Electric Mobility

The electric mobility vehicle's lower sensors and control device improve sensor accuracy and stability by detecting obstacles and estimating self-position, addressing user variability challenges.

JP7744045B2Active Publication Date: 2025-09-25WHILL
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Patent Information

Application Number
JP2023531459
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-11-05
Filing Date
2022-03-31
Publication Date
2025-09-25
Estimated Expiration
2042-03-31

AI Technical Summary

Technical Problem

Existing electric mobility vehicles face challenges in providing stable sharing services due to user variability in age, physical condition, and body dimensions, which affect sensor accuracy and automatic driving performance.

Method used

The electric mobility vehicle is equipped with lower sensors that emit detection waves from the underside to detect objects in front and rear, and a control device that uses these sensors for accurate obstacle recognition and self-position estimation, ensuring stable operation.

Benefits of technology

The solution enhances sensor accuracy by minimizing interference from user body parts and luggage, enabling reliable obstacle detection and stable automatic driving.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

This electric mobility vehicle can be ridden by a user sitting therein and comprises: a mobility vehicle main body 30 having front wheels 10, rear wheels 20, and a seat S for a user; a control device provided to the mobility vehicle main body 30; and a lower sensor 96 that can emit detection waves to the area in front of the electric mobility vehicle from the lower side of a foot placement surface 32c for the user seated in the seat S or from the lower side of the mobility vehicle main body 30, and that can detect the position of an object to avoid in front of the electric mobility vehicle by using the detection waves.
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Description

[Technical Field]

[0001] The present invention relates to electric mobility. [Background technology]

[0002] Conventionally, there has been known a system in which a plurality of electric mobility vehicles are used within a facility, a user drives one of the plurality of electric mobility vehicles within the facility by manual or automatic driving, and when the user has finished using the electric mobility vehicle, the electric mobility vehicle drives to a waiting location by automatic driving. See, for example, Patent Document 1.

[0003] Services using autonomously driven single-seater mobility vehicles are also known (see Patent Documents 2 to 6, for example). [Prior art documents] [Patent documents]

[0004] [Patent Document 1] Japanese Patent Application Publication No. 2019-144167 [Patent Document 2] Japanese Patent Application Laid-Open No. 2003-024390 [Patent Document 3] Japanese Patent Application Laid-Open No. 2018-160270 [Patent Document 4] Japanese Patent Application Publication No. 2018-169787 [Patent Document 5] Japanese Patent Application Laid-Open No. 2016-027456 [Patent Document 6] Japanese Patent Application Publication No. 11-231935 Summary of the Invention [Problem to be solved by the invention]

[0005] Although the concept of the service disclosed in Patent Document 1 exists, users of electric mobility vehicles vary in age, physical condition, language, common sense, etc. For this reason, it is difficult to actually provide such a service stably. For example, in situations where a sharing service for small electric mobility vehicles, such as single-seater vehicles, is provided, users vary greatly in physique, baggage, etc. Furthermore, in such sharing services, users often operate the electric mobility vehicle after receiving a relatively short explanation.

[0006] This explanation alone does not necessarily mean that parts of the user's body, clothing, luggage, etc. may enter the detection range of the electric mobility's sensors, thereby affecting sensor sensing. This phenomenon affects the accuracy of obstacle recognition using sensors, and also affects the accuracy of automatic stopping and automatic driving. On the other hand, depending on the user's height, posture, etc., parts of the user's body, such as the user's knees, may inevitably enter the sensor's detection range. In particular, if the user has a bent waist and long legs, the user's knees may protrude forward beyond the front end of the single-seater small electric mobility. In addition, the user's clothing may inevitably enter the sensor's detection range.

[0007] In light of the above circumstances, there is a demand for electric mobility that can provide stable sharing services. [Means for solving the problem]

[0008] A first aspect of the present invention is an electric mobility vehicle that a user can sit on and ride, comprising: a front wheel; a rear wheel; a seat for the user; A base portion; a control device provided in the mobility body; the base portion has a lower surface facing a running surface on which the front wheels and the rear wheels are in contact with the ground, and the electric mobility is attached to the lower surface of the base portion; The footrest surface for the user seated on the seat or the mobility body can be used to at least It is possible to emit detection waves in front of the vehicle. The lower sensor The position of an object to be avoided in front of the electric mobility vehicle is determined using the detection wave. of Detectable and / or used for self-location estimation based on the position of a detection target detected using the detection wave. Lower center Sa Prepare. A second aspect of the present invention is an electric mobility vehicle that a user can sit on and ride, comprising: a mobility body having front wheels, rear wheels, a seat for the user, and a base; and a control device provided on the mobility body, wherein the base has an underside facing the running surface on which the front wheels and the rear wheels are in contact with the ground, and the electric mobility vehicle comprises a lower sensor attached to the electric mobility vehicle so as to protrude downward from the underside of the base, the lower sensor being capable of emitting detection waves at least to the front of the electric mobility vehicle from the underside of a footrest surface for the user seated on the seat or the underside of the mobility body, and being capable of detecting the position of an object to be avoided in front of the electric mobility vehicle using the detection waves. A third aspect of the present invention is an electric mobility that a user can sit on and ride, comprising: a mobility body having a plurality of wheels, a seat for the user, and a base unit; and a control device provided on the mobility body, wherein the base unit has a lower surface facing the running surface on which the plurality of wheels are in contact with the ground, and the electric mobility is provided with a lower sensor having a detection wave emission unit arranged below the lower surface of the base unit, the lower sensor being capable of emitting the detection wave from between the plurality of wheels, and the lower sensor being capable of using the detection wave to detect the position of an object to be avoided at least in front of the electric mobility or in the vehicle width direction, and / or being used for self-location estimation based on the position of the object to be detected using the detection wave. A fourth aspect of the present invention is an electric mobility vehicle on which a user can sit and ride, comprising: a mobility body having front wheels, rear wheels, a seat for the user, and a base unit; and a control device provided on the mobility body, wherein the base unit has an underside facing the running surface on which the front wheels and the rear wheels are in contact with the ground, and the electric mobility vehicle has a detection wave emission unit located below the underside of the base unit, and a lower sensor that emits the detection wave from below the footrest surface for the user seated on the seat or from below the mobility body to at least in front of the electric mobility vehicle and scans it in the horizontal direction, and is capable of detecting the position of an object to be avoided in front of the electric mobility vehicle using the detection wave, and / or is equipped with a lower sensor used for self-position estimation based on the position of the detection object detected using the detection wave. A fifth aspect of the present invention is an electric mobility that a user can sit on and ride, comprising: a mobility body having front wheels, rear wheels, a seat for the user, and a base unit; and a control device provided on the mobility body, wherein the base unit has a lower surface facing the running surface on which the front wheels and the rear wheels are in contact with the ground, and the electric mobility is provided with a lower sensor in which a detection wave emission unit is arranged below the lower surface of the base unit and which is capable of emitting the detection wave at least to the front of the electric mobility from below a footrest surface for the user seated on the seat or from below the mobility body, and the lower sensor is used for self-position estimation based on the position of a detection target detected using the detection wave. A sixth aspect of the present invention is an electric mobility vehicle on which a user can sit and ride, comprising: a mobility body having front wheels, rear wheels, a seat for the user, and a base unit; and a control device provided on the mobility body, wherein the base unit has an underside facing the running surface on which the front wheels and the rear wheels are in contact with the ground; and the electric mobility vehicle comprises a lower sensor attached to the underside of the base unit and capable of emitting a detection wave at least to the front of the electric mobility vehicle from the underside of a footrest surface for the user seated on the seat or the underside of the mobility body, and the lower sensor is used for self-position estimation based on the position of a detection object detected using the detection wave.

[0009] The present invention 7 The embodiment of An electric mobility vehicle on which a user can sit and ride, comprising: a mobility body having front wheels, rear wheels, and a seat for the user; a control device provided on the mobility body; a lower sensor capable of emitting detection waves from the underside of a footrest surface for the user seated on the seat or from the underside of the mobility body to a front side of the electric mobility vehicle, and capable of detecting the position of an object to be avoided in front of the electric mobility vehicle using the detection waves; a luggage placement section provided on the back side of the seat; and a vehicle control device provided on the back side of the seat, the lower sensor being arranged below the luggage placement section or below the seat, the lower sensor being arranged below the luggage placement section or below the seat, the lower sensor being arranged below the luggage placement section or below the seat, the lower sensor being arranged below the luggage placement section and a rear sensor capable of emitting detection waves rearward of the vehicle and detecting the position of an object to be avoided rearward of the electric mobility vehicle, wherein the lower sensor or the rear sensor is configured to receive reflected waves of the emitted detection waves reflected by a plurality of points on a mark at a predetermined position made up of portions of two or more types of color, saturation, brightness, or reflectivity, and the control device calculates the position of the electric mobility vehicle relative to the mark based on the intensities of the reflected waves from the plurality of points detected by the lower sensor or the rear sensor and the positions of the plurality of points. An eighth aspect of the present invention is an electric mobility vehicle that a user can sit on and ride, comprising: a mobility body having front wheels, rear wheels, and a seat for the user; a control device provided on the mobility body; and a lower sensor that is capable of emitting detection waves from the underside of a footrest surface for the user seated on the seat or from the underside of the mobility body toward the front of the electric mobility vehicle, and that is capable of detecting the position of an object to be avoided in front of the electric mobility vehicle using the detection waves, wherein the lower sensor or the front sensor is configured to receive reflected waves of the emitted detection waves reflected by a plurality of reflective tapes provided in correspondence with no-entry areas, the plurality of reflective tapes being arranged horizontally at a predetermined distance from each other, and the control device is configured to recognize the no-entry area as an area that the electric mobility vehicle cannot enter based on the positions of the plurality of reflective tapes calculated from the reflected waves. [Brief explanation of the drawings]

