Support mounting robot
By designing a bracket installation robot and using a mobile chassis, jacking mechanism and pitch mechanism to realize the automated installation of workpieces, the problems of safety and low efficiency in manual installation of photovoltaic brackets are solved, and the construction convenience and equipment applicability are improved.
Patent Information
- Application Number
- CN202422934244.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-28
- Publication Date
- 2025-09-12
- Estimated Expiration
- 2034-11-28
AI Technical Summary
The existing photovoltaic bracket installation method mainly relies on manual operation, which has problems such as poor construction safety, low convenience and low efficiency. It is difficult to achieve efficient installation, especially under complex terrain conditions.
A bracket installation robot was designed, which included a mobile chassis, a lifting mechanism, a pitch mechanism and an upper installation mechanism. Through the coordinated work of these mechanisms, the automatic transfer, lifting and installation of the workpiece can be achieved, adapting to different terrains and space limitations.
It realizes the automation of photovoltaic bracket installation, improves construction safety, convenience and efficiency, reduces labor input, and enhances the applicability of equipment in complex environments.
Smart Images

Figure CN223328959U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of photovoltaic bracket installation, and in particular to a bracket installation robot. Background Art
[0002] Photovoltaic mounting systems are specialized brackets used to position, mount, and secure photovoltaic modules in solar photovoltaic power generation systems. These brackets consist of uprights, diagonal beams, and other components mounted on the beams. To ensure the modules face the sun at the optimal angle to capture maximum energy, the mounting position and angle of the brackets must meet certain requirements.
[0003] Generally, photovoltaic modules are laid over large areas in open areas outdoors, even covering mountains, deserts, Gobi, muddy land and other terrains. Faced with different terrain features, specific installation angle requirements and space limitations, on-site installation operations are more difficult and most construction equipment is difficult to use. Therefore, the existing installation method is still mainly manual. During installation, personnel need to frequently climb high and carry out transportation and assembly at higher locations. Not only is the construction safety and convenience poor, but the installation efficiency is also low. Utility Model Content
[0004] The purpose of the present utility model is to provide a bracket installation robot to solve the problems raised in the above-mentioned background technology and improve the safety, convenience and efficiency of bracket installation.
[0005] In order to achieve the above purpose, the utility model adopts the following technical solutions:
[0006] A bracket installation robot includes a mobile chassis, a lifting mechanism, a pitching mechanism, and an upper installation mechanism, wherein:
[0007] A slewing assembly is provided on the mobile chassis, which is used to carry and connect the jacking mechanism and drive the jacking mechanism to rotate around the rotation center of the slewing assembly;
[0008] The lifting mechanism is used to carry and connect the pitching mechanism, and drive the pitching mechanism to rise or fall relative to the mobile chassis;
[0009] The pitching mechanism is used to carry and connect the upper mounting mechanism, and drive the upper mounting mechanism to tilt upward or downward relative to the jacking mechanism;
[0010] The upper loading mechanism is used to carry and fix the workpiece to be installed, and drive the workpiece to translate and flip.
[0011] As an optional solution, a crawler track assembly is provided at the bottom of the mobile chassis, and at least four legs are provided around the mobile chassis, and the length of each leg is adjustable.
[0012] As an optional solution, the jacking mechanism includes a base, a supporting platform and a first driving member. The base is connected to the driving end of the rotating assembly, the pitch mechanism is installed on the supporting platform, the fixed end of the first driving member is installed on the base, the driving end of the first driving member is connected to the supporting platform, and the first driving member is used to drive the supporting platform to rise and fall relative to the base.
[0013] As an optional solution, the pitch mechanism includes a pitch member, an articulated frame and a second driving member. The articulated frame is installed on the lifting mechanism. The middle part of the pitch member is rotatably connected to the articulated frame through a first pin shaft. The fixed end of the second driving member is installed on the lifting mechanism. The driving end of the second driving member is hinged to the part of the pitch member located on one side of the first pin shaft. The second driving member is used to drive the pitch member to rotate around the first pin shaft.
[0014] As an optional solution, the upper loading mechanism includes a forward moving component, a flipping component and a clamping component, wherein:
[0015] The forward moving assembly includes a forward moving track, a forward moving member, and a third driving member. The forward moving track is mounted on the pitching member or the forward moving track directly serves as the pitching member. The forward moving member is slidably mounted on the forward moving track. The fixed end of the third driving member is mounted on the forward moving track. The driving end of the third driving member is connected to the forward moving member. The third driving member is used to drive the forward moving member to move along the forward moving track.
