An intelligent short-distance transportation robot
By designing the drive, support and connection mechanism in an intelligent transportation robot, and adjusting the center of gravity and support angle in real time, the problem of shifting and rolling of the center of gravity of the transportation robot is solved, and the stability and safety of cargo transportation are improved.
Patent Information
- Application Number
- CN202510685533.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-27
- Publication Date
- 2025-07-29
- Estimated Expiration
- 2045-05-27
AI Technical Summary
The existing intelligent transportation robots lack a center of gravity adjustment structure, which leads to easy rolling when the center of gravity is offset, especially when turning, and lacks an effective anti-dumping structure for goods, resulting in economic losses caused by dumping.
An intelligent short-distance transportation robot is designed, including a driving mechanism, a support mechanism and a connecting mechanism. By setting a rectangular groove and a support frame in the middle of the vehicle body, the center of gravity and support angle are adjusted in real time by using the support module and the sensing module to prevent the cargo from rolling.
Effectively prevent the goods from tipping over during transportation, improve the stability and safety of transportation, enhance the versatility and flexibility of use of the equipment, and reduce the risk of cargo damage.
Smart Images

Figure CN120207453B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of transportation equipment, and particularly to an intelligent short-distance transportation robot. Background Art
[0002] In modern industrial production, logistics warehousing and other fields, short-distance cargo transportation, as a high-frequency and key operation link, its efficiency and safety directly affect the overall efficiency of production logistics. At present, traditional short-distance cargo transportation still mainly relies on manual handling methods. However, this method has significant limitations: First, the efficiency of manual handling is relatively low, making it difficult to meet the large-scale and high-intensity production logistics requirements; Second, workers are prone to fatigue during long-term operations, resulting in a gradual decline in work efficiency, further exacerbating the contradiction between production capacity and demand. In recent years, with the continuous development of intelligent robot technology, its application in the field of logistics transportation has become increasingly widespread, and many enterprises have begun to introduce intelligent transportation equipment to replace manual labor to complete cargo transportation tasks.
[0003] However, there are still some deficiencies in the design of current intelligent transportation robots:
[0004] First, existing transportation robots generally lack a center-of-gravity adjustment structure. When transporting objects with an offset center of gravity, they are extremely prone to tipping, especially when performing turning operations, the tipping risk increases significantly, which may further lead to damage to the goods; Second, transportation robots lack an effective anti-tipping structure for goods. When the robot makes a turning operation, the goods are prone to tipping under the action of centrifugal force. If the tipping angle is too large, the goods will fall, causing unnecessary economic losses. Summary of the Invention
[0005] In view of the above problems, an object of the present invention is to make up for these deficiencies, and more specifically, to provide an intelligent short-distance transportation robot that can avoid the situation of center-of-gravity offset during transportation, and can timely adjust the supporting angle when the goods tip, preventing the goods from tipping during the transportation process.
[0006] In the first aspect of the present invention, an intelligent short-distance transportation robot is provided, specifically including: a driving mechanism; the driving mechanism includes a vehicle body, a rectangular groove is provided in the middle position of the vehicle body, and mounting holes are symmetrically opened on both sides of the rectangular groove; a supporting mechanism is provided on the driving mechanism, the support frame of the supporting mechanism is arranged in the rectangular groove in the middle of the vehicle body, and the bottom rod at the lower end of the support frame is inserted and matched with the mounting holes in the vehicle body, and the communication hole A in the support frame is penetrated by the telescopic block on the inner support module of the vehicle body; a connecting mechanism is provided on the support frame, the movable frame of the connecting mechanism is arranged above the support frame, and the side rod at the outer end of the movable frame is lapped in the lapping groove at the upper end of the support frame, and the bottom side of the movable frame is in contact with the telescopic block; a carrying mechanism is provided on the connecting mechanism, the carrying plate of the carrying mechanism is arranged above the movable frame, and the connecting shaft at the outer end of the carrying plate is rotationally matched with the ear plate on the movable frame, both ends of the carrying plate are in contact with the sensing module, and both sides of the carrying plate are in contact with the support springs on both sides of the movable frame.
