Oscillating device and method for controlling the same

The rocking device with a common drive source for multiple extension sections addresses the challenge of size and cost in Stewart platforms, ensuring safety and continuous operation by synchronizing and compensating for malfunctions.

JP7780955B2Active Publication Date: 2025-12-05MITSUBISHI HEAVY IND MACHINERY SYST LTD
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Patent Information

Application Number
JP2022001244
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-01-06
Publication Date
2025-12-05
Estimated Expiration
2042-01-06

AI Technical Summary

Technical Problem

Existing Stewart platforms face challenges with increased size and cost due to the addition of multiple drive sources when actuators malfunction, compromising safety and control.

Method used

A rocking device with a plurality of extension devices, each comprising a first and second extension section connected by a common drive source, allowing for synchronized operation and redundancy to prevent tipping and maintain safety even if one section malfunctions.

Benefits of technology

The solution suppresses increases in size and cost while enhancing safety by ensuring continuous operation through redundancy and synchronized control of extension devices.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To provide an oscillating device and a method for controlling an oscillating device for preventing increase in size and cost and improving safety.SOLUTION: An oscillating device has a plurality of expansion devices arranged between a first member and a second member arranged opposite to each other, and the expansion devices each comprise a first expansion part that can expand and contract between the first member and the second member, a second expansion part that can expand and contract between the first member and the second member, and a common driving source that supplies power to the first expansion part and the second expansion part.SELECTED DRAWING: Figure 2
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Description

[Technical Field]

[0001] The present disclosure relates to a rocking device such as a Stewart platform that is applied to driving simulators, flight simulators, and the like, and a method for controlling the rocking device. [Background technology]

[0002] A Stewart platform, which is used in driving simulators and the like, is configured by installing six actuators between a lower support plate and an upper support plate. The Stewart platform controls the angle of the upper support plate relative to the lower support plate by operating the six actuators. Examples of such technology include those described in the following patent documents: [Prior art documents] [Patent documents]

[0003] [Patent Document 1] GB Patent Application Publication No. 2328192 [Patent Document 2] International Publication No. 2016 / 172029 Summary of the Invention [Problem to be solved by the invention]

[0004] In a Stewart platform, an upper support plate is supported on a lower support plate by six actuators. Therefore, if one of the six actuators malfunctions, it becomes difficult to control the upper support plate to the appropriate angle. In the above-mentioned patent documents, the number of actuators is increased or multiple drive sources are provided for each actuator. However, such a configuration poses the problem of increasing the size and cost of the device due to the increased number of drive sources.

[0005] The present disclosure is intended to solve the above-mentioned problems, and aims to provide an oscillating device and a control method for an oscillating device that suppresses increases in size and cost and improves safety. [Means for solving the problem]

[0006] In order to achieve the above object, the oscillating device of the present disclosure is an oscillating device in which a plurality of extension devices are arranged between a first member and a second member arranged opposite each other, and the extension devices include a first extension section that can extend and contract between the first member and the second member, a second extension section that can extend and contract between the first member and the second member, and a common drive source that supplies power to the first extension section and the second extension section.

[0007] Furthermore, the control method for an oscillating device disclosed herein is a control method for an oscillating device in which a plurality of extension devices are arranged between a first member and a second member arranged opposite each other, wherein the extension devices include a first extension section that can extend and contract between the first member and the second member, a second extension section that can extend and contract between the first member and the second member, and a common drive source that supplies power to the first extension section and the second extension section, and when a malfunction occurs in either the first extension section or the second extension section, the drive source controls the amount of extension or contraction of the other. [Effects of the Invention]

[0008] According to the oscillating device and the method for controlling the oscillating device of the present disclosure, it is possible to suppress increases in size and cost, and also to improve safety. [Brief explanation of the drawings]

[0009] [Figure 1] FIG. 1 is a perspective view showing the overall configuration of a rocking device according to a first embodiment. [Figure 2] FIG. 2 is a schematic diagram showing an extension device in a rocking device. [Figure 3] FIG. 3 is a cross-sectional view showing a modified example of the expansion device. [Figure 4]FIG. 4 is a schematic diagram showing an extension device in a rocking device according to the second embodiment. [Figure 5] FIG. 5 is a schematic diagram showing an extension device in a rocking device according to a third embodiment. [Figure 6] FIG. 6 is a front view showing a main part of an extension device in a rocking device according to a fourth embodiment. [Figure 7] FIG. 7 is a plan view showing the main parts of the expansion device. DETAILED DESCRIPTION OF THE INVENTION

[0010] Preferred embodiments of the present disclosure will be described in detail below with reference to the drawings. Note that the present disclosure is not limited to these embodiments, and when there are multiple embodiments, the present disclosure also includes configurations that combine the embodiments. Furthermore, the components in the embodiments include those that can be easily imagined by a person skilled in the art, those that are substantially identical, and those that are within the so-called equivalent range.

[0011] [First embodiment] <Oscillating device> FIG. 1 is a perspective view showing the overall configuration of a rocking device according to a first embodiment.

[0012] In the first embodiment, as shown in FIG. 1 , the oscillating device 10 is configured by disposing a plurality of telescopic devices 13 between a first member 11 and a second member 12 that are disposed opposite each other. The oscillating device 10 is, for example, a Stewart platform and has six telescopic devices 13. However, the oscillating device 10 is not limited to a Stewart platform, and the number of telescopic devices 13 may be five or less, or seven or more. The oscillating device 10 is applied to, for example, simulator devices such as driving simulators and flight simulators, robot hands, etc., but is not limited thereto.

