Tilting vehicle with steered front wheels
The tilted vehicle's design, featuring rockable front steering wheels and a non-rockable rear wheel, along with a mechanical turning input device and a centrifugal force generating system, addresses the lack of robustness in turning operations, enhancing stability and control.
Patent Information
- Application Number
- JP2024008440
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2018-12-27
- Filing Date
- 2024-01-24
- Publication Date
- 2025-05-13
- Estimated Expiration
- 2039-12-27
AI Technical Summary
Existing tilted vehicles with steerable front wheels lack robustness in turning operations when using mechanical turning operation input devices that prevent the front steering wheels from swinging.
The vehicle incorporates a design with one or two front steering wheels that are rockable about a vertical axis, a rear wheel that is not rockable, and a turning operation input device that mechanically transmits turning operations without swinging the front steering wheels. Additionally, an inclined actuator tilts the vehicle body, and a centrifugal force generating device provides additional centrifugal forces to the front and rear wheels during turning.
This configuration enhances the robustness of the tilted vehicle during turning by maintaining the inclination angle of the vehicle body and controlling the centrifugal forces on the wheels, thereby improving stability and control.
Smart Images

Figure 0007675875000003 
Figure 0007675875000004 
Figure 0007675875000005
Abstract
Description
[Technical field]
[0001] The present invention relates to a tilting vehicle, and more particularly to a tilting vehicle with steered front wheels. [Background technology]
[0002] Conventionally, a tilting vehicle is known. The tilting vehicle includes, for example, a vehicle body, a plurality of wheels, a turning operation input unit, a steering wheel control unit, and a vehicle body tilt unit. The plurality of wheels include at least one front wheel and at least one rear wheel. The steering wheel is a front wheel. The front wheel is supported on the vehicle body in a state in which it can swing around an axis extending in the vertical direction of the vehicle body. There are one or two front wheels. There are two rear wheels when there is one front wheel, and there are one or two rear wheels when there are two front wheels. The turning operation input unit accepts an operation by a passenger to turn the tilting vehicle. The turning operation input unit is a handle. The steering wheel control unit controls the steering angle of the steering wheel in response to an input from the turning operation input unit. The vehicle body tilt unit tilts the vehicle body to the left when the operation input to the turning operation input unit is an operation to turn the tilting vehicle to the left. In addition, the vehicle body tilt unit tilts the vehicle body to the right when the operation input to the turning operation input unit is an operation to turn the tilting vehicle to the right. Such a tilting vehicle is disclosed in, for example, JP 2017-177905 A. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] JP 2017-177905 A Summary of the Invention [Problem to be solved by the invention]
[0004] The above publication suggests that an electric turning operation input device such as a jog dial, touch panel, or push button can be used as a turning operation input unit where the occupant inputs turning instructions instead of a steering wheel (see paragraph 0036). The electric turning operation input device is a turning operation input device that receives turning operations by the occupant and is configured to mechanically transmit the turning operation so that the front steering wheels, which are the front wheels used as steering wheels, do not swing.
[0005] When using a turning operation input device configured to mechanically transmit a turning operation so that the front steering wheels do not swing, the turning of the tilting vehicle is controlled by an actuator based on the turning operation. And, a tilting vehicle equipped with a turning operation input device configured to mechanically transmit a turning operation so that the front steering wheels do not swing is preferably provided with higher robustness against turning because it is controlled by an actuator based on the turning operation.
[0006] An object of the present invention is to provide a tilting vehicle having steered front wheels, which is equipped with a turning operation input device configured to mechanically transmit the turning operation by the occupant so that the front steering wheels do not sway, thereby making it possible to further increase robustness against turning. [Means for solving the problem]
[0007] A tilting vehicle equipped with steered front wheels according to one embodiment of the present invention comprises a vehicle body, one or two front steering wheels supported on the vehicle body in a state in which they can swing about an axis extending in the vertical direction of the vehicle body, and rear wheels supported on the vehicle body in a state in which they cannot swing about an axis extending in the vertical direction of the vehicle body, two rear wheels when there is one front steering wheel, and one or two rear wheels when there are two front steering wheels.
[0008] A tilting vehicle with steered front wheels according to one embodiment of the present invention includes a turning operation input device that receives a turning operation for turning by an occupant and is not mechanically connected to the front steering wheels so that the turning operation is not mechanically transmitted to the front steering wheels and the front steering wheels do not swing. Further, a tilting vehicle with steered front wheels according to one embodiment of the present invention includes a tilting device including a tilt actuator that tilts the vehicle body, the front steering wheels, and the rear wheels to the left of the vehicle when the turning operation inputted to the turning operation input device is a turning operation for turning the vehicle to the left, and tilts the vehicle body, the front steering wheels, and the rear wheels to the right of the vehicle when the turning operation inputted to the turning operation input device is a turning operation for turning the vehicle to the right, and a control device that controls the tilt actuator.
[0009] As described above, the tilting vehicle with steered front wheels according to one embodiment of the present invention is a three-wheeled vehicle or a four-wheeled vehicle. The front steering wheels or rear wheels of the tilting vehicle with steered front wheels according to one embodiment of the present invention have two wheels. The tilting vehicle with steered front wheels according to one embodiment of the present invention turns by tilting the vehicle body, the front steering wheels and the rear wheels by the tilting device and the control device. The turning operation input device is configured so that the turning operation is mechanically transmitted so that the front steering wheels do not swing. Therefore, it is preferable that such a tilting vehicle with steered front wheels has higher robustness against turning because it is controlled by the operation of the tilt actuator based on the turning operation.
[0010] The tilting vehicle having steered front wheels further includes a centripetal force generating device including a centripetal force generating actuator that generates additional centripetal force on the front steering wheels and the rear wheels tilting during turning by controlling the torque outputted. In addition, the control device controls the torque of the centripetal force generating actuator when controlling the tilt actuator based on the turning operation inputted to the turning operation input device, thereby controlling the tilt state of the vehicle body during turning and the centripetal force generated on the front steering wheels and the rear wheels during turning.
[0011] This makes it possible to control the turning of a tilting vehicle having steered front wheels by both the control of the tilt state of the vehicle body during turning by the tilt actuator that tilts the vehicle body based on the turning operation, and the control of centripetal force by the centripetal force generating actuator that generates additional centripetal force on the front steering wheels and rear wheels that are tilted during turning. Therefore, it is possible to further increase the robustness of the turning of a tilting vehicle having steered front wheels, which is equipped with a turning operation input device configured to mechanically transmit the turning operation by the occupant so that the front steering wheels do not swing.
[0012] In addition, the control device provided in the tilt vehicle controls the torque of the steering actuator when controlling the tilt actuator based on the turning operation input to the turning operation input device. Therefore, for example, it is possible to control the torque of the steering actuator while controlling the tilt actuator so as to maintain the tilt angle of the vehicle body according to the turning operation input to the turning operation input device.
[0013] Furthermore, the centripetal force generated in the front steering wheels and the rear wheels tilted by the control of the tilt actuator based on the turning operation is controlled by controlling the torque of the centripetal force generating actuator. This makes it easier to control the centripetal force when the tilt state of the vehicle body is controlled by the tilt actuator based on the turning operation. Therefore, it is possible to further increase the robustness of a tilting vehicle with steered front wheels in turning, which is equipped with a turning operation input device configured to mechanically transmit the turning operation by the occupant so that the front steering wheels do not swing.
[0014] In the tilting vehicle with steered front wheels according to one embodiment of the present invention, the vehicle body is not particularly limited as long as it tilts to the vehicle left when turning in the vehicle left direction, which is the left direction of the tilting vehicle with steered front wheels, and tilts to the vehicle right when turning in the vehicle right direction, which is the right direction of the tilting vehicle with steered front wheels. The vehicle body includes a vehicle body frame. The vehicle body frame may be a frame in which a plurality of parts are combined, or a frame in which a plurality of parts are integrally molded. The material of the vehicle body frame may be metal such as aluminum or iron, synthetic resin such as CFRP, or a combination thereof. The vehicle body frame may be a monocoque structure composed of exterior parts of the tilting vehicle with steered front wheels, or a semi-monocoque structure in which a part of the vehicle body frame also serves as an exterior part of the tilting vehicle with steered front wheels.
[0015] In the tilting vehicle having a steered front wheel according to one embodiment of the present invention, the one or two front steering wheels are not particularly limited as long as they are supported by the vehicle body in a state in which they can swing around an axis extending in the vehicle body vertical direction, which is the vertical direction of the vehicle body. The axis extending in the vehicle body vertical direction does not have to extend in the vertical direction when the vehicle body is upright. For example, the axis extending in the vehicle body vertical direction may be inclined toward the rear of the vehicle body with respect to the vertical direction when the vehicle body is upright. The manner in which the front steering wheels are supported by the vehicle body is not particularly limited. For example, the front steering wheels may be directly supported by the vehicle body or indirectly supported by the vehicle body. The manner in which the front steering wheels are indirectly supported by the vehicle body includes, for example, a manner in which a suspension device is used that is arranged between the front steering wheels and the vehicle body and supports the front steering wheels to the vehicle body. The suspension device that supports one front steering wheel to the vehicle body is, for example, a telescopic type or bottom link type front fork. The suspension device that supports the two front steering wheels on the vehicle body is, for example, an independent suspension. The two front steering wheels are arranged side by side in the left-right direction of the tilting vehicle having the steered front wheels.
[0016] In the tilting vehicle having steered front wheels according to one embodiment of the present invention, the manner in which the rear wheels are supported on the vehicle body is not particularly limited as long as the rear wheels do not swing around an axis extending in the vertical direction of the vehicle body. The rear wheels may be directly supported on the vehicle body, for example, or indirectly supported on the vehicle body. The manner in which the rear wheels are indirectly supported on the vehicle body includes, for example, a manner in which a suspension device is used that is disposed between the rear wheels and the vehicle body and supports the rear wheels on the vehicle body. The suspension device that supports one rear wheel on the vehicle body is, for example, a swing arm type suspension. The suspension device that supports two rear wheels on the vehicle body is, for example, an independent suspension type suspension. The two rear wheels are, for example, arranged side by side in the left-right direction of the tilting vehicle having steered front wheels.
[0017] In a tilting vehicle having a steered front wheel according to an embodiment of the present invention, the turning operation input device is not particularly limited as long as it is configured to receive a turning operation for turning by an occupant and to mechanically transmit the turning operation so that the front steering wheel does not swing. The turning operation for turning by an occupant is performed, for example, using a part of the occupant's body (for example, a hand). The manner in which the turning operation input device receives the turning operation for turning by an occupant is not particularly limited. For example, when the turning operation for turning by an occupant is performed using a part of the occupant's body (for example, a hand), the turning operation input device may have a part that is in contact with a part of the occupant's body (for example, a hand). In this case, the turning operation can be received by the part. The manner in which the turning operation is mechanically transmitted so that the front steering wheel does not swing includes, for example, a manner in which the turning operation input device is not mechanically connected to the front steering wheel. The mode in which the turning operation input device is not mechanically connected to the front steering wheel includes, for example, a mode in which power cannot be transmitted from the turning operation input device to the front steering wheel. When the turning operation input device is not mechanically connected to the front steering wheel, for example, an electric signal may be generated based on a turning operation for turning by the occupant, and the electric signal may be used to drive an actuator, thereby causing the front steering wheel to oscillate.
[0018] In the tilting vehicle having the steered front wheels according to one embodiment of the present invention, the tilting device is not particularly limited as long as it includes a tilt actuator that tilts the vehicle body, the front steering wheels, and the rear wheels to the left of the vehicle when the turning operation input to the turning operation input device is a turning operation for turning the vehicle to the left, and tilts the vehicle body, the front steering wheels, and the rear wheels to the right of the vehicle when the turning operation input to the turning operation input device is a turning operation for turning the vehicle to the right. The manner in which the tilt actuator tilts the vehicle body, the front steering wheels, and the rear wheels to the left or right of the vehicle is not particularly limited. For example, the tilt actuator may tilt the vehicle body to the left or right of the vehicle, thereby tilting the front steering wheels and the rear wheels supported by the vehicle body to the left or right of the vehicle together with the vehicle body. The tilt actuator may have, for example, an output member mechanically connected to the vehicle body. The manner in which the output member is mechanically connected to the vehicle body includes, for example, a manner in which power can be transmitted from the output member to the vehicle body. The tilt actuator may be, for example, an electric motor having an output member rotatable in both forward and reverse directions.
[0019] In the tilting vehicle having steered front wheels according to one embodiment of the present invention, the centripetal force generating device is not particularly limited as long as it includes a centripetal force generating actuator that generates an additional centripetal force on the front steering wheels and rear wheels tilting during turning by controlling the output torque. The additional centripetal force generated on the front steering wheels and rear wheels tilting during turning is, for example, a centripetal force that is added to the centripetal force generated with turning to further increase the centripetal force generated on the front steering wheels and rear wheels tilting during turning. The centripetal force generated with turning is, for example, a centripetal force generated due to the tilt of the front steering wheels and rear wheels during turning. The centripetal force generated due to the tilt actuator tilting the front steering wheels and rear wheels during turning. In other words, the additional centripetal force generated on the front steering wheels and rear wheels tilting during turning is a centripetal force different from the centripetal force generated due to the tilt actuator tilting the front steering wheels and rear wheels during turning.