[0007] Preferably, the driving mechanism includes: a fixed groove, a docking block, a movable groove and a telescopic rod; the fixed groove is opened on both sides of the upper end of the vehicle body; the docking blocks are symmetrically opened at both ends of the fixed groove; the movable groove is opened on both sides of the fixed groove; the telescopic rod is slidably installed in the movable groove, and the telescopic rod can extend out of the movable groove.
[0008] Preferably, the driving mechanism includes: a support module and a telescopic block; the support module is installed in the fixed groove, and the grooves at both ends of the support module are inserted and matched with the docking blocks; the telescopic block is movably installed on both sides of the support module, and the telescopic block is controlled by the electric rod inside the support module.
[0009] Preferably, the support mechanism includes: a support frame, a bottom rod and a lapping groove; the support frame is of a U-shaped structure; the bottom rods are symmetrically arranged on both sides of the bottom of the support frame; the lapping groove is opened in the middle of both sides of the support frame.
[0010] Preferably, the support mechanism includes: a communication hole A and a communication hole B; the communication hole A is symmetrically opened at both ends of the support frame; the communication hole B is opened at the side end of each group of communication holes A, and the communication hole B is communicated with the movable groove.
[0011] Preferably, the connecting mechanism includes: a movable frame, a side rod, a screw rod and a center of gravity block; the movable frame is of a rectangular structure; the side rods are symmetrically arranged on both sides of the movable frame; the screw rod is rotatably installed at the lower end of the movable frame; the center of gravity block is threadedly installed on the screw rod, and both ends of the center of gravity block can slide along the bottom of the movable frame.
[0012] Preferably, the connecting mechanism includes: side grooves and ear plates; the side grooves are symmetrically opened on both sides of the movable frame; the ear plates are arranged on both sides of the upper end of the movable frame.
[0013] Preferably, the connecting mechanism includes: an induction module and a support spring; the induction module is inserted into the side groove, and the induction module is electrically connected to the support module; the support spring is arranged above the side groove and is outside the induction module.
[0014] Preferably, the carrying mechanism includes: a carrying plate and a connecting shaft; the carrying plate is of a rectangular structure; the connecting shaft is fixedly arranged on both sides of the carrying plate.
[0015] Preferably, the carrying mechanism includes: a chute, a movable rod, a clamping plate and a plug rod; the chutes are symmetrically arranged on both inner sides of the carrying plate; the movable rod is slidably installed in the chute through a spring, and circular holes are opened at both ends of the movable rod; the clamping plates are arranged on both upper sides of the carrying plate; the plug rods are symmetrically arranged at the lower ends of both sides of the clamping plate, and the plug rods are inserted and matched with the circular holes at the side ends of the movable rod.
[0016] 1. By setting up the connecting mechanism in the present invention, a center of gravity block is arranged at the lower end of the movable frame, and the center of gravity block is adjusted by the screw rod. When placing some goods with offset center of gravity, by adjusting the position of the center of gravity block on the movable frame, the center of gravity of the vehicle body can be statically changed, thereby preventing the vehicle body from tilting during transportation, reducing the risk of the goods tipping over, and greatly improving the stability and safety of goods transportation.
[0017] 2. By setting up the support mechanism and the connecting mechanism in the present invention, a lapping groove is opened at the upper end of the support frame, and the side rod is lapped on the lapping groove to install the movable frame on the support frame. Such a modular setting can quickly replace the adapted movable frame and carrying mechanism according to the characteristics of different goods such as specifications and weights, significantly enhancing the versatility and flexibility of the device and effectively meeting the diverse goods transportation needs.