[0013] The six telescopic devices 13 are configured, for example, as three sets of two telescopic devices 13. The two telescopic devices 13 in one set are arranged in a V-shape. The base ends of each telescopic device 13 in one set are connected to different connecting portions 21 and 22 of the first member 11 via universal joints 23 and 24. The distal ends of each telescopic device 13 in one set are connected to a common connecting portion 25 of the second member 12 via universal joints 26 and 27. The base ends of each telescopic device 13 in one set are connected near the base ends of two adjacent telescopic devices 13 in another set. The six telescopic devices 13 have the same configuration. The base ends of each telescopic device 13 in one set may be connected to a common connecting portion, or the distal ends may be connected to different connecting portions 25.

[0014] The rocking device 10 can change and adjust the angle of the second member 12 relative to the first member 11 by controlling the extension and contraction amounts of the multiple extension devices 13. At this time, the extension and contraction amounts of at least two extension devices 13 in one set are controlled synchronously.

[0015] <Stretching device configuration> FIG. 2 is a schematic diagram showing an extension device in a rocking device.

[0016] As shown in FIG. 2, the extension device 13 has a first extension section 31, a second extension section 32, a drive source 33, a first power transmission system 34, and a second power transmission system 35.

[0017] The first telescopic section 31 and the second telescopic section 32 are extendable and retractable between the first member 11 and the second member 12. The first telescopic section 31 and the second telescopic section 32 are arranged in series between the first member 11 and the second member 12. The first telescopic section 31 and the second telescopic section 32 are housed in a first housing 40.

[0018] The first telescopic part 31 has a first screw shaft 41 and a first moving body 42. A threaded portion 41a is formed at the tip of the first screw shaft 41. A threaded hole 42a is formed through the base end of the first moving body 42. The first telescopic part 31 is configured by screwing the threaded portion 41a of the first screw shaft 41 into the threaded hole 42a of the first moving body 42.

[0019] The first screw shaft 41 is supported by a bearing 43 in the first housing 40 so as to be rotatable in the circumferential direction but immovable in the axial direction. The first moving body 42 is supported by a guide member 44 so as to be movable in the axial direction but immovable in the circumferential direction. In the first telescopic section 31, a part of the tip end side of the first moving body 42 protrudes from the first housing 40. The first moving body 42 has a connecting part 45 at its tip end, and the connecting part 45 is connected to the first member 11 via universal joints 23, 24 (see FIG. 1).

[0020] The second expandable portion 32 has a second screw shaft 46 and a second moving body 47. The second screw shaft 46 has a threaded portion 46a formed at its tip. The second moving body 47 has a threaded hole 47a formed at its base end. The second expandable portion 32 is configured such that the threaded portion 46a of the second screw shaft 46 is screwed into the threaded hole 47a of the second moving body 47.

[0021] The second screw shaft 46 is supported by a bearing 48 in the first housing 40 so as to be rotatable in the circumferential direction but immovable in the axial direction. The second moving body 47 is supported by a guide member 49 so as to be movable in the axial direction but immovable in the circumferential direction. A part of the tip end side of the second moving body 47 of the second telescopic section 32 protrudes from the first housing 40. The second moving body 47 has a connecting part 50 at its tip end, and the connecting part 50 is connected to the second member 12 via universal joints 26, 27 (see FIG. 1).

[0022] The first telescopic portion 31 and the second telescopic portion 32 are arranged along a common center O1 of the first screw shaft 41 and the second screw shaft 46.

[0023] Therefore, when the first screw shaft 41 rotates forward in the first expandable / contractable section 31, power is transmitted to the first moving body 42 via the threaded portion 41a and the threaded hole 42a that are threadedly engaged with each other, and the first moving body 42 moves in one axial direction and moves away from the first screw shaft 41. On the other hand, when the first screw shaft 41 rotates reversely in the first expandable / contractable section 31, power is transmitted to the first moving body 42 via the threaded portion 41a and the threaded hole 42a that are threadedly engaged with each other, and the first moving body 42 moves in the other axial direction and moves closer to the first screw shaft 41.

[0024] When the second screw shaft 46 rotates forward in the second expandable / contractable section 32, power is transmitted to the second moving body 47 via the threaded portion 46a and the threaded hole 47a that are threadedly engaged with each other, and the second moving body 47 moves in one axial direction and moves away from the second screw shaft 46. On the other hand, when the second screw shaft 46 rotates reversely in the second expandable / contractable section 32, power is transmitted to the second moving body 47 via the threaded portion 46a and the threaded hole 47a that are threadedly engaged with each other, and the second moving body 47 moves in the other axial direction and moves closer to the second screw shaft 46.

[0025] The driving source 33 is, for example, an electric or hydraulic motor. The driving source 33 has a rotating shaft 51 as an output shaft. The driving source 33 is accommodated in and fixed to the second housing 52. The second housing 52 is fixed to the first housing 40. The rotating shaft 51 is supported by bearings 53 and 54 in the second housing 52 so as to be rotatable in the circumferential direction. The driving source 33 can rotate the rotating shaft 51 forward and backward. The driving source 33 functions as a common driving source that supplies power to the first telescopic section 31 and the second telescopic section 32.

[0026] The first power transmission system 34 has a drive pulley 61, a driven pulley 62, and a drive belt 63. The drive pulley 61 is fixed to the rotation shaft 51 of the drive source 33. The driven pulley 62 is fixed to the first screw shaft 41 in the first telescopic section 31. The drive belt 63 is an endless belt that is wound around between the drive pulley 61 and the driven pulley 62. The first power transmission system 34 is capable of transmitting the power of the drive source 33 between the drive source 33 and the first screw shaft 41 to rotate the first screw shaft 41.