[0020] The manner in which the centripetal force generating actuator generates the additional centripetal force on the front steering wheels and the rear wheels is not particularly limited. The centripetal force generating actuator includes, for example, an actuator that first generates an additional centripetal force on either the front steering wheels or the rear wheels, and as a result, generates the additional centripetal force on each of the front steering wheels and the rear wheels. In other words, the centripetal force generating actuator includes an actuator that generates the additional centripetal force on each of the front steering wheels and the rear wheels with a time lag.
[0021] The centripetal force generating actuator may have, for example, an output member mechanically connected to either the front steering wheels or the rear wheels. The mode in which the output member is mechanically connected to either the front steering wheels or the rear wheels includes, for example, a mode in which power can be transmitted from the output member to either the front steering wheels or the rear wheels. The centripetal force generating actuator is, for example, an electric motor having an output member that can rotate in a forward direction and a reverse direction.
[0022] When an additional centripetal force is generated for the front steered wheels, the centripetal force generating actuator may, for example, apply a torque to the front steered wheels to swing the front steered wheels around an axis extending in the vertical direction of the vehicle body. In other words, the centripetal force generating actuator may apply a torque to a member supporting the front steered wheels so as to be swingable around an axis extending in the vertical direction of the vehicle body to swing the front steered wheels around the axis. Alternatively, when a centripetal force is generated for each of the two front steered wheels arranged in the left-right direction of the vehicle, which is the left-right direction of the tilting vehicle having the steered front wheels, the centripetal force generating actuator may, for example, apply different torques to the two front steered wheels. A mode of applying different torques to the two front steered wheels includes, for example, a mode in which the torque applied to the front steered wheel located on the inside when the tilting vehicle is turning is made smaller than the torque applied to the front steered wheel located on the outside. The manner in which different torques are applied to the two front steered wheels may be achieved, for example, by using a power unit that rotates each of the two front steered wheels, or by using a brake unit that applies a braking force to each of the two front steered wheels.
[0023] In addition, when generating a centripetal force on each of two rear wheels arranged in the vehicle left-right direction, which is the left-right direction of a tilting vehicle having steered front wheels, the centripetal force generating actuator may, for example, apply different torques to the two rear wheels. The mode of applying different torques to the two rear wheels includes, for example, a mode in which the torque applied to the inner rear wheel is smaller than the torque applied to the outer rear wheel when a tilting vehicle having steered front wheels is turning among the two rear wheels. The mode of applying different torques to the two rear wheels may be realized, for example, by using a power unit that rotates each of the two rear wheels, or may be realized by using a brake unit that applies a braking force to each of the two rear wheels.
[0024] In the tilting vehicle with steered front wheels according to one embodiment of the present invention, the control device is not particularly limited as long as it controls the torque of the centripetal force generating actuator to control the tilt state of the vehicle body during turning and the centripetal force generated in the front steering wheels and the rear wheels when controlling the tilt actuator based on the turning operation inputted to the turning operation input device. In other words, the control device is not particularly limited as long as it controls the torque of the centripetal force generating actuator while controlling the tilt actuator. The manner in which the control device controls the tilt actuator based on the turning operation inputted to the turning operation input device includes, for example, a manner in which the tilt angle of the vehicle body during turning changes with a change in the vehicle speed of the tilting vehicle with steered front wheels when the turning operation inputted to the turning operation input device is constant.
[0025] A control device provided in a tilting vehicle having steered front wheels in one embodiment of the present invention may control the torque of a centripetal force generating actuator when controlling the position of the output member of the tilt actuator based on a turning operation input to a turning operation input device, thereby controlling the tilt angle of the vehicle body during turning and the centripetal force generated in the front steered wheels and rear wheels during turning.
[0026] A control device provided in a tilting vehicle having steered front wheels in one embodiment of the present invention may, when controlling the tilt actuator based on a turning operation inputted to a turning operation input device, control the torque of a centripetal force generating actuator based on the turning operation inputted to the turning operation input device, thereby controlling the tilt state of the vehicle body during turning and the centripetal force generated in the front steered wheels and rear wheels during turning.
[0027] In such an embodiment, the torque of the centripetal force generating actuator is controlled using an operation for turning a tilting vehicle having steered front wheels, so that the centripetal force generated in the two front steered wheels and the rear wheels during turning can be more appropriately controlled.
[0028] In the tilt vehicle having steered front wheels according to one embodiment of the present invention, the turning operation input device may include an operated member that can be swung by a driver. In this case, when the control device controls the tilt actuator based on the turning operation input to the turning operation input device, the control device may control the torque of the centripetal force generating actuator based on the swing operation angle of the operated member of the turning operation input device to control the tilt state of the vehicle body during turning and the centripetal force generated in the front steered wheels and the rear wheels during turning.
[0029] The operated member of the turning operation input device is not particularly limited as long as it is a member used when the occupant performs a turning operation. In other words, the operated member of the turning operation input device is not particularly limited as long as it is a member that accepts a turning operation for turning by the occupant.
[0030] The tilting vehicle with steered front wheels according to one embodiment of the present invention may further include a running state detection device for detecting a physical quantity related to the running state of the tilting vehicle with steered front wheels. In this case, the control device may control the torque of the centripetal force generating actuator based on the running state of the tilting vehicle with steered front wheels detected by the running state detection device when controlling the tilt actuator based on the turning operation input to the turning operation input device, thereby controlling the tilting state of the vehicle body during turning and the centripetal forces generated in the front steered wheels and the rear wheels during turning.
[0031] In such an embodiment, the torque of the centripetal force generating actuator is controlled using the driving state during turning of the tilting vehicle having steered front wheels, so that the centripetal force generated in the two front steered wheels and the rear wheels during turning can be more appropriately controlled.
[0032] Alternatively, when the control device is controlling the tilt actuator based on the turning operation input to the turning operation input device, the control device may control the torque of the centripetal force generating actuator based on the turning operation input to the turning operation input device and the driving state of a tilting vehicle having steered front wheels detected by the driving state detection device, thereby controlling the tilt state of the vehicle body during turning and the centripetal force generated in the front steered wheels and rear wheels during turning.
[0033] In such an embodiment, the torque of the centripetal force generating actuator is controlled using the operation for turning the tilting vehicle having steered front wheels and the running state of the tilting vehicle having steered front wheels while turning, so that the centripetal force generated in the two front steered wheels and the rear wheels while turning can be more appropriately controlled.
[0034] The physical quantity related to the running state of the tilting vehicle having steered front wheels is not particularly limited as long as it is a physical quantity that contributes to detection of the running state of the tilting vehicle having steered front wheels.
[0035] The running condition detection device may detect any one of the following (1), (2), and (3) as a physical quantity related to the running condition of a tilting vehicle having steered front wheels. (1) Physical quantities related to the inclination angle of the vehicle body (2) Physical quantity related to the vehicle speed of a tilting vehicle with steered front wheels (3) Physical quantity related to lateral acceleration, which is the acceleration of the vehicle body in the left-right direction
[0036] The physical quantity related to the inclination angle of the vehicle body is not particularly limited as long as it is a physical quantity that contributes to the detection of the inclination angle of the vehicle body. The physical quantity related to the vehicle speed is not particularly limited as long as it is a physical quantity that contributes to the detection of the vehicle speed. The physical quantity related to the lateral acceleration is not particularly limited as long as it is a physical quantity that contributes to the detection of the lateral acceleration.
[0037] The running state detection device may be a lateral acceleration detection device. The lateral acceleration detection device detects a physical quantity related to the lateral acceleration, which is the acceleration of the vehicle body in the vehicle left-right direction. The physical quantity related to the lateral acceleration is not particularly limited as long as it contributes to the detection of the lateral acceleration, which is the acceleration of the vehicle body in the vehicle left-right direction. The lateral acceleration detection device may be, for example, a capacitance type, a piezo-resistance type, or a piezoelectric type. When the lateral acceleration detection device is a piezoelectric type, the physical quantity related to the lateral acceleration is a voltage generated when a force is applied to a piezoelectric body. The lateral acceleration detection device may be realized, for example, by an inertial measurement unit (IMU).
[0038] A control device provided in a tilting vehicle having steered front wheels and having the above-mentioned lateral acceleration detection device may control the torque of the centripetal force generating actuator based on the lateral acceleration detected by the lateral acceleration detection device when controlling the tilt actuator based on a turning operation input to the turning operation input device, thereby controlling the tilt state of the vehicle body during turning and the centripetal force generated in the front steered wheels and rear wheels during turning.
[0039] In such an embodiment, the torque of the centripetal force generating actuator is controlled using the lateral acceleration related to the inertial force generated during turning of a tilting vehicle having steered front wheels, thereby making it possible to more appropriately control the centripetal force generated in the front steered wheels and rear wheels during turning.
[0040] In the tilt vehicle with steered front wheels according to one embodiment of the present invention, a ground contact area and a ZMP position may be defined. The ground contact area is an area defined by a plurality of line segments connecting the positions where the front steering wheels and the rear wheels are in contact with the road surface. That is, when the tilt vehicle with steered front wheels is a three-wheeled vehicle, the ground contact area is a triangle when viewed from above or below the tilt vehicle with steered front wheels. When the tilt vehicle with steered front wheels is a four-wheeled vehicle, the ground contact area is a rectangle when viewed from above or below the tilt vehicle with steered front wheels. The ZMP position is a position where a virtual straight line that is parallel to the direction of the resultant force of gravity acting on the center of gravity of the tilt vehicle with steered front wheels and inertial force acting on the center of gravity of the tilt vehicle with steered front wheels intersects with the road surface.
[0041] A control device provided in a tilting vehicle having steered front wheels in one embodiment of the present invention may control the torque of a centripetal force generating actuator when controlling the tilt actuator based on a turning operation input to a turning operation input device so that the ZMP position is within the ground contact area, thereby controlling the tilt state of the vehicle body during turning and the centripetal force generated in the front steered wheels and rear wheels during turning.
[0042] In such an embodiment, the torque of the centripetal force generating actuator is controlled while taking into consideration the relationship between the ZMP position and the ground contact area, thereby making it possible to more appropriately control the centripetal force generated in the front steering wheels and rear wheels during cornering.
[0043] The tilting vehicle having steered front wheels according to an embodiment of the present invention may further include a lateral acceleration detection device or a longitudinal acceleration detection device. Here, the lateral acceleration detection device detects a physical quantity related to lateral acceleration, which is the acceleration of the vehicle body in the left-right direction of the vehicle. The longitudinal acceleration detection device detects a physical quantity related to longitudinal acceleration, which is the acceleration of the vehicle body in the front-rear direction of the vehicle.
[0044] The physical quantity related to the lateral acceleration is not particularly limited as long as it is a physical quantity that contributes to detection of the lateral acceleration, which is the acceleration of the vehicle body in the left-right direction of the vehicle. The lateral acceleration detection device may be, for example, a capacitance type, a piezo-resistance type, or a piezoelectric type. When the lateral acceleration detection device is a piezoelectric type, the physical quantity related to the lateral acceleration is a voltage generated when a force is applied to a piezoelectric body. The lateral acceleration detection device may be realized, for example, by an inertial measurement unit (IMU).
[0045] The physical quantity related to the longitudinal acceleration is not particularly limited as long as it is a physical quantity that contributes to detection of the longitudinal acceleration, which is the acceleration of the vehicle body in the longitudinal direction of the vehicle. The longitudinal acceleration detection device may be, for example, a capacitance type, a piezoresistance type, or a piezoelectric type. When the longitudinal acceleration detection device is a piezoelectric type, the physical quantity related to the longitudinal acceleration is a voltage generated when a force is applied to a piezoelectric body. The longitudinal acceleration detection device may be realized, for example, by an inertial measurement unit (IMU).
[0046] A control device provided in a tilting vehicle having steered front wheels in one embodiment of the present invention may control the torque of a centripetal force generating actuator based on the lateral acceleration detected by a lateral acceleration detection device or the longitudinal acceleration detected by a longitudinal acceleration detection device when controlling the tilting actuator based on a turning operation input to a turning operation input device so that the ZMP position is within the ground contact area, thereby controlling the tilt state of the vehicle body during turning and the centripetal force generated in the front steered wheels and rear wheels.
[0047] In such an embodiment, the torque of the centripetal force generating actuator is controlled using the lateral acceleration or longitudinal acceleration that is related to the inertial force acting on the center of gravity of a tilting vehicle having steered front wheels (i.e., that affects the ZMP position), so that the centripetal force generated in the front steered wheels and rear wheels during turning can be more appropriately controlled while taking into account the relationship between the ZMP position and the ground contact area.
[0048] A control device provided in a tilting vehicle having steered front wheels in one embodiment of the present invention may control the torque of the centripetal force generating actuator when the vehicle speed is changed during a turn while the turning operation input to the turning operation input device is in a constant state, so that the centripetal force generated at the front steered wheels and rear wheels changes without changing the tilt angle of the vehicle body, or the centripetal force generated at the front steered wheels and rear wheels does not change when the tilt angle of the vehicle body changes, when the vehicle speed is changed during a turn while the turning operation input to the turning operation input device is in a constant state.