[0018] 3. By setting up the support module and the carrying plate in the present invention, support modules are arranged on both sides of the vehicle body, and the wedge-shaped telescopic blocks on the support modules support the movable frame. The carrying plate is movably installed at the upper end of the movable frame, and both ends of the carrying plate are in contact with the induction modules on both sides of the movable frame. The induction modules are electrically connected to the support modules. Once the situation of the goods tilting occurs, the pressure received by the induction module in the tilting direction will change. This pressure change signal will be captured by the induction module in real time and transmitted to the support module. At this time, the two support modules can quickly respond, and by precisely adjusting the telescopic degrees of the telescopic blocks on both sides, drive the movable frame to make corresponding tilting adjustments, thereby effectively suppressing the tendency of the goods to tilt and greatly reducing the risk of the goods falling and ensuring the integrity of the goods during transportation. Description of the Drawings
[0019] Those skilled in the art will have a better understanding of the content of the present invention through the following drawings, and the advantages of the content of the present invention can be more clearly reflected. The drawings described herein are only for the purpose of illustration of the selected embodiments, rather than all possible embodiments and are not intended to limit the scope of the content of the present invention.
[0020] In the drawings:
[0021] Figure 1 A front view showing an embodiment according to the present invention is shown.
[0022] Figure 2 A schematic diagram showing the connection structure of the drive mechanism and the support mechanism according to an embodiment of the present invention is shown.
[0023] Figure 3 A schematic diagram showing the structure of the support mechanism and the connection mechanism according to an embodiment of the present invention is shown.
[0024] Figure 4 An exploded view showing an embodiment according to the present invention is shown.
[0025] Figure 5 A schematic diagram showing a partial structure according to an embodiment of the present invention is shown.
[0026] Figure 6 A schematic cross-sectional view of the side end of the connection mechanism according to an embodiment of the present invention is shown.
[0027] Figure 7 A schematic diagram showing the connection between the connection mechanism and the bearing mechanism according to an embodiment of the present invention is shown.
[0028] Figure 8 A schematic cross-sectional view of the structure of the bearing mechanism cut according to an embodiment of the present invention is shown.
[0029] Figure 9 A three-dimensional schematic diagram of the drive mechanism according to an embodiment of the present invention is shown.
[0030] List of reference numerals
[0031] 1. Drive mechanism;
[0032] 101. Vehicle body; 1011. Mounting hole;
[0033] 102. Fixed groove; 1021. Docking block;
[0034] 103. Movable groove; 1031. Telescopic rod;
[0035] 104. Support module; 1041. Telescopic block;
[0036] 2. Support mechanism;
[0037] 201. Support frame; 2011. Bottom rod; 2012. Lapping groove
[0038] 202. Connecting hole A; 203. Connecting hole B
[0039] 3. Connecting mechanism
[0040] 301. Movable frame; 3011. Side rod
[0041] 302. Screw rod; 3021. Gravity block
[0042] 303. Side groove; 3031. Induction module; 3032. Support spring; 304. Ear plate
[0043] 4. Bearing mechanism
[0044] 401. Bearing plate; 4011. Connecting shaft
[0045] 402. Slide groove; 4021. Movable rod
[0046] 403. Clamping plate; 4031. Insert rod Detailed implementation mode
[0047] For the purposes of making the objectives, technical solutions and advantages of the embodiments of the present invention clearer, the technical solutions of the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings of the embodiments of the present invention. Apparently, the described embodiments are some but not all of the embodiments of the present invention. All other embodiments obtained by those of ordinary skill in the art based on the described embodiments of the present invention without creative efforts shall fall within the scope of protection of the present invention.
