Mobile robot
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- フーバー ゲオルク
- Filing Date
- 2023-02-16
- Publication Date
- 2026-04-13
Smart Images

Figure 0007844652000001 
Figure 0007844652000002 
Figure 0007844652000003
Abstract
Description
Technical Field
[0001] The present invention relates to a mobile robot including a robot body and at least one robot leg. The robot leg includes a rod that is axially movable and pivotably guided to the robot body, and is provided with means for moving the rod axially and means for pivoting the rod, and the opening is located at a position on the robot body relative to the robot leg, and the rod is movable vertically and at a variable angle relative to the opening, or the robot leg is axially movable to the outer edge of the robot body, It relates to.
Background Art
[0002] In addition to robots including wheels and endless tracks, there are also robots provided with legs for moving the robot body, changing its height, and tilting the robot body.
[0003] WO 2020 / 169285 A1 pamphlet discloses a robot leg having at least two joints, each joint interconnecting two segments, each joint comprising a cam, and the robot leg further comprising at least one actuator and a common tendon interconnecting each cam. Chinese Patent Application Publication No. 111550539A relates to a drive system for a bionic robot. The hydraulic drive system includes a housing, a regulating motor, a hydraulic drive unit, and a drive mechanism, the regulating motor being located at the top of the internal cavity of the housing, the hydraulic drive unit being located on one side of the internal cavity of the housing, and the drive mechanism being located in the center of the internal cavity of the housing. In this case, a rotating disk is located at the bottom of the regulating motor, and this rotating disk is transmitted and connected to the regulating motor via a synchronous belt and a synchronous wheel. U.S. Patent No. 4,324,302A describes a walking machine comprising two columns, normally stationary on the ground, and supporting a load on a platform, the platform being positioned eccentrically between the columns. Lifting legs are connected to the legs and platform by ball joints, and these lifting legs can be moved by two double-acting hydraulic cylinders to change their inclination in two planes.
[0004] These types of robot legs modeled on nature have a relatively complex structure including joints, so they are complicated to manufacture, likely to require repair, and also limit the height to which the robot body can be raised to the length of the segments in a state where the joints are extended.
Prior Art Documents
Patent Documents
[0005]
Patent Document 1
Patent Document 2
Patent Document 3
Summary of the Invention
Problems to be Solved by the Invention
[0006] This invention addresses the challenge of providing a mobile robot that significantly expands the range the robot body can climb and has a structure that is as simple as possible and yet robust. [Means for solving the problem]
[0007] In the present invention, this problem is, Claim 1 This is resolved in the mobile robot described in the premise section, and in the said mobile robot, The rod is a first threaded rod including an external thread and a groove extending in the axial direction, the external thread engaging with an internal thread, the internal thread being connected to the robot body so as to be rotatable and pivotable but not axially movable, a pin provided in the groove to prevent radial rotation of the rod, a first drive unit for rotating the internal thread of the rod provided as a means for moving the rod in the axial direction, and at least one further drive unit directly or indirectly connected to the first threaded rod provided as a means for pivoting (Verschwenken) the rod. . The robot leg is moved vertically (z-axis) by moving the screw rod axially. A further drive unit pivots the screw rod to move the robot leg horizontally (x-axis) or vertically (y-axis).
[0008] The robot leg according to the present invention includes a rod on which the robot body is supported, with the lower end of the rod positioned on the ground. The rod is connected to the outer edge of the robot body so as to be movable in the axial direction, or an opening is located at a position provided on the leg of the robot body, and the rod is movable vertically and at a variable angle relative to the opening. These devices move the rod in the longitudinal direction of the rod relative to the robot body and change the angle of the rod axis relative to the robot body in two dimensions.
[0009] Therefore, devices fixed to the robot body typically work in conjunction with other robot legs to move rods three-dimensionally relative to the robot body, thereby changing the horizontal and vertical positions of the robot body, as well as its inclination relative to the ground. The length of the rods can be several times the size of the robot body.
[0010] Because of their simple structure, these robotic legs are cost-effective in terms of manufacturing and maintenance. The above problem is solved in the mobile robot described in the premise of claim 2, wherein the rod is preferably a rectangular rack, and a drive unit including complementary engaging elements that engage with the rack is provided as a means for moving the rod axially, and at least one further drive unit directly or indirectly connected to the rack is provided as a means for pivoting the rod.
[0011] One feature of the present invention is that the openings of the robot body are continuous.
[0012] Advantageously, in this case, the robot body is movable along the entire length of the rod. The robot leg may be arranged within the robot body. The rod may extend through a continuous opening of the robot body.