[0049] A control device provided in a tilting vehicle having steered front wheels according to one embodiment of the present invention may control the torque of a centripetal force generating actuator when controlling the tilt actuator based on the turning operation inputted to the turning operation inputted in the case where the tilt angle of the vehicle body during turning corresponding to the turning operation inputted to the turning operation inputted in the turning operation inputted in the turning operation inputted in the turning operation inputted in the tilting vehicle is a predetermined limit tilt angle, so that the centripetal force generated in the front steered wheels and the rear wheels increases without changing the tilt angle of the vehicle body. The predetermined limit tilt angle is, for example, a maximum tilt angle when traveling at a certain vehicle speed. The predetermined limit tilt angle may change according to, for example, the vehicle speed of the tilting vehicle.
[0050] The tilt actuator provided in a tilting vehicle having steered front wheels according to one embodiment of the present invention may be a tilting rotating electric machine that rotates its output member in a first rotation direction to tilt the vehicle body to the left when the turning operation input to the turning operation input device is a turning operation for turning the vehicle to the left, and rotates its output member in a second rotation direction to tilt the vehicle body to the right when the turning operation input to the turning operation input device is a turning operation for turning the vehicle to the right.
[0051] The centripetal force generating actuator provided in a tilting vehicle having steered front wheels in one embodiment of the present invention is any one of the following (a), (b), (c), (a) and (b), (a) and (c), (b) and (c), or (a), (b) and (c). (a) A front steering wheel steering rotary electric motor that is mechanically connected to the front steering wheels and that rotates its output member in a third rotational direction to impart torque that oscillates the front steering wheels in a fifth rotational direction, and rotates its output member in a fourth rotational direction to impart torque that oscillates the front steering wheels in a sixth rotational direction. (b) A power unit that applies different torques to two wheels, consisting of the left and right front or rear wheels. (c) A brake unit that applies different torques to two wheels consisting of the left and right front or rear wheels.
[0052] The above and other objects, features, aspects and advantages of the present invention will become more apparent from the following detailed description of the embodiments of the present invention taken in conjunction with the accompanying drawings.
[0053] As used herein, the term "and / or" includes any and all combinations of one or more of the associated listed items.
[0054] As used herein, use of the terms "including," "comprising," or "having" and variations thereof identify the presence of stated features, steps, operations, elements, components, and / or equivalents thereof, but may include one or more of the steps, operations, elements, components, and / or groups thereof.
[0055] Unless otherwise defined, all terms (including technical and scientific terms) used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this invention belongs.
[0056] Terms, such as those defined in commonly used dictionaries, should be interpreted to have a meaning consistent with the meaning in the context of the relevant art and this disclosure, and should not be interpreted in an idealized or overly formal sense unless expressly defined herein.
[0057] In the description of the present invention, it is understood that a number of techniques and steps are disclosed. Each of these has separate advantages, and each can also be used with one or more, or in some cases all, of the other disclosed techniques. Thus, for the sake of clarity, this description will refrain from unnecessarily repeating all possible combinations of the individual steps. Nevertheless, the specification and claims should be read with the understanding that all such combinations are within the scope of the present invention and claims.
[0058] In the following description, for purposes of explanation, numerous specific details are set forth in order to provide a thorough understanding of the present invention. However, it will be apparent to one skilled in the art that the present invention may be practiced without these specific details. The present disclosure is to be considered as an example of the present invention and is not intended to limit the present invention to the specific embodiments illustrated in the following drawings or description. Effect of the Invention
[0059] According to the present invention, it is possible to further increase the robustness of a tilting vehicle having steered front wheels in terms of turning, by providing a turning operation input device configured so that the turning operation by the occupant is mechanically transmitted to prevent the front steering wheels from swinging. [Brief description of the drawings]
[0060] [Figure 1] FIG. 1 is a left side view of a tilting vehicle having steered front wheels according to an embodiment of the present invention, together with a block diagram of a control device provided on the tilting vehicle. [Diagram 2] 1 is a schematic diagram showing a schematic configuration of a suspension device and a steering mechanism provided in a tilting vehicle having steered front wheels according to an embodiment of the present invention. FIG. [Diagram 3] FIG. 2 is a conceptual diagram for explaining a ZMP position and a target ZMP position. [Figure 4] 5 is a flowchart showing a ZMP position control executed by a control device provided in a tilting vehicle having steered front wheels according to an embodiment of the present invention. [Diagram 5] FIG. 11 is a conceptual diagram showing a planar region and an inner region set in a tilting vehicle having steered front wheels according to a first modified example of an embodiment of the present invention, together with a ZMP position and a target ZMP position. [Figure 6] FIG. 11 is a left side view of an inclining vehicle having steered front wheels according to a second modified example of an embodiment of the present invention, together with a block diagram of a control device provided on the inclining vehicle. [Figure 7] FIG. 11 is a conceptual diagram showing a planar area and an inner area set in a tilting vehicle having steered front wheels according to a second modified embodiment of the present invention, together with a ZMP position, and showing a state in which the ZMP position has moved outside the inner area as the vehicle speed changes. [Figure 8] FIG. 11 is a left side view of a tilting vehicle having steered front wheels according to a third modified example of an embodiment of the present invention, together with a block diagram of a control device provided on the tilting vehicle. [Figure 9]11 is a flowchart showing a ZMP position control executed by a control device provided in a tilting vehicle having steered front wheels according to a third modified example of the embodiment of the present invention. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0061] Hereinafter, the details of a tilting vehicle having steered front wheels according to an embodiment of the present invention will be described with reference to the drawings. Note that the embodiment described below is merely an example. The present invention should not be interpreted in any way as being limited by the embodiment described below.
[0062] An inclining vehicle 10 as an inclining vehicle having steered front wheels according to an embodiment of the present invention will be described with reference to Fig. 1. Fig. 1 shows a left side view of the inclining vehicle 10 together with a block diagram of a control device 30 provided in the inclining vehicle 10.
[0063] In this specification, various directions in the tilting vehicle 10 are defined as follows:
[0064] The forward direction of the tilting vehicle 10 is defined as the vehicle forward direction F. The backward direction of the tilting vehicle 10 is defined as the vehicle backward direction B. The left direction of the tilting vehicle 10 is defined as the vehicle left direction L. The right direction of the tilting vehicle 10 is defined as the vehicle right direction R. The upward direction of the tilting vehicle 10 is defined as the vehicle upward direction U. The downward direction of the tilting vehicle 10 is defined as the vehicle downward direction D. The front-rear direction of the tilting vehicle 10 is defined as the vehicle front-rear direction FB. The left-right direction of the tilting vehicle 10 is defined as the vehicle left-right direction LR. The up-down direction of the tilting vehicle 10 is defined as the vehicle up-down direction UD. Note that the front-rear, up-down, left-right, and front-rear directions of the tilting vehicle 10 are those seen by a passenger seated in the seat 123 of the tilting vehicle 10.
[0065] In the tilting vehicle 10, the vehicle body 12 can tilt to the vehicle left direction L or the vehicle right direction R. When the vehicle body 12 is tilted to the vehicle left direction L or the vehicle right direction R, the up-down direction and the left-right direction of the vehicle body 12 do not match the up-down direction UD and the left-right direction LR of the tilting vehicle 10. On the other hand, the up-down direction and the left-right direction of the vehicle body 12 in the upright state match the up-down direction UD and the left-right direction LR of the tilting vehicle 10.
[0066] In the tilting vehicle 10, the forward direction of the vehicle body 12 is defined as the vehicle body forward direction f. The rearward direction of the vehicle body 12 is defined as the vehicle body rearward direction b. The leftward direction of the vehicle body 12 is defined as the vehicle body leftward direction l. The rightward direction of the vehicle body 12 is defined as the vehicle body rightward direction r. The upward direction of the vehicle body 12 is defined as the vehicle body upward direction u. The downward direction of the vehicle body 12 is defined as the vehicle body downward direction d. The fore-aft direction of the vehicle body 12 is defined as the vehicle body fore-aft direction fb. The left-right direction of the vehicle body 12 is defined as the vehicle body left-right direction lr. The up-down direction of the vehicle body 12 is defined as the vehicle body up-down direction ud.
[0067] Referring to FIG. 1, a tilting vehicle 10 includes a vehicle body 12, a plurality of wheels 14, a suspension device 16, a turning operation input device 18, a steering mechanism 22, a tilt angle detection device 24, a lateral acceleration detection device 26, and a control device 30.
[0068] The vehicle body 12 tilts in the vehicle left direction L when the tilting vehicle 10 turns in the vehicle left direction L, and tilts in the vehicle right direction R when the tilting vehicle 10 turns in the vehicle right direction R. The vehicle body 12 supports a plurality of wheels 14.
[0069] The vehicle body 12 includes a vehicle body frame 121, a vehicle body cover 122, and a seat 123. These will be described below.
[0070] The body frame 121 includes a head pipe 1211. The head pipe 1211 is provided at the front end of the body frame 121.
[0071] Here, the tilting vehicle 10 further includes a power unit 40. The power unit 40 includes a drive source such as an engine or an electric motor, a transmission, and the like. The drive source may be, for example, a hybrid type drive source having an engine and an electric motor. The power unit 40 is supported by the vehicle body frame 121.
[0072] The vehicle body cover 122 is attached to the vehicle body frame 121. The vehicle body cover 122 covers the vehicle body frame 121.
[0073] The seat 123 is supported by the body frame 121. The seat 123 is where a passenger of the tilting vehicle 10 sits.
[0074] The wheels 14 include two front steered wheels 14F and one rear wheel 14R, which will be described below.
[0075] The two front steered wheels 14F are arranged side by side in the vehicle left-right direction LR. That is, the two front steered wheels 14F are a pair of left and right wheels arranged side by side in the vehicle left-right direction LR. The two front steered wheels 14F include a left front steered wheel 14FL and a right front steered wheel 14FR. The two front steered wheels 14F are supported by a head pipe 1211 of the vehicle body 12 in a state in which they can swing about an axis CL1 extending in the vehicle body up-down direction ud.
[0076] The single rear wheel 14R is supported by the vehicle body 12. Specifically, the single rear wheel 14R is supported by a swing arm type suspension on the vehicle body frame 121. When supported by the vehicle body 12, the single rear wheel 14R does not swing about an axis extending in the vertical direction of the vehicle body.
[0077] A driving force of the power unit 40 is transmitted to one rear wheel 14R. This causes the one rear wheel 14R to rotate. As a result, the tilting vehicle 10 runs. That is, the driving wheel of the tilting vehicle 10 is the one rear wheel 14R.
[0078] The suspension device 16 supports the two front steered wheels 14F (i.e., a pair of left and right wheels) in a state in which they can be displaced in the vehicle body up-down direction ud with respect to the vehicle body 12. The suspension device 16 is disposed between a head pipe 1211 of the vehicle body frame 121 and the two front steered wheels 14F. In other words, the head pipe 1211 of the vehicle body frame 121 and the two front steered wheels 14F are connected via the suspension device 16. Details of the suspension device 16 will be described later.
[0079] The turning operation input device 18 accepts a turning operation, which is an operation for turning by the occupant. The turning operation input device 18 includes a handle bar 181 as an operated member that can be operated by the occupant. The handle bar 181 is operated by the occupant when turning the tilting vehicle 10. In other words, the handle bar 181 accepts a turning operation by the occupant.
[0080] The turning operation input device 18 is configured so that the turning operation by the occupant is mechanically transmitted so that the two front steered wheels 14F do not swing around the axis line CL1. Specifically, the handlebar 181 is not mechanically connected to the two front steered wheels 14F. In other words, no power is transmitted from the handlebar 181 to the two front steered wheels 14F.
[0081] The turning operation input device 18 further includes a turning operation detection device 182. The turning operation detection device 182 detects the operation direction and operation amount of the handlebar 181. The turning operation detection device 182 inputs the detected operation direction and operation amount of the handlebar 181 to the control device 30. The turning operation detection device 182 is not particularly limited as long as it can detect the operation direction and operation amount of the handlebar 181. The turning operation detection device 182 detects, for example, the operation direction and operation amount of the handlebar 181 in a non-contact manner. The turning operation detection device 182 is realized, for example, by an encoder or the like.
[0082] The suspension device 16 will be described with reference to Fig. 2. Fig. 2 is a schematic diagram showing the general configuration of the suspension device 16 and the steering mechanism 22.
[0083] The suspension device 16 functions as a lean device. The suspension device 16 includes a lean mechanism 161, a lean actuator 162, a left suspension 163L, and a right suspension 163R.
[0084] The lean mechanism 161 is a parallelogram link type lean mechanism. The lean mechanism 161 includes an upper arm 1611, a lower arm 1612, a left member 1613, and a right member 1614.
[0085] The upper arm 1611 and the lower arm 1612 are each supported by the body frame 121 in a state capable of rotating about a central axis of rotation extending in the vehicle front-rear direction fb. The upper arm 1611 and the lower arm 1612 are each rotatably connected to a head pipe 1211 of the body frame 121.