[0016] The flip assembly includes a flip member and a fourth driving member, the flip member is rotatably connected to the forward moving member via a second pin shaft, a fixed end of the fourth driving member is mounted on the forward moving member, a driving end of the fourth driving member is hinged to a portion of the flip member located on one side of the second pin shaft, and the fourth driving member is used to drive the flip member to rotate around the second pin shaft;
[0017] The clamping assembly is arranged on the flip member and is used for fixing or releasing the workpiece.
[0018] As an optional solution, at least two forward moving members are provided on the forward moving track, and the two forward moving members are respectively driven by a third driving member to move in the same direction or in opposite directions along the forward moving track.
[0019] As an optional solution, the forward track includes two C-shaped channel steels arranged in parallel, with the notches of the two C-shaped channel steels facing outward. The forward member is arranged above the forward track, and both sides of the forward member are provided with limiting parts extending to the outside of the two C-shaped channel steels. The limiting parts on each side are provided with limiting parts that slide or roll in cooperation with the notches of the corresponding C-shaped channel steels.
[0020] As an optional solution, the limiting member includes a roller bearing, the shaft of the roller bearing is installed on the limiting part, the wheel of the roller bearing is embedded in the groove of the C-shaped channel steel and rolls together, and at least two roller bearings are provided on the limiting part.
[0021] As an optional solution, a mounting portion for mounting a flip member is provided on the forward moving member, and the flip member includes a crossbeam, the middle portion of the crossbeam is connected to the mounting portion through a second pin shaft, and support arms are symmetrically provided at both ends of the crossbeam, and the clamping assembly is installed at the end of the support arm.
[0022] As an optional solution, the clamping assembly includes an electric suction cup, which absorbs the workpiece by generating electromagnetic force. Fixed baffles are provided on the flip part and on both sides of the electric suction cup. The fixed baffles on both sides are used to limit the workpiece.
[0023] The beneficial effects of the present invention are as follows: the bracket installation robot realizes the action of automatically moving and lifting the workpiece to the target position to complete the installation through the cooperation of the mobile chassis, jacking mechanism, pitch mechanism and upper loading mechanism, so as to cope with the working conditions such as uneven ground, inconvenient access for personnel at high altitudes, and limited installation space and angles in different scenarios, thereby realizing the automation of the entire installation process, reducing labor input, lowering construction difficulty, and improving equipment applicability, operation safety and installation efficiency. BRIEF DESCRIPTION OF THE DRAWINGS
[0024] Figure 1 This is a schematic structural diagram of a bracket installation robot provided by an embodiment of the present utility model;
[0025] Figure 2 This is a front view of a bracket installation robot provided by an embodiment of the present utility model;
[0026] Figure 3 is a side view of a bracket installation robot provided by an embodiment of the present utility model;
[0027] Figure 4 This is a top view of a bracket installation robot provided by an embodiment of the present utility model;
[0028] Figure 5 It is a structural schematic diagram of the upper mounting mechanism in the bracket-mounted robot provided by an embodiment of the present utility model.
[0029] In the attached figure:
[0030] 1. Mobile chassis; 11. Rotating assembly; 12. Track assembly; 13. Outriggers; 14. Electrical control box;
[0031] 2. Lifting mechanism; 21. Base; 22. Loading platform; 23. First driving member;
[0032] 3. Pitch mechanism; 31. Pitch member; 32. Articulated frame; 33. Second driving member; 34. First pin;
[0033] 4. Upper mounting mechanism; 41. Forward moving assembly; 411. Forward moving track; 4111. C-shaped channel steel; 4112. Notch; 4113. Stop block; 412. Forward moving member; 4121. Limiting portion; 4122. Mounting portion; 413. Third driving member; 414. Limiting member; 42. Flipping assembly; 421. Flipping member; 4211. Crossbeam; 4212. Support arm; 422. Fourth driving member; 423. Second pin shaft; 43. Clamping assembly; 431. Electric suction cup; 432. Fixed baffle. DETAILED DESCRIPTION
[0034] The present invention will be further described in detail below with reference to the accompanying drawings and examples. It should be understood that the specific embodiments described herein are intended only to illustrate the present invention and are not intended to limit the present invention. It should also be noted that, for ease of description, the accompanying drawings only illustrate portions relevant to the present invention, not all of its components.