[0015] An advantageous development of the invention is that two drive units directly or indirectly connected to the first threaded rod so as to be offset from each other are provided as means for pivoting the rod.
[0016] The two drive units may be offset diagonally or at right angles to each other. In this configuration, both left - right movement (x - axis) and forward - backward movement (y - axis) can be performed. The two drive units may be configured as servo motors.
[0017] Instead of the two drive units, a single drive unit using deflection means (Umlenkmittel, deflection means) to pivot the rod about two axes can also be provided to pivot the rod.
[0018] In this case, it is sufficient if the rod is configured as a threaded rod in part (in some parts).
[0019] The lengths of these parts determine the vertical adjustability of the robot leg.
[0021] An advantageous development of the invention is that a control device is provided.
[0022] So that the robot can utilize the leg structure in various ways, the drive unit needs to be equipped with a signal transmitter for displaying rotation or for another display, and the control device can derive the position of the leg from the signal transmitter. Once the control device determines the starting position at the initial stage, it can move each robot leg to any position within the volume that can be reached, spread the legs at various angles according to the required upright stability, move the legs around obstacles and over high obstacles, and position the robot body at any height between the ground and the length of the threaded rod.
[0023] An advantageous configuration is that an inclination sensor is provided.
[0024] The inclination sensor is advantageous for control. As a result, the robot body can be inclined as intended, and in particular, the robot body can always be kept horizontal at a freely changeable height regardless of the nature of the terrain.
[0025] Particularly advantageously, the inclination sensor can be used to determine whether the robot leg is in contact with the ground. For example, when moving the robot leg towards the ground, contact with the ground can be determined based on the change in the inclination angle when moving the robot leg.
[0026] The path along which the robot moves may be very steep, and there is no need to remove obstacles. For example, the robot can step into and over a hedge. The robot can operate in shallow water, and if pads are provided on its legs, it can also operate on muddy ground. The robot leaves almost no footprints on the ground along its path.
[0027] This robot is particularly suitable for use in agriculture and horticulture such as vineyards, tea gardens, and paddy fields. For this purpose, in addition to control software for movement, the robot requires devices for specific application tasks, usually one or two robot arms including related control devices, and also, for example, a camera and a pattern recognition program for identifying specific plants or pests, and finally a program for orientation and navigation on the terrain. When multiple robots are operating simultaneously, their movements need to be related to each other and their work needs to be coordinated.
Brief Description of the Drawings
[0028] Hereinafter, the configuration of the present invention will be described in more detail with reference to the drawings.
[0029] [Figure 1] This is a side view showing details of a mobile robot related to robotic legs according to the present invention. [Figure 2] Figure 1 is a plan view of the lower side of the mobile robot. [Figure 3] This is a side view of a further mobile robot according to the present invention. [Figure 4] This is a side view of the mobile robot. [Figure 5] Figure 4 is a cross-sectional view of the mobile robot. [Modes for carrying out the invention]
[0030] Figures 1 and 2 show exemplary embodiments of a mobile robot including robotic legs.
[0031] In Figure 1, the arrow pointing from top to bottom indicates the viewing direction in Figure 1.
[0032] In an exemplary embodiment, a long threaded rod 2, including an external thread and an axially extending groove, is used for vertical movement. The threaded rod 2 passes through an opening in the robot body 1, which has rounded edges and is slightly larger than the cross-section of the threaded rod 2. A rectangular frame 5 is suspended from the threaded rod 2, and the threaded rod 2 moves axially through this frame 5. Inside the frame 5, a first ball bearing 6a, configured to press, is pressed against the threaded rod 2 (sliding on the threaded rod 2) on its upper side facing the opening. The first ball bearing 6a abuts against a first nut 7a, which has worm wheel teeth on its outside. A long sleeve 10 rigidly connects this first nut 7a to a further nut 11, which abuts against a second ball bearing 6b, configured to press axially. The rotatable ring of this second ball bearing 6b abuts against the frame 5. The two nuts 7a and 11 and the sleeve 10 connecting them can rotate freely within the frame 5.
[0033] The motor 9, including the worm shaft 8a, is fixed laterally to the frame 5 as the first drive unit. The worm shaft engages with the worm wheel of the first nut 7a, and rotates the worm wheel, thereby rotating two nuts 7a and 11 and moving the screw rod 2 within the frame 5. The first pin 12, fixed to the frame 5, engages with a groove in the screw rod 2 so as not to rotate axially together with it.