[0086] The left member 1613 is supported by the left end of each of the upper arm 1611 and the lower arm 1612 in a state in which it can rotate around a rotation central axis extending in the vehicle body front-rear direction fb. In other words, the left member 1613 is rotatably connected to a portion of each of the upper arm 1611 and the lower arm 1612 that is located to the left of the rotation central axis (the rotation central axis relative to the head pipe 1211). A left suspension 163L is connected to a lower end of the left member 1613 via a bracket. The left suspension 163L is extendable and contractable in the vehicle body up-down direction ud. A left front steering wheel 14FL is rotatably connected to the left suspension 163L.
[0087] The right member 1614 is supported by the right end of each of the upper arm 1611 and the lower arm 1612 in a state in which it can rotate around a rotation central axis extending in the vehicle body front-rear direction fb. In other words, the right member 1614 is rotatably connected to a portion of each of the upper arm 1611 and the lower arm 1612 that is located to the right of the rotation central axis (the rotation central axis relative to the head pipe 1211). A right suspension 163R is connected to a lower end of the right member 1614 via a bracket. The right suspension 163L is extendable and contractable in the vehicle body up-down direction ud. A right front steering wheel 14FR is rotatably connected to the right suspension 163R.
[0088] As described above, the left front steering wheel 14FL is rotatably connected to the upper arm 1611 and the lower arm 1612 at the left of their respective rotation central axes via the left member 1613 and the left suspension 163L. The right front steering wheel 14FR is rotatably connected to the upper arm 1611 and the lower arm 1612 at the right of their respective rotation central axes via the right member 1614 and the right suspension 163R. As a result, when the upper arm 1611 and the lower arm 1612 rotate around their respective rotation central axes, the relative positions of the left front steering wheel 14FL and the right front steering wheel 14FR in the vehicle vertical direction ud with respect to the vehicle frame 121 change. When the relative positions of the left front steering wheel 14FL and the right front steering wheel 14FR in the vehicle vertical direction ud with respect to the vehicle frame 121 change, the vehicle frame 121 tilts in the vehicle left-right direction LR. That is, by controlling the rotation of the upper arm 1611 and the lower arm 1612 relative to the body frame 121, the inclination (ie, the inclination angle) of the body frame 121 in the vehicle left direction L or the vehicle right direction R can be controlled.
[0089] The tilt actuator 162 rotates either the upper arm 1611 or the lower arm 1612 relative to the body frame 12 (more specifically, the head pipe 1211) in response to the turning operation input to the turning operation input device 18. The tilt actuator 162 is, for example, a tilt rotating electric machine. The tilt rotating electric machine is attached to, for example, the body frame 12. The tilt rotating electric machine is, for example, an electric motor capable of rotating an output member mechanically connected to either the upper arm 1611 or the lower arm 1612 in a forward and reverse direction. The output member is, for example, an output shaft provided on a rotor of the electric motor. The tilt actuator 162 is controlled, for example, by position control that controls the position of the output member of the tilt actuator 162.
[0090] When the output of the tilt actuator 162 is transmitted to either the upper arm 1611 or the lower arm 1612, either the upper arm 1611 or the lower arm 1612 rotates relative to the body frame 12 (more specifically, the head pipe 1211). This changes the relative positions of the left front steering wheel 14FL and the right front steering wheel 14FR in the vehicle up-down direction ud with respect to the body frame 121. As a result, the body frame 121 tilts in the vehicle left direction L or the vehicle right direction R. In other words, the body 12 tilts in the vehicle left direction L or the vehicle right direction R.
[0091] Specifically, when the turning operation input to the turning operation input device 18 is a turning operation for turning the tilting vehicle 10 in the vehicle left direction L, the tilt actuator 162 rotates either the upper arm 1611 or the lower arm 1612 in a first rotation direction relative to the body frame 12 (more specifically, the head pipe 1211). This changes the relative positions of the left front steering wheel 14FL and the right front steering wheel 14FR in the vehicle vertical direction ud with respect to the body frame 121, and the left front steering wheel 14FL is positioned above the right front steering wheel 14FR in the vehicle vertical direction ud. As a result, the body frame 121, i.e., the body 12, tilts in the vehicle left direction L.
[0092] Furthermore, when the turning operation input to the turning operation input device 18 is a turning operation for turning the tilting vehicle 10 in the vehicle right direction R, the tilt actuator 162 rotates either the upper arm 1611 or the lower arm 1612 in a second rotation direction (opposite to the first rotation direction) relative to the body frame 12 (more specifically, the head pipe 1211). This changes the relative positions of the left front steering wheel 14FL and the right front steering wheel 14FR in the vehicle vertical direction ud with respect to the body frame 121, and the right front steering wheel 14FR is positioned above the left front steering wheel 14FL in the vehicle vertical direction ud. As a result, the body frame 121, i.e., the body 12, tilts in the vehicle right direction R.
[0093] As is clear from the above description, when the turning operation input to the turning operation input device 18 is a turning operation for turning the tilting vehicle 10 in the vehicle left direction L, the tilt actuator 162, which is a tilting rotating electric machine, rotates its output member in a first rotation direction to tilt the vehicle body 12 in the vehicle left direction L. When the turning operation input to the turning operation input device 18 is a turning operation for turning the tilting vehicle 10 in the vehicle right direction R, the tilt actuator 162, which is a tilting rotating electric machine, rotates its output member in a second rotation direction to tilt the vehicle body 12 in the vehicle right direction R.
[0094] As is clear from the above description, the tilt actuator 162 tilts the two front steering wheels 14F together with the vehicle body 12 in the vehicle left direction L or vehicle right direction R. In addition, since the one rear wheel 14R is supported by the vehicle body frame 121, when the tilt actuator 162 tilts the two front steering wheels 14F together with the vehicle body 12 in the vehicle left direction L or vehicle right direction R, the one rear wheel 14R tilts together with the two front steering wheels 14 and the vehicle body 12 in the vehicle left direction L or vehicle right direction R. In other words, when the turning operation input to the turning operation input device 18 is a turning operation for turning the tilting vehicle 10 in the vehicle left direction L, the tilt actuator 162 tilts the vehicle body 12, the two front steering wheels 14, and the one rear wheel 14R in the vehicle left direction L. When the turning operation input to the turning operation input device 18 is a turning operation for turning the tilting vehicle 10 in the right direction R of the vehicle, the tilt actuator 162 tilts the vehicle body 12, the two front steering wheels 14, and the one rear wheel 14R in the right direction R of the vehicle.
[0095] The steering mechanism 22 will be described with reference to Fig. 1. The steering mechanism 22 applies torque about the axis CL1 to the two front steered wheels 14F. This causes the two front steered wheels 14F to swing about the axis CL1. The application of torque by the steering mechanism 22 to the two front steered wheels 14F is performed based on a turning operation input to the turning operation input device 18.
[0096] The steering mechanism 22 will be described with reference to Fig. 2. The steering mechanism 22 functions as a centripetal force generating device. The steering mechanism 22 includes a steering actuator 221, a steering shaft 222, and a tie rod 223.
[0097] The steering actuator 221 functions as a centripetal force generating actuator. The steering actuator 221 rotates the steering shaft 222 in response to the turning operation input to the turning operation input device 18. The steering actuator 221 rotates, for example, an output member mechanically connected to the steering shaft 222. The steering actuator 221 is, for example, a front steering wheel steering rotating electric machine. The front steering wheel steering rotating electric machine is, for example, an electric motor capable of rotating an output member mechanically connected to the steering shaft 222 in a forward direction and a reverse direction. The output member is, for example, an output shaft provided on a rotor of the electric motor. Torque control that controls the output torque of the steering actuator 221 is used to control the steering actuator 221.
[0098] The steering shaft 222 is disposed in a state where it is inserted into a head pipe 1211 of the body frame 121. The steering shaft 222 is rotatable relative to the head pipe 1211. The steering shaft 222 is not mechanically connected to the handlebar 181. In other words, the turning operation of the rider on the handlebar 181 is not mechanically transmitted to the steering shaft 222.
[0099] The tie rod 223 transmits the rotation of the steering shaft 222 to the two front steered wheels 14F. The center portion of the tie rod 223 is mechanically connected to the lower end portion of the steering shaft 222. The left end portion of the tie rod 223 is mechanically connected to the left suspension 163L. The right end portion of the tie rod 223 is mechanically connected to the right suspension 163R.
[0100] When the steering shaft 222 rotates, the tie rod 223 moves in the direction in which the steering shaft 222 rotates while maintaining its posture. At this time, the movement of the left end of the tie rod 222 is transmitted to the left front steering wheel 14FL via the left suspension 163L. This causes the left front steering wheel 14FL to swing around the axis line CL1. Similarly, the movement of the right end of the tie rod 222 is transmitted to the right front steering wheel 14FR via the right suspension 163R. This causes the right front steering wheel 14FR to swing around the axis line CL1.
[0101] The steering mechanism 22 imparts torque about the axis CL1 to the two front steered wheels 14F based on the turning operation input to the turning operation input device 18, causing the two front steered wheels 14F to swing about the axis CL1.
[0102] Specifically, when the turning operation input to the turning operation input device 18 is a turning operation for turning the tilting vehicle 10 in the vehicle left direction L, the steering actuator 221 rotates the steering shaft 222 in the third rotation direction. At this time, the tie rod 223 transmits the rotation of the steering shaft 222 to the two front steered wheels 14F. As a result, the two front steered wheels 14F rotate around the axis CL1. The direction in which the two front steered wheels 14F rotate is the fifth rotation direction. The fifth rotation direction is a direction for turning the tilting vehicle 10 in the vehicle left direction L.
[0103] Moreover, when the turning operation input to the turning operation input device 18 is a turning operation for turning the tilting vehicle 10 in the vehicle right direction R, the steering actuator 221 rotates the steering shaft 222 in a fourth rotation direction. Note that, when the third rotation direction is defined as the positive direction, the fourth rotation direction is the opposite direction (i.e., the reverse direction) to the positive direction. When the steering actuator 221 rotates the steering shaft 222 in the fourth rotation direction, the tie rod 223 transmits the rotation of the steering shaft 222 to the two front steering wheels 14F. As a result, the two front steering wheels 14F rotate around the axis CL1. The direction in which the two front steering wheels 14F rotate is a sixth rotation direction. The sixth rotation direction is a direction for turning the tilting vehicle 10 in the vehicle right direction R. Note that, when the fifth rotation direction is defined as the positive direction, the sixth rotation direction is the opposite direction (i.e., the reverse direction) to the positive direction.
[0104] As is clear from the above description, the steering actuator 221, which is a front steering wheel steering rotary electric machine, is mechanically connected to the two front steering wheels 14F so that its driving force is transmitted to the two front steering wheels 14F. The steering actuator 221, which is a front steering wheel steering rotary electric machine, rotates its output member in a third rotation direction to impart torque that swings the two front steering wheels 14 in a fifth rotation direction. The steering actuator 221, which is a front steering wheel steering rotary electric machine, rotates its output member in a fourth rotation direction to impart torque that swings the two front steering wheels 14 in a sixth rotation direction.
[0105] 1, an inclination angle detection device 24 serving as a driving condition detection device detects the inclination angle of the vehicle body 12. The inclination angle of the vehicle body 12 is the angle when the vehicle body 12 is inclined in the left-right direction LR of the vehicle from an upright state. The inclination angle detection device 24 inputs the detected inclination angle of the vehicle body 12 to the control device 30. The inclination angle detection device 24 may be realized by, for example, an encoder or the like, or may be realized by an inertial measurement unit (IMU).
[0106] The lateral acceleration detection device 26, which serves as a running condition detection device, detects a physical quantity related to lateral acceleration. The lateral acceleration is the acceleration of the vehicle body 12 in the left-right direction LR. The lateral acceleration detection device 26 inputs the detected lateral acceleration to the control device 30. The lateral acceleration detection device 26 may be realized, for example, by a general acceleration sensor or an inertial measurement unit (IMU).
[0107] The control device 30 controls the tilt actuator 201 and the steering actuator 221. In this embodiment, the control device 30 controls the tilt actuator 201 based on the turning operation input to the turning operation input device 18, while controlling the torque of the steering actuator 221 based on the turning operation input to the turning operation input device 18 and the running state of the tilt vehicle 10 detected by the running state detection device. Specifically, the control device 30 controls the position of the output member of the tilt actuator 201 based on the turning operation input to the turning operation input device 18, while controlling the torque of the steering actuator 221 based on the turning operation input to the turning operation input device 18, the tilt angle of the vehicle body 12 detected by the tilt angle detection device 24, and the lateral acceleration detected by the lateral acceleration detection device 26. More specifically, the control device 30 controls the position of the output member of the tilt actuator 201 based on the turning operation input to the turning operation input device 18 so that a ZMP position P1, which will be described later, is within a predetermined range, while controlling the torque of the steering actuator 221 based on the turning operation input to the turning operation input device 18, the tilt angle of the vehicle body 12 detected by the tilt angle detection device 24, and the lateral acceleration detected by the lateral acceleration detection device 26. In this way, the control device 30 controls the tilt state of the vehicle body 12 when the tilting vehicle 10 is turning, and the centripetal force generated in the two front steering wheels 14 and one rear wheel 14R when the tilting vehicle 10 is turning.
