fixedly connected to the lifting device 13; the rotating guide column 122 is pivotally sleeved outside the central shaft 121, and the top surface of the rotating guide column 122 is connected to the bottom surface of the working platform 11; and the working platform 11 is supported on the first support 123.
[0113] The rotating guide column 122 can rotate around the central shaft 121 as the rotation axis, and the central shaft 121 can be fixedly connected to the top or a specified position of the lifting device 13 by means of bolt connection, interference fit or direct welding.
[0114] The driving mode of the rotating guide column 122 can be manual, electric or a combination of electric and manual, which is not limited here.
[0115] For example, in some embodiments, as shown in Figure 4 , the driving mode of the rotating guide column 122 is manual, i.e. the relevant operating personnel can directly rotate the working platform 11 or the rotating guide column 122 by hand to realize 360° rotation of the working platform 11 in the horizontal plane.
[0116] The rotating guide column 122 can be designed as a hollow cylindrical structure, and the inner diameter of the rotating guide column 122 is slightly larger than the outer diameter of the central shaft 121, so as to be sleeved on the central shaft 121 and be freely pivotable. The bottom of the rotating guide column 122 can be provided with a bearing or a shaft sleeve to reduce the friction between the rotating guide column 122 and the central shaft 121, improve the smoothness and durability of rotation, and allow the relevant operating personnel to easily rotate the photovoltaic module for multi-angle installation or inspection. In addition, the top surface of the rotating guide column 122 can be designed with an interface such as a bolt hole or a slot for connecting to the bottom surface of the working platform 11.
[0117] The first support 123 can be provided with one or more, and the more means two or more.
[0118] For example, in some embodiments, as shown in Figure 4 , the first support 123 is provided with four.
[0119] Exemplarily, as shown in Figure 4 , the first support 123 is in the form of a rod and is obliquely supported under the working platform 11, specifically, the plurality of first supports 123 are connected between the rotating guide column 122 and the main table top 111, and the plurality of first supports 123 are distributed in a circumferential direction of the rotating guide column 122.
[0120] In actual implementation, as shown in Figure 4As shown, the relevant operating personnel can directly manually rotate the working platform 11, so that the working platform 11, the rotating guide column 122 and the first support 123 are synchronously rotated around the central shaft 121, and if the working platform 11 needs to stop rotating, the relevant operating personnel can directly stop it by hand or can rely on other components to free one hand of the relevant operating personnel.
[0121] The photovoltaic laminated frame assembling machine 10 provided by the embodiment of the present application can rotate the working platform 11 around the central shaft 121 through the pivotal design of the rotating guide column 122, realize multi-angle operation, greatly improve the flexibility of the photovoltaic laminated frame assembling machine 10, and make the photovoltaic laminated frame assembling machine 10 adapt to processing requirements of different directions and angles, and further provide the reliability and stability of the working platform 11 through the arrangement of the first support 123.
[0122] In some embodiments, as shown in Figure 4 The rotating device 12 further comprises a protective structure.
[0123] The protective structure is sleeved outside the rotating guide column 122.
[0124] The protective structure can be made of light and solid materials, such as aluminum alloy, stainless steel or high-strength plastic, etc., which can provide sufficient protection without adding too much weight to affect the flexibility of the rotating device 12.
[0125] The protective structure can be designed as a sleeve structure sleeved outside the rotating guide column 122, and the length of the protective structure should be determined according to the exposed part of the rotating guide column 122 and the required safety protection range.
[0126] The connection mode between the protective structure and the rotating guide column 122 can include but is not limited to interference fit, bonding or clamping, etc., which is not limited here.
[0127] For example, in some embodiments, the connection mode between the protective structure and the rotating guide column 122 is interference fit.
[0128] The photovoltaic laminated frame assembling machine 10 provided by the embodiment of the present application can protect the relevant operating personnel from the rotating guide column 122 and the potential dangerous area around it through the arrangement of the protective structure, thereby reducing the risk of injury caused by accidental contact or collision, resisting wear and corrosion in daily use, and prolonging the service life of the rotating device 12.
[0129] In some embodiments, as shown in Figure 4 The rotating device 12 further comprises a second self-locking mechanism 124.