[0010] [Figure 1] 1 is a perspective view of an electric mobility according to an embodiment of the present invention. [Figure 2] FIG. 1 is a side view of an electric mobility vehicle according to an embodiment of the present invention. [Figure 3] FIG. 1 is a plan view of an electric mobility vehicle according to an embodiment of the present invention. [Figure 4] This is a schematic diagram of the system within passenger terminal T of this embodiment. [Figure 5] FIG. 2 is a block diagram of a control unit of the electric mobility device according to the present embodiment. [Figure 6] This is an oblique view of the main parts of the passenger terminal T of this embodiment. [Figure 7] FIG. 10 is a side view of a main part of an electric mobility device according to a modified example of the present embodiment. [Figure 8] FIG. 10 is a perspective view of an electric mobility device according to a modified example of the present embodiment. [Figure 9] FIG. 10 is a side view of an electric mobility device according to a modified example of the present embodiment. [Figure 10] FIG. 10 is a partial perspective view of an electric mobility device according to a modified example of the present embodiment. [Figure 11] FIG. 10 is a partial plan view of an electric mobility device according to a modified example of the present embodiment. DETAILED DESCRIPTION OF THE INVENTION

[0011] A system in an airport (facility) according to one embodiment of the present invention will be described below with reference to the drawings. As shown in Fig. 4, the system includes a plurality of electric mobility vehicles M located within a passenger terminal T of an airport, and a management computer 100 that manages the plurality of electric mobility vehicles M. The management computer 100 does not have to be located within the airport.

[0012] A brief description will be given of the electric mobility M of this embodiment. Note that in this system, it is also possible to use an electric mobility other than the electric mobility M of this embodiment. As shown in Figs. 1 to 3, this electric mobility M comprises a mobility body 30 having a pair of front wheels (wheels) 10 and a pair of rear wheels (wheels) 20. The mobility body 30 also comprises a seat unit (seat) S. Wheels other than the front wheels 10 and rear wheels 20 may be provided, and the number of front wheels 10 and rear wheels 20 may be other than those described above. Also, one of the front wheels 10 and the rear wheels 20 may be absent. The electric mobility M of this embodiment is a type of electric wheelchair in which one user sits in the seat unit S. The mobility body 30 has a motor (drive device) MT (FIG. 5) for driving at least one of the pair of front wheels 10 and the pair of rear wheels 20.

[0013] In the following description of this embodiment, the vehicle longitudinal direction shown in Fig. 3 may be referred to as the longitudinal direction, and the vehicle width direction shown in Fig. 3 may be referred to as the width direction or the left-right direction. Note that the vehicle longitudinal direction and the front-rear direction of the electric mobility M and the mobility main body 30 coincide with each other, and the vehicle width direction and the width direction of the electric mobility M and the mobility main body 30 coincide with each other.

[0014] In this embodiment, the pair of rear wheels 20 are each connected to a motor MT, and each motor MT drives the corresponding rear wheel 20. The driving force of each motor MT may be transmitted to the corresponding front wheel 10 by a power transmission means. The power transmission means may be a belt, a gear, or the like.

[0015] Each front wheel 10 has a hub 14 attached to an axle (not shown) and a plurality of roller support shafts (not shown) supported by the hub 14, and the plurality of rollers 13 are each rotatably supported on the roller support shafts. The hub 14 may be attached to the axle using a bearing or the like, or the hub 14 may be attached to the axle using a buffer member, intermediate member, or the like. The front wheel 10 is depicted simply in Figure 1.

[0016] Each roller 13 rotates around the axis of the corresponding roller support shaft. In other words, the outer circumferential surface of each front wheel 10 is formed by a plurality of rollers 13, and each front wheel 10 is an omnidirectional wheel that moves in all directions relative to the traveling surface. In this embodiment, each rear wheel 20 has an axle (not shown), a hub 21 attached to the axle, and an outer peripheral member 22 provided on the outer periphery of the hub 21 and having an outer peripheral surface formed using a material with rubber-like elasticity, but an omnidirectional wheel may be used similarly to the front wheel 10. In this case, the front wheel 10 is not an omnidirectional wheel but a normal wheel. The axle of the rear wheel 20 may be common with the main shaft of the motor MT.

[0017] The structure of the mobility body 30 can be modified as appropriate. The mobility body 30 of this embodiment has a base part 32 that extends along the ground, and a seat support part 33 that extends upward from the rear end side or the center part of the base part 32. A seat unit S is attached to the upper end side of the seat support part 33. The base portion 32 of this embodiment has a plastic cover portion that at least partially covers the metal base frame 32a shown in Fig. 3. The cover portion is used as a portion on which the feet of a user sitting on the seat unit S are placed, a portion on which luggage is placed, etc.

[0018] In this embodiment, the seat unit S has a backrest portion 40 and a seat surface portion 50. The backrest portion 40 extends upward from the rear end of the seat surface portion 50. The cushion 51 of the seat surface portion 50 is removable, and when the cushion 51 is removed, the upper surface of the seat support portion 33 and / or the lower structure of the seat surface portion 50 are exposed. The seat support portion 33 is formed with a battery housing portion extending in the vertical direction, and a battery BA (FIG. 5) is housed in the battery housing portion.

[0019] As shown in FIG. 2, a seating sensor 53 is provided at the upper end of the seat support portion 33 as part of the lower structure of the seating surface portion 50. The seating sensor 53 in this embodiment has a detection device. The detection device is a switch, a pressure sensor, or the like. In this embodiment, the detection device is a switch. Alternatively, the seating sensor 53 may be any other type of known sensor that detects when a user sits on the cushion 51.

[0020] In this embodiment, when a user stands on the cushion 51, the detection device is pressed, and a predetermined signal (current) or the like is transmitted from the detection device to the control device 80, which will be described later.

[0021] The seat unit S has a right control arm 43 and a left control arm 43 . An armrest 43a is fixed to the upper surface of each control arm 43. For example, a user (driver) places both arms on the armrests 43a of the pair of control arms 43. The user also places both hands on the upper ends of the pair of control arms 43. In this embodiment, both the control arms 43 and the armrests 43a are provided, but only the control arms 43 or only the armrests 43a may be provided. In this case, the user can place at least one of their arms and hands on the control arms 43, or at least one of their arms and hands on the armrests 43a.

[0022] A controller 44 having an operation unit (joystick) 44a is provided on the upper end of one control arm 43 or armrest 43a.

[0023] The controller 44 may be separate from the mobility body 30. In this case, the controller 44 may be, for example, a tablet computer owned by the user, a controller similar to a game controller, or the like. In the case of a tablet computer, the operation unit 44a is not provided, and the user inputs the traveling direction, traveling speed, etc. of the electric mobility M using the touch screen function of the tablet computer's screen. When the controller 44 is separate from the mobility body 30, it is also possible for someone other than the user to operate the traveling of the electric mobility M that the user is riding.

[0024] A signal corresponding to the direction and amount of displacement of the operating portion 44a is transmitted from the controller 44 to a control unit 60, which will be described later, and the control unit 60 controls each motor MT according to the received signal.

[0025] An interface (input device) 45 for configuring various settings related to the electric mobility vehicle is provided at the top end of the left control arm 43 or armrest 43a. Examples of the various settings include setting the maximum speed, driving mode, and locking the electric mobility vehicle. The interface 45 is provided with a plurality of operation buttons, a display device 200 such as a liquid crystal display device, and the like. As shown in FIG. 1, the display device 200 that constitutes the interface 45 is disposed so as to face upward.

[0026] Information is transmitted to the display device 200 via a wired or wireless connection from the control device 80 (described later), and the display device 200 displays the received information. This information includes, for example, information on the traveling speed of the electric mobility M, information on the state of the battery BA, information on the position of obstacles (objects to be avoided) detected by sensors such as the front sensor 90, rear sensor 95, and lower sensor 96 (described later), information on the results of determination as to whether or not the obstacles will hinder traveling, map information, information on the traveling route, etc. The display device 200 also includes input means such as a touch screen function, and information input to the display device 200 is transmitted to the control device 80. Information on the position of obstacles (objects to be avoided) detected by the sensors 90, 95, and 96 is also transmitted to the control device 80. The position information includes point cloud data (distance data of multiple points) obtained by the sensors 90, 95, and 96.

[0027] The display device 200 may be provided with a control device having a processor, a storage device, etc., and the control device may perform some or all of the functions of the control device 80 described below. The display device 200 may also be attached in a detachable manner.

[0028] As shown in FIG. 5, the control unit 60 includes a motor driver 70 that drives each motor MT, and a control device 80. The motor driver 70 is connected to a battery BA. The motor driver 70 is also connected to each motor MT, and supplies drive power to each motor MT.

[0029] 5, the control device 80 has a processor 81 such as a CPU, a storage device 82 having non-volatile memory, ROM, RAM, etc., and a transceiver 83 that transmits and receives information via wireless communication and wired communication. The storage device 82 stores a driving control program 82a for controlling the electric mobility M. The processor 81 operates based on the driving control program 82a, and transmits drive signals for driving each motor MT to the motor driver 70 based on signals from the controller 44 and the interface 45.