[0034] The robot body 1 abuts against the frame 5 via a short spacer sleeve 4. A tension spring 3 located at the upper corner of the frame 5 holds the screw rod 2 at the center of the opening in the robot body 1 and allows for angular movement of the screw rod 2.
[0035] During lateral movement, only the lower side of the frame 5 on the opposite side of the opening of the robot body 1 is moved. The link mechanism 13 connects the lower edge of the frame 5 to the end face of the second short screw rod 14, which has a groove, via a joint.
[0036] A second nut 7b, having worm gear threads on its exterior, rotates on this short threaded rod 14. A motor 16, which rotates the second nut 7b by a worm shaft 8b, is fixed to the robot body as an additional drive unit. Similarly, U-shaped holders 15, fixed to the robot body 1 and located on both sides of the second nut 7b, prevent the second nut 7b from moving axially, and a second pin 12, which engages with a groove in the short threaded rod 14, prevents the second nut 7b from rotating axially. A ball bearing between the holder and the second nut 7b reduces friction on the holder 15. The rotating second nut 7b moves the short threaded rod 14 within the U-shaped holder 15, changing the left-right angle of the long threaded rod 2 of the robot leg via the linkage mechanism and frame 5.
[0037] A similarly configured further linkage mechanism, including a short threaded rod and nut rotated by a worm drive within a U-shaped holder, is fixed to the lower edge of frame 5 perpendicular to the linkage mechanism for lateral movement. These push the robot legs in the forward and backward directions.
[0038] Alternatively, any type of linear drive unit may be used for lateral movement and forward / backward movement.
[0039] Instead of a worm drive for vertical movement, the nut may alternatively include a gear wheel on the outside instead of a worm wheel, which is driven by a pinion on a motor shaft extending parallel to the screw rod.
[0040] Depending on the motor speed, a reduction gear may be required.
[0041] To improve the travel speed, a rectangular rack may be used instead of a screw rod. This eliminates the need for grooves to prevent axial rotation, improves the travel speed, and, for fine adjustment, requires a motor with reduction gears or a stepping motor instead of a nut, worm drive, and simple motor.
[0042] Figure 3 shows a further exemplary embodiment of a mobile robot including robotic legs.
[0043] In an exemplary embodiment, a long threaded rod 2, including an external thread and an axially extending groove 17, is used for vertical movement. The threaded rod 2 passes through an opening 22 in the robot body 1, which has rounded edges and is slightly larger than the cross-section of the threaded rod 2. The opening 22 in the robot body 1 may be continuous. In this case, the threaded rod 2 may extend through a continuous opening 22 in the robot body 1. A U-shaped frame 5 is positioned below the opening 22, and the threaded rod 2 moves axially through this frame 5.
[0044] Inside the frame 5, the spacer sleeve 4 is pressed against the threaded rod on its upper side facing the opening 22. The spacer sleeve 4 is rigidly coupled to the frame 5 and forms a sliding bearing for the axial movement of the threaded rod 2. The threaded rod 2 extends through the opening of the first ball joint 18a. The robot leg is fixed to the robot body 1 via the first ball joint 18a. The first ball joint 18a allows the threaded rod 2 to move angularly together with the frame 5.
[0045] A first ball bearing 6a, configured to apply pressure, abuts against a first ball coupling 18a. The first ball bearing 6a is pressed against the threaded rod 2. The first ball bearing 6a abuts against a first nut 7a, whose outer surface is configured as a spur gear. This first nut 7a abuts against a second ball bearing 6b, which is configured to apply pressure in the axial direction. The rotatable rings of the two ball bearings 6a, 6b abut against the nut 7a. The nut 7a can rotate freely within the frame 5. A long sleeve 10 abuts against the ball bearing 6b. The long sleeve 10 extends through the frame 5 and connects to the frame 5. The two sleeves 4, 10 connected to the frame prevent the first nut 7a from moving axially along the threaded rod 2 relative to the frame 5.
[0046] The motor 9, including the first pinion 19a, is fixed laterally to the frame 5 as the first drive unit. The first pinion 19a engages with the gear wheel of the first nut 7a, causing the gear wheel to rotate, which in turn rotates the nut 7a and moves the screw rod 2 within the frame 5. A pin 12 fixed to the frame 5 engages with a groove in the screw rod 2 so as not to rotate axially together with it.
[0047] The tension spring 3 located at the upper corner of frame 5 prevents frame 5 from rotating radially around the threaded rod 2, allowing angular movement of frame 5, and therefore threaded rod 2, around the ball joint 18.