[0027] The second power transmission system 35 has a drive pulley 64, a driven pulley 65, and a drive belt 66. The drive pulley 64 is fixed to the rotation shaft 51 of the drive source 33. The driven pulley 65 is fixed to the second screw shaft 46 in the second telescopic section 32. The drive belt 66 is an endless belt that is wound around between the drive pulley 64 and the driven pulley 65. The second power transmission system 35 is capable of transmitting power from the drive source 33 between the drive source 33 and the second screw shaft 46 to rotate the second screw shaft 46.

[0028] Therefore, when the drive source 33 is driven to rotate the rotary shaft 51 in the forward direction, the power is transmitted to the first screw shaft 41 via the drive pulley 61, drive belt 63, and driven pulley 62 that constitute the first power transmission system 34, causing the first screw shaft 41 to rotate in the forward direction. In addition, the power of the drive source 33 is transmitted to the second screw shaft 46 via the drive pulley 64, drive belt 66, and driven pulley 65 that constitute the second power transmission system 35, causing the second screw shaft 46 to rotate in the forward direction.

[0029] On the other hand, when the drive source 33 is driven to rotate the rotary shaft 51 in the reverse direction, the power is transmitted to the first screw shaft 41 via the drive pulley 61, drive belt 63, and driven pulley 62 that constitute the first power transmission system 34, causing the first screw shaft 41 to rotate in the reverse direction. Also, the power of the drive source 33 is transmitted to the second screw shaft 46 via the drive pulley 64, drive belt 66, and driven pulley 65 that constitute the second power transmission system 35, causing the second screw shaft 46 to rotate in the reverse direction.

[0030] The oscillating device 10 (see FIG. 1) also has a control unit 71. The control unit 71 can control each extension device 13 via the drive source 33. That is, the control unit 71 controls the extension direction and extension amount of each extension device 13 by adjusting the rotation direction, rotation speed, rotation amount, etc. of the drive source 33. The control unit 71 controls the drive source 33 in accordance with input command values ​​and various stored programs. The control unit 71 is a controller, and is configured, for example, with a CPU (Central Processing Unit) or MPU (Micro Processing Unit), and executes various programs.

[0031] Each extension device 13 is provided with an operation malfunction detection unit 72 that detects operation malfunctions of the first extension section 31, the second extension section 32, etc. The operation malfunction detection unit 72 detects malfunctions of the first extension section 31 and the second extension section 32, malfunctions of the first power transmission system 34 and the second power transmission system 35, malfunctions of each brake device (not shown) provided in the first extension section 31 and the second extension section 32, etc. The operation malfunction detection unit 72 may be, for example, a rotation sensor that detects the amount of rotation of the first threaded shaft 41 and the second threaded shaft 46, a stroke sensor that detects the amount of movement of the first moving body 42 and the second moving body 47, a rotation sensor that detects the amount of rotation of the drive pulleys 61, 64 and the driven pulleys 62, 65, an acceleration sensor that detects the movement speed of the drive belts 63, 66, etc., but is not limited to these sensors.

[0032] The control unit 71 controls the drive source 33 based on the detection result of the malfunction detection unit 72. When the malfunction detection unit 72 detects malfunction of either the first extension / contraction unit 31 or the second extension / contraction unit 32, the control unit 71 controls the extension / contraction amount of the other unit using the drive source 33.

[0033] <Operation of expansion joint>

[0034] When changing the angle of the second member 12 relative to the first member 11, the control unit 71 operates each extension device 13. The control unit 71 drives the drive source 33 to rotate the rotation shaft 51 in the forward direction. The power of the drive source 33 is transmitted to the first extension / contraction unit 31 via the first power transmission system 34, causing the first screw shaft 41 to rotate in the forward direction. When the first screw shaft 41 rotates in the forward direction, the rotational force is transmitted to the first moving body 42 via the threaded portion 41a and the screw hole 42a as an axial moving force, causing the first moving body 42 to move away from the first screw shaft 41. In addition, the power of the drive source 33 is transmitted to the second screw shaft 46 of the second extension / contraction unit 32 via the second power transmission system 35, causing the second screw shaft 46 to rotate in the forward direction. When the second screw shaft 46 rotates forward, the rotational force is transmitted as an axial moving force to the second moving body 47 via the threaded portion 46a and the screw hole 47a, and the second moving body 47 moves away from the second screw shaft 46.

[0035] As a result, the telescopic device 13 allows the first moving body 42 and the second moving body 47 to extend axially outward relative to the first housing 40 and the second housing 52, thereby changing the angle of the second member 12 relative to the first member 11.

[0036] On the other hand, when the control unit 71 drives the driving source 33 to rotate the rotating shaft 51 in the reverse direction, the power of the driving source 33 is transmitted to the first telescopic unit 31 via the first power transmission system 34, causing the first threaded shaft 41 to rotate in the reverse direction. When the first threaded shaft 41 rotates in the reverse direction, the rotational force is transmitted to the first moving body 42 via the threaded portion 41a and the threaded hole 42a as an axial moving force, causing the first moving body 42 to move closer to the first threaded shaft 41. Furthermore, the power of the driving source 33 is transmitted to the second threaded shaft 46 of the second telescopic unit 32 via the second power transmission system 35, causing the second threaded shaft 46 to rotate in the reverse direction. When the second threaded shaft 46 rotates in the reverse direction, the rotational force is transmitted to the second moving body 47 via the threaded portion 46a and the threaded hole 47a as an axial moving force, causing the second moving body 47 to move closer to the second threaded shaft 46.

[0037] As a result, the first moving body 42 and the second moving body 47 as the extension device 13 contract axially inward relative to the first housing 40 and the second housing 52, and the angle of the second member 12 relative to the first member 11 can be changed.