[0035] In the description of this utility model, unless otherwise specified or limited, the terms "connected," "connect," and "fixed" should be understood in a broad sense. For example, they can refer to fixed connection, detachable connection, or integration; mechanical connection or electrical connection; direct connection or indirect connection through an intermediate medium; internal communication between two components or interaction between two components. Those skilled in the art will understand the specific meanings of the above terms in this utility model based on the specific circumstances.
[0036] In the present invention, unless otherwise expressly specified or limited, a first feature being "above" or "below" a second feature may include the first and second features being in direct contact, or may include the first and second features being in contact not directly but through another feature between them. Moreover, a first feature being "above," "above," and "above" a second feature may include the first feature being directly above or obliquely above the second feature, or may simply mean that the first feature is higher in level than the second feature. A first feature being "below," "below," and "below" a second feature may include the first feature being directly below or obliquely below the second feature, or may simply mean that the first feature is lower in level than the second feature.
[0037] In the description of this embodiment, terms such as "upper," "lower," "left," and "right" are used to refer to positions or locations based on the positions or locations shown in the accompanying drawings. These terms are intended solely to facilitate description and simplify operation, and are not intended to indicate or imply that the devices or components referred to must have, be constructed, or operate in a specific orientation. Therefore, they should not be construed as limitations on this invention. Furthermore, the terms "first" and "second" are used solely for descriptive purposes and have no special meaning.
[0038] See also Figures 1 to 5As shown, this embodiment provides a bracket installation robot, including a mobile chassis 1, a lifting mechanism 2, a pitching mechanism 3 and an upper installation mechanism 4, wherein:
[0039] A rotary assembly 11 is provided on the mobile chassis 1. The rotary assembly 11 is used to carry and connect the jacking mechanism 2 and drive the jacking mechanism 2 to rotate around the rotation center of the rotary assembly 11.
[0040] The lifting mechanism 2 is used to carry and connect the pitching mechanism 3, and drive the pitching mechanism 3 to rise or fall relative to the mobile chassis 1;
[0041] The pitch mechanism 3 is used to carry and connect the upper mechanism 4, and drive the upper mechanism 4 to tilt upward or downward relative to the jacking mechanism 2;
[0042] The upper mounting mechanism 4 is used to carry and fix the workpiece to be mounted, and drive the workpiece to translate and flip.
[0043] Therefore, through the cooperation of the mobile chassis 1, the jacking mechanism 2, the pitch mechanism 3 and the upper installation mechanism 4, the workpiece is automatically moved and lifted to the target position to complete the installation, so as to cope with working conditions such as uneven ground, inconvenient access for personnel at high altitudes, and limited installation space and angles in different scenarios, thereby realizing the automation of the entire installation process, reducing labor input, lowering construction difficulty, and improving equipment applicability, operation safety and installation efficiency.
[0044] Optionally, a crawler track assembly 12 is provided at the bottom of the mobile chassis 1 , and at least four legs 13 are provided around the mobile chassis 1 , and the length of each leg 13 is adjustable.
[0045] The crawler track assembly 12 provides excellent maneuverability over varying terrains and, in conjunction with the multiple outriggers 13, provides stable support for the mobile chassis 1, facilitating subsequent rotation, lifting, pitching, and loading operations to meet installation requirements. The crawler track assembly 12 is conventional technology and will not be further explained here. Furthermore, the mobile chassis 1 is equipped with an electrical control box 14 for controlling various mechanisms and components.
[0046] Optionally, the lifting mechanism 2 includes a base 21, a supporting platform 22 and a first driving member 23. The base 21 is connected to the driving end of the rotating assembly 11, the pitch mechanism 3 is installed on the supporting platform 22, the fixed end of the first driving member 23 is installed on the base 21, the driving end of the first driving member 23 is connected to the supporting platform 22, and the first driving member 23 is used to drive the supporting platform 22 to rise and fall relative to the base 21.
[0047] The first driving member 23 is preferably a scissor-type lift, which can provide vertical bearing capacity and be height-adjustable. The specific form of the first driving member 23 is not limited here.
[0048] In addition, in addition to being able to install the pitch mechanism 3, the supporting platform 22 can also be directly used as a temporary construction platform in some cases to meet the needs of on-site operations.