[0108] The control device 30 is, for example, an ECU (Electric Control Unit). The ECU is realized by a combination of, for example, an IC (Integrated Circuit), electronic components, a circuit board, and the like.
[0109] The control device 30 includes a turning operation instruction value acquisition unit 31, a steering actuator control unit 32, and a tilt actuator control unit 33. The turning operation instruction value acquisition unit 31, the steering actuator control unit 32, and the tilt actuator control unit 33 are realized, for example, by a CPU (Central Processing Unit) reading out a program stored in a non-volatile memory and executing a predetermined process in accordance with the program.
[0110] The turning operation instruction value acquisition unit 31 acquires a turning operation instruction value based on the operation direction and operation amount of the handlebar 181 input from the turning operation detection device 182 of the turning operation input device 18. The turning operation instruction value indicates the content of the turning operation by the occupant. The turning operation instruction value is an instruction value for controlling the tilt actuator 201 and the steering actuator 221 when the tilting vehicle 10 turns. The turning operation instruction value may include a plurality of types of instruction values. The turning operation instruction value includes a tilt instruction value indicating the tilt state of the vehicle body 12 when the tilting vehicle 10 is turning, and a steering instruction value indicating the turning direction and the turning amount when the tilting vehicle 10 is turning. The turning operation instruction value acquisition unit 31 includes a tilt instruction value acquisition unit 311 and a steering instruction value acquisition unit 312.
[0111] The tilt instruction value acquisition unit 311 acquires a tilt instruction value indicating the tilt state of the vehicle body 12 when the tilting vehicle 10 is turning, based on the input operation direction and operation amount of the handlebar 181. The tilt instruction value is an instruction value for controlling the tilt actuator 201 when the tilting vehicle 10 is turning. The tilt instruction value indicates, for example, the tilt angle of the vehicle body 12 when the tilting vehicle 10 is turning. The acquisition of the tilt instruction value by the tilt instruction value acquisition unit 311 may be realized, for example, by selecting and acquiring a tilt instruction value corresponding to the input operation direction and operation amount of the handlebar 181 using a reference table stored in a memory (not shown). An example of the reference table used when acquiring the tilt instruction value is shown in Table 1. The reference table used when acquiring the tilt instruction value may be changed, for example, depending on the vehicle speed of the tilting vehicle 10. The reference table used when acquiring the tilt instruction value may be changed, for example, depending on the relationship between the turning operation instruction value acquired by the turning operation instruction value acquisition unit 31 and a predetermined reference instruction value. The tilt instruction value acquisition unit 311 may acquire the tilt instruction value by, for example, calculation.
[0112] [Table 1]
[0113] The steering command value acquisition unit 312 acquires a steering command value indicating a turning direction and a turning amount when the tilting vehicle 10 is turning, based on the input operation direction and operation amount of the handlebar 181. The steering command value is an instruction value for controlling the steering actuator 221 when the tilting vehicle 10 turns. The steering command value includes, for example, a torque command value indicating an output torque of the steering actuator 221. The acquisition of the steering command value by the steering command value acquisition unit 312 is realized, for example, by selecting and acquiring a steering command value corresponding to the input operation direction and operation amount of the handlebar 181 using a reference table stored in a memory (not shown). The reference table used in acquiring the steering command value may be changed, for example, according to the vehicle speed of the tilting vehicle 10. The reference table used in acquiring the steering command value may be changed, for example, according to the relationship between the turning operation command value acquired by the turning operation command value acquisition unit 31 and a predetermined reference command value. The acquisition of the steering command value by the steering command value acquisition unit 312 may be realized, for example, by calculation.
[0114] The steering command value acquisition unit 312 includes a turning operation command value determination unit 3121 and a steering actuator output torque calculation unit 3122. These will be described below.
[0115] The turning operation instruction value determination unit 3121 determines whether or not the turning operation instruction value acquired by the turning operation instruction value acquisition unit 31 is greater than a predetermined reference instruction value. Here, the predetermined reference instruction value indicates a criterion for determining whether or not the steering actuator 221 generates additional centripetal forces on the two front steering wheels 14F and one rear wheel 14R during turning of the tilting vehicle 10. The predetermined reference instruction value is stored in, for example, a memory (not shown).
[0116] When the turning operation instruction value acquired by the turning operation instruction value acquisition unit 31 is greater than a predetermined reference instruction value, the tilt angle of the vehicle body 12 is limited to a certain tilt angle. This tilt angle is set as the limited tilt angle. The limited tilt angle is, for example, the maximum tilt angle when traveling at a certain vehicle speed. The limited tilt angle may change depending on, for example, the vehicle speed of the tilting vehicle.
[0117] The steering actuator output torque calculation unit 3122 includes a target ZMP position setting unit 312A and a ZMP position calculation unit 312B. These will be described below.
[0118] The target ZMP position setting unit 312A sets a target ZMP position as a target ZMP position according to the relationship between the turning operation instruction value acquired by the turning operation instruction value acquisition unit 31 and a predetermined reference instruction value. The target ZMP position setting unit 312A may set a ZMP position acquired using a reference table as the target ZMP position, for example. An example of the reference table is shown in Table 2. The target ZMP position setting unit 312A may use a plurality of reference tables according to the relationship between the turning operation instruction value acquired by the turning operation instruction value acquisition unit 31 and a predetermined reference instruction value. The target ZMP position setting unit 312 may set a ZMP position acquired by calculation as the target ZMP position. The target ZMP position setting unit 312A may set the target ZMP position to a predetermined reference position according to the relationship between the turning operation instruction value acquired by the turning operation instruction value acquisition unit 31 and a predetermined reference instruction value, for example.
[0119] [Table 2]
[0120] The ZMP position P1 and the target ZMP position P2 will be described with reference to Fig. 3. Fig. 3 is a conceptual diagram for explaining the ZMP position P1 and the target ZMP position P2.
[0121] The ZMP position P1 is a position where the imaginary line VL1 intersects with the road surface Rs. The imaginary line VL1 is a line that is parallel to the direction of the resultant force Fr of the gravity Fg acting on the center of gravity G of the tilting vehicle 10 and the inertial force Fi acting on the center of gravity G of the tilting vehicle 10 and passes through the center of gravity G of the tilting vehicle 10.
[0122] The ZMP position P1 exists at a predetermined reference position P0 when the turning operation by the occupant does not generate an additional centripetal force Fc2. In other words, the ZMP position P1 does not move even if the tilt angle of the vehicle body 12 changes when the turning operation by the occupant does not generate an additional centripetal force Fc2. In other words, the ZMP position P1 does not move according to the magnitude and direction of the inertial force Fi when the turning operation by the occupant does not generate an additional centripetal force Fc2. The predetermined reference position P0 is, for example, the position where the virtual straight line VL1 intersects with the road surface Rs when the vehicle body 12 of the tilting vehicle 10 is in an upright state.
[0123] Here, the additional centripetal force Fc2 is generated by the steering actuator 221. In this embodiment, the additional centripetal force Fc2 is generated by the steering actuator 221 further increasing the steering angle of the two front steered wheels 14F while the tilting vehicle 10 is turning. The magnitude of the additional centripetal force Fc2 is adjusted by the steering actuator 221 changing the steering angle of the two front steered wheels 14F while the tilting vehicle 10 is turning.
[0124] The additional centripetal force Fc2 is a centripetal force acting in the same direction as the centripetal force Fc1 generated in the two front steered wheels 14F and one rear wheel 14R accompanying the turning of the tilting vehicle 10. In other words, the additional centripetal force Fc2 increases the centripetal force Fc generated in the two front steered wheels 14F and one rear wheel 14R during the turning of the tilting vehicle 10.
[0125] The centripetal force Fc1 generated in the two front steered wheels 14F and one rear wheel 14R as the tilting vehicle 10 turns contributes to the generation of an inertial force Fi1, which will be described later. The magnitude and direction of the centripetal force Fc1 generated in the two front steered wheels 14F and one rear wheel 14R as the tilting vehicle 10 turns depends on the tilt angle of the vehicle body 12.
[0126] The additional centripetal force Fc2 contributes to the generation of an additional inertial force Fi2. The additional inertial force Fi2 is an inertial force acting in the same direction as the inertial force Fi1 generated with the turning of the tilting vehicle 10. In other words, the additional inertial force Fi2 increases the inertial force Fi acting on the center of gravity G of the turning tilting vehicle 10. The inertial force Fi1 generated with the turning of the tilting vehicle 10 is defined based on the relationship between the gravity Fg acting on the center of gravity G of the turning tilting vehicle 10 and the tilt angle of the vehicle body 12.
[0127] The ZMP position P1 is located at a position away from the predetermined reference position P0 when the turning operation by the occupant generates the additional centripetal force Fc2. That is, the ZMP position P1 moves according to the magnitude and direction of the inertial force Fi when the turning operation by the occupant generates the additional centripetal force Fc2. In other words, the ZMP position P1 moves according to the magnitude and direction of the lateral acceleration related to the inertial force Fi when the turning operation by the occupant generates the additional centripetal force Fc2. In short, the ZMP position P1 moves according to the content of the turning operation by the occupant when the turning operation by the occupant generates the additional centripetal force Fc2.
[0128] The target ZMP position P2 indicates a destination position of the ZMP position P1 when the ZMP position P1 moves in accordance with a turning operation by the occupant. The target ZMP position P2 is set according to the type of turning operation by the occupant.
[0129] In order to move the ZMP position P1 to the target ZMP position P2, it is necessary to change the inertial force Fi. Examples of cases in which the ZMP position P1 is moved to the target ZMP position P2 include the following cases (A), (B), and (C). (A) When an additional centripetal force Fc2 is generated based on a turning operation by the occupant (B) Increasing the additional centripetal force Fc2 generated by the turning operation by the occupant (C) To reduce the additional centripetal force Fc2 generated by the turning operation by the occupant
[0130] In the above cases (A) and (B), the ZMP position P1 moves in a direction away from the predetermined reference position P0. In other words, when an additional centripetal force Fc2 is newly generated or when an already generated additional centripetal force Fc2 is increased, the ZMP position P1 moves in a direction away from the predetermined reference position P0.
[0131] In the above case (C), the ZMP position P1 moves in a direction approaching the predetermined reference position P0. In other words, when the additional centripetal force Fc2 that is already generated is reduced, the ZMP position P1 moves in a direction approaching the predetermined reference position P0.
[0132] As an example of the case where the ZMP position P1 is moved to the target ZMP position P2, the above case (A) is considered as shown in Fig. 3. In this case, in order to move the ZMP position P1 to the target ZMP position P2, it is necessary to increase the inertial force Fi. Specifically, it is necessary to add an additional inertial force Fi2 acting in the same direction as the inertial force Fi1 to the inertial force Fi1 generated with the turning of the tilting vehicle 10.
[0133] In order to increase the inertial force Fi, it is necessary to increase the centripetal force Fc generated in the two front steering wheels 14F and one rear wheel 14R during the turning of the tilting vehicle 10. Specifically, it is necessary to add an additional centripetal force Fc2 acting in the same direction as the centripetal force Fc1 to the centripetal force Fc1 generated with the turning of the tilting vehicle 10.
[0134] In order to generate such an additional centripetal force Fc2, the steering actuator 221 is controlled. Specifically, the steering actuator 221 is controlled so as to further increase the steering angle of the two front steered wheels 14F while the tilting vehicle 10 is turning.
[0135] The target ZMP position setting unit 312A sets the target ZMP position P2 so that the ZMP position P1 is within a predetermined range even if the ZMP position P1 moves in accordance with a turning operation by the occupant. In this embodiment, the ZMP position P1 and the target ZMP position P2 can be expressed, for example, by coordinates on a straight line extending in the left-right direction LR of the vehicle.
[0136] When the ZMP position P1 and the target ZMP position P2 are expressed by coordinates on a line extending in the vehicle left-right direction LR, the target ZMP position P2 is set within a predetermined range on the line extending in the vehicle left-right direction LR. The line extending in the vehicle left-right direction LR on which the target ZMP position P2 is set passes through the center of gravity G of the tilting vehicle 10, for example, when viewed in the vehicle upward direction U or vehicle downward direction D. The left end of the line extending in the vehicle left-right direction LR on which the target ZMP position P2 is set is located on a line passing through a position where the left front steering wheel 14FL contacts the road surface Rs and a position where the rear wheel 14R contacts the road surface Rs, for example, when viewed in the vehicle upward direction U or vehicle downward direction D. The right end of the straight line extending in the vehicle left-right direction LR and on which the target ZMP position P2 is set is located, for example, on a straight line passing through the position where the right front steering wheel 14FR contacts the road surface Rs and the position where the rear wheel 14R contacts the road surface Rs when viewed in the vehicle upward direction U or the vehicle downward direction D.