[0038] In the extension device 13, for example, when the malfunction detection unit 72 detects malfunction of the first extension unit 31, it outputs a signal that the first extension unit 31 is malfunctioning to the control unit 71. The control unit 71 controls the drive source 33 in accordance with the malfunction of the first extension unit 31 detected by the malfunction detection unit 72, and controls the extension amount of the second extension unit 32.

[0039] For example, when the telescopic device 13 (the first telescopic section 31 and the second telescopic section 32) needs to be extended by 10 strokes, the drive source 33 is driven to extend the first telescopic section 31 by 5 strokes and the second telescopic section 32 by 5 strokes. At this time, the drive source 33 is unable to extend the first telescopic section 31 by 5 strokes due to a malfunction. Therefore, the control unit 71 causes the drive source 33 to extend the second telescopic section 32 by a range of 6 to 10 strokes. In this case, the primary objective is to prevent the second member 12 from tipping over due to a malfunction of the first telescopic section 31. In other words, it is sufficient if the operation of the second telescopic section 32 can compensate for the malfunction of the first telescopic section 31. Therefore, the control unit 71 controls the drive source 33 to increase the extension amount of the second telescopic section 32 within a range that prevents the second member 12 from tipping over.

[0040] The same applies to the case where the extension device 13 (the first extension section 31 and the second extension section 32) is contracted by a predetermined stroke.

[0041] The configuration of the extension device 13 is not limited to the above-described configuration. Fig. 3 is a cross-sectional view showing a modified example of the extension device.

[0042] In a modified example of the first embodiment, as shown in Fig. 3, the extension device 13A has a first extension section 31, a second extension section 32, a drive source 33 (see Fig. 2), a first power transmission system 34, and a second power transmission system 35. The drive source 33, the first power transmission system 34, and the second power transmission system 35 are the same as those in the first embodiment.

[0043] The first stretchable portion 31 and the second stretchable portion 32 are extendable between the first member 11 and the second member 12. The first stretchable portion 31 and the second stretchable portion 32 are arranged in series between the first member 11 and the second member 12.

[0044] The first telescopic unit 31 has a first screw shaft 41 and a first moving body 42. The second telescopic unit 32 has a second screw shaft 46 and a second moving body 47. The first telescopic unit 31 and the second telescopic unit 32 are arranged such that the centers of the first screw shaft 41 and the second screw shaft 46 are aligned along a common center O1. A common guide shaft 81 is arranged inside the first screw shaft 41 and the second screw shaft 46.

[0045] The first screw shaft 41 has a cylindrical shape and has a through hole formed therein along the axial direction. The second screw shaft 46 has a cylindrical shape and has a through hole formed therein along the axial direction. The guide shaft 81 is inserted through the through hole of the first screw shaft 41 and the through hole of the second screw shaft 46. Furthermore, each axial end of the guide shaft 81 is also inserted through the first moving body 42 and the second moving body 47, and the connecting portion 82 is connected to the first moving body 42. Note that the connecting portion 82 of the guide shaft 81 may be connected to the second moving body 47, or the connecting portion 82 may be connected to the first screw shaft 41 or the second screw shaft 46.

[0046] The first telescopic section 31 and the second telescopic section 32, at least the first screw shaft 41 and the second screw shaft 46, are supported by a common guide shaft 81 so as to be freely movable in the axial direction. Therefore, even if a malfunction occurs in the first telescopic section 31, the first screw shaft 41 will not be broken, and the second telescopic section 32, which is not malfunctioning, will operate smoothly, thereby appropriately preventing the second member 12 from tipping over.

[0047] [Second embodiment] 4 is a schematic diagram showing an extension device in a rocking device according to the second embodiment. Note that members having the same functions as those in the first embodiment described above are given the same reference numerals and detailed descriptions thereof will be omitted.

[0048] 4, in the second embodiment, the extension device 13B has a first extension section 31, a second extension section 32, a driving source 33, a first power transmission system 34, and a second power transmission system 35. The driving source 33, the first power transmission system 34, and the second power transmission system 35 are the same as those in the first embodiment.

[0049] The first telescopic section 31 and the second telescopic section 32 are extendable and retractable between the first member 11 and the second member 12. The first telescopic section 31 and the second telescopic section 32 are arranged in a parallel row between the first member 11 and the second member 12. The first telescopic section 31 and the second telescopic section 32 are housed in a first housing 40.

[0050] The first telescopic section 31 has a first screw shaft 41 and a first moving body 42. The second telescopic section 32 has a second screw shaft 46 and a second moving body 47. The first telescopic section 31 and the first telescopic section 31 are substantially the same as those in the first embodiment. However, the reduction ratio between the threaded portion 41a of the first screw shaft 41 and the threaded hole 42a of the first moving body 42 that constitute the first telescopic section 31 is the same as the reduction ratio between the threaded portion 46a of the second screw shaft 46 and the threaded hole 47a of the second moving body 47 that constitute the second telescopic section 32.

[0051] The first telescopic unit 31 and the second telescopic unit 32 are arranged side by side. The first telescopic unit 31 and the second telescopic unit 32 have a portion of the tip end side of the first moving body 42 and the second moving body 47 protruding from the first housing 40. The first moving body 42 and the second moving body 47 have a connecting member 91 connected to their respective tip ends, and the connecting member 91 has a connecting portion 92 provided thereon, which is connected to the second member 12 via universal joints 26 and 27 (see FIG. 1). The first telescopic unit 31 and the second telescopic unit 32 have a connecting portion 93 provided at the end of the first housing 40 where the first screw shaft 41 and the second screw shaft 46 are supported, and the connecting portion 93 is connected to the first member 11 via universal joints 23 and 24 (see FIG. 1).