[0048] During lateral movement, only the lower side of the frame 5 on the opposite side of the opening 22 of the robot body 1 is moved. The sliding bearing 20 is connected to the frame 5 by a long sleeve 10. Two Kardan joints 21 are fixed to the outside of the sliding bearing 20 at a 90° angle. One end of the Kardan joint 21 is connected to the sliding bearing 20, and the other end is connected to a short threaded rod 14. The Kardan joint 21 allows for various angular positions of the short threaded rod 14 relative to the threaded rod 2. In this case, the Kardan joint 21 prevents axial rotation of the short threaded rod 14.
[0049] The second nut 7b, whose outer surface is configured as a spur gear, rotates on the short threaded rod 14. A motor 16, which rotates the second nut 7b via a second pinion 19b, is fixed to the robot body 1 as an additional drive unit. Similarly fixed to the robot body 1 via a second ball joint 18b, U-shaped holders 15 on both sides of the second nut 7b prevent the second nut 7b from moving axially. The short threaded rod 14 does not have a groove, as a cardan joint 21 prevents axial rotation of the short threaded rod 14. The rotating second nut 7b moves the short threaded rod 14 within the U-shaped holder 15, changing the left-right angle of the long threaded rod 2 of the robot leg via the cardan joint 21, sliding bearing 20, and frame 5.
[0050] A similarly configured further linkage mechanism, including a short threaded rod and nut rotated by a pinion in a U-shaped holder, is fixed to the lower edge of frame 5 perpendicular to the linkage mechanism for lateral movement. These push the robot legs in the forward and backward directions.
[0051] Alternatively, any type of linear drive unit may be used for lateral movement and forward / backward movement.
[0052] Depending on the motor speed, a reduction gear may be required.
[0053] To improve the travel speed, a rectangular rack may be used instead of a screw rod. This eliminates the need for grooves to prevent axial rotation, improves the travel speed, and requires a motor with reduction gears or a stepping motor instead of nuts, gear wheels, and a simple motor for fine adjustment.
[0054] The robot legs may be located inside the robot body. In this case, the screw rod 2 may extend through a continuous opening 22 in the robot body.
[0055] Figure 4 shows a further exemplary embodiment of a mobile robot including robotic legs. Figure 5 is a cross-sectional view of the mobile robot of Figure 4 along section line AA.
[0056] In an exemplary embodiment, a long threaded rod 2, including an external thread and an axially extending groove 17, is used for vertical movement. The threaded rod 2 passes through an opening 22 in the robot body 1, which has rounded edges and is slightly larger than the cross-section of the threaded rod 2. The opening 22 in the robot body 1 may be continuous. In this case, the threaded rod 2 may extend through a continuous opening 22 in the robot body 1. Advantageously, the mobile robot may thus be configured to be particularly compact. A U-shaped frame 5 is positioned below the opening 22, and the threaded rod 2 moves axially through this frame 5.
[0057] Inside the frame 5, the spacer sleeve 4 is pressed against the threaded rod on its upper side facing the opening 22. The spacer sleeve 4 is rigidly coupled to the frame 5 and forms a sliding bearing for the axial movement of the threaded rod 2. The threaded rod 2 extends through the opening of the first ball joint 18a. The robot leg is fixed to the robot body 1 via the first ball joint 18a. The first ball joint 18a allows the threaded rod 2 to move angularly together with the frame 5.
[0058] A first ball bearing 6a, configured to apply pressure, abuts against a first ball coupling 18a. The first ball bearing 6a is pressed against the threaded rod 2. The first ball bearing 6a abuts against a first nut 7a, whose outer surface is configured as a spur gear. This first nut 7a abuts against a second ball bearing 6b, which is configured to apply pressure in the axial direction. The rotatable rings of the two ball bearings 6a, 6b abut against the nut 7a. The nut 7a can rotate freely within the frame 5. A long sleeve 10 abuts against the ball bearing 6b. The long sleeve 10 extends through the frame 5 and connects to the frame 5. The two sleeves 4, 10 connected to the frame prevent the first nut 7a from moving axially along the threaded rod 2 relative to the frame 5.
[0059] The motor 9, including the first pinion 19a, is fixed laterally to the frame 5 as the first drive unit. The first pinion 19a engages with the gear wheel of the first nut 7a, causing the gear wheel to rotate, which in turn rotates the nut 7a and moves the screw rod 2 within the frame 5. The first pin 12, fixed to the frame 5, engages with a groove in the screw rod 2 so as not to rotate axially together with it.
[0060] The tension spring 3 located at the upper corner of frame 5 prevents frame 5 from rotating radially around the threaded rod 2, allowing angular movement of frame 5, and therefore threaded rod 2, around the ball joint 18.