[0048] Example 1: Please refer to Figures 1 to 9 as shown in
[0049] The present invention provides an intelligent short-distance transportation robot, including: a driving mechanism 1; the driving mechanism 1 includes a vehicle body 101, a rectangular groove is provided in the middle position of the vehicle body 101, and mounting holes 1011 are symmetrically opened on both sides of the rectangular groove; a support mechanism 2 is provided on the driving mechanism 1, the support frame 201 of the support mechanism 2 is arranged in the rectangular groove in the middle of the vehicle body 101, and the bottom rod 2011 at the lower end of the support frame 201 is inserted and matched with the mounting hole 1011 in the vehicle body 101, and the communication hole A202 in the support frame 201 is penetrated by the telescopic block 1041 on the inner support module 104 of the vehicle body 101; a connecting mechanism 3 is provided on the support frame 201, the movable frame 301 of the connecting mechanism 3 is arranged above the support frame 201, and the side rod 3011 at the outer end of the movable frame 301 is lapped in the lapping groove 2012 at the upper end of the support frame 201, and the bottom side of the movable frame 301 is in contact with the telescopic block 1041; a carrying mechanism 4 is provided on the connecting mechanism 3, the carrying plate 401 of the carrying mechanism 4 is arranged above the movable frame 301, and the connecting shaft 4011 at the outer end of the carrying plate 401 is rotationally matched with the ear plate 304 on the movable frame 301, both ends of the carrying plate 401 are in contact with the induction module 3031, and both sides of the carrying plate 401 are in contact with the support springs 3032 on both sides of the movable frame 301.
[0050] As the second embodiment of the present invention, on the basis of the first embodiment, as Figure 9 shown, the driving mechanism 1 includes: a fixed groove 102, a docking block 1021, a movable groove 103 and a telescopic rod 1031; the fixed groove 102 is opened on both sides of the upper end of the vehicle body 101; the docking blocks 1021 are symmetrically opened at both ends of the fixed groove 102; the movable groove 103 is opened on both sides of the fixed groove 102; the telescopic rod 1031 is slidably installed in the movable groove 103, and the telescopic rod 1031 can extend out of the movable groove 103; a support module 104 and a telescopic block 1041; the support module 104 is installed in the fixed groove 102, and the grooves at both ends of the support module 104 are inserted and matched with the docking blocks 1021; the telescopic block 1041 is movably installed on both sides of the support module 104, and the telescopic block 1041 is controlled by an electric rod inside the support module 104.
[0051] The present invention is provided with a vehicle body 101. By setting an instruction for the vehicle body 101, the vehicle body 101 can deliver goods to the corresponding position according to the instruction; an installation hole 1011 is provided. By inserting and mating the installation hole 1011 with the bottom rod 2011, the support frame 201 can be fixed on the vehicle body 101; a rectangular fixing groove 102 is provided, and the support module 104 can be installed on the vehicle body 101 through the fixing groove 102; a docking block 1021 is provided. By inserting the docking block 1021 into the grooves on both sides of the support module 104, the support module 104 can be limited within the fixing groove 102; a rectangular movable groove 103 is provided, and a telescopic rod 1031 can be slidably installed in the movable groove 103. By providing the telescopic rod 1031, when the support module 104 is not in use, by supporting the telescopic rod 1031 to the lower end of the movable frame 301, the movable frame 301 can be supported on the support frame 201 to prevent it from swinging left and right; a support module 104 is provided, and the telescopic block 1041 on the support module 104 is set in a wedge-shaped structure. By controlling the expansion and contraction of the unilateral telescopic block 1041, the support for the movable frame 301 can be adjusted, thereby changing the angle of the movable frame 301 on the support frame 201.
[0052] As the third embodiment of the present invention, on the basis of Embodiment 1, as Figure 2 and Figure 4 shown, the support mechanism 2 includes: a support frame 201, a bottom rod 2011, and a lapping groove 2012; the support frame 201 is in a U-shaped structure; the bottom rods 2011 are symmetrically arranged on both sides of the bottom of the support frame 201; the lapping groove 2012 is opened at the middle position on both sides of the support frame 201; a communication hole A 202 and a communication hole B 203; the communication hole A 202 is symmetrically opened at both ends of the support frame 201; the communication hole B 203 is opened at the side end of each group of communication holes A 202, and the communication hole B 203 is communicated with the movable groove 103.