[0052] Therefore, when changing the angle of the second member 12 relative to the first member 11, each extension device 13B is operated. The drive source 33 is driven to rotate the rotation shaft 51 in the forward direction. The power of the drive source 33 is transmitted to the first extension / contraction unit 31 via the first power transmission system 34, causing the first screw shaft 41 to rotate in the forward direction. The power of the drive source 33 is also transmitted to the second screw shaft 46 of the second extension / contraction unit 32 via the second power transmission system 35, causing the second screw shaft 46 to rotate in the forward direction. When the first screw shaft 41 rotates in the forward direction, the rotational force is transmitted to the first moving body 42 via the threaded portion 41a and the threaded hole 42a as an axial moving force, causing the first moving body 42 to move away from the first screw shaft 41. When the second screw shaft 46 rotates in the forward direction, the rotational force is transmitted to the second moving body 47 via the threaded portion 46a and the threaded hole 47a as an axial moving force, causing the second moving body 47 to move away from the second screw shaft 46.

[0053] In the extension device 13B, the first extension section 31 and the second extension section 32, which are arranged in parallel, are operated in synchronization by a common drive source 33. In other words, the extension amount of the first extension section 31 and the extension amount of the second extension section 32 are the same. As a result, in the extension device 13B, the first moving body 42 and the second moving body 47 extend axially outward relative to the first housing 40 and the second housing 52, respectively, and the angle of the second member 12 relative to the first member 11 can be changed.

[0054] Then, in the extension device 13B, for example, a malfunction occurs in the first extension section 31. The first extension section 31 and the second extension section 32 are arranged in parallel between the first member 11 and the second member 12. Therefore, even if a malfunction occurs in the first extension section 31, the second extension section 32 operates normally, making it possible to appropriately change the angle of the second member 12 and preventing the second member 12 from tipping over.

[0055] [Third embodiment] 5 is a schematic diagram showing an extension device in a rocking device according to a third embodiment. Note that members having the same functions as those in the first embodiment described above are given the same reference numerals and detailed descriptions thereof will be omitted.

[0056] 5, in the third embodiment, the extension device 13C has a first extension section 101, a second extension section 102, a driving source 33, a first power transmission system 34, and a second power transmission system 35. The driving source 33, the first power transmission system 34, and the second power transmission system 35 have the same configuration as in the first embodiment.

[0057] The first telescopic portion 101 and the second telescopic portion 102 are extendable and retractable between the first member 11 and the second member 12. The first telescopic portion 101 and the second telescopic portion 102 are arranged in a parallel state between the first member 11 and the second member 12. The first telescopic portion 101 and the second telescopic portion 102 are housed in the first housing 40.

[0058] The first expandable / contractable part 101 has a screw shaft 111 and a moving body 112. The screw shaft 111 has a threaded portion 111a formed at its tip. The moving body 112 has a threaded hole 112a formed at its base end. The first expandable / contractable part 101 is configured such that the threaded portion 111a of the screw shaft 111 is screwed into the threaded hole 112a of the moving body 112.

[0059] The screw shaft 111 is supported by a bearing 113 in the first housing 40 so as to be rotatable in the circumferential direction but immovable in the axial direction. The movable body 112 is supported by a guide member 114 so as to be movably in the axial direction but immovable in the circumferential direction. A portion of the tip end side of the movable body 112 protrudes from the first housing 40. The movable body 112 is provided with a connecting portion 115 at its tip end, and the connecting portion 115 is connected to the second member 12 via universal joints 26, 27 (see FIG. 1).

[0060] The second telescopic unit 102 has a moving body 112 and a driven pulley 116 as a cylindrical member. Here, the moving body 112 is used as a component of both the first telescopic unit 101 and the second telescopic unit 102. The moving body 112 has a threaded portion 112b formed on the outer periphery of its base end. The driven pulley 116 has a threaded hole 116a formed therethrough in the axial direction. The second telescopic unit 102 is formed by threading the threaded portion 112b of the moving body 112 into the threaded hole 116a of the driven pulley 116. Here, the reduction ratio between the threaded portion 111a of the screw shaft 111 constituting the first telescopic unit 101 and the threaded hole 112a of the moving body 112 is the same as the reduction ratio between the threaded portion 112b of the moving body 112 and the threaded hole 116a of the driven pulley 116 constituting the second telescopic unit 102.

[0061] The first telescopic section 101 and the second telescopic section 102 have a connecting section 117 provided at the end of the first housing 40 on which the screw shaft 111 and the driven pulley 116 are supported, and the connecting section 117 is connected to the first member 11 via universal joints 23, 24 (see Figure 1).

[0062] Therefore, when the screw shaft 111 rotates forward in the first expandable / contractable part 101, power is transmitted to the moving body 112 via the threaded portion 111a and the threaded hole 112a that are threadedly engaged with each other, and the moving body 112 moves in one axial direction and moves away from the screw shaft 111. On the other hand, when the screw shaft 111 rotates backward in the first expandable / contractable part 101, power is transmitted to the moving body 112 via the threaded portion 111a and the threaded hole 112a that are threadedly engaged with each other, and the moving body 112 moves in the other axial direction and moves closer to the screw shaft 111.

[0063] When the driven pulley 116 rotates forward in the second telescopic section 102, power is transmitted to the moving body 112 via the threaded hole 116a and the threaded portion 112b, which are threadedly engaged with each other, and the moving body 112 moves in one axial direction and moves away from the driven pulley 116. On the other hand, when the driven pulley 116 rotates backward in the second telescopic section 102, power is transmitted to the moving body 112 via the threaded hole 116a and the threaded portion 112b, which are threadedly engaged with each other, and the moving body 112 moves in the other axial direction and moves closer to the driven pulley 116.