[0130] The second self-locking mechanism 124 is used to lock the rotating guide column 122 at the current position when the working platform 11 rotates to the target angle.
[0131] The second self-locking mechanism 124 can be of a mechanical type, an electromagnetic type, or a hydraulic type, etc., depending on the application scenario, working condition, and requirements for precision and reliability of the rotating device 12. The mechanical self-locking mechanism can include, but is not limited to, locking pins, locking springs, locking seats, etc., and realizes the locking function through physical contact. The electromagnetic self-locking mechanism realizes locking and unlocking by using electromagnetic force. The hydraulic self-locking mechanism realizes the locking function through a hydraulic cylinder or a hydraulic valve.
[0132] For example, in some embodiments, as shown in Figure 4 , the second self-locking mechanism 124 is of a mechanical type, specifically, the second self-locking mechanism 124 includes a pin.
[0133] In actual implementation, taking the pin as an example of the second self-locking mechanism 124, when the working platform 11 rotates to the target angle, the relevant operating personnel can thread the pin with the threaded holes on the rotating guide column 122 and the central shaft 121, so that the pin is arranged on the rotating guide column 122 and the central shaft 121, thereby locking the rotating guide column 122 at the current position. When unlocking, the relevant operating personnel can gradually rotate the pin out of the threaded holes on the rotating guide column 122 and the central shaft 121 until the pin is completely separated, and then the rotating guide column 122 can continue to rotate.
[0134] The photovoltaic laminated frame assembling machine 10 provided by the embodiments of the present application can lock the working platform 11 at the current position when the working platform 11 rotates to the target angle through the arrangement of the second self-locking mechanism 124, and realizes the omnibearing display and frame assembling, glue supplementing, etc. of the photovoltaic laminated, which greatly facilitates the operation and visual angle adjustment of the frame assembling operation, thereby improving the production efficiency.
[0135] In some embodiments, as shown in Figure 5 and Figure 6 , the lifting device 13 includes a frame 131, a rocker assembly, and a lifting guide column 134.
[0136] The frame 131 is fixedly connected to the base 14; the rocker assembly is installed on the frame 131, and the rocker assembly includes a rocker 132 and a rocker disc 133 connected to the output end of the rocker 132, and the rocker disc 133 is provided with a screw transmission part 1331; the top of the lifting guide column 134 is fixedly connected to the rotating device 12, and the lifting guide column 134 is provided with a rack 1341, and the lifting guide column 134 moves up and down along the frame 131 through the cooperation between the screw transmission part 1331 and the rack 1341.
[0137] The frame 131 can be fixedly connected to the base 14 by bolting, riveting, welding or other fastening methods, and the rocker assembly can be installed on the frame 131 by bolting, riveting, welding or other fastening methods, which is not limited here.
[0138] The rocker 132 is designed in a form facilitating hand holding and operation, such as an arc-shaped handle or a straight rod handle.
[0139] For example, in some embodiments, as shown in Figure 5 the rocker 132 is designed as a straight rod handle.
[0140] The rocker plate 133 can be designed as a circular or elliptical disc structure, the center of one side of the rocker plate 133 is connected to the output end of the rocker 132, and the surface of the other side of the rocker 132 is provided with a screw transmission part 1331 which can be protrudingly arranged relative to the surface of the rocker 132 and towards the lifting guide column 134.
[0141] For example, in some embodiments, as shown in Figure 6 the rocker plate 133 is designed as a circular disc structure.
[0142] In actual implementation, as shown in Figure 5 and Figure 6 the relevant operating personnel manually rotate the rocker 132 counterclockwise, thereby driving the rocker plate 133 to synchronously rotate counterclockwise, in the process of counterclockwise rotation of the rocker plate 133, the screw transmission part 1331 cooperates with the rack 1341, thereby driving the lifting guide column 134 to be lifted upward, and in turn lifting the height of the work platform 11; similarly, the relevant operating personnel manually rotate the rocker 132 clockwise, thereby driving the rocker plate 133 to synchronously rotate clockwise, in the process of clockwise rotation of the rocker plate 133, the screw transmission part 1331 cooperates with the rack 1341, thereby driving the lifting guide column 134 to move downward, and in turn lowering the height of the workbench.