[0030] Front sensors 90, which are three-dimensional distance sensors with fields of view at predetermined angles in the vertical and lateral directions, are attached to the undersides of the right and left control arms 43, respectively. In this embodiment, the front sensors 90 are a type of LiDAR (Light Detection and Ranging or Laser Imaging Detection and Ranging) that emit laser light in various directions within their field of view and detect the position of each reflector based on the reflected light. If a control arm 43 is not provided, the front sensors 90 may be provided below the armrest 43a. In this embodiment, the front sensors 90 are attached to the seat surface 50, seat support 33, etc. of the seat unit S, and are positioned below the seat surface 50a of the seat surface 50. It is only necessary that the laser light emitting portion of the front sensors 90 be positioned below the seat surface 50a. A distance sensor such as a radar sensor or a millimeter-wave sensor may also be used as the front sensors 90. If the front sensor 90 is a radar sensor, millimeter-wave sensor, or the like, it is sufficient that the detection wave emitter is located below the seat surface 50a. The field of view of the radar sensor and millimeter-wave sensor can be increased by using known technology to mechanically change the direction of the antenna that receives the detection wave. The front sensor 90 located in this position is difficult for the user of the seat unit S to touch, and the field of view of the front sensor 90 is unlikely to be obstructed by a bag held by the user, the user's sleeve, or the like, which contributes to accurate and stable detection by the front sensor 90.

[0031] In one example, each front sensor 90 has a field of view of 30° or more, preferably 50° or more, from the center of a cone, pyramid, elliptical cone, etc., and emits laser light in various directions within the field of view multiple times per second, receives reflected light from each laser light, and detects the position of each point where each laser light is reflected. In other words, each front sensor 90 emits laser light in various directions in front of the vehicle and to the sides of the front wheels 10, and detects the positions of obstacles (objects to be avoided) in front of the vehicle and to the sides of the front wheels 10 based on the reflected light. A well-known three-dimensional LiDAR can be used as each front sensor 90.

[0032] The field of view of each front sensor 90 includes the seat 50, the seat support 33, a portion of the front wheel 10, a portion or all of the front wheel fender 15, the user's legs on the seat unit S, clothing including a skirt, etc. The control device 80 or each front sensor 90 is configured to exclude the seat 50, the seat support 33, a portion of the front wheel 10, and a portion or all of the front wheel fender 15 from obstacles (objects to be avoided). For example, as shown in FIG. 3, the control device 80 sets a range excluding a certain angular range (an angular range in which the seat 50, the seat support 33, etc. are present) from the field of view of each front sensor 90 as the detection range DA1 of each front sensor 90. Alternatively, the control device 80 is configured not to recognize the front wheel 10, the front wheel fender 15, the user's legs, clothing, etc. as obstacles. As an example, the detection range DA1 of each front sensor 90 is in front of the electric mobility vehicle and the front wheel 10 and outboard of the front wheel 10 in the width direction (FIGS. 2 and 3). As described above, the inner range of the field of view of each front sensor 90 in the vehicle width direction is blocked by the seat cushion 50, seat support 33, etc. Therefore, in one example, in a plan view, the detection range DA1 ranges from 5° to 20° toward the inside of the vehicle and from 30° to 90° toward the outside of the vehicle in the fore-and-aft direction of the vehicle. Also, in a side view, the detection range DA1 ranges from 5° or more above the horizontal plane and from 30° to 90° below the horizontal plane. In one example, the detection range DA1 is 60° or less above the horizontal plane. Here, as shown in Fig. 3, each front sensor 90 faces diagonally outward and diagonally downward. In one example, the inclination angle is 5° or more outward and 5° or more downward. In one example, the inclination angle is 30° or less outward and 30° or less downward. This configuration is useful for enabling each front sensor 90 to accurately detect obstacles outward and in front of the front wheel 10 in the width direction.

[0033] The mobility body 30 has a luggage placement section 42, which is a luggage basket, and the luggage placement section 42 is located at the rear end of the mobility body 30, and is provided on the back side of the seat unit S. The luggage placement section 42 is supported by the rear end of the mobility body 30 and / or the back of the seat unit S. The luggage placement section 42 extends in the vertical direction along the backrest section 40, and has a front wall 46 that restricts the movement of luggage inside toward the front of the vehicle. The front wall 46 may be the backrest section 40, or the backrest section 40 may, together with the front wall 46, restrict the movement of luggage inside toward the front of the vehicle. This structure is useful for making the electric mobility vehicle compact in the longitudinal direction.

[0034] The luggage storage section 42 has a lower wall 47 that extends rearward from the lower end of the front wall 46, and a rear wall 48 that extends upward from the rear end of the lower wall 47. In this embodiment, the upper end of the rear wall 48 is located lower than the upper end of the front wall 46. The front wall 46 and the rear wall 48 are spaced apart from each other in the fore-and-aft direction by at least 20 cm, and preferably at least 25 cm.

[0035] 1 and other figures, the luggage placement section 42 has a pair of side walls 49 that face each other in the width direction. In this embodiment, each side wall 49 closes off a space formed by the front wall 46, the lower wall 47, and the rear wall 48 in the width direction. At least a portion of luggage is stored in the space formed by the front wall 46, the lower wall 47, the rear wall 48, and the pair of side walls 49. Therefore, although the luggage placement section 42 itself is small, even slightly larger luggage such as a carry-on suitcase can be stably placed on the luggage placement section 42.

[0036] As shown in FIG. 2 , a rear sensor 95, which is a LiDAR, is attached to the underside of the seat unit S of the seat support part 33 of the mobility main body 30 or to the underside of the luggage placement part 42. In this embodiment, the rear sensor 95 emits laser light over the detection range DA2 in FIG. 3 and detects the light reflected off objects. Using the detection results (detection data), the control device 80 detects the position of an obstacle (avoidance target) within the detection range DA2, which is located outside and behind the electric mobility in the width direction. Examples of obstacles include people, animals, plants, people's clothing, people's belongings, etc. Examples of obstacles include walls, relatively large objects, steps, etc. In another example, the rear sensor 95 may detect obstacles (avoidance targets) such as steps, holes, grooves, etc. into which the rear wheel 20 may fall or get stuck. Moreover, the front sensors 90 detect the obstacles over a detection range DA1 in FIG. 3, and the lower sensor 96 detects the obstacles over a detection range DA3, which will be described later.

[0037] A lower sensor 96 is attached to the underside of the electric mobility M. In this embodiment, the lower sensor 96 is a LiDAR attached to the underside of the footrest portion of the base portion 32, the underside of another portion of the base portion 32, or the like. As a result, in this embodiment, the lower sensor 96 is disposed below the footrest surface 32c of the footrest portion or the underside of the base portion 32. It is only necessary that the emission portion of the laser light (detection wave) in the lower sensor 96 is disposed below the footrest surface 32c. Furthermore, in this embodiment, the lower sensor 96 is disposed approximately in the center of the electric mobility M in the vehicle width direction.

[0038] 3, the lower sensor 96 emits laser light over the detection range DA3, and receives light that hits and reflects off objects. In other words, the lower sensor 96 is capable of detecting the position of an obstacle (object to be avoided) in a lower area in the range ahead of the electric mobility M, outside the detection range DA1 of the pair of front sensors 90, from below the footrest surface 32c or below the mobility main body 30. The lower sensor 96 also emits laser light from between the front wheel 10 and the rear wheel 20 toward the side of the vehicle, and can detect an obstacle that exists in the space between the front wheel 10 and the rear wheel 20, or that may enter that space. 3 , in this embodiment, the detection range DA3 is a range of 30° or more in front of the vehicle between the pair of front wheels 10, a range of 30° or more to the right of the vehicle between the front wheels 10 and the rear wheels 20, and a range of 30° or more to the left of the vehicle between the front wheels 10 and the rear wheels 20, as viewed from the lower sensor 96. In one example, the detection range DA3 is a range of 90° or less in front of the vehicle, a range of 90° or less to the right of the vehicle, and a range of 90° or less to the left of the vehicle, as viewed from the lower sensor 96. In this embodiment, the detection range DA2 of the rear sensor 95 is a range of 180° or more behind the vehicle as seen from the rear sensor 95, as shown in FIG. 3 . The emission position of the laser light (detection wave) of the rear sensor 95 is preferably above the upper end of the rear wheel 20 or the upper end of the fender of the rear wheel 20. This configuration is useful for detecting obstacles that exist outside the rear wheel 20 in the width direction and in the area near the rear wheel 20. Furthermore, the detection range DA1 of each front sensor 90 is, as described above, in front of the electric mobility M and the front wheel 10 and outside the front wheel 10 in the width direction. The emission position of the laser light (detection wave) of each front sensor 90 is preferably above the upper end of the front wheel 10 or the upper end of the fender of the front wheel 10, and / or the emission position of the laser light (detection wave) of each front sensor 90 is 5 cm or more, preferably 10 cm or more behind the rear end of the front wheel 10. That is, each front sensor 90 can detect an obstacle on the outside in the width direction of the front wheel 10 that is not visible from the lower sensor 96. Also, each front sensor 90 can detect an obstacle in front of the front wheel 10 that is not visible from the lower sensor 96. With this configuration, the detection ranges of the sensors 90, 95, 96 are formed so as to cover substantially the entire circumference of the electric mobility M. The knees of a user sitting on the seat unit S are unlikely to be positioned on the line connecting each front sensor 90 and the area near the front wheel 10 on the widthwise outer side. In contrast, if each front sensor 90 is provided at the upper and front end of the control arm 43, the knees of a user sitting on the seat unit S are likely to be positioned on the line connecting each front sensor 90 and the area near the front wheel. In other words, the configuration of this embodiment is useful for accurately detecting obstacles in the area near the front wheels. The front wheels 10 are omnidirectional wheels, and when the pair of rear wheels 20 are rotated in opposite directions by the motor MT, for example, the front wheels 10 move in the direction of their rotational axes. In this embodiment, the above configuration allows each front sensor 90 to detect obstacles in the area near the front wheels, which is useful for safe and smooth movement of the electric mobility M. In this embodiment, the height from the floor of the emission position of the laser light (detection wave) of each front sensor 90 is preferably 20 cm or more and 60 cm or less.