[0064] The driving source 33 has a rotating shaft 51. The driving source 33 is accommodated in and fixed to the second housing 52. The second housing 52 is fixed to the first housing 40. The first power transmission system 34 has a driving pulley 61, a driven pulley 62, and a driving belt 63. The second power transmission system 35 has a driving pulley 64, a driven pulley 116, and a driving belt 66. The driving belt 66 is wound between the driving pulley 64 and the driven pulley 116. The second power transmission system 35 is capable of transmitting the power of the driving source 33 between the driving source 33 and the driven pulley 116 to rotate the driven pulley 116.

[0065] Therefore, when changing the angle of the second member 12 relative to the first member 11, each extension device 13C is operated. The drive source 33 is driven to rotate the rotation shaft 51 in the forward direction. The power of the drive source 33 is transmitted to the first extension / contraction unit 101 via the first power transmission system 34, causing the screw shaft 111 to rotate in the forward direction. In addition, the power of the drive source 33 is transmitted to the driven pulley 116 of the second extension / contraction unit 32 via the second power transmission system 35, causing the driven pulley 116 to rotate in the forward direction. When the screw shaft 111 rotates in the forward direction, the rotational force is transmitted to the moving body 112 via the threaded portion 111a and the threaded hole 12a as an axial moving force, and the moving body 112 moves away from the screw shaft 111. Furthermore, when driven pulley 116 rotates forward, the rotational force is transmitted to moving body 112 as an axial moving force via screw hole 116a and threaded portion 112b, and moving body 112 moves away from driven pulley 116.

[0066] In the extension device 13C, the first extension section 101 and the second extension section 102, which are arranged in parallel, are operated in synchronization with each other by a common drive source 33. As a result, in the extension device 13C, the movable body 112 extends outward in the axial direction relative to the first housing 40 and the second housing 52, and the angle of the second member 12 relative to the first member 11 can be changed.

[0067] Then, in the extension device 13C, for example, a malfunction occurs in the first extension section 101. The first extension section 101 and the second extension section 102 are arranged in parallel between the first member 11 and the second member 12. Therefore, even if a malfunction occurs in the first extension section 101, the second extension section 102 operates normally, making it possible to appropriately change the angle of the second member 12 and preventing the second member 12 from tipping over.

[0068] [Fourth embodiment] Fig. 6 is a front view showing the main parts of the extension device in the rocking device of the fourth embodiment, and Fig. 7 is a plan view showing the main parts of the extension device. Note that members having the same functions as those in the first embodiment described above are given the same reference numerals and detailed explanations will be omitted.

[0069] 6 and 7, in the fourth embodiment, a first power transmission system 34A is a modified example of the first power transmission system 34 in each of the above-described embodiments. Note that the first power transmission system 34A can also be applied as a modified example of the second power transmission system 35 in each of the above-described embodiments.

[0070] The first power transmission system 34B has a first power transmission path 141 and a second power transmission path 142. The first power transmission path 141 and the second power transmission path 142 are power transmission paths of different types.

[0071] The first power transmission path 141 has a drive pulley 61, a driven pulley 62, and a drive belt 63. The drive pulley 61 is fixed to the rotary shaft 121, and the driven pulley 62 is fixed to the rotary shaft 122. The drive belt 63 is wound between the drive pulley 61 and the driven pulley 62. The first power transmission path 141 is capable of transmitting the power of the rotary shaft 121 to rotate the rotary shaft 122.

[0072] The second power transmission path 142 has a drive gear 131, a driven gear 132, and a plurality of (three in this embodiment) intermediate gears 133, 134, and 135. The drive gear 131 is fixed to the rotation shaft 121, and the driven gear 132 is fixed to the rotation shaft 122. The intermediate gears 133, 134, and 135 are fixed to the rotation shafts 123, 124, and 125. The drive gear 131, the intermediate gears 133, 134, and 135, and the driven gear 132 are in mesh with each other. The second power transmission path 142 is capable of transmitting the power of the rotation shaft 121 to rotate the rotation shaft 122.

[0073] The first power transmission path 14 and the second power transmission path 142 operate in synchronization, and rotate the rotating shaft 122 by the rotational force of the rotating shaft 121. Therefore, the diameters and numbers of teeth of the intermediate gears 133, 134, and 135 between the driving gear 131 and the driven gear 132 are set so that the rotation amounts (rotational speeds) of the first power transmission path 14 and the second power transmission path 142 transmitted from the rotating shaft 121 to the rotating shaft 122 are the same.

[0074] Therefore, even if a malfunction occurs such that the drive belt 63 of the first power transmission path 14 is broken, the power of the rotating shaft 121 can be transmitted to the rotating shaft 122 via the second power transmission path 142. Similarly, even if a malfunction occurs such that the intermediate gears 133, 134, 135 of the second power transmission path 15 are broken, the power of the rotating shaft 121 can be transmitted to the rotating shaft 122 via the first power transmission path 141.

[0075] [Effects of this embodiment] The first aspect of the oscillating device is an oscillating device 10 in which a plurality of extension devices 13, 13A, 13B, 13C are arranged between a first member 11 and a second member 12 arranged opposite each other, and the extension devices 13, 13A, 13B, 13C each include a first extension section 31, 101 that can be extended and retracted between the first member 11 and the second member 12, a second extension section 32, 102 that can be extended and retracted between the first member 11 and the second member 12, and a common drive source 33 that supplies power to the first extension sections 31, 101 and the second extension sections 32, 102.

[0076] According to the rocking device of the first aspect, since the first telescopic section 31, 101 and the second telescopic section 32, 102 are driven by a common drive source 33, each of the telescopic devices 13, 13A, 13B, 13C arranged between the first member 11 and the second member 12 has redundancy. Therefore, even if a malfunction occurs in one of the first telescopic section 31, 101 and the second telescopic section 32, 102, the other will operate normally, preventing tipping and improving safety. Furthermore, because the first telescopic section 31, 101 and the second telescopic section 32, 102 are driven by a common drive source 33, it is possible to prevent the device from becoming larger and more expensive.