[0137] 1, the ZMP position calculation unit 312B calculates a current ZMP position based on the inclination angle of the vehicle body 12 input from the inclination angle detection device 24 and the lateral acceleration input from the lateral acceleration detection device 26. The calculation of the current ZMP position may be realized by, for example, calculation using the inclination angle of the vehicle body 12 input from the inclination angle detection device 24 and the lateral acceleration input from the lateral acceleration detection device 26. The calculation of the current ZMP position may be realized by, for example, selecting and acquiring a ZMP position corresponding to a combination of the inclination angle of the vehicle body 12 input from the inclination angle detection device 24 and the lateral acceleration input from the lateral acceleration detection device 26 using a reference table stored in a memory (not shown).
[0138] The steering actuator output torque calculation unit 3122 calculates the torque output by the steering actuator 221 based on the difference between the target ZMP position set by the target ZMP position setting unit 312A and the current ZMP position calculated by the ZMP position calculation unit 312B. In the example shown in Fig. 3, the steering actuator output torque calculation unit 3122 calculates the output torque of the steering actuator 221 to generate a centripetal force Fc2 corresponding to the difference between the target ZMP position P2 set by the target ZMP position setting unit 312A and the ZMP position P1 (ZMP position P1 existing at a predetermined reference position P0), which is the current ZMP position calculated by the ZMP position calculation unit 312B. The calculation of the torque output by the steering actuator 221 may be realized by calculation using, for example, the target ZMP position set by the target ZMP position setting unit 312A and the current ZMP position calculated by the ZMP position calculation unit 312B. The calculation of the torque output by the steering actuator 221 may be realized, for example, by using a reference table stored in a memory not shown, to select a torque corresponding to the difference between the target ZMP position set by the target ZMP position setting unit 312A and the current ZMP position calculated by the ZMP position calculation unit 312B.
[0139] 1, the steering actuator control unit 32 controls the steering actuator 221 based on the output torque of the steering actuator 221 calculated by the steering actuator output torque calculation unit 3122. In the example shown in Fig. 3, the output torque of the steering actuator 221 is calculated to generate a centripetal force Fc2 corresponding to the difference between the target ZMP position P2 set by the target ZMP position setting unit 312A and the ZMP position P1 (ZMP position P1 existing at a predetermined reference position P0) which is the current ZMP position calculated by the ZMP position calculation unit 312B, and the steering actuator control unit 32 controls the steering actuator 221 based on the output torque.
[0140] With reference to FIG. 1, tilt actuator control unit 33 controls tilt actuator 201 based on the tilt instruction value acquired by tilt instruction value acquisition unit 311 .
[0141] Next, the ZMP position control executed by the control device 30 will be described with reference to Fig. 4. Fig. 4 is a flowchart showing the ZMP position control executed by the control device 30. The ZMP position control is executed at predetermined intervals while the tilting vehicle 10 is traveling, for example.
[0142] First, in step S11, the control device 30 acquires a turning operation command value based on the content of the turning operation by the rider. Specifically, the turning operation command value acquisition unit 31 acquires the turning operation command value based on the operation direction and operation amount of the handlebar 181 detected by the turning operation detection device 182.
[0143] Next, in step S12, the control device 30 acquires a tilt command value from the turning operation command value acquired in step S11, and controls the tilt actuator 201 based on the acquired tilt command value. Specifically, the tilt actuator control unit 36 acquires a tilt command value from the turning operation command value acquired in step S11, and controls the tilt actuator 201 based on the acquired tilt command value. As a result, the body 12, the two front steering wheels 14, and the one rear wheel 14R tilt in the same direction at the same tilt angle according to the operation direction and operation amount of the handlebar 181. Note that, when the turning operation command value acquired by the turning operation command value acquisition unit 31 is equal to or greater than a predetermined reference command value, a tilt command value is acquired that limits the tilt angle of the body 12 to a predetermined limited tilt angle.
[0144] Next, in step S13, the control device 30 determines whether the turning operation instruction value acquired in step S11 is equal to or greater than a predetermined reference instruction value. Specifically, the turning operation instruction value determination unit 3121 determines whether the turning operation instruction value acquired in step S11 is equal to or greater than a predetermined reference instruction value.
[0145] If the turning operation instruction value is equal to or greater than the predetermined reference instruction value (step S13: YES), in step S14, the control device 30 sets a target ZMP position according to the turning operation instruction value acquired in step S11. Specifically, the target ZMP position setting unit 312A sets a target ZMP position according to the turning operation instruction value acquired in step S11.
[0146] Next, in step S15, the control device 30 calculates the current ZMP position based on the inclination angle of the vehicle body 12 input from the inclination angle detection device 24 and the lateral acceleration input from the lateral acceleration detection device 26. Specifically, the ZMP position calculation unit 312B calculates the current ZMP position based on the inclination angle of the vehicle body 12 input from the inclination angle detection device 24 and the lateral acceleration input from the lateral acceleration detection device 26.
[0147] Next, in step S16, the control device 30 calculates the output torque of the steering actuator 221 based on the difference between the target ZMP position set in step S14 or step S19 described later and the current ZMP position calculated in step S15. Specifically, the steering actuator output torque calculation unit 3122 calculates the output torque of the steering actuator 221 based on the difference between the target ZMP position set in step S14 or step S19 described later and the current ZMP position calculated in step S15.
[0148] Next, in step S17, the control device 30 controls the steering actuator 221 based on the output torque of the steering actuator 221 calculated in step S16. Specifically, the steering actuator control section 32 controls the steering actuator 221 based on the output torque of the steering actuator 221 calculated in step S16. Thereafter, the control device 30 ends the ZMP position control.
[0149] Here, the processes in steps S16 and S17 will be described in more detail with reference to FIG.
[0150] In Fig. 3, the ZMP position P1 is set as the current ZMP position. Based on the difference between the target ZMP position P2 and the ZMP position P1 (current ZMP position), the output torque of the steering actuator 221 is calculated. In the example shown in Fig. 3, the output torque of the steering actuator 221 required to generate an additional centripetal force Fc2 is calculated. The output torque of the steering actuator 221 required to generate the additional centripetal force Fc2 is an output torque for the steering actuator 221 to further increase the steering angle of the two front steered wheels 14F while the tilting vehicle 10 is turning. Based on such output torque, the steering actuator 221 is controlled.
[0151] The output torque of the steering actuator 221 required to generate the additional centripetal force Fc2 is calculated, for example, when the tilt angle of the vehicle body 12 during turning corresponding to the turning operation input to the turning operation input device 18 is a predetermined limited tilt angle. In this embodiment, the output torque of the steering actuator 221 required to generate the additional centripetal force Fc2 is calculated when the turning operation instruction value acquired by the turning operation instruction value acquisition unit 31 is equal to or greater than a predetermined reference instruction value.
[0152] When the tilt angle of the vehicle body 121 during turning corresponding to the turning operation inputted to the turning operation input device 18 is a predetermined limited tilt angle, that is, when the turning operation instruction value acquired by the operation instruction value acquisition unit 31 is equal to or greater than a predetermined reference instruction value, the control device 30 controls the steering actuator 221 so as to generate an additional centripetal force Fc2. At this time, the control device 30 does not change the tilt angle of the vehicle body 12. In other words, while controlling the tilting vehicle 201 based on the turning operation inputted to the turning operation input device 18, the control device 30 controls the output torque of the steering actuator 221 functioning as a centripetal force generating actuator so as to increase the centripetal force generated in the two front steering wheels 14F and one rear wheel 14R without changing the tilt angle of the vehicle body 12.
[0153] 4, when the turning operation command value is smaller than a predetermined reference command value (step S13: NO), the control device 30 calculates a current ZMP position in step S18. Specifically, a predetermined reference position P0 is calculated as the current ZMP position. Next, the control device 30 sets a target ZMP position to the current ZMP position in step S19. Specifically, the target ZMP position setting unit 312A sets the target ZMP position to the predetermined reference position P0, which is the current ZMP position. Thereafter, the control device 30 executes the processes in and after step S16.
[0154] Such a tilting vehicle 10 can further improve robustness against turning for the following reasons.
[0155] The turning operation input device 18 provided in the tilting vehicle 10 is configured so that the turning operation by the occupant is mechanically transmitted so that the two front steering wheels 14F do not swing. Therefore, it is preferable that the tilting vehicle 10 has higher robustness against turning.
[0156] Here, the tilting vehicle 10 includes a steering mechanism 22 that functions as a centripetal force generating device. The steering mechanism 22 that functions as a centripetal force generating device includes a steering actuator 221 that functions as a centripetal force generating actuator. The steering actuator 221 that functions as a centripetal force generating actuator generates an additional centripetal force Fc2 (see FIG. 3) on the two front steering wheels 14F and one rear wheel 14R that are tilted during turning by controlling the torque to be output.
[0157] In addition, the control device 30 provided in the tilting vehicle 10 controls the torque of the steering actuator 221 when controlling the tilt actuator 201 based on the turning operation input to the turning operation input device 18, thereby controlling the tilt state of the vehicle body 12 during turning and the centripetal force generated in the two front steering wheels 14F and one rear wheel 14R during turning.
[0158] This allows the turning of the tilting vehicle 10 to be controlled by both the control of the tilt state of the vehicle body 12 during turning by the tilt actuator 201 that tilts the vehicle body 12 based on the turning operation, and the control of the centripetal force by the steering actuator 221 that functions as a centripetal force generating actuator that generates an additional centripetal force Fc2 (see FIG. 3) on the two front steering wheels 14F and one rear wheel 14R that are tilted during turning. Therefore, it is possible to further improve the robustness of the turning of the tilting vehicle 10 that is provided with the turning operation input device 18 that is configured so that the turning operation by the occupant is mechanically transmitted to prevent the two front steering wheels 14F from swinging.
[0159] In addition, the control device 30 provided in the tilting vehicle 10 controls the torque of the steering actuator 221 when controlling the tilt actuator 201 based on the turning operation inputted to the turning operation input device 18. Therefore, for example, it is possible to control the torque of the steering actuator 221 while controlling the tilt actuator 201 so as to maintain the tilt angle of the vehicle body 12 according to the turning operation inputted to the turning operation input device 18.
[0160] Furthermore, the centripetal force generated in the two front steering wheels 14F and one rear wheel 14R tilted by the control of the tilt actuator 201 based on the turning operation is controlled by controlling the torque of the steering actuator 221 functioning as a centripetal force generating actuator. This makes it easier to control the centripetal force when the tilt state of the vehicle body 12 is controlled by the tilt actuator 201 based on the turning operation. Specifically, compared to the case where the position of the output member of the steering actuator 221 is controlled, it is not necessary to refer to the position of the output member of the steering actuator 221, so that the control of the steering actuator 221 becomes easier. Therefore, it is possible to further improve the robustness against turning of the tilting vehicle 10 equipped with the turning operation input device 18 configured so that the turning operation by the occupant is mechanically transmitted so that the two front steering wheels 14F do not swing.
[0161] The control device 30 provided in the tilting vehicle 10 controls the tilt actuator 201 based on the turning operation inputted to the turning operation input device 18, while controlling the torque of the steering actuator 221 functioning as a centripetal force generating actuator based on the turning operation inputted to the turning operation input device 18, thereby controlling the tilt state of the vehicle body 12 during turning and the centripetal force generated in the two front steering wheels 14F and one rear wheel 14R during turning.
[0162] Since the torque of the steering actuator 221 functioning as a centripetal force generating actuator is controlled using an operation for turning the tilting vehicle 10, the centripetal force generated in the two front steering wheels 14F and one rear wheel 14R during turning can be more appropriately controlled.
[0163] The control device 30 provided in the tilting vehicle 10 controls the tilt actuator 201 based on the turning operation input to the turning operation input device 18, while controlling the torque of the steering actuator 221 functioning as a centripetal force generating actuator based on the turning operation input to the turning operation input device 18 and the running state of the tilting vehicle 10 detected by the running state detection device, thereby controlling the tilt state of the vehicle body 12 during turning and the centripetal force generated in the two front steering wheels 14F and one rear wheel 14R during turning.
[0164] Since the torque of the steering actuator 221 functioning as a centripetal force generating actuator is controlled using the running state of the tilting vehicle 10 during turning, the centripetal force generated in the two front steering wheels 14F and one rear wheel 14R during turning can be more appropriately controlled.
[0165] The control device 30 provided in the tilting vehicle 10 controls the tilt actuator 201 based on the turning operation input to the turning operation input device 18, while controlling the torque of the steering actuator 221 functioning as a centripetal force generating actuator based on the turning operation input to the turning operation input device 18, the tilt angle of the vehicle body 12 detected by the tilt angle detection device 24, and the lateral acceleration detected by the lateral acceleration detection device 26, thereby controlling the tilt state of the vehicle body 12 during turning and the centripetal force generated in the two front steering wheels 14F and one rear wheel 14R during turning.
[0166] Since the torque of the steering actuator 221 functioning as a centripetal force generating actuator is controlled using the tilt angle of the body 12 when the tilting vehicle 10 is turning, the centripetal force generated in the two front steering wheels 14F and one rear wheel 14R during turning can be more appropriately controlled.
[0167] Since the torque of the steering actuator 221 functioning as a centripetal force generating actuator is controlled using the lateral acceleration related to the inertial force generated during turning of the tilting vehicle 10, the centripetal force generated in the two front steering wheels 14F and one rear wheel 14R during turning can be more appropriately controlled.