[0061] For left-right movement, two servo motors 23a and 23b are connected to the underside of the frame 5. Each of the two servo motors 23a and 23b is positioned with arms 24a and 24b that can rotate together with the associated servo motors 23a and 23b within angular ranges 25a and 25b. Linkage mechanisms 13a and 13b are movably connected to the arms 24a and 24b, respectively. Linkage mechanisms 13a and 13b are fixed to the robot body 1. As the arm 24a or 24b deflects away from the robot body 1, the servo motor 23a or 23b is pulled toward the robot body 1, causing the frame 5 to rotate around the first ball joint 18a and the screw rod 2 to tilt outward. Because the linkage mechanisms 13a and 13b are positioned approximately perpendicular to each other, the two servo motors 23a and 23b can move the screw rod 2 between two horizontal dimensions.
[0062] The robot legs may be located inside the robot body. In this case, the screw rod 2 may extend through a continuous opening 22 in the robot body. [Explanation of symbols]
[0063] 1. Robot body 2 rods 3. Tension spring 4 Spacer Sleeves 5 frames 6a 1st ball bearing 6b 2nd ball bearing 7a First nut 7b Second nut 8a Worm shaft 8b Worm shaft 9 Motors 10 sleeves 11 nuts 12 pins 13 Link mechanism 13a First Link Mechanism 13b Second Link Mechanism 14 Short threaded rod 15 holders 16 Drive unit 17. Grooves extending in the axial direction 18a First ball joint 18b Second ball joint 19a First pinion 19b Second pinion 20 Plain bearings 21 Cardan joint 22 Opening 23a First servo motor 23b Second servo motor 24a First Arm 24b Second Arm 25a First angular range 25b Second Angle Range
Claims
1. A mobile robot comprising a robot body (1) and at least one robot leg, wherein the robot leg includes a rod (2) that is axially movable and pivotably guided to the robot body (1), and is provided with means (6, 7a, 8a, 9, 10, 11) for moving the rod (2) axially and means (7b, 8b, 14, 15, 16) for pivoting the rod (2), and an opening (22) located on the robot body (1) relative to the robot leg, and the rod (2) is movable vertically and at a variable angle relative to the opening, or the robot leg is axially movable connected to the outer edge of the robot body (1), and the rod (2) has an external screw and axially A mobile robot characterized by a first threaded rod including an extending groove, wherein the external thread engages with an internal thread, the internal thread is connected to the robot body (1) so as to be rotatable and pivotable but not axially movable, a pin (12) is provided in the groove to prevent radial rotation of the rod (2) and to function as a guide when the rod (2) is pivoted, and a first drive unit (9) that rotates the internal thread of the rod (2) is provided as means (6, 7a, 8a, 9, 10, 11) for moving the rod (2) in the axial direction, and at least one further drive unit (16) directly or indirectly connected to the first threaded rod is provided as means (7b, 8b, 14, 15, 16) for pivoting the rod.
2. A mobile robot comprising a robot body (1) and at least one robot leg, wherein the robot leg includes a rod (2) that is axially movable and pivotably guided to the robot body (1), and is provided with means (6, 7a, 8a, 9, 10, 11) for moving the rod (2) axially and means (7b, 8b, 14, 15, 16) for pivoting the rod (2), and an opening (22) is located at a position on the robot body (1) relative to the robot leg, and the rod (2) is movable vertically and at a variable angle relative to the opening in the opening, or the robot leg is axially movable connected to the outer edge of the robot body (1), and the rod (2) is a rectangular rack, and a drive unit including complementary engaging elements that engage with the rack is provided as means for moving the rod (2) axially, and at least one further drive unit directly or indirectly connected to the rack is provided as means for pivoting the rod.
3. The mobile robot according to claim 1 or 2, characterized in that it is provided with an opening (22) that penetrates the robot body (1).
4. The mobile robot according to claim 1 or 2, characterized in that two drive units (16) are provided as means for pivoting the rod (2), which are directly or indirectly connected to the rod (2) so as to be offset from each other.
5. The mobile robot according to claim 3, characterized in that two drive units (16) are provided as means for pivoting the rod (2), which are directly or indirectly connected to the rod (2) so as to be offset from each other.
6. The mobile robot according to claim 1 or 2, characterized in that the rod (2) is partially configured as a threaded rod.
7. The mobile robot according to claim 1 or 2, characterized in that a control device is provided.
8. The mobile robot according to claim 1 or 2, characterized in that it is provided with a tilt sensor.
Citation Information
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