[0039] In this embodiment, the rear sensor 95 and the lower sensor 96 are two-dimensional LiDAR sensors. This reduces the cost of the sensors and the amount of data processing required for the sensor detection results, and also enables the acquisition of information about surrounding obstacles necessary for the autonomous driving of the electric mobility M. This configuration is particularly effective when the electric mobility M mainly moves forward during autonomous driving or rarely moves backward. In this embodiment, when there is no user seated in the seat unit S, for example, the detection light of the two-dimensional LiDAR is emitted diagonally upward when heading toward the front of the vehicle. For example, when the electric mobility is placed on a horizontal plane and there is no user, the angle between the emission direction of the detection light and the horizontal plane when heading toward the front of the vehicle is preferably 1° or more, and more preferably 2° or more. Furthermore, in this embodiment, to ensure reliable detection of the mark MK when there is no user, the angle is preferably set to 7° or less, and more preferably 5° or less. When using the lower sensor 96 for self-position estimation, for example, when measuring the shape of a structure such as a building wall approximately 10 meters away, if the angle is 6° or greater, the measurement position will be too high, resulting in inconsistency with previously acquired map data. This angle can also be said to be useful for matching the map data stored or recognized by the control device 80 with the detection results of the lower sensor 96. It is also possible to set the angle outside the above numerical range as long as a similar effect is achieved. This configuration reduces the likelihood that the lower sensor 96 will recognize the floor surface in front of the vehicle as an obstacle, even when a heavy user sits on the seat unit S, causing the placement angle of the lower sensor 96 to change. In this embodiment, the sensors 90, 95, and 96 also detect glass windows, glass doors, and the like, which is useful for preventing collisions of the electric mobility M. In this embodiment, the rear sensor 95 and the lower sensor 96 are two-dimensional LiDARs, but distance sensors such as three-dimensional LiDARs, radars, and millimeter wave sensors can also be used.

[0040] In addition, other three-dimensional distance sensors, stereo cameras, etc. for detecting obstacles behind and to the sides of the electric mobility M may be provided.

[0041] The control device 80 operates based on an avoidance control program 82b and an automatic driving program 82c stored in the storage device 82. The control device 80 creates or obtains a distance image (detection data) based on the detection results (detection data) of the sensors 90, 95, and 96. The control device 80 then detects the position of the obstacle (object to be avoided) relative to the electric mobility M in the distance image.

[0042] The control device 80 may recognize the position of an obstacle by converting data (detection data) obtained by the sensors 90, 95, and 96 within the detection ranges DA1, DA2, and DA3 into a two-dimensional planar image (distance image) that indicates the distance to the electric mobility M. Alternatively, the control device 80 may recognize the position of an obstacle by treating the data as data in a three-dimensional space. The control device 80 may also recognize obstacles detected within the detection ranges DA1, DA2, and DA3 using other methods.

[0043] Based on the automatic driving program 82c stored in the storage device 82, the control device 80 estimates its own position on airport map data stored in the storage device 82 using the detection results of the GPS receiver, odometer, sensors 90, 95, 96, etc. provided on the electric mobility M. The self-position estimation can be performed by a known method. Furthermore, based on the automatic driving program 82c, the control device 80 can set a route from a departure point to a destination and perform automatic driving, for example, using detected obstacles, the map data stored in the storage device 82, and the results of self-position estimation.

[0044] Based on the position recognition program 82d stored in the memory device 82, the control device 80 is configured to detect marks MK provided on surfaces extending at least in the vertical direction, such as walls, pillars, and steps, of an airport (facility) using the lower sensor 96. It is also possible to configure the detection of the following marks MK to be performed by the rear sensor 95 instead of the lower sensor 96. A surface extending diagonally upward is also a surface extending at least in the vertical direction. Multiple types of marks MK are placed at various positions within the airport. When a mark MK is placed within the detection range DA3, the control device 80 may automatically detect the position of the mark MK relative to the electric mobility M. Alternatively, the control device 80 may detect the position of the mark MK when an operator inputs information to an input device such as the display device 200.

[0045] In this embodiment, each mark MK is a barcode-like mark (one-dimensional code). Each mark MK has multiple black vertical lines arranged horizontally, and the pattern is different for each mark MK. The lower sensor 96, which is a LiDAR, emits laser light to multiple locations on the mark MK. The lower sensor 96 then detects the intensity of the reflected light from each of the multiple locations and detects the position of each of the multiple locations relative to the electric mobility M. If the color of the surface on which the mark MK is provided is white, for example, the intensity of the reflected light from the black vertical lines will be lower than the intensity of the reflected light from the white portion of the surface. Based on the intensity and position of the reflected light from the multiple locations, the control device 80 detects the position and type (pattern) of the mark MK relative to the electric mobility M. In other words, the control device 80 recognizes the position of the electric mobility M relative to the mark MK. It should be noted that various designs can be used as the mark MK.

[0046] The lower sensor 96 may be a millimeter wave sensor, a radar sensor, or the like. In this case, the lower sensor 96 emits detection waves in front of and to the sides of the vehicle to detect the position of obstacles in front of the vehicle as described above, and to detect obstacles that exist or may enter between the front wheels 10 and the rear wheels 20. In one example, the direction of the element (antenna) that receives the detection waves of the lower sensor 96 is mechanically changed. The lower sensor 96 also emits detection waves toward the mark MK. The lower sensor 96 then detects the intensity of each reflected wave from the multiple locations and detects the positions of the multiple locations relative to the electric mobility M. In this case, each mark MK has, for example, multiple detection wave absorbing portions arranged horizontally. Based on the intensity and positions of the reflected waves from the multiple locations, the control device 80 detects the position and type (pattern) of the mark MK relative to the electric mobility M.

[0047] The control device 80 sets the position of the electric mobility vehicle M on the map data based on the position information of each mark MK contained in the map data, the detection results of the position of the mark MK relative to the electric mobility vehicle M, and the type (pattern) of the detected mark MK. This ensures reliable self-positioning on the map data. Furthermore, the mark MK itself does not require a power source, eliminating the need for a separate device for self-positioning. In this embodiment, each mark MK is installed at a low position visible from the lower sensor 96. This makes each mark MK inconspicuous within the airport and effectively prevents the mark MK from being soiled or faded due to being touched or leaned on by people. The height of the lower end of each mark MK from the floor is preferably 0 cm or more and 30 cm or less. For example, the height of the emission point of the laser light (detection wave) of the lower sensor 96 from the floor is 2 cm or more and 20 cm or less, making the above-mentioned mark MK easily detectable by such a lower sensor 96. When a configuration is adopted in which each mark MK is detected by the rear sensor 95, the height of the lower end of each mark MK from the floor is preferably 50 cm or less. In one example, the height from the floor of the emission part of the laser light (detection wave) of the rear sensor 95 is 40 cm or less, and the mark MK can be easily detected by such a rear sensor 95.

[0048] The horizontal dimension of each mark MK is preferably 10 cm or more, and more preferably 20 cm or more. The vertical dimension of each mark MK is also preferably 10 cm or more. This allows for more accurate detection of the position of the mark MK relative to the electric mobility M. The mark MK may be a mark other than a barcode-shaped mark. The above-mentioned mark MK has two or more colors arranged horizontally, but it is also possible to use a mark MK consisting of two or more horizontally arranged parts with different saturations, brightnesses, or reflectances. For example, each mark MK can be formed from multiple retroreflective tapes arranged horizontally. In this case, the mark MK will be less noticeable to passersby.

[0049] In one example, a user specifies a destination (destination) using an input device 201 (FIG. 5) provided on the display device 200, and the control device 80 sets a route from the departure point, which is the current vehicle location, to the destination and performs automatic driving. The destination may also be set in advance. The input device 201 may be, for example, a touch screen function of the display device 200 or a button provided on the display device 200. Instead of the input device 201, an input device such as a button provided on the controller 44 or the like may be used.

[0050] When the electric mobility M is being driven automatically or manually, the control device 80 controls each motor MT with a control command for an avoidance operation and / or activates a notification device, based on an avoidance control program 82b stored in the storage device 82, for example, when an obstacle is detected within a predetermined range of the detection ranges DA1, DA2, and DA3. Examples of the avoidance operation include slowing down or stopping the rotation speed of each motor MT (automatic stop function) to avoid the obstacle to be avoided, and controlling each motor MT to restrict movement of the electric mobility M toward the obstacle to be avoided. The obstacle to be avoided is an obstacle that is located closer than a predetermined distance (1 meter, tens of centimeters, etc.) to the sensor, electric mobility M, etc., and that is likely to impede the traveling of the electric mobility M.

[0051] Furthermore, based on the avoidance control program 82b, the control device 80 can detect an obstacle (avoidance target) present between the front wheel 10 and the rear wheel 20 within the detection range DA3 during automatic or manual driving of the electric mobility M. Alternatively, the control device 80 can detect an obstacle (avoidance target) that may enter the space between the front wheel 10 and the rear wheel 20. An example of an obstacle that may enter is an obstacle that is less than a predetermined short distance from the space, such as less than 10 cm or less than 20 cm. Another example is an obstacle that is moving toward the space and, based on its distance and speed, may enter the space within a predetermined short time, such as within 5 seconds. Specific examples of obstacles that may enter include a pedestrian's foot, the bottom end of a cane, the bottom end of an umbrella, a ball, etc. When an obstacle present between the front wheel 10 and the rear wheel 20 or an obstacle that may enter is detected, the control device 80 performs the avoidance operation, activates the alarm device, etc.