[0077] In the rocking device according to the second aspect, the first telescopic section 31 and the second telescopic section 32 are arranged in series between the first member 11 and the second member 12. By arranging the first telescopic section 31 and the second telescopic section 32 in series, more space can be secured in the lateral direction for the first telescopic section 31 and the second telescopic section 32, and the telescopic devices 13, 13A, 13B, and 13C can be made more compact in the lateral direction.

[0078] In the rocking device according to the third aspect, the first telescopic section 31, 101 and the second telescopic section 32, 102 are arranged in parallel between the first member 11 and the second member 12. By arranging the first telescopic section 31 and the second telescopic section 32 in parallel, the vertical lengths of the first telescopic section 31 and the second telescopic section 32 can be shortened, and the telescopic devices 13, 13A, 13B, 13C can be made more compact in the vertical direction.

[0079] In the oscillation device according to the fourth aspect, the first telescopic unit 31 has a first screw shaft 41 and a first moving body 42 that is threadedly engaged with the threaded portion 41a of the first screw shaft 41 and is movable in the axial direction, and the second telescopic unit 32 has a second screw shaft 46 and a second moving body 47 that is threadedly engaged with the threaded portion 46a of the second screw shaft 46 and is movable in the axial direction, and a first power transmission system 34 is provided between the drive source 33 and the first screw shaft 41 to transmit power from the drive source 33 to rotate the first screw shaft 41, and a second power transmission system 35 is provided between the drive source 33 and the second screw shaft 46 to transmit power from the drive source 33 to rotate the second screw shaft 46. This allows the power of the drive source 33 to be appropriately transmitted to the first telescopic unit 31 and the second telescopic unit 32 by the first power transmission system 34 and the second power transmission system 35.

[0080] In the rocking device according to the fifth aspect, the first screw shaft 41 and the second screw shaft 46 are arranged in a straight line, and a common guide shaft 81 is arranged inside them. As a result, even if the first screw shaft 41 or the second screw shaft 46 breaks, the guide shaft 81 maintains the serial relationship between the first telescopic unit 31 and the second telescopic unit 32, and tipping can be appropriately suppressed.

[0081] In the swing device according to the sixth aspect, the base end sides of the first screw shaft 41 and the second screw shaft 46 are connected to one of the first member 11 and the second member 12, and the tip ends of the first moving body 42 and the second moving body 47 are connected to a connecting member 91, and are connected to the other of the first member 11 and the second member 12 via the connecting member 91. This allows the first telescopic unit 31 and the second telescopic unit 32 to be arranged in parallel, and even if one of the first screw shaft 41 and the second screw shaft 46 breaks, the other ensures the amount of telescopic movement, thereby making it possible to appropriately prevent tipping over.

[0082] In the seventh aspect of the oscillating device, the first telescopic section 101 has a screw shaft 111 and a moving body 112 that is threaded onto the threaded portion 11a of the screw shaft 111 and is movable axially, and the second telescopic section 102 has a moving body 112 and a driven pulley (cylindrical member) 116 that is threaded onto the threaded portion 112b of the moving body 112 and is movable axially. A first power transmission system 34 is provided between the drive source 33 and the screw shaft 111, which transmits the power of the drive source 33 to rotate the screw shaft 111, and a second power transmission system 35 is provided between the drive source 33 and the driven pulley 116, which transmits the power of the drive source 33 to rotate the driven pulley 116. This allows the components of the first telescopic section 101 and the second telescopic section 102 to be used together and arranged in parallel, making it possible to make the vehicle smaller.Even if one of the screw shaft 111 and the driven pulley 116 breaks, the other can ensure the amount of extension and contraction, thereby appropriately preventing the vehicle from tipping over.

[0083] In the rocking device according to the eighth aspect, different types of power transmission paths are provided for the first power transmission systems 34, 34A and the second power transmission system 35. This ensures redundancy in the first power transmission systems 34, 34A and the second power transmission system 35, thereby improving safety.

[0084] The rocking device according to the ninth aspect has a malfunction detection unit 72 that detects malfunctions in the first telescopic unit 31, 101 and the second telescopic unit 32, 102, and a control unit 71 that controls the drive source 33 based on the detection result of the malfunction detection unit 72. When the malfunction detection unit 72 detects a malfunction in either the first telescopic unit 31, 101 or the second telescopic unit 32, 102, the control unit 71 controls the amount of extension or contraction of the other unit using the drive source 33. As a result, even if a malfunction occurs in one of the first telescopic unit 31, 101 or the second telescopic unit 32, 102, the other unit continues to operate normally, preventing the device from tipping over and improving safety.

[0085] A control method for an oscillating device according to the tenth aspect is an oscillating method in which a plurality of extension devices 13, 13A, 13B, 13C are arranged between a first member 11 and a second member 12 arranged opposite each other, wherein the extension devices 13, 13A, 13B, 13C comprise a first extension section 31, 101 that can be extended and retracted between the first member 11 and the second member 12, a second extension section 32, 102 that can be extended and retracted between the first member 11 and the second member 12, and a common drive source 33 that supplies power to the first extension section 31, 101 and the second extension section 32, 102, and when a malfunction occurs in either the first extension section 31, 101 or the second extension section 32, 102, the drive source 33 controls the amount of extension and retraction of the other.

[0086] According to the control method for a rocking device according to the tenth aspect, even if a malfunction occurs in one of the first telescopic section 31, 101 and the second telescopic section 32, 102, the other section will continue to operate normally, thereby preventing tipping and improving safety. Furthermore, because the first telescopic section 31, 101 and the second telescopic section 32, 102 are driven by a common drive source 33, increases in size and cost can be suppressed.