[0049] Optionally, the pitch mechanism 3 includes a pitch member 31, an articulated frame 32 and a second driving member 33. The articulated frame 32 is installed on the lifting mechanism 2. The middle part of the pitch member 31 is rotatably connected to the articulated frame 32 through a first pin shaft 34. The fixed end of the second driving member 33 is installed on the lifting mechanism 2. The driving end of the second driving member 33 is hinged to the part of the pitch member 31 located on the side of the first pin shaft 34. The second driving member 33 is used to drive the pitch member 31 to rotate around the first pin shaft 34.
[0050] Furthermore, height measurement sensors are installed at each end of the pitch member 31. These sensors are connected to the second drive member 33 for signal transmission, facilitating adjustment of the workpiece to the target height. Specifically, the workpiece's height is adjusted through the coordination of the lifting mechanism 2, the pitch mechanism 3, and the loading mechanism 4. Specifically, when loading at a specific angle within a specific space, the lifting mechanism 2 determines the approximate height, the pitch mechanism 3 determines the pitch angle, and the loading mechanism 4 performs operations such as forward movement and flipping.
[0051] The second driving member 33 is preferably an electric push rod, and can also be a pneumatic cylinder, an electric cylinder, a hydraulic cylinder, etc., which can provide a driving force to control the pitch angle of the pitch member 31. The specific form of the second driving member 33 is not limited here.
[0052] Optionally, the upper mounting mechanism 4 includes a forward moving component 41, a flipping component 42 and a clamping component 43 to respectively realize the functions of fixing, translating and flipping the workpiece. Specifically, the functional components of the upper mounting mechanism 4 can be increased or decreased according to the action requirements. For example, when only the forward moving function is required, the clamping component 43 can be directly installed on the forward moving part 412; for example, when an additional rotation function is required, an additional rotation component can be installed on the flipping part 421, and the clamping component 43 is installed on the additional rotation component. No further structural expansion is made here.
[0053] Specifically, the forward moving assembly 41 includes a forward moving rail 411, a forward moving member 412, and a third driving member 413. The forward moving rail 411 is mounted on the pitching member 31 or the forward moving rail 411 directly serves as the pitching member 31 (the latter is used as an example in this embodiment to simplify the structure as much as possible). The forward moving member 412 is slidably disposed on the forward moving rail 411. The fixed end of the third driving member 413 is mounted on the forward moving rail 411. The driving end of the third driving member 413 is connected to the forward moving member 412. The third driving member 413 is used to drive the forward moving member 412 to move along the forward rail 411.
[0054] The flip assembly 42 includes a flip member 421 and a fourth driving member 422. The flip member 421 is rotatably connected to the forward moving member 412 via a second pin 423. The fixed end of the fourth driving member 422 is mounted on the forward moving member 412. The driving end of the fourth driving member 422 is hinged to a portion of the flip member 421 located on one side of the second pin 423. The fourth driving member 422 is used to drive the flip member 421 to rotate about the second pin 423.
[0055] The clamping assembly 43 is disposed on the flip member 421 and is used to fix or release the workpiece.
[0056] Therefore, through the cooperation of the forward moving component 41, the flipping component 42 and the clamping component 43, the workpiece can be moved forward, flipped, clamped and other actions can be achieved, meeting the requirements of stable transfer and accurate alignment during the loading process, greatly reducing labor input and improving loading efficiency.
[0057] Optionally, at least two forward moving members 412 are provided on the forward moving track 411 , and the two forward moving members 412 are respectively driven by a third driving member 413 to move in the same direction or in opposite directions along the forward moving track 411 .
[0058] In particular, the displacement of the forward moving member 412 on the forward rail 411 is monitored by a wire encoder. The wire end of the wire encoder is fixed on the forward moving member 412. The wire encoder is used to measure the displacement of the forward moving member 412 in real time. Therefore, for the two forward moving members 412, under the action of the two third driving members 413, they can achieve reverse, same speed or differential movement, or move in the same direction at a fixed distance to meet different loading needs.
[0059] The third driving member 413 is preferably an electric push rod, and can also be a pneumatic cylinder, an electric cylinder, a hydraulic cylinder, etc., which can provide a driving force for moving along the forward track 411. The specific form of the third driving member 413 is not limited here.