[0052] This configuration prevents the rear wheels 20 from running over the feet of pedestrians, for example. When the electric mobility M moves backward, the front wheels 10 are also prevented from running over the feet of pedestrians. Furthermore, since there is no need to provide a bumper or the like between the front wheels 10 and rear wheels 20, the electric mobility M looks smart and also contributes to reducing the weight of the electric mobility M. The control device 80 may detect, in the detection range DA3, obstacles (objects to be avoided) present behind the rear wheels, obstacles that may enter the nearby space behind the rear wheels, and the like, based on the avoidance control program 82b.

[0053] In this embodiment, the single lower sensor 96 detects the position of an obstacle (avoidance target) in the lower area in front of the electric mobility M. The single lower sensor 96 also detects obstacles that exist between the front wheels 10 and the rear wheels 20 or obstacles that may enter the area. Furthermore, as described above, the position and direction of the electric mobility M are also accurately set on the map data. As mentioned above, the front sensor 90, whose field of view is less likely to be obstructed by bags or the like carried by the user, detects obstacles in front of and to the sides of the front wheel 10, and the lower sensor 96 detects obstacles in the lower area in front of the electric mobility M. This configuration allows for reliable contact avoidance within facilities using inconspicuous sensors.

[0054] The front sensors 90 may be provided at other locations, such as the upper end of each control arm 43, or at the front end or intermediate portion of the armrest 43a in the fore-and-aft direction. When there is no control arm 43, the front sensors 90 may be provided at the front end or intermediate portion of the armrest 43a in the fore-and-aft direction. Even in these cases, part of the field of view of each front sensor 90 is blocked by the legs, clothing, etc. of the user on the seat unit S. The area below this blocked range, i.e., the area below the range in front of the electric mobility M, is covered by the detection range DA3 of the lower sensor 96.

[0055] Furthermore, in this embodiment, the upper edges 49a of the side walls 49 of the luggage placement section 42 are inclined downward toward the rear of the vehicle. Therefore, when a strap of luggage placed inside the luggage placement section 42 hangs down outside the luggage placement section 42, the strap is more likely to hang down toward the rear of the luggage placement section 42 rather than to the side of the luggage placement section 42. In other words, even if a hanging strap is placed on the side walls 49, the inclination of the upper edges 49a causes the strap to move toward the rear side wall 48. This reduces the possibility that the hanging strap will be stepped on by the rear wheel 20. Note that the electric mobility M mainly moves forward, and it is easy for the strap to be stepped on when moving forward.

[0056] If the hanging strap is stepped on by the rear wheel 20, it may lead to damage to the luggage or malfunction of the rear wheel 20. Even if the upper edge 49a has multiple steps formed so that it becomes lower toward the rear of the vehicle, it can have the same effect of moving the hanging strap toward the rear of the vehicle as described above. Vibrations and the like caused by the electric mobility M while traveling help the upper edge 49a to move the strap toward the rear of the vehicle.

[0057] Furthermore, the hanging strap may be detected as an obstacle by the rear sensor 95, which is not desirable for accurate obstacle detection. Even if the strap hanging from the rear end of the rear side wall 48 or the side wall portion 49 falls within the detection range DA2 of the rear sensor 95, the impact on the traveling of the electric mobility M is small when the electric mobility M is mainly moving forward, for example. The side wall portion 49 may be formed from a metal, plastic, or fiber net, multiple strings, etc. In this case, the upper end of the net or the topmost string can form the upper edge 49a that becomes lower toward the rear of the vehicle.

[0058] As shown in FIG. 6 , a mark MK may be provided at least at the entrance or exit of a no-entry area of ​​a moving walkway MW or the like. Examples of no-entry areas include stairs, escalators, etc. In the example of FIG. 6 , a mark MK is provided on the vertically extending surfaces of the lower ends of the poles on both sides of the entrance and exit of the moving walkway MW. As described above, the control device 80 detects the position of the mark MK relative to the electric mobility M when the electric mobility M is being driven automatically or manually. This allows the control device 80 to recognize the position of the electric mobility M relative to the moving walkway MW. The control device 80 controls each motor MT to prevent the electric mobility M from entering the moving walkway MW. For example, when the electric mobility M is about to enter the entrance or exit of the moving walkway MW, the control device 80 controls each motor MT using a control command for the avoidance operation and / or activates a warning device.

[0059] A piece of retroreflective tape may be attached to each of the two poles. If the retroreflective tapes are different sizes, each will function as a unique mark MK. Alternatively, if the two retroreflective tapes attached to the two poles are separated by a predetermined distance in the horizontal direction and the control device 80 recognizes their positions based on map data or the like, the two retroreflective tapes can function as a single mark MK. Thus, in this embodiment, the single lower sensor 96 is also used to prevent intrusion onto the moving walkway MW.

[0060] As described above, the moving walkway MW has a width that allows the electric mobility M to enter, but the control device 80 controls each motor MT to prevent the electric mobility M from entering the moving walkway MW (no-entry area). Naturally, the control device 80 can perform this control using various control methods. For example, the control device 80 recognizes that there is an obstacle (no-entry area) such as a wall between two retroreflective tapes. Alternatively, the control device 80 recognizes the area between the two retroreflective tapes or a range within a predetermined distance (several meters or less, 1 meter or less, etc.) from the line as the no-entry area. For example, the control device 80 may recognize the no-entry area when the distance between the retroreflective tapes is less than a predetermined distance.

[0061] Furthermore, the control device 80 estimates its own position using detection results obtained from any device provided on the electric mobility M, such as a GPS receiver, an odometer, or sensors 90, 95, and 96, and recognizes the location of the no-entry area relative to the estimated own position, and / or the control device 80 recognizes the no-entry area as an obstacle in the detection space detected and recognized by the sensors 90, 95, and 96. This makes it easier for the actual distance between the electric mobility M and the no-entry area to match the recognition by the control device 80. On the other hand, it is also possible to set the recognized no-entry area on the map data. In this case, the actual distance between the electric mobility M and the no-entry area may differ from the recognition by the control device 80 by the amount of deviation in the self-position estimation.

[0062] In one example, the control device 80 maintains the recognized location of the forbidden area for a certain period of time or until the electric mobility M moves a certain distance away from the forbidden area. By maintaining the location of the forbidden area, it is possible to avoid unnecessary movement of the electric mobility M, such as heading back toward the forbidden area. Furthermore, since the height of the pole is likely to be in the range of 70 cm to 120 cm, the lower end of the pole is naturally lower than the center of the pole. Retroreflective tape is usually provided within a range of 50 cm or less from the bottom end of the pole, and preferably within a range of 35 cm or less from the bottom end of the pole. It is rare for retroreflective tape to be provided at regular intervals in such a low position, which allows for accurate recognition of the no-entry area.

[0063] The two retroreflective tapes may be attached to pillars, walls, etc. on both sides of a store entrance, or to pillars, walls, etc. on both sides of a glass door or automatic door. Furthermore, multiple retroreflective tapes may be attached to windows in facilities such as airports, with the multiple retroreflective tapes spaced a predetermined distance apart horizontally. Even in this case, the control device 80 recognizes the area corresponding to the store entrance, door, automatic door, window, etc. as the no-entry area based on the position of the retroreflective tape, as described above. Automatic doors and windows in facilities such as airports may be transparent all the way down to the floor, and it is generally said that detecting such windows is difficult. However, the recognition of the no-entry area can contribute to reliable detection. It is also possible to use reflective tape, which can efficiently reflect the detection wave toward the sensors 90, 95, and 96, instead of the retroreflective tape.

[0064] As shown in FIG. 3 , an upper sensor 97 may be provided at the upper end of one or both control arms 43. In this embodiment, the upper sensor 97 is a three-dimensional distance sensor such as a three-dimensional LiDAR, radar sensor, or millimeter-wave sensor, but may also be a two-dimensional distance sensor such as a two-dimensional LiDAR. The upper sensor 97 detects obstacles (objects to be avoided) present in front of the electric mobility M and above the detection range DA3 of the lower sensor 96. Specific examples of obstacles include a table top and a rope supported by multiple poles. While the lower sensor 96 detects the legs of a table and the lower ends of poles, there are cases in which the lower sensor 96 cannot detect upper obstacles such as a table top and a rope. This configuration is useful for more accurate collision prevention in such cases. Note that, because the electric mobility M moves while facing in various directions, the control device 80 can store upper obstacles that the lower sensor 96 may not be able to detect in map data based on the detection results of the front sensor 90. Alternatively, the mark MK may be attached to a support part such as a table leg or pole that supports an upper obstacle that cannot be detected by the lower sensor 96. In this case, the control device 80 controls each motor MT according to a control command for the avoidance operation for the upper obstacle, and performs the notification, etc., based on the position and type (pattern) of the mark MK detected by the lower sensor 96.

[0065] In this embodiment, the display device 200 is disposed so as to face upward. In addition, in this embodiment, the display device 200 is attached to the upper end of the control arm 43 on which the user places their hand, for example, on the front end side. If the control arm 43 is not present, the display device 200 may be attached to the upper surface of the front end side of the armrest 43a. In these cases, the user of the seat unit S can operate the buttons and touch screen of the display device 200 without bending the back of their hand backward, which leads to improved convenience for the user.

[0066] The system is applicable to various passenger terminals T. As an example, the system will be described using the schematic diagram of the passenger terminal T shown in FIG. 4. In this embodiment, as an example, the electric mobility M is used in the space after security check of the passenger terminal T, but the electric mobility M may also be used in other spaces of the passenger terminal T.