[0053] The present invention can movably install the movable frame 301 on the vehicle body 101 through the support frame 201 by installing the support frame 201 on the vehicle body 101; by providing the bottom rod 2011 and inserting the bottom rod 2011 into the installation hole 1011, the support frame 201 can be fixed on the vehicle body 101; by providing a U-shaped lapping groove 2012 and lapping the side rod 3011 into the lapping groove 2012, the movable frame 301 can swing on the support frame 201; by providing the communication hole A 202, the telescopic block 1041 can penetrate through the side end of the support frame 201 through the communication hole A 202; by providing the communication hole B 203, the telescopic rod 1031 can penetrate through the side end of the support frame 201 through the communication hole B 203.
[0054] As the fourth embodiment of the present invention, on the basis of Embodiment 1, as Figure 3As shown in the figure, the connecting mechanism 3 includes: a movable frame 301, side rods 3011, a screw rod 302, and a center of gravity block 3021; the movable frame 301 is a rectangular structure; the side rods 3011 are symmetrically arranged on both sides of the movable frame 301; the screw rod 302 is rotatably installed at the lower end of the movable frame 301; the center of gravity block 3021 is threadedly installed on the screw rod 302, and both ends of the center of gravity block 3021 can slide along the bottom of the movable frame 301; side grooves 303 and ear plates 304; the side grooves 303 are symmetrically opened on both sides of the movable frame 301; the ear plates 304 are arranged on both upper ends of the movable frame 301; an induction module 3031 and a support spring 3032; the induction module 3031 is inserted into the inside of the side groove 303, and the induction module 3031 is electrically connected to the support module 104; the support spring 3032 is arranged above the side groove 303, and the support spring 3032 is outside the induction module 3031.
[0055] The movable frame 301 is provided, and the bearing plate 401 can be movably installed on the movable frame 301; the side rods 3011 are provided. By hooking the side rods 3011 into the latching grooves 2012, the movable frame 301 can swing on the support frame 201; the screw rod 302 is provided, and the position of the center of gravity block 3021 on the bottom side of the movable frame 301 can be adjusted through the screw rod 302. The center of gravity block 3021 is provided. By moving the center of gravity block 3021, the center of gravity of the vehicle body 101 when carrying objects can be adjusted; the T-shaped side groove 303 is provided, and the induction module 3031 can be inserted into the side end of the movable frame 301 through the side groove 303. The induction module 3031 is provided. Through the induction module 3031, the balance degree of the bearing plate 401 on the movable frame 301 can be sensed; the support spring 3032 is provided, which can provide a certain supporting force for the bearing plate 401 to keep the bearing plate 401 balanced; the ear plates 304 are provided, and the bearing plate 401 can be movably installed on the upper end of the movable frame 301 through the ear plates 304.
[0056] In the embodiment of the present invention, as Figure 7 and Figure 8As shown, the carrying mechanism 4 includes: a carrying plate 401 and a connecting shaft 4011; the carrying plate 401 is of a rectangular structure; the connecting shaft 4011 is fixedly arranged on both sides of the carrying plate 401; a chute 402, a movable rod 4021, a clamping plate 403 and a plug rod 4031; the chute 402 is symmetrically opened on both inner sides of the carrying plate 401; the movable rod 4021 is slidably installed inside the chute 402 through a spring, and circular holes are opened at both ends of the movable rod 4021; the clamping plate 403 is arranged on both upper sides of the carrying plate 401; the plug rod 4031 is symmetrically arranged at both lower sides of the clamping plate 403, and the plug rod 4031 is inserted and matched with the circular hole at the side end of the movable rod 4021; by providing the carrying plate 401, an object can be placed on the upper end of the carrying plate 401; by providing the connecting shaft 4011, the carrying plate 401 can be rotationally matched with the ear plate 304 through the connecting shaft 4011; by providing the rectangular chute 402, the movable rod 4021 can be slidably installed on both inner sides of the carrying plate 401 through the chute 402; by providing the movable rod 4021, the clamping plate 403 can be inserted at the upper end of the movable rod 4021, and the clamping plate 403 can be inserted at the upper end of the movable rod 4021 through the plug rod 4031, and the object being transported can be clamped and fixed by means of the clamping plate 403.