[0143] The photovoltaic laminated glass framing machine 10 provided by the embodiment of the present application realizes the up and down movement of the lifting guide column 134 through the cooperation of the screw transmission part 1331 and the rack 1341, without the need for a complex transmission mechanism, so that the entire lifting device 13 is compact in structure and easy to maintain, and meanwhile, the screw transmission has a large transmission ratio and precise transmission control, which can increase the stability and accuracy in the lifting process.
[0144] In some embodiments, as shown in Figure 5 and Figure 6 the lifting device 13 can further include a caliper 135.
[0145] The rocker assembly can be installed on the frame 131 by the caliper 135
[0146] The calipers 135 can serve to clamp and secure the rocker assembly in place, and when the rocker assembly is in operation, the calipers 135 can securely hold the rocker assembly to the frame 131, so that the rocker assembly does not shift or slide during rotation, thereby improving the accuracy and safety of the operation. In addition, the design of the calipers 135 needs to take into account the convenience of operation and the stability of the mechanism, so that the rocker assembly can be quickly adjusted or released when needed. Specifically, as shown in Figure 5 the calipers 135 are pulled upward, the rocker assembly is disengaged from the lifting guide column 134.
[0147] The photovoltaic laminated frame mounting machine 10 provided by the embodiments of the present application reduces the risk of accidental sliding of the rocker assembly due to vibration or other external forces through the design of the calipers 135, and increases the stability and reliability of the rocker assembly during lifting.
[0148] In some embodiments, as shown in Figure 7 the base 14 includes a second support 141 and universal wheels 142.
[0149] The lifting device 13 is supported on the second support 141, and the universal wheels 142 are installed at the bottom of the second support 141.
[0150] The second support 141 can be provided with one or more universal wheels 142, and the universal wheels 142 can be matched with one or more, with two or more indicating two or more, and multiple second supports 141 being distributed vertically spaced apart.
[0151] For example, in some embodiments, as shown in Figure 7 the second support 141 is provided with four, and the universal wheels 142 are also provided with four correspondingly.
[0152] Exemplarily, as shown in Figure 7 the second support 141 is in the form of a rod and is obliquely supported below the lifting device 13.
[0153] The universal wheels 142 can be installed at the bottom of the second support 141 by means of bolts or buckles, etc., wherein the universal wheels 142 can have various types to choose from according to their load capacity and use environment, such as rubber wheels, polyurethane wheels, nylon wheels, etc., which are not limited here.
[0154] For example, in some embodiments, the universal wheels 142 are rubber wheels.
[0155] In some embodiments, the universal wheels 142 can be equipped with a braking device, which can lock the universal wheels 142 when needed.
[0156] The photovoltaic laminated frame assembling machine 10 provided by the embodiment of the present application can be easily moved on the ground without manual carrying under the premise of maintaining the stability and bearing capacity of the entire photovoltaic laminated frame assembling machine 10, and the portability and flexibility are greatly improved.
[0157] The terms "first", "second", etc. in the description and claims of the present application are used to distinguish similar objects, and are not used to describe a specific order or sequence. It should be understood that the data thus used can be interchanged under appropriate circumstances, so that the embodiments of the present application can be implemented in an order other than those illustrated or described herein, and the objects distinguished by "first", "second", etc. are generally of a kind and do not limit the number of objects, for example, the first object can be one or more. In addition, "and / or" in the description and claims indicates at least one of the connected objects, and the character " / " generally indicates that the front and rear associated objects are in an "or" relationship.
[0158] In the description of the present application, it should be understood that the orientations or positional relationships indicated by the terms "center", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise", "axial", "radial", "circumferential" and the like are based on the orientations or positional relationships shown in the drawings, and are only for the convenience of describing the present application and simplifying the description, and do not indicate or imply that the devices or elements referred to must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as limiting the present application.
[0159] In the description of the present application, "first feature" and "second feature" can include one or more features.
[0160] In the description of the present application, "a plurality of" means two or more.
[0161] In the description of the present application, "above", "over", and "on" of the first feature to the second feature can include that the first and second features are in direct contact, or that the first and second features are not in direct contact but are in contact through another feature between them.