[0067] In passenger terminal T, for example, a management station (rental station) 2 serving as a management location is provided near the exit of security screening area 1, and multiple electric mobility vehicles M are arranged at management station 2. Furthermore, management station 2 has reception 3, and reception 3 is equipped with computer 4. Computer 4 is a well-known computer such as a laptop computer or tablet computer. Computer 4 is connected to management computer 100 via a communication network, communication line, etc.

[0068] The storage device of the management computer 100 stores management data for managing multiple electric mobility vehicles M. The management data is data for displaying a management table on the display device 5 of the computer 4 or the display device of the management computer 100.

[0069] In one example, the management table includes a timetable. Each of the multiple rows in the management table lists identification information (identifiers) for multiple electric mobility vehicles M, and each row displays vehicle information for the corresponding electric mobility vehicle M, the user's planned use (usage information), the user's usage status (usage information), flight information listed on the user's boarding pass, etc. Flight information can also be considered information including information about the user's destination, time information about the user's desired arrival time at the destination, etc.

[0070] In one example, after the user has finished using the electric mobility M, the electric mobility M moves toward a predetermined waiting location by automatic driving. The end of the user's use is determined by the control device 80 based on the detection result of the seating sensor 53, the user's input to an input device such as the display device 200, etc. For example, if the seating sensor 53 does not detect that the user is seated for more than a predetermined time, it is determined that the use has ended.

[0071] As described above, electric mobility vehicles M moving toward a designated waiting area tend to move forward rather than backward. Alternatively, it is possible to set areas on the map data where frequent use of reverse is not a problem. Therefore, the above-described configuration in which the sensors 90, 95, and 96 are used to perform automatic driving, avoidance operations, and notifications can effectively prevent collisions, contact, and the like of the electric mobility vehicles M while suppressing the cost of the electric mobility vehicles M.

[0072] Furthermore, in the above-described configuration in which the sensors 90, 95, and 96 are used to perform automatic driving, avoidance operations, and notifications, the sensors for automatic driving are not noticeable on the electric mobility M, which helps users to use the electric mobility M comfortably. At least some users are concerned about the appearance of the electric mobility M and the appearance of the electric mobility M when the user is riding in it. Also, for example, it is possible to use a three-dimensional LiDAR provided above the user's head on the seat unit S instead of the sensors 90 and 95. However, in this case, the presence of the three-dimensional LiDAR makes it impossible to reduce the height dimension of the electric mobility M, which may increase the weight of the electric mobility M and reduce the stability of the electric mobility M.

[0073] It is also possible to detect the presence or absence of a user on the seat unit S using the front sensor 90 without providing the seating sensor 53.

[0074] The service using the electric mobility vehicle M may be provided in a facility other than the passenger terminal T. For example, the service may be provided in a facility such as a hospital or a train station. The service may also be provided in an outdoor facility such as an amusement park, an open-air museum, a university, or a concept town. The electric mobility vehicle M may also be used in a location other than a facility. The above configuration may also be adopted for an electric mobility vehicle M purchased by a user, rather than a rented electric mobility vehicle M. In the above operation, multiple waiting areas may be provided. For example, waiting areas may be provided at locations corresponding to each gate. Furthermore, when the user has finished using the vehicle, the electric mobility M may find a place where it can wait, and use that place as the waiting area. An example of such a waiting area is a space next to a wall.

[0075] Although the electric mobility M of this embodiment is ridden by one user seated on the seat unit S, it is also conceivable that a riding base, for example, may be provided at the rear end of the mobility main body 30, and a user other than the user may ride standing on the riding base. In this case, for example, the luggage placement section 42 may be made smaller in the fore-and-aft direction of the vehicle, and the rear sensor 95 may be attached to the underside of the riding base. Furthermore, a user standing on the riding base may operate the operation unit 44a or the display device 200 to drive the electric mobility M manually or automatically.

[0076] In the above embodiment, it is also possible not to provide the seat unit S in the electric mobility M. For example, instead of the seat unit S, a large luggage placement section 42 or a luggage storage box may be provided on the mobility body 30. Even in this type of electric mobility M, the lower sensor 96 can detect an obstacle that exists in the space between the front wheel 10 and the rear wheel 20 or that may enter this space.

[0077] Furthermore, even if there is one front wheel 10 or three or more rear wheels 20, the lower sensor 96 emits laser light (detection wave) from between the front wheel 10 and the rear wheel 20 toward the outside of the vehicle as in the above embodiment, and can detect an obstacle that exists in the space between the front wheel 10 and the rear wheel 20 or that may enter the space based on the reflected light. Note that if there is only one front wheel 10, the space is the space in front of the rear wheel 20, and if there is only one rear wheel 20, the space is the space behind the front wheel 10.

[0078] As shown in FIG. 7 , a first sensor 301 may be provided at a predetermined position on the electric mobility M as the upper sensor 97. The first sensor 301 can emit a known first detection wave 301a, such as laser light, ultrasound, or radio waves, upward and can detect a first distance from the first sensor 301 or the predetermined position to a reflection position of the reflected wave based on a reflected wave of the first detection wave 301a. In one example, the first sensor 301 is provided at the front end of the control arm 43 or the front end of the armrest 43a. As shown in FIG. 7 , the predetermined position is a location where the detection of the first distance is unlikely to be obstructed by a user. More specifically, as shown in FIGS. 7 , 8 , 10 , etc., the screen of the display device 200 is disposed between the left first sensor and a portion of the seat unit S on which the left hand, which is part of the user seated thereon, is placed. This configuration makes it unlikely that the detection of the first distance is obstructed by the user.

[0079] As shown in Fig. 7, the second sensor 302 may be provided on, for example, the control arm 43 or armrest 43a of the electric mobility vehicle M. As shown in Fig. 8, the second sensor 302 can emit a known second detection wave 302a, such as laser light, ultrasonic waves, or radio waves, downward, and can detect a second distance to a second sensor detection position 302b on the floor surface on the outer side of the front wheel 10 in the vehicle width direction of the electric mobility vehicle M. The distance between the second sensor detection position 302b and the front wheel 10 is preferably less than 20 cm. It is also possible to set this distance to 20 cm or more. However, to improve the riding comfort of the user, it is preferable that the distance be less than 20 cm, as this would result in the electric mobility vehicle M performing the following avoidance operation unnecessarily in many cases.

[0080] 7, a third sensor 303 may be provided on, for example, the control arm 43 or armrest 43a of the electric mobility vehicle M. As shown in FIG. 8, the third sensor 303 can emit a known third detection wave 303a, such as laser light, ultrasonic waves, or radio waves, downward and toward the front of the vehicle, and can detect a third distance to a third sensor detection position 303b on the floor surface in front of the electric mobility vehicle M. The distance between the third sensor detection position 303b and the electric mobility vehicle M is preferably less than 120 cm. This distance can also be set to 120 cm or more. However, because the electric mobility vehicle M will often perform the following avoidance operation, it is preferable that this distance be less than 120 cm in order to improve the riding comfort of the user.

[0081] As shown in Fig. 7, the sensors 302 and 303 are positioned so that the detection of the second distance and the third distance is unlikely to be obstructed by the user. Also, as shown in Fig. 8, the sensors 301, 302, and 303 are provided on a pair of control arms 43 or a pair of armrests 43a, respectively. The sensors 301, 302, and 303 are each connected to the control device 80.

[0082] Based on the avoidance control program 82b, when the first distance becomes equal to or less than the first reference distance while the electric mobility vehicle M is operating automatically or manually, the control device 80 controls each motor MT with a control command for the avoidance operation. In one example, the first reference distance is set to a distance of 120 cm or less. In the example of FIGS. 7 and 8 in this embodiment, the first reference distance is set to a distance of 50 cm or less, preferably 30 cm or less. For example, there may be a case where the electric mobility vehicle M is approaching a tabletop, but the distance between the table legs and the electric mobility vehicle M is still too long to be detected by the sensors 90, 95, and 96. In such a case, the tabletop may cause the first distance to become equal to or less than the first reference distance, making it possible to avoid a collision between the user of the electric mobility vehicle M and the tabletop.

[0083] Furthermore, when the change in the second distance or the change in the third distance reaches a downhill structure detection criterion while the electric mobility vehicle M is moving automatically or manually, the control device 80 controls each motor MT according to a control command for the avoidance operation. The downhill structure detection criterion is for detecting a downhill structure, and the downhill structure includes a step or a steep downhill slope, and the step or slope includes stairs. In one example, a steep downhill slope is a downhill slope with an inclination of 15° or more or 20° or more and a height change of 3 cm or more. As the avoidance operation, the control device 80, for example, stops the electric mobility vehicle M. In one example, the downhill structure detection criterion corresponds to a change in the second distance when the irradiation position of the second detection wave 302a crosses a downhill structure and thereby moves from the floor surface on which the front wheel 10 of the electric mobility vehicle M is in contact with the ground to a lower floor surface that is lower by a predetermined height or more. This change is set according to the traveling speed of the electric mobility vehicle M. The change in the third distance is similar to the change in the second distance. The predetermined height is preferably 3 cm or more. For example, the electric mobility M is prevented from entering a step having a height difference of 3 cm or more, and is also prevented from entering a steep downward slope having a height change of 3 cm or more.

[0084] In one example, the sensors 301, 302, and 303 are distance sensors such as TOF sensors that can detect the distance to a certain point. The sensors 301, 302, and 303 irradiate a detection wave to a point or an area equivalent to a point, and detect the distance based on the reflected wave from the irradiated position. This reduces the amount of information processing required for the detection results of the sensors 301, 302, and 303, and can be implemented at low cost. Furthermore, if distance sensors that can detect the distance to a certain point are used as the sensors 301, 302, and 303, the situation obtained from the detection becomes clear, improving the reliability of the avoidance operation. Note that it is also possible to use visual sensors as the sensors 301, 302, and 303 and detect the first to third distances using the visual sensors.