[0168] (Variation 1) In the above embodiment, the ZMP position P1 and the target ZMP position P2 are each present on a straight line extending in the vehicle left-right direction LR. That is, in the above embodiment, the ZMP position P1 and the target ZMP position P2 are each represented as one-dimensional positions. However, the ZMP position P1 and the target ZMP position P2 may each be represented as two-dimensional positions.
[0169] In this modification, the ZMP position P1 and the target ZMP position P2 are each expressed as a two-dimensional position. The target ZMP position P2 is set so as to exist within a predetermined planar region.
[0170] The planar region S1 in which the target ZMP position P2 exists will be described with reference to Fig. 5. Fig. 5 is a plan view showing the planar region S1 in which the target ZMP position P2 exists.
[0171] The planar area S1 is a contact area defined by a plurality of line segments SL1, SL2, and SL3 that connect the positions where the two front steered wheels 14F and one rear wheel 14R contact the road surface. Here, the line segment SL1 is a line segment that connects the position CP1 where the left front steered wheel 14FL contacts the road surface and the position CP2 where the rear wheel 14R contacts the road surface. The line segment SL2 is a line segment that connects the position CP3 where the right front steered wheel 14FR contacts the road surface and the position CP2 where the rear wheel 14R contacts the road surface. The line segment SL3 is a line segment that connects the position CP1 where the left front steered wheel 14FL contacts the road surface and the position CP3 where the right front steered wheel 14FR contacts the road surface. In other words, the planar area S1 defined by the plurality of line segments SL1, SL2, and SL3 has a triangular shape when viewed in the vehicle upward direction U or the vehicle downward direction D. Positions CP1, CP2, and CP3 are positions that correspond to the centers of the areas of the wheels that contact the road surface. In other words, positions CP1, CP2, and CP3 are positions that correspond to the centers of the wheels in the front-rear direction UD and the left-right direction LR when viewed in the vehicle upward direction U or vehicle downward direction D, respectively.
[0172] The planar region S1 includes an inner region S2. The inner region S2 has a triangular shape that is slightly smaller than the planar region S1 when viewed in the vehicle upward direction U or the vehicle downward direction D. In other words, the inner region S2 and the planar region S1 are similar to each other.
[0173] The inner region S2 is defined by a number of line segments SL4, SL5, and SL6. The line segment SL4 is located within the planar region S1 and is parallel to the line segment SL1. The line segment SL5 is located within the planar region S1 and is parallel to the line segment SL2. The line segment SL6 is located within the planar region S1 and is parallel to the line segment SL3. The angle between the line segment SL4 and the line segment SL5 is the same as the angle between the line segment SL1 and the line segment SL2. The angle between the line segment SL5 and the line segment SL6 is the same as the angle between the line segment SL2 and the line segment SL3. The angle between the line segment SL6 and the line segment SL4 is the same as the angle between the line segment SL3 and the line segment SL1.
[0174] The target ZMP position P2 is set within the planar region S1. The target ZMP position P2 is preferably set within the inner region S2.
[0175] In the tilting vehicle according to the first modification, the target ZMP position setting unit 312A sets the target ZMP position P2 so that the target ZMP position P2 is within the inner region S2. Note that data relating to the planar region S1 and the inner region S2 is stored in, for example, a memory (not shown).
[0176] In such a tilting vehicle according to the first modification, the control device controls the position of the output member of the tilt actuator 201 based on the turning operation input to the turning operation input device 18 so that the ZMP position P1 is within the inner region S2, while controlling the torque of the steering actuator 221 based on the turning operation input to the turning operation input device 18, the tilt angle of the vehicle body 12 detected by the tilt angle detection device 24, and the lateral acceleration detected by the lateral acceleration detection device 26. Therefore, robustness against turning can be further improved.
[0177] (Variation 2) An inclining vehicle 10B according to a second modified example of the embodiment of the present invention will be described with reference to Fig. 6. Fig. 6 is a diagram showing a left side view of the inclining vehicle 10B together with a block diagram of a control device 30B provided in the inclining vehicle 10B.
[0178] The tilting vehicle 10B further includes a longitudinal acceleration detection device 28 as a traveling state detection device, in comparison with the tilting vehicle 10. The longitudinal acceleration detection device 28 detects a physical quantity related to longitudinal acceleration, which is the acceleration of the vehicle body 12 in the longitudinal direction of the vehicle. The longitudinal acceleration detection device 28 inputs the detected longitudinal acceleration to the control device 30B. The longitudinal acceleration detection device 28 may be realized, for example, by a general acceleration sensor or an inertial measurement unit (IMU).
[0179] In the tilting vehicle 10B, the ZMP position P1 and the target ZMP position P2 are each expressed as a two-dimensional position, similar to the modified example 1. The target ZMP position P2 is set to be present within a predetermined planar area, similar to the modified example 1.
[0180] In the tilting vehicle 10B, similarly to the modified example 1, a planar area S1 and an inner area S2 are set as shown in Fig. 5. The target ZMP position P2 is set within the planar area S1 as shown in Fig. 5. The target ZMP position P2 is preferably set within the inner area S2 as shown in Fig. 5.
[0181] The tilting vehicle 10B is different from the tilting vehicle 10 in that it includes a control device 30B instead of the control device 30. The control device 30B controls the tilt actuator 201 based on the turning operation input to the turning operation input device 18 so that the ZMP position P1 is within the inner area S2, while controlling the torque of the steering actuator 221 based on the turning operation input to the turning operation input device 18, the tilt angle of the vehicle body 12 detected by the tilt angle detection device 24, the lateral acceleration detected by the lateral acceleration detection device 26, and the longitudinal acceleration detected by the longitudinal acceleration detection device 28, thereby controlling the tilt state of the vehicle body 12 during turning and the centripetal force generated in the two front steering wheels 14F and one rear wheel 14R during turning.
[0182] In the tilting vehicle 10B, the target ZMP position setting unit 312A sets the target ZMP position P2 so that the target ZMP position P2 is within the inner region S2. Note that data regarding the planar region S1 and the inner region S2 is stored in, for example, a memory (not shown).
[0183] In the tilting vehicle 10B, the ZMP position calculation unit 312B calculates a current ZMP position based on the tilt angle of the vehicle body 12 input from the tilt angle detection device 24, the lateral acceleration input from the lateral acceleration detection device 26, and the longitudinal acceleration input from the longitudinal acceleration detection device 28. The calculation of the current ZMP position is realized, for example, by using a reference table stored in a memory (not shown) to select and acquire a ZMP position corresponding to a combination of the tilt angle of the vehicle body 12 input from the tilt angle detection device 24, the lateral acceleration input from the lateral acceleration detection device 26, and the longitudinal acceleration input from the longitudinal acceleration detection device 28. The calculation of the current ZMP position may be realized, for example, by calculation using the tilt angle of the vehicle body 12 input from the tilt angle detection device 24, the lateral acceleration input from the lateral acceleration detection device 26, and the longitudinal acceleration input from the longitudinal acceleration detection device 28.
[0184] Next, the ZMP position control executed by the control device 30B will be described. The ZMP position control executed by the control device 30B is different from the ZMP position control executed by the control device 30 (see FIG. 4) in the process of step S15. Specifically, in step S15 of the ZMP position control executed by the control device 30, the current ZMP position is calculated based on the inclination angle of the vehicle body 12 input from the inclination angle detection device 24 and the lateral acceleration input from the lateral acceleration detection device 26, whereas in step S15 of the ZMP position control executed by the control device 30B, the current ZMP position is calculated based on the inclination angle of the vehicle body 12 input from the inclination angle detection device 24, the lateral acceleration input from the lateral acceleration detection device 26, and the longitudinal acceleration input from the longitudinal acceleration detection device 28.
[0185] In the tilting vehicle 10B according to the second modification, as in the above embodiment, the turning of the tilting vehicle 10B can be controlled by both the control of the tilt state of the vehicle body 12 during turning by the tilt actuator 201 that tilts the vehicle body 12 based on the turning operation, and the control of the centripetal force by the steering actuator 221 that functions as a centripetal force generating actuator that generates an additional centripetal force Fc2 (see FIG. 3) on the two front steering wheels 14F and one rear wheel 14R that are tilted during turning. Therefore, the robustness of the tilting vehicle 10B with respect to turning can be further improved by including the turning operation input device 18 that is configured so that the turning operation by the occupant is mechanically transmitted to prevent the two front steering wheels 14F from swinging.
[0186] In the tilting vehicle 10B according to the second modification, when the current ZMP position P1 moves to the outside of the inner region S2 or the flat region S1 with a change in the vehicle speed (or when there is a possibility of this happening), the vehicle speed of the tilting vehicle 10B may be adjusted so that the current ZMP position P1 is located in the inner region S2 or the flat region S1. For example, as shown in Fig. 7, when the current ZMP position P1 moves to the outside of the inner region S2 with an increase in the vehicle speed, the vehicle speed of the tilting vehicle 10B may be decreased so that the current ZMP position P1 returns to the inner region S2.
[0187] (Variation 3) An inclining vehicle 10C according to a third modified example of the embodiment of the present invention will be described with reference to Fig. 8. Fig. 8 is a diagram showing a left side view of the inclining vehicle 10C together with a block diagram of a control device 30C provided in the inclining vehicle 10C.
[0188] The inclined vehicle 10C is different from the inclined vehicle 10 in that it further includes a longitudinal acceleration detection device 28. The longitudinal acceleration detection device 28 is different from that included in the inclined vehicle 10B according to the second modification in that the detected longitudinal acceleration is input to a turning state and vehicle speed change determination unit 38 described later, instead of the ZMP position calculation unit 312B, but otherwise is the same. Therefore, a detailed description of the longitudinal acceleration detection device 28 will be omitted.
[0189] The turning operation detection device 182 of the tilting vehicle 10C differs from the turning operation detection device 182 equipped in the tilting vehicle 10 in that the detected turning operation is input not only to the turning operation instruction value acquisition unit 31 but also to the turning state and vehicle speed change determination unit 38 described later, but is otherwise the same.
[0190] The tilting vehicle 10C is different from the tilting vehicle 10 in that it includes a control device 30C instead of the control device 30. When the vehicle speed is changed during turning with the turning operation input to the turning operation input device 18 being constant, the control device 30C controls the torque of the steering actuator 221 functioning as a centripetal force generating actuator while controlling the tilt actuator 201 based on the turning operation input to the turning operation input device 18, so that the centripetal force generated at the two front steering wheels 14F and one rear wheel 14R changes without changing the tilt angle of the vehicle body 12, or the centripetal force generated at the two front steering wheels 14F and one rear wheel 14R does not change with the change in the tilt angle of the vehicle body 12.
[0191] The control device 30C differs from the control device 30 in that it further includes a turning state and vehicle speed change determination unit 38 and a turning state adjustment unit 39. Note that the turning state and vehicle speed change determination unit 38 and the turning state adjustment unit 39 are realized, for example, by a CPU (Central Processing Unit) reading out a program stored in a non-volatile memory and executing a predetermined process in accordance with the program.
[0192] The turning state and vehicle speed change determination unit 38 determines whether the vehicle speed has changed when the turning operation is constant. Specifically, when the signal input from the turning operation detection device 182 (signal indicating the turning operation) does not change and the longitudinal acceleration is input from the longitudinal acceleration detection device 28, it is determined that the vehicle speed has changed when the turning operation is constant.
[0193] The turning state adjusting unit 39 controls the tilt actuator 201 and the steering actuator 221 to adjust the turning state of the tilting vehicle 10C when the vehicle speed changes while the turning operation is constant. Specifically, the turning state adjusting unit 39 controls the steering actuator 221 so that the centripetal force generated at the two front steering wheels 14F and one rear wheel 14R changes without changing the tilt angle of the vehicle body 12 when the vehicle speed changes while the turning operation is constant. Alternatively, the turning state adjusting unit 39 controls the tilt actuator 201 so that the centripetal force generated at the two front steering wheels 14F and one rear wheel 14R does not change due to the change in the tilt angle of the vehicle body 12 when the vehicle speed changes while the turning operation is constant. Note that both of these controls may be performed. In addition, the turning condition adjustment unit 39 may control the tilt actuator 201 and the steering actuator 221 so that when the vehicle speed changes while the turning operation is constant, the tilt angle of the vehicle body 12 changes and the centripetal force generated in the two front steering wheels 14F and one rear wheel 14R changes.
[0194] Next, the ZMP position control executed by the control device 30C will be described with reference to Fig. 9. Fig. 9 is a flowchart showing the ZMP position control executed by the control device 30C.
[0195] The ZMP position control executed by the control device 30C differs from the ZMP position control executed by the control device 30 (see FIG. 4) in that the processes of steps S20 and S21 are executed after the process of step S17 ends.
[0196] In step S20, the control device 30C determines whether or not the vehicle speed has changed when the turning operation is constant. Specifically, the turning state and vehicle speed change determination unit 38 determines that the vehicle speed has changed when the turning operation is constant if the signal input from the turning operation detection device 182 (signal indicating the turning operation) has not changed and the longitudinal acceleration is input from the longitudinal acceleration detection device 28. On the other hand, the turning state and vehicle speed change determination unit 38 does not determine that the vehicle speed has changed when the turning operation is constant in any of the following (1), (2), and (3).