[0060] Furthermore, the forward rail 411 includes two C-shaped channel steels 4111 arranged in parallel, and the notches of the two C-shaped channel steels 4111 face outward respectively. The forward member 412 is arranged above the forward rail 411, and the two sides of the forward member 412 are provided with limiting portions 4121 extending to the outside of the two C-shaped channel steels 4111. The limiting portions 4121 on each side are provided with limiting portions 414 that slide or roll in cooperation with the notches of the corresponding C-shaped channel steels 4111.
[0061] It should be noted that the structure in which the notches of the two C-shaped channel steels 4111 face outward and cooperate with the forward moving member 412 on the outside notches notches accurately guide the forward moving member 412 and form a reliable support. Compared with the structure on the market in which the notches face inward, the distance between the two C-shaped channel steels 4111 can be reduced while ensuring that the forward moving member 412 is sufficiently stable, thereby effectively controlling the volume of the forward moving rail 411.
[0062] Optionally, the limiting member 414 includes a roller bearing, the shaft of the roller bearing is installed on the limiting portion 4121, the wheel of the roller bearing is embedded in the groove of the C-shaped channel steel 4111 and rolls together, and at least two roller bearings are provided on the limiting portion 4121 to ensure that the limiting member 414 is only displaced along the length direction of the C-shaped channel steel 4111 and to reduce movement wear.
[0063] In addition to the rolling fit of roller bearing parts and C-shaped channel steel 4111, the limiter 414 can also adopt the sliding fit of slider parts and C-shaped channel steel 4111 to meet the requirements of reducing wear and ensuring displacement accuracy. The specific form of the limiter 414 is not limited here.
[0064] Furthermore, a notch 4112 is provided on the upper edge of the end of the C-shaped channel steel 4111. The notch 4112 facilitates the wheel portion of the roller bearing to enter and exit the notch of the C-shaped channel steel 4111, thereby improving the convenience of installation and maintenance of the stopper 414. Moreover, since the notch 4112 is located on the upper edge of the notch of the C-shaped channel steel 4111, there is no need to worry about the wheel portion of the roller bearing falling out of the notch of the C-shaped channel steel 4111 during operation. In addition, a stopper 4113 is provided on the C-shaped channel steel 4111 to limit the travel of the forward moving member 412, ensuring that the forward moving member 412 operates within the appropriate travel range.
[0065] Optionally, a mounting portion 4122 for mounting a flip member 421 is provided on the forward moving member 412, and the flip member 421 includes a crossbeam 4211, the middle portion of the crossbeam 4211 is connected to the mounting portion 4122 via a second pin shaft 423, and support arms 4212 are symmetrically provided at both ends of the crossbeam 4211, and the clamping assembly 43 is installed at the end of the support arm 4212, and the crossbeam 4211 and the support arm 4212 are driven to rotate around the second pin shaft 423 by the fourth driving member 422.
[0066] The fourth driving member 422 is preferably an electric push rod, and can also be a pneumatic cylinder, an electric cylinder, a hydraulic cylinder, etc., which can provide a driving force for pushing and pulling the flip member 421 on one side. The specific form of the fourth driving member 422 is not limited here, and is not limited to installing the fourth driving member 422 on a single side of the second pin shaft 423. The fourth driving member 422 can also be installed on both sides of the second pin shaft 423 to improve the balance stability of the flip member 421.
[0067] Furthermore, the angle of rotation of the flip member 421 around the pin relative to the horizontal plane is -45° to 45°. Thanks to the outward-turned form of the slot, the forward track 411 can be made relatively narrow, so that the flip member 421 can have a larger rotation angle, so that the workpiece can be accurately placed in place during the installation process.
[0068] In particular, a first bracket is provided on the crossbeam 4211, an absolute encoder is provided on the first bracket, a second bracket is provided on the mounting portion 4122, and the rotor of the absolute encoder is fixedly connected to the second bracket. The absolute encoder is used to measure the rotation angle of the flip part 421 in real time, thereby facilitating the monitoring of the rotation angle of each flip part 421 and ensuring that the workpiece reaches the target position accurately.
[0069] In addition, the axial direction of the first pin shaft 34 is perpendicular to the axial direction of the second pin shaft 423 , that is, the pitching member 31 and the flipping member 421 rotate in different directions, thereby maximizing the adjustment range of the workpiece position.