[0162] In the description of the present application, "above", "over", and "on" of the first feature to the second feature include that the first feature is directly above and obliquely above the second feature, or only indicates that the first feature is higher than the second feature in horizontal height.
[0163] Other configurations of … according to the embodiments of the present application, such as … and …, and operations are known to those skilled in the art, and will not be described in detail here.
[0164] In the description of the application, reference has been made to descriptive terms such as "one embodiment", "some embodiments", "an embodiment", "example", "specific example" or "some examples" etc. Such terminology means that a particular feature, structure, material or characteristic being described is included in at least one embodiment or example of the application. The illustrative appearances of such terminology in various places in the specification does not necessarily refer to the same embodiment or example. Moreover, it is appreciated that the specific features, structures, materials or characteristics can be combined in any suitable manner in one or more embodiments or examples.
[0165] Although embodiments of the present application have been shown and described, it would be appreciated by those skilled in the art that changes, modifications, alternatives and variations to these embodiments could be made without departing from the principles and spirit of the application, the scope of which is defined in the claims and their equivalents.
Claims
1. A photovoltaic laminate framing machine characterized by, The utility model relates to a photovoltaic laminated frame mounting machine, comprising: a base; a lifting device mounted on the base; a rotating device mounted on the output end of the lifting device; a work platform horizontally mounted on the top of the rotating device and having a support surface for placing a photovoltaic laminated frame to be mounted; 2. The photovoltaic laminate framer of claim 1, wherein, wherein the rotating device is configured to drive the work platform to rotate vertically, the lifting device is configured to drive the work platform to move vertically, and the work platform comprises a plurality of parts that are relatively movable to make the area of the support surface different in different states. The plurality of parts comprise: a main table surface, the rotating device being connected to the bottom surface of the main table surface; 3. The photovoltaic laminate framer of claim 2, wherein, a sub-table surface, at least one side of the main table surface being provided with the sub-table surface, the sub-table surface being slidingly mounted on the bottom surface of the main table surface to make the overlapping area of the main table surface and the sub-table surface different in different states.
4. The photovoltaic laminate framer of claim 3, wherein, Both ends of the main table surface along the length direction are provided with the sub-table surface, and the two sub-table surfaces are symmetrically arranged relative to the main table surface.
5. The photovoltaic laminate framer of claim 2, wherein, The length L1 of the main table surface and the length L2 of the work platform satisfy: 0 < L1 < 1000 mm and 0 < L2 < 1800 mm. The work platform further comprises: a limiting structure mounted on the bottom surface of the main table surface and used for limiting the extreme sliding stroke of the sub-table surface.
6. The photovoltaic laminated frame mounting machine according to claim 2, wherein the work platform further comprises: a slide rail mounted on the main table surface; a sliding member slidingly matched with the slide rail along the length direction of the work platform, and the sub-table surface is slidingly mounted on the main table surface through the sliding member; and / or the work platform further comprises:
7. The photovoltaic laminate framer of any of claims 1-6, wherein, a first self-locking mechanism used for locking the sub-table surface at the current position when the work platform is stretched to the target length. The rotating device comprises: a central shaft fixedly connected to the lifting device; a rotating guide column pivotally sleeved outside the central shaft, and the top surface of the rotating guide column is connected with the bottom surface of the work platform; 8. The photovoltaic laminate framer of claim 7, wherein, a first support on which the work platform is supported. The rotating device further comprises:
9. The photovoltaic laminate framer of any of claims 1-6, wherein, a second self-locking mechanism used for locking the rotating guide column at the current position when the work platform is rotated to the target angle. The lifting device comprises: a frame fixedly connected to the base; a rocker assembly mounted on the frame, the rocker assembly comprising a rocker and a rocker disc connected with the output end of the rocker, the rocker disc being provided with a screw transmission part; 10. The photovoltaic laminate framer of any of claims 1-6, wherein, a lifting guide column, the top of the lifting guide column being fixedly connected with the rotating device, and the lifting guide column being provided with a rack, the lifting guide column moving up and down along the frame through the cooperation between the screw transmission part and the rack. The base comprises: a second support on which the lifting device is supported; a universal wheel mounted on the bottom of the second support.