[0057] Specific usage method and function of this embodiment:
[0058] In the present invention, as Figures 1 to 9As shown in the figure, when using this intelligent short-distance transportation robot, insert the support frame 201 onto the vehicle body 101 through the bottom rod 2011. Then, select a suitable movable frame 301 according to the characteristics of the goods such as specifications and weight. Lap the side rod 3011 at the outer end of the movable frame 301 in the lap groove 2012 at the upper end of the support frame 201, so that the telescopic block 1041 on the support module 104 supports the movable frame 301. At the same time, rotatably install the bearing plate 401 above the movable frame 301, so that both ends of the bearing plate 401 are in contact with the induction module 3031, and both sides are against the support springs 3032. If the support module 104 is not needed, the telescopic rod 1031 can be extended from the movable groove 103 to support the lower end of the movable frame 301 to prevent the movable frame 301 from swinging left and right. Then, place the goods on the bearing plate 401, insert the insertion rod 4031 into the circular hole at the side end of the movable rod 4021, and drive the movable rod 4021 to slide in the sliding groove 402 by pulling the clamping plate 403 to adjust the position of the clamping plate 403. Place the goods on the bearing plate 401, and then use the clamping plate 403 to clamp and fix the goods. After fixing the goods, rotate the screw rod 302 and move the center of gravity block 3021 to adjust the center of gravity of the vehicle body 101 according to the goods. After loading the goods, set an instruction for the vehicle body 101, and the vehicle body 101 transports the goods. During the transportation process, when the vehicle body 101 turns or the goods tilt due to other factors, the pressure received by the induction module 3031 in the tilting direction changes. This pressure change signal is transmitted to the support module 104 in real time. The support module 104 responds quickly, adjusts the telescopic degree of the two telescopic blocks 1041 by controlling the internal electric rod. The telescopic block 1041 penetrates the communication hole A202 of the support frame 201 to support and adjust the movable frame 301, driving the movable frame 301 to make a corresponding tilting adjustment, suppressing the tendency of the goods to tilt and reducing the risk of the goods falling. When the goods are transported to the designated position, release the clamping of the goods by the clamping plate 403 and unload the goods from the bearing plate 401, thus completing the transportation work of the goods.
[0059] In this article, the following points need to be noted:
[0060] 1. The attached drawings of the embodiments of the present invention only relate to the structures involved in the embodiments of the present invention. Other structures can refer to the general design.
[0061] 2. Without conflict, the embodiments of the present invention and the features in the embodiments can be combined with each other to obtain new embodiments.
[0062] The above is only the specific implementation manner of the present invention, but the protection scope of the present invention is not limited thereto. Any person skilled in the art within the technical scope disclosed by the present invention can easily think of changes or substitutions, which should be covered by the protection scope of the present invention. Therefore, the protection scope of the present invention should be subject to the protection scope of the claims.
Claims
1. An intelligent short-distance transportation robot, comprising: Driving mechanism (1); the driving mechanism (1) includes a vehicle body (101), a rectangular groove is provided in the middle position of the vehicle body (101), and mounting holes (1011) are symmetrically provided on both sides of the rectangular groove; characterized in that a support mechanism (2) is provided on the driving mechanism (1), the support frame (201) of the support mechanism (2) is arranged in the rectangular groove in the middle of the vehicle body (101), and the bottom rod (2011) at the lower end of the support frame (201) is inserted and matched with the mounting hole (1011) in the vehicle body (101), and the communication hole A (202) in the support frame (201) is penetrated by the telescopic block (1041) on the support module (104) on the inner side of the vehicle body (101); a connection mechanism (3) is provided on the support frame (201), the connection mechanism (3) includes a movable frame (301), side rods (3011), a screw rod (302) and a center of gravity block (3021); the movable frame (301) is of a rectangular structure, the movable frame (301) is arranged above the support frame (201), and the bottom side of the movable frame (301) is in contact with the telescopic block (1041); the side rods (3011) are symmetrically arranged on both sides of the movable frame (301), and the side rods (3011) are lapped in the lapping groove (2012) at the upper end of the support frame (201); the screw rod (302) is rotatably installed at the lower end of the movable frame (301); the center of gravity block (3021) is threadedly installed on the screw rod (302), and both ends of the center of gravity block (3021) can slide along the bottom of the movable frame (301); a bearing mechanism (4) is provided on the connection mechanism (3), the bearing plate (401) of the bearing mechanism (4) is arranged above the movable frame (301), and the connecting shaft (4011) at the outer end of the bearing plate (401) is rotationally matched with the ear plate (304) on the movable frame (301), both ends of the bearing plate (401) are in contact with the induction module (3031), and both sides of the bearing plate (401) are in contact with the support springs (3032) on both sides of the movable frame (301).