[0085] Safety is guaranteed as described above. Electric mobility vehicles (M) often do not have fixed, visible routes like roads for cars. For this reason, the above safety guarantees can contribute to improving users' sense of security.

[0086] In one example, the first detection wave 301a is emitted obliquely upward toward the front of the electric mobility M, and the inclination angle of the first detection wave 301a with respect to the horizontal direction is 45° or more when the electric mobility M is viewed from the side. This ensures that a tabletop or the like that exists in the traveling direction of the electric mobility M is detected reliably. In addition, in one example, the second detection wave 302a is emitted obliquely downward toward the side of the electric mobility M, and the inclination angle of the second detection wave 302a with respect to the horizontal direction is 60° or more when the electric mobility M is viewed from the front. This ensures that a downhill structure present to the side of the front wheel 10 is detected.

[0087] In addition, in one example, the third detection wave 303a is emitted obliquely downward toward the front of the electric mobility M, and the inclination angle of the third detection wave 303a with respect to the horizontal direction is 45° or more when the electric mobility M is viewed from the side. This allows downhill structures and the like that exist in the traveling direction of the electric mobility M to be reliably detected. It should be noted that the above effect can be achieved even if the detection waves 301a, 302a, and 303a are directed in directions other than those described above. The height of the sensors 301, 302, and 303 from the floor is preferably 50 cm or more, and more preferably 60 cm or more, which is advantageous for detecting the top plate and descending structure.

[0088] As shown in FIG. 9 , a wired controller 400 for an assistant may be connected to the electric mobility vehicle M. For example, the wired controller 400 has a joystick 410 for controlling the traveling direction and speed of the electric mobility vehicle M, and a release button 420 that enables control using the joystick 410. In one example, the electric mobility vehicle M can be operated using the joystick 410 only while the release button 420 is pressed. For example, the assistant holds the body of the wired controller 400 in one hand, presses the release button 420 with his index finger, and operates the joystick 410 with his thumb. Other types of controllers may also be used as the wired controller 400. For example, a controller in which the traveling direction and the speed are input via an LCD screen, a controller in which the traveling direction and the speed are input using multiple buttons, or the like may be used.

[0089] An example of an assistant is someone who works at a facility such as an airport. For example, on a jet bridge connecting an airplane to an airport facility, the assistant controls the electric mobility M on which the user is seated by operating the wired controller 400. This allows the user and the electric mobility M to move smoothly even in a narrow passage such as a jet bridge. Furthermore, the wired controller 400 is connected to the electric mobility M by a cable 430. This makes it easy for the assistant to recognize the location of the wired controller 400 and prevents the wired controller 400 from being lost.

[0090] Note that hidden commands, hidden menus, etc. may be set on the display device 200, etc. In this case, the electric mobility M becomes operable using the wired controller 400 only when a hidden command, hidden menu, etc. is operated. This prevents the wired controller 400 from being used by an unintended person, such as a user seated on the electric mobility M. Furthermore, the automatic stop function may be disabled when the electric mobility M becomes operable using the wired controller 400. This allows the user and the electric mobility M to move more smoothly in narrow passages.

[0091] As shown in Figures 8 and 9, a pair of side wall portions 49 of the luggage placement portion 42 may each be provided with a grip portion 49b, and a switch 440 may be provided on each of the left and right grip portions 49b. The switches 440 are each connected to the control device 80. In one example, the grip portions 49b are provided along the upper edge 49a, and the switches 440 are configured to be pressed when the grip portions 49b are gripped. When the switches 440 are pressed, the control device 80 releases the brakes of the motors MT. The brakes are electromagnetic brakes or the like provided on the motors MT. This allows the assistant to push the electric mobility M safely and easily to move.

[0092] 7, a downward-facing surface 43b may be provided at the front end of control arm 43, and a camera 500 for a drive recorder may be provided below and near surface 43b. In one example, camera 500 is connected to control device 80, and images taken by camera 500 are stored in storage device 82. In another example, images taken by camera 500 are stored in the storage device of camera 500 itself or in another storage device. In such an electric mobility, the field of view of camera 500 in the above position is unlikely to be obstructed by the user, which has the advantage that information about the area around front wheel 10 can be easily obtained.

[0093] 7 and 9, in the above embodiment, the second sensor 302 and the third sensor 303 are provided on the downward surface 43b of the control arm 43. In the electric mobility vehicle, the control arm 43 is a portion on which a user seated in the seat unit S places their hands or arms. When an armrest 43a is provided instead of the control arm 43, the surface 43b is provided on the underside of the armrest 43a.

[0094] 9 and 10, a shielding plate 43c may be provided extending downward from the surface 43b. The shielding plate 43c extends downward from the surface 43b by 3 cm or more and is disposed inside the second sensor 302 and the third sensor 303 in the vehicle width direction. The distance between the second sensor 302 and the third sensor 303 and the shielding plate 43c in the vehicle width direction is preferably 10 cm or less, and more preferably 5 cm or less.

[0095] This configuration prevents parts of a user, clothing, etc., seated in the seat unit (seat) S from entering the detection range of the sensors 302, 303. Parts of a user include legs, knees, etc. The user's clothing includes trousers, a skirt, etc. For example, if the sensors 302, 303 are sensors that use laser light, the detection range of the sensors 302, 303 is small. For example, the detection range of the sensors 302, 303 into which parts of a user, etc., may enter is a range with a diameter of about 1 cm centered on the optical axis of the sensors 302, 303. Therefore, the shielding plate 43c efficiently prevents parts of a user, etc., from entering the detection range of the sensors 302, 303. The posture, clothing, physique, nationality, etc., of users on the seat unit S vary, and the above configuration contributes to stable use of electric mobility.

[0096] As shown in FIG. 9, the vertical distance D between the lower end of the shielding plate 43c and the seat surface 50a of the seat unit S is preferably 10 cm or less, more preferably 8 cm or less, and even more preferably 5 cm or less.

[0097] As shown in FIG. 10 , a container 450 for storing the joystick 410 may be provided in the luggage storage section 42. In this case, the wired controller 400 is stored in the container 450 when not in use. The configuration in which the wired controller 400 is stored in the container 450 can save the assistant the trouble of searching for the joystick 410 and storing it away. This is useful for the assistant who has to perform various tasks within a limited time. The lid 451 of the container 450 may be locked with a key or the like. In this case, only a specific assistant who has the key or the like can unlock it. Note that FIG. 10 shows an example of an electric mobility vehicle that does not have a controller 44, and some parts such as a cover have been removed in FIG. 10 .

[0098] 11, the display device 200 also displays a mode indicator 202 indicating whether the electric mobility is in a push mode, in which the electric mobility can be pushed manually, along with information such as the remaining battery level. For example, an assistant can set the electric mobility to the push mode by performing a predetermined operation on a setting screen that appears on the display device 200. For example, for an electric mobility that is not set to the push mode, pressing the switch 440 will not release the brakes of the motors MT for safety reasons. The presence of the mode indicator 202 is useful for the assistant to perform work smoothly.

[0099] In FIG. 11, the side where the remaining battery charge display, mode display 202, etc. are located is the upper side of the display, and the opposite is the lower side of the display. In one example, FIG. 11 shows a state where a user is seated in seat unit S, and at this time, the lower side of the display is located on the user's side (first display orientation). When the user is not seated in seat unit S, the second display orientation is used. In one example of the second display orientation, the upper and lower sides of the display are reversed with respect to the first display orientation. In another example of the second display orientation, the upper side of the display is located on the inner side in the vehicle width direction on display device 200. Control device 80 may switch between the first display orientation and the second display orientation based on the detection result of seating sensor 53. Switching the display orientation in this manner is useful for improving the workability of the assistant.

[0100] Furthermore, as described above, when the electric mobility M that has finished being used by the user moves toward a predetermined waiting location by autonomous driving, the seat sensor 53 does not detect that the user is seated, and therefore the display orientation of the display device 200 becomes the second display orientation. In this state, the control device 80 may display text or a graphic on the display device 200 in the second display orientation to inform people around the electric mobility M that they cannot ride. The text or graphic may also mean that riding is prohibited. Furthermore, even if the electric mobility M does not have an autonomous driving function, switching between the first display orientation and the second display orientation based on the detection result of the seat sensor 53 is useful for improving the workability of the assistant. Note that, although the display device 200 is a tablet computer in this embodiment, the display device 200 may simply be a display device controlled by another computer.

[0101] The touchscreen function of a tablet computer typically selects an option corresponding to the position where the finger is lifted from the screen. For example, if the finger is lifted from the screen at the "Cancel" position on the countdown display in FIG. 11, "Cancel" is selected. In this embodiment, a selection is also made corresponding to a position on the screen that is pressed and held. For example, if the finger is held in contact with the "Cancel" button on the screen for more than a predetermined period of time, "Cancel" is selected. This configuration is useful for reducing stress for users who are not accustomed to operating tablet computers, such as elderly people.

[0102] 11 has a remaining time display 203, which displays the time remaining until automatic driving starts. For example, the remaining time display 203 gradually decreases, and automatic driving starts when it reaches zero. This configuration is useful for reducing stress on the user.