[0070] Optionally, the clamping assembly 43 includes an electric suction cup 431, which adsorbs the workpiece by generating electromagnetic force. Fixed baffles 432 are provided on the flip part 421 and on both sides of the electric suction cup 431. The fixed baffles 432 on both sides are used to limit the workpiece, facilitate accurate pre-clamping of the workpiece, and ensure the stability of the workpiece under electromagnetic force adsorption.
[0071] The clamping assembly 43 may also use other clamps in addition to the electric suction cup 431 to achieve quick disassembly and assembly of the workpiece. The specific form of the clamping assembly 43 is not limited here.
[0072] The bracket installation robot has the following advantages:
[0073] 1) The mobile chassis 1 with rotation and balancing support functions can meet the requirements of terrain such as deserts, Gobi, muddy land, and mountains, while ensuring the stability of the mobile chassis 1 on uneven ground. It can also drive the workpiece to rotate 360°, greatly improving the applicability of the bracket installation robot in different scenarios;
[0074] 2) The cooperation between the lifting mechanism 2 and the pitching mechanism 3 makes the height adjustment of the workpiece simpler, faster and more accurate, reducing the difficulty of alignment;
[0075] 3) The loading mechanism 4, which consists of a forward moving component 41, a flipping component 42 and a clamping component 43, realizes the automated movement of the workpiece forward, flipping and clamping, meets the requirements of stable transfer and accurate alignment during the loading process, greatly reduces manual input and improves loading efficiency.
[0076] Specific installation process:
[0077] ① The mobile chassis 1 drives the entire bracket installation robot to move to the vicinity of the installation location;
[0078] ② Each leg 13 on the mobile chassis 1 is telescopically adjusted according to the on-site ground conditions to ensure the overall stability of the mobile chassis 1;
[0079] ③ Place the workpiece to be mounted on the clamping assembly 43 and securely clamp it with the clamping assembly 43;
[0080] ④ The rotary assembly 11 and the lifting mechanism 2 act separately to transfer and lift the workpiece to a suitable height;
[0081] ⑤ The pitch mechanism 3 is activated to adjust the pitch angle of the workpiece according to the horizontality of the mobile chassis 1 and the installation height and angle requirements, and to make the pitch member 31 face the installation position;
[0082] ⑥ The forward moving assembly 41 is actuated, causing the workpiece to be fed along the forward moving track 411 and gradually approach the position to be installed;
[0083] ⑦ The flip assembly 42 is actuated to fine-tune the tilt angle of the workpiece so that the posture of the workpiece is completely consistent with the position to be installed;
[0084] ⑧ The forward moving assembly 41 continues to move to complete the loading of the workpiece.
[0085] In summary, the bracket installation robot can fully automate the process from loading and clamping the workpiece, lifting to a certain height, tilting to a certain angle, forward feeding, flipping and adjusting to assembly in place, reducing labor input and improving work efficiency. It also has multiple functions such as multi-terrain passage, rotation, lifting, pitching, forward movement, flipping and clamping, which meets the installation requirements of photovoltaic brackets and can be applied to the installation of other workpieces.
[0086] Obviously, the above-described embodiments of the present invention are merely examples for the purpose of clearly illustrating the present invention and are not intended to limit the manner in which the present invention is to be implemented. A person skilled in the art would be able to make various obvious changes, readjustments, and substitutions without departing from the scope of protection of the present invention. It is not necessary and impossible to enumerate all embodiments here. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of the present invention shall be included within the scope of protection of the claims of the present invention.
Claims
1. A bracket installation robot, characterized in that: It comprises a mobile chassis (1), a lifting mechanism (2), a pitching mechanism (3) and an upper loading mechanism (4), wherein: A rotary assembly (11) is provided on the mobile chassis (1), and the rotary assembly (11) is used to carry and connect the jacking mechanism (2), and drive the jacking mechanism (2) to rotate around the rotation center of the rotary assembly (11); The lifting mechanism (2) is used to carry and connect the pitching mechanism (3), and drive the pitching mechanism (3) to rise or fall relative to the mobile chassis (1); The pitch mechanism (3) is used to carry and connect the upper mounting mechanism (4), and drive the upper mounting mechanism (4) to tilt upward or tilt downward relative to the jacking mechanism (2); The upper mounting mechanism (4) is used to carry and fix the workpiece to be mounted, and drive the workpiece to translate and flip.