2. The intelligent short-distance transportation robot according to claim 1, characterized in that: The driving mechanism (1) includes: a fixed groove (102), a docking block (1021), a movable groove (103) and a telescopic rod (1031); the fixed groove (102) is opened on both sides of the upper end of the vehicle body (101); the docking blocks (1021) are symmetrically opened at both ends of the fixed groove (102); the movable groove (103) is opened on both sides of the fixed groove (102); the telescopic rod (1031) is slidably installed in the movable groove (103), and the telescopic rod (1031) can extend out of the movable groove (103).
3. The intelligent short-distance transportation robot according to claim 1, wherein: The driving mechanism (1) includes: a support module (104) and a telescopic block (1041); the support module (104) is installed in the fixed groove (102), and the grooves at both ends of the support module (104) are inserted and matched with the docking blocks (1021); the telescopic block (1041) is movably installed on both sides of the support module (104), and the telescopic block (1041) is controlled by an electric rod inside the support module (104).
4. An intelligent short-distance transportation robot according to claim 1, characterized in that: The support mechanism (2) includes: a support frame (201), a bottom rod (2011), and a lapping groove (2012); the support frame (201) is of a U-shaped structure; the bottom rods (2011) are symmetrically arranged on both sides of the bottom of the support frame (201); the lapping groove (2012) is formed in the middle positions on both sides of the support frame (201).
5. An intelligent short-distance transportation robot according to claim 2 or 4, characterized in that: The support mechanism (2) includes: a communication hole A (202) and a communication hole B (203); the communication hole A (202) is symmetrically formed at both ends of the support frame (201); the communication hole B (203) is formed at the side end of each group of communication holes A (202), and the communication hole B (203) communicates with the movable groove (103).
6. The intelligent short-distance transportation robot according to claim 1, wherein: The connection mechanism (3) includes: side grooves (303) and ear plates (304); the side grooves (303) are symmetrically formed on both sides of the movable frame (301); the ear plates (304) are arranged on both upper sides of the movable frame (301).
7. The intelligent short-distance transportation robot according to claim 6, wherein: The connection mechanism (3) includes: an induction module (3031) and a support spring (3032); the induction module (3031) is inserted inside the side groove (303), and the induction module (3031) is electrically connected to the support module (104); the support spring (3032) is arranged above the side groove (303), and the support spring (3032) is located outside the induction module (3031).
8. An intelligent short-distance transportation robot according to claim 1, characterized in that: The bearing mechanism (4) includes: a bearing plate (401) and a connecting shaft (4011); the bearing plate (401) is of a rectangular structure; the connecting shaft (4011) is fixedly arranged at both side positions of the bearing plate (401).
9. The intelligent short-distance transportation robot according to claim 8, wherein: The bearing mechanism (4) includes: sliding grooves (402), movable rods (4021), clamping plates (403), and inserting rods (4031); the sliding grooves (402) are symmetrically formed on both inner sides of the bearing plate (401); the movable rods (4021) are slidably installed inside the sliding grooves (402) by means of springs, and circular holes are formed at both ends of the movable rods (4021); the clamping plates (403) are arranged on both upper sides of the bearing plate (401); the inserting rods (4031) are symmetrically arranged at both lower sides of the clamping plates (403), and the inserting rods (4031) are in plug-in fit with the circular holes at the side ends of the movable rods (4021).
Citation Information
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