[0103] In the above embodiment, for example, automatic driving is started by the user selecting a button for starting automatic driving displayed on the display device 200. Preferably, the control device 80 enables the user's operation to start automatic driving when the seating sensor 53 detects that the user is seated in the seat unit S. This configuration is useful for ensuring the safety of the user and surrounding people and objects. [Explanation of symbols]

[0104] 10 Front wheels 20 rear wheels 30 Mobility body 42 Luggage storage area 43c shielding plate 44 Controller 44a Control unit 45 Interface 50 Seat part 50a seat 60 Control Unit 80 Control device 81 processors 82 Storage device 82b Avoidance Control Program 82c Autonomous Driving Program 82d Location Aware Program 90 Front sensor 95 Rear sensor 96 Lower sensor 97 Upper sensor 100 Management Computers 200 Display device 201 Input Device 301 First Sensor 302 Second Sensor 303 Third Sensor 400 Wired Controller 450 container 500 cameras M Electric Mobility S seat unit

Claims

1. An electric mobility vehicle that allows users to sit and ride, a mobility body having front wheels, rear wheels, a seat for the user, and a base; a control device provided in the mobility body, the base portion has a lower surface facing a running surface on which the front wheels and the rear wheels are in contact with the ground, The electric mobility is An electric mobility comprising: a lower sensor attached to the underside of the base portion and capable of emitting a detection wave at least in front of the vehicle from the underside of a footrest surface for the user seated in the seat or the underside of the mobility body, the lower sensor being capable of detecting the position of an object to be avoided in front of the electric mobility using the detection wave, and / or being used for self-position estimation based on the position of the object detected using the detection wave.

2. An electric mobility vehicle that allows users to sit and ride, a mobility body having front wheels, rear wheels, a seat for the user, and a base; a control device provided in the mobility body, the base portion has a lower surface facing a running surface on which the front wheels and the rear wheels are in contact with the ground, The electric mobility is An electric mobility vehicle comprising a lower sensor that is attached to the electric mobility vehicle so as to protrude downward from the lower surface of the base portion, that is capable of emitting a detection wave at least to the front of the electric mobility vehicle from the underside of a footrest surface for the user seated on the seat or the underside of the mobility body, and that is capable of detecting the position of an object to be avoided in front of the electric mobility vehicle using the detection wave.

3. An electric mobility vehicle that allows users to sit and ride, a mobility body having a plurality of wheels, a seat for the user, and a base; a control device provided in the mobility body, the base portion has a lower surface facing a running surface on which the plurality of wheels are in contact with the ground, The electric mobility is a lower sensor having an emission portion for a detection wave disposed below the lower surface of the base portion; the lower sensor is capable of emitting the detection wave from between the plurality of wheels, The lower sensor is capable of detecting the position of an object to be avoided at least in front of the electric mobility or in the vehicle width direction using the detection wave, and / or is an electric mobility used for self-position estimation based on the position of the object to be avoided detected using the detection wave.

4. An electric mobility vehicle that allows users to sit and ride, a mobility body having front wheels, rear wheels, a seat for the user, and a base; a control device provided in the mobility body, the base portion has a lower surface facing a running surface on which the front wheels and the rear wheels are in contact with the ground, The electric mobility is An electric mobility comprising a lower sensor in which a detection wave emission section is positioned below the underside of the base section, and which emits the detection wave from the underside of a footrest surface for the user seated on the seat or the underside of the mobility body at least forward of the vehicle to scan horizontally, and which is capable of detecting the position of an object to be avoided in front of the electric mobility using the detection wave, and / or is used for self-position estimation based on the position of the detection object detected using the detection wave.

5. An electric mobility vehicle that allows users to sit and ride, a mobility body having front wheels, rear wheels, a seat for the user, and a base; a control device provided in the mobility body, the base portion has a lower surface facing a running surface on which the front wheels and the rear wheels are in contact with the ground, The electric mobility is a lower sensor having a detection wave emitter disposed below the lower surface of the base portion and capable of emitting the detection wave from below a footrest surface for the user seated on the seat or from below the mobility body toward at least a front side of the electric mobility; The lower sensor is an electric mobility device used for self-position estimation based on the position of a detection target detected using the detection wave.

6. An electric mobility vehicle that allows users to sit and ride, a mobility body having front wheels, rear wheels, a seat for the user, and a base; a control device provided in the mobility body, the base portion has a lower surface facing a running surface on which the front wheels and the rear wheels are in contact with the ground, The electric mobility is a lower sensor attached to the lower surface of the base portion and capable of emitting a detection wave from a lower side of a footrest surface for the user seated on the seat or a lower side of the mobility body toward at least a front side of the electric mobility vehicle; The lower sensor is an electric mobility device used for self-position estimation based on the position of a detection object detected using the detection wave.

7. The electric mobility described in claim 1, 2, 4, 5, or 6, wherein the lower sensor is capable of emitting the detection wave in the vehicle width direction of the electric mobility from between the front wheels and the rear wheels, and is capable of using the detection wave to detect an object to be avoided that is present in the space between the front wheels and the rear wheels or that may enter the space.

8. 8. The electric mobility of claim 1, further comprising a front sensor that is disposed below the seat surface of the seat, that is positioned within a field of view of at least a portion of the front wheel or a portion of the fender of the front wheel, and that is capable of detecting an object to be avoided that is present in front of and to the side of the front wheel.

9. A luggage storage section provided on the back side of the seat; The electric mobility according to any one of claims 1 to 8, further comprising: a rear sensor that is arranged below the luggage loading section or below the seat, that is capable of emitting a detection wave at least to the rear of the vehicle, and that is capable of detecting the position of an object to be avoided behind the vehicle.

10. An electric mobility vehicle in which a user can sit and ride, a mobility body having front wheels, rear wheels, and a seat for the user; a control device provided in the mobility body; a lower sensor that can emit a detection wave from below a footrest surface for the user seated on the seat or from below the main body of the mobility vehicle toward a front of the electric mobility vehicle, and that can detect the position of an object to be avoided in front of the electric mobility vehicle using the detection wave; A luggage storage section provided on the back side of the seat; a rear sensor that is arranged below the luggage placement section or below the seat, that is capable of emitting a detection wave at least rearward of the vehicle, and that is capable of detecting the position of an object to be avoided rearward of the electric mobility vehicle; the lower sensor or the rear sensor is configured to receive the emitted detection wave reflected by a plurality of points of a mark at a predetermined position, the mark being made up of portions of two or more types of color, saturation, brightness, or reflectance; The control device calculates the position of the electric mobility vehicle relative to the mark based on the intensity of the reflected waves from the multiple locations detected by the lower sensor or the rear sensor and the positions of the multiple locations.

11. The electric mobility according to claim 10 , wherein the lower sensor or the rear sensor determines the type of the mark based on the intensities of the reflected waves from the plurality of locations and the positions of the plurality of locations.

12. 9. The electric mobility vehicle according to claim 8, wherein the front sensor is positioned above an upper end of the front wheel or an upper end of the fender of the front wheel, and / or is positioned at least 5 cm behind a rear end of the front wheel.

13. the lower sensor or the rear sensor is configured to receive the reflected wave from the mark provided at an entrance or an exit of a restricted area for the electric mobility vehicle; The electric mobility device according to claim 10 , wherein the control device calculates a position of the electric mobility device relative to the no-entry area based on the intensities of the reflected waves from the plurality of locations and the positions of the plurality of locations.

14. An electric mobility vehicle in which a user can sit and ride, a mobility body having front wheels, rear wheels, and a seat for the user; a control device provided in the mobility body; a lower sensor that can emit detection waves from a lower side of a footrest surface for the user seated on the seat or a lower side of the mobility body toward a front side of the electric mobility vehicle, and that can detect the position of an object to be avoided toward a front side of the electric mobility vehicle using the detection waves; The lower sensor or the front sensor is configured to receive the emitted detection wave reflected by a plurality of reflective tapes provided corresponding to the no-entry area, The plurality of reflective tapes are arranged at predetermined distances from each other in the horizontal direction, The control device is configured to recognize the no-entry area as an area that the electric mobility cannot enter based on the positions of the multiple reflective tapes calculated based on the reflected waves.

15. a first sensor provided at a predetermined position of the electric mobility; the first sensor is capable of emitting a first detection wave at least upward and is capable of detecting a first distance from the first sensor or the predetermined position to a reflection position of the reflected wave based on a reflected wave of the first detection wave; The control device is configured to cause the electric mobility vehicle to perform an avoidance operation or a stopping operation when the first distance becomes equal to or shorter than a first reference distance while the electric mobility vehicle is moving. The electric mobility according to any one of claims 1 to 14.

16. a second sensor provided in the electric mobility; a third sensor provided in the electric mobility; the second sensor is capable of detecting a descending structure on a floor surface on an outer side in a vehicle width direction of the electric mobility vehicle relative to the front wheel, the third sensor is capable of detecting a descending structure on a floor surface in front of the vehicle of the electric mobility; The electric mobility device according to claim 1, 2, 4, 5, 6, or 7, wherein the control device is configured to cause the electric mobility device to perform an avoidance operation when the second sensor or the third sensor detects the descending structure while the electric mobility device is moving.

17. The electric mobility according to claim 9 , wherein upper edges of side wall portions provided on both sides of the luggage placement section in the vehicle width direction are formed so as to become lower toward the rear of the vehicle.

18. The electric mobility according to any one of claims 1 to 17, wherein the lower sensor emits the detection wave obliquely upward in front of the vehicle.

19. a display device or computer attached to the electric mobility vehicle so that the screen faces upward; a seating sensor for detecting that the user is seated in the seat, An electric mobility as described in any one of claims 1 to 18, wherein when it is determined based on the output of the seating sensor that the user is seated in the seat, the control device sets the display direction of the screen to a first direction so that the bottom of the display is positioned on the side of the user, and when it is determined based on the output of the seating sensor that the user is not seated in the seat, the control device sets the display direction of the screen to a second direction different from the first direction.

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