2. The bracket installation robot according to claim 1, characterized in that: A crawler assembly (12) is provided at the bottom of the mobile chassis (1), and at least four supporting legs (13) are provided around the mobile chassis (1), and the length of each supporting leg (13) is adjustable.
3. The bracket installation robot according to claim 1, characterized in that: The lifting mechanism (2) includes a base (21), a bearing platform (22) and a first driving member (23); the base (21) is connected to the driving end of the rotary assembly (11); the pitching mechanism (3) is installed on the bearing platform (22); the fixed end of the first driving member (23) is installed on the base (21); the driving end of the first driving member (23) is connected to the bearing platform (22); and the first driving member (23) is used to drive the bearing platform (22) to rise and fall relative to the base (21).
4. The bracket installation robot according to claim 1, characterized in that: The pitch mechanism (3) comprises a pitch member (31), an articulated frame (32) and a second driving member (33); the articulated frame (32) is mounted on the lifting mechanism (2); the middle portion of the pitch member (31) is rotatably connected to the articulated frame (32) via a first pin shaft (34); the fixed end of the second driving member (33) is mounted on the lifting mechanism (2); the driving end of the second driving member (33) is articulated to a portion of the pitch member (31) located on one side of the first pin shaft (34); and the second driving member (33) is used to drive the pitch member (31) to rotate around the first pin shaft (34).
5. The bracket installation robot according to claim 4, characterized in that: The upper loading mechanism (4) comprises a forward moving assembly (41), a turning assembly (42) and a clamping assembly (43), wherein: The forward moving assembly (41) comprises a forward moving track (411), a forward moving member (412) and a third driving member (413); the forward moving track (411) is mounted on the pitching member (31) or the forward moving track (411) directly serves as the pitching member (31); the forward moving member (412) is slidably arranged on the forward moving track (411); a fixed end of the third driving member (413) is mounted on the forward moving track (411); a driving end of the third driving member (413) is connected to the forward moving member (412); and the third driving member (413) is used to drive the forward moving member (412) to move along the forward moving track (411); The flip assembly (42) includes a flip member (421) and a fourth driving member (422), the flip member (421) is rotatably connected to the forward moving member (412) via a second pin shaft (423), a fixed end of the fourth driving member (422) is mounted on the forward moving member (412), a driving end of the fourth driving member (422) is hinged to a portion of the flip member (421) located on one side of the second pin shaft (423), and the fourth driving member (422) is used to drive the flip member (421) to rotate around the second pin shaft (423); The clamping assembly (43) is arranged on the flip member (421) and is used to fix or release the workpiece.
6. The bracket installation robot according to claim 5, characterized in that: At least two forward moving members (412) are provided on the forward moving track (411), and the two forward moving members (412) are respectively driven by one of the third driving members (413) to move in the same direction or in opposite directions along the forward moving track (411).
7. The bracket installation robot according to claim 5, characterized in that: The forward track (411) comprises two C-shaped channel steels (4111) arranged in parallel, the notches of the two C-shaped channel steels (4111) facing outwards respectively, the forward member (412) is arranged above the forward track (411), and both sides of the forward member (412) are provided with limiting portions (4121) extending to the outside of the two C-shaped channel steels (4111), and the limiting portions (414) on each side are provided to slide or roll with the notches of the corresponding C-shaped channel steels (4111).
8. The bracket installation robot according to claim 7, characterized in that: The limiting member (414) includes a roller bearing, the shaft of which is mounted on the limiting portion (4121), the wheel of which is embedded in the notch of the C-shaped channel steel (4111) and rolls in cooperation therewith, and at least two roller bearings are provided on the limiting portion (4121).
9. The bracket installation robot according to claim 5, characterized in that: The forward moving member (412) is provided with a mounting portion (4122) for mounting the flip member (421), and the flip member (421) includes a crossbeam (4211). The middle portion of the crossbeam (4211) is connected to the mounting portion (4122) via the second pin shaft (423). Support arms (4212) are symmetrically provided at both ends of the crossbeam (4211), and the clamping assembly (43) is mounted on the ends of the support arms (4212).
10. The bracket installation robot according to claim 5, characterized in that: The clamping assembly (43) includes an electric suction cup (431), which absorbs the workpiece by generating electromagnetic force. Fixed baffles (432) are provided on the flip member (421) and on both sides of the electric suction cup (431). The fixed baffles (432) on both sides are used to limit the workpiece.