[0087] In the above-described embodiment, the first power transmission system 34 and the second power transmission system 35 are configured using pulleys and drive belts, but are not limited to this configuration. The first power transmission system 34 and the second power transmission system 35 may be configured using gear mechanisms, for example. [Explanation of symbols]

[0088] 10. Oscillating device 11 First member 12 Second member 13,13A,13B,13C Expanding device 31,101 1st telescopic section 32,102 2nd telescopic section 33 Power Source 34, 34A First power transmission system 35 Second power transmission system 40 1st Housing 41 First screw shaft 42 First Mobile Unit 46 Second screw shaft 47 Second Mobile Unit 51 Rotation axis 52 Second Housing 61,64 Drive pulley 62,65 Driven pulley 63,66 Drive belt 71 Control Unit 72 Malfunction detection unit 81 Guide shaft 91 Connecting member 111 Screw shaft 112 Mobile 116 Driven pulley (cylindrical member) 131 Drive gear 132 Driven gear 133,134,135 Intermediate gear 141 First power transmission path 142 Second power transmission path

Claims

1. In a rocking device in which a plurality of extension devices are arranged between a first member and a second member arranged opposite to each other, The telescopic device is a first stretchable portion that is stretchable between the first member and the second member; a second stretchable portion that is stretchable between the first member and the second member; a common drive source that supplies power to the first extension / contraction unit and the second extension / contraction unit; Equipped with The first expansion / contraction unit has a first threaded shaft and a first moving body that is threadedly engaged with the threaded portion of the first threaded shaft and is movable in the axial direction, and the second expansion / contraction unit has a second threaded shaft and a second moving body that is threadedly engaged with the threaded portion of the second threaded shaft and is movable in the axial direction, and a first power transmission system is provided between the drive source and the first threaded shaft to transmit the power of the drive source to rotate the first threaded shaft, and a second power transmission system is provided between the drive source and the second threaded shaft to transmit the power of the drive source to rotate the second threaded shaft, The first screw shaft and the second screw shaft have base end sides connected to one of the first member and the second member, and the first moving body and the second moving body have tip ends connected to a connecting member and are connected to the other of the first member and the second member via the connecting member. Rocking device.

2. In a rocking device in which a plurality of extension devices are arranged between a first member and a second member arranged opposite to each other, The telescopic device is a first stretchable portion that is stretchable between the first member and the second member; a second stretchable portion that is stretchable between the first member and the second member; a common drive source that supplies power to the first extension / contraction unit and the second extension / contraction unit; Equipped with The first expandable / contractable unit has a screw shaft and a movable body that is threadedly engaged with the threaded portion of the screw shaft and is movable in the axial direction, and the second expandable / contractable unit has the movable body and a cylindrical member that is threadedly engaged with the threaded portion on the outer periphery of the movable body and is movable in the axial direction, and a first power transmission system is provided between the drive source and the screw shaft to transmit the power of the drive source to rotate the screw shaft, and a second power transmission system is provided between the drive source and the cylindrical member to transmit the power of the drive source to rotate the cylindrical member. Rocking device.

3. In a rocking device in which a plurality of extension devices are arranged between a first member and a second member arranged opposite to each other, The telescopic device is a first stretchable portion that is stretchable between the first member and the second member; a second stretchable portion that is stretchable between the first member and the second member; a common drive source that supplies power to the first extension / contraction unit and the second extension / contraction unit; Equipped with The first expansion / contraction unit has a first threaded shaft and a first moving body that is threadedly engaged with the threaded portion of the first threaded shaft and is movable in the axial direction, and the second expansion / contraction unit has a second threaded shaft and a second moving body that is threadedly engaged with the threaded portion of the second threaded shaft and is movable in the axial direction, and a first power transmission system is provided between the drive source and the first threaded shaft to transmit the power of the drive source to rotate the first threaded shaft, and a second power transmission system is provided between the drive source and the second threaded shaft to transmit the power of the drive source to rotate the second threaded shaft, The first power transmission system and the second power transmission system are provided with power transmission paths of different types, respectively. Rocking device.

4. In a rocking device in which a plurality of extension devices are arranged between a first member and a second member arranged opposite to each other, The telescopic device is a first stretchable portion that is stretchable between the first member and the second member; a second stretchable portion that is stretchable between the first member and the second member; a common drive source that supplies power to the first extension / contraction unit and the second extension / contraction unit; Equipped with a malfunction detection unit that detects malfunctions in the first and second extension / contraction units, and a control unit that controls the drive source based on the detection result of the malfunction detection unit, wherein when the malfunction detection unit detects malfunctions in either the first or second extension / contraction unit, the control unit controls the amount of extension / contraction of the other unit by the drive source; Rocking device.

5. The first elastic portion and the second elastic portion are disposed in series between the first member and the second member. The rocking device according to any one of claims 2 to 4.

6. The first and second elastic portions are arranged in parallel between the first member and the second member. The rocking device according to any one of claims 1 to 4.

7. The first screw shaft and the second screw shaft are arranged in a straight line, and a common guide shaft is arranged therein. The rocking device according to claim 3 .

8. A method for controlling a rocking device in which a plurality of extension devices are arranged between a first member and a second member that are arranged opposite to each other, comprising: The telescopic device is a first stretchable portion that is stretchable between the first member and the second member; a second stretchable portion that is stretchable between the first member and the second member; a common drive source that supplies power to the first extension / contraction unit and the second extension / contraction unit; Equipped with When a malfunction occurs in either the first extension / contraction unit or the second extension / contraction unit, the drive source controls the extension / contraction amount of the other one. A method for controlling a rocking device.

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