[0197] (1) When the signal input from the turning operation detection device 182 (signal indicating a turning operation) has changed and forward / backward acceleration is input from the forward / backward acceleration detection device 28, the turning state and vehicle speed change determination unit 38 does not determine that the vehicle speed has changed while the turning operation is constant. (2) When the signal input from the turning operation detection device 182 (signal indicating a turning operation) has changed and no forward / backward acceleration is input from the forward / backward acceleration detection device 28, the turning state and vehicle speed change determination unit 38 does not determine that the vehicle speed has changed when the turning operation is constant. (3) The turning state and vehicle speed change determination unit 38 does not determine that the vehicle speed has changed when the turning operation is constant if the signal input from the turning operation detection device 182 (signal indicating a turning operation) has not changed and no forward / backward acceleration is input from the forward / backward acceleration detection device 28.
[0198] If it is determined that the vehicle speed has changed while the turning operation is constant (step S20: YES), the control device 30C executes the process of step S21. If it is not determined that the vehicle speed has changed while the turning operation is constant (step S20: NO), the control device 30C ends the ZMP position control.
[0199] In step 21, the control device 30C controls the tilt actuator 201 and the steering actuator 221 to adjust the turning state of the tilting vehicle 10C. Specifically, the turning state adjustment unit 39 controls the steering actuator 221 so that the centripetal force generated in the two front steered wheels 14F and one rear wheel 14R changes without changing the tilt angle of the vehicle body 12. Alternatively, the turning state adjustment unit 39 controls the tilt actuator 201 so that the centripetal force generated in the two front steered wheels 14F and one rear wheel 14R does not change when the tilt angle of the vehicle body 12 changes. After that, the control device 30C ends the ZMP position control.
[0200] In the tilting vehicle 10C according to the third modification, as in the above embodiment, the turning of the tilting vehicle 10C can be controlled by both the control of the tilt state of the vehicle body 12 during turning by the tilt actuator 201 that tilts the vehicle body 12 based on the turning operation, and the control of the centripetal force by the steering actuator 221 that functions as a centripetal force generating actuator that generates an additional centripetal force Fc2 (see FIG. 3) on the two front steering wheels 14F and one rear wheel 14R that are tilted during turning. Therefore, the robustness of the tilting vehicle 10C for turning, which includes the turning operation input device 18 that is configured so that the turning operation by the occupant is mechanically transmitted to prevent the two front steering wheels 14F from swinging, can be further improved.
[0201] (Other embodiments) The embodiments and modifications described and / or illustrated in this specification are intended to facilitate understanding of the present disclosure and are not intended to limit the ideas of the present disclosure. The above embodiments and modifications may be modified or improved without departing from the spirit of the present disclosure.
[0202] The spirit includes equivalent elements, modifications, deletions, combinations (e.g., combinations of features across embodiments and variations), improvements, and alterations that may be recognized by a person skilled in the art based on the embodiments disclosed herein. The limitations in the claims should be interpreted broadly based on the terms used in the claims, and should not be limited to the embodiments and variations described in the specification or prosecution of this application. Such embodiments and variations should be interpreted as non-exclusive. For example, in this specification, the terms "preferably" and "good" are non-exclusive, meaning "preferably but not limited to" and "good but not limited to."
[0203] In the above embodiment, the tilting vehicle 10 is a three-wheeled vehicle having two front steering wheels 14 and one rear wheel 14R, but the tilting vehicle 10 may be, for example, a three-wheeled vehicle having one front steering wheel 14 and two rear wheels 14R, or a four-wheeled vehicle having two front steering wheels 14 and two rear wheels 14R.
[0204] In the above embodiment, the operated member that can be operated by the rider is realized by the handlebar 181, but the operated member may be, for example, a steering wheel, a jog dial, a touch panel, a push button, or the like.
[0205] In the above embodiment, the lateral acceleration detected by the lateral acceleration detection device 26 is used, but for example, the lateral acceleration estimated from the vehicle speed and yaw rate of the tilting vehicle may be used.
[0206] In the above embodiment, the centripetal force generating actuator is realized by the steering actuator 221, but the centripetal force generating actuator may be, for example, a power unit or a brake unit as described below. Note that the centripetal force generating actuator may be adopted by combining the steering actuator 221 with a power unit or a brake unit as described below. (1) A power unit that applies different torques to two wheels, consisting of the left and right front steering wheels or rear wheels. The power unit may be an engine, a transmission and a torque vectoring differential, or may be a rotating electric motor for a left wheel and a rotating electric motor for a right wheel. (2) A brake unit that applies different torques to two wheels, consisting of the left and right front steering wheels or rear wheels. The brake unit includes a left brake used on the left wheel and a right brake used on the right wheel.
[0207] In the above embodiment, the steering actuator 221 may include, for example, a rack and pinion.
[0208] In the above embodiment, the tilt actuator 201 may include, for example, a rack and pinion.
[0209] In the above embodiment, an additional centripetal force is generated when the inclination angle of the vehicle body 12 is a predetermined limit inclination angle, but, for example, an additional centripetal force may be generated when the inclination angle of the vehicle body 12 is smaller than the predetermined limit inclination angle.
[0210] In the third modification of the above embodiment, even if the turning operation is not constant, the turning state may be adjusted when the vehicle speed changes. [Explanation of symbols]
[0211] 10 Tilting vehicle (tilting vehicle with steered front wheels) 12 Tilting body 121 Body frame 1211 Head pipe 122 Car body cover 123 sheets 14 wheels 14F front steering wheel 14FL Left front steering wheel 14FR Right front steering wheel 14R rear wheel 16 Suspension system 161 Lean Mechanism 1611 Upper arm 1612 Lower Arm 1613 Left material 1614 Right member 162 Tilt Actuator 163L Left suspension 163R Right suspension 22 Steering mechanism 221 Steering Actuator 222 Steering shaft 223 Tie Rod 26 Lateral acceleration detector 28 Forward and backward acceleration detector 30 Control device 31 Turning operation instruction value acquisition unit 311 Inclination indication value acquisition unit 312 Steering command value acquisition unit 32 Steering command value determination unit 33 Target ZMP position setting section 34 ZMP position calculation section 35 Steering actuator output torque calculation unit 36 Steering actuator control unit 37 Tilt actuator control section
Claims
1. The car body and One or two front steering wheels supported on the vehicle body in a state capable of swinging about an axis extending in the vertical direction of the vehicle body; rear wheels that are supported by the vehicle body in a state in which they do not swing about an axis extending in the vertical direction of the vehicle body, the number of rear wheels being two when the front steering wheel is one, and one or two when the front steering wheel is two; A turning operation input device that receives a turning operation for turning by an occupant and is configured to mechanically transmit the turning operation so that the front steering wheel does not swing; a tilt device including a tilt actuator that tilts the vehicle body, the front steering wheels, and the rear wheels to the left of the vehicle when the turning operation input to the turning operation input device is a turning operation for turning the vehicle to the left, and tilts the vehicle body, the front steering wheels, and the rear wheels to the right of the vehicle when the turning operation input to the turning operation input device is a turning operation for turning the vehicle to the right; a steering mechanism including a steering actuator that applies torque to the front steering wheels so as to swing the front steering wheels about an axis extending in a vertical direction of the vehicle body based on a turning operation input to the turning operation input device; A control device for controlling the tilt actuator and the steering actuator; A tilting vehicle with steered front wheels, The vehicle further includes a centripetal force generating device including a centripetal force generating actuator that generates an additional centripetal force on the front steering wheels and the rear wheels that are tilted during a turn by controlling an output torque, The control device includes: acquiring turning operation instruction information indicating the content of the turning operation input to the turning operation input device; controlling the tilt actuator to tilt the vehicle body, the front steering wheels, and the rear wheels based on tilt instruction information included in the turning operation instruction information, and controlling the steering actuator to apply a torque to the front steering wheels based on steering instruction information included in the turning operation instruction information, thereby steering the front steering wheels, thereby controlling the torque of the centripetal force generating actuator when the front steering wheels and the rear wheels are tilted during a turn, thereby controlling the tilt state of the vehicle body during a turn and an additional centripetal force to be generated in the front steering wheels and the rear wheels that are tilted during a turn; A tilting vehicle having steered front wheels, wherein an additional centripetal force generated in the front steering wheels and the rear wheels tilting during a turn is a centripetal force that is added to the centripetal force generated with turning to further increase the centripetal force generated in the front steering wheels and the rear wheels tilting during a turn.
2. A tilting vehicle equipped with a steered front wheel according to claim 1, A tilting vehicle having steered front wheels, wherein the control device controls the torque of the centripetal force generating actuator when controlling the position of the output member of the tilt actuator based on the turning operation input to the turning operation input device, thereby controlling the tilt angle of the vehicle body during turning and the centripetal force generated in the front steering wheels and the rear wheels during turning.
3. A tilting vehicle equipped with a steered front wheel according to claim 1 or 2, A tilting vehicle having steered front wheels, wherein the control device, when controlling the tilt actuator based on the turning operation input to the turning operation input device, controls the torque of the centripetal force generating actuator based on the turning operation input to the turning operation input device, thereby controlling the tilt state of the vehicle body during turning and the centripetal force generated in the front steering wheels and the rear wheels during turning.
4. A tilting vehicle equipped with a steered front wheel according to claim 3, The turning operation input device includes an operated member that can be swung by an occupant, A tilting vehicle having steered front wheels, wherein the control device, when controlling the tilt actuator based on the turning operation input to the turning operation input device, controls the torque of the centripetal force generating actuator based on the swing operation angle of the operated member of the turning operation input device, thereby controlling the tilt state of the vehicle body during turning and the centripetal force generated in the front steered wheels and the rear wheels during turning.
5. A tilting vehicle having a steered front wheel according to any one of claims 1 to 4, A running state detection device for detecting a physical quantity related to a running state of the tilting vehicle having the steered front wheels is further provided, A tilting vehicle with steered front wheels, wherein the control device, when controlling the tilt actuator based on the turning operation input to the turning operation input device, controls the torque of the centripetal force generating actuator based on the running state of the tilting vehicle with the steered front wheels detected by the running state detection device, thereby controlling the tilt state of the vehicle body during turning and the centripetal force generated in the front steered wheels and the rear wheels during turning.
6. A tilting vehicle equipped with a steered front wheel according to claim 5, The driving condition detection device detects any one of the following (1), (2), and (3) as a physical quantity related to the driving condition of the tilting vehicle having the steered front wheels: (1) Physical quantity related to the inclination angle of the vehicle body (2) A physical quantity related to the vehicle speed of the tilting vehicle having the steered front wheels. (3) A physical quantity related to a lateral acceleration, which is the acceleration of the vehicle body in the left-right direction of the vehicle.
7. A tilting vehicle equipped with a steered front wheel according to claim 6, the running condition detection device is a lateral acceleration detection device that detects a physical quantity related to a lateral acceleration, which is an acceleration of the vehicle body in a left-right direction of the vehicle, A tilting vehicle having steered front wheels, wherein the control device, when controlling the tilt actuator based on the turning operation input to the turning operation input device, controls the torque of the centripetal force generating actuator based on the lateral acceleration detected by the lateral acceleration detection device, thereby controlling the tilt state of the vehicle body during turning and the centripetal force generated in the front steering wheels and the rear wheels during turning.
8. A tilting vehicle having a steered front wheel according to any one of claims 1 to 7, A contact area is defined as an area defined by a plurality of line segments connecting positions where the front steering wheels and the rear wheels contact a road surface, When the ZMP position is defined as a position where a virtual straight line that is parallel to the direction of a resultant force of gravity acting on the center of gravity of the tilting vehicle having the steered front wheels and an inertial force acting on the center of gravity of the tilting vehicle having the steered front wheels and passes through the center of gravity of the tilting vehicle having the steered front wheels intersects with the road surface, A tilting vehicle with steered front wheels, wherein the control device controls the torque of the centripetal force generating actuator when controlling the tilt actuator based on a turning operation input to the turning operation input device so that the ZMP position is within the ground contact area, thereby controlling the tilt state of the vehicle body during turning and the centripetal force generated in the front steering wheels and the rear wheels during turning.
9. A tilting vehicle equipped with a steered front wheel according to claim 8, The vehicle further includes a lateral acceleration detection device for detecting a physical quantity related to a lateral acceleration, which is an acceleration in a left-right direction of the vehicle body, or a longitudinal acceleration detection device for detecting a physical quantity related to a longitudinal acceleration, which is an acceleration in a front-rear direction of the vehicle body, A tilting vehicle with steered front wheels, in which the control device controls the torque of the centripetal force generating actuator based on the lateral acceleration detected by the lateral acceleration detection device or the longitudinal acceleration detected by the longitudinal acceleration detection device when controlling the tilt actuator based on the turning operation input to the turning operation input device so that the ZMP position is within the ground contact area, thereby controlling the tilt state of the vehicle body during turning and the centripetal force generated in the front steering wheels and the rear wheels during turning.
10. A tilting vehicle having a steered front wheel according to any one of claims 1 to 9, The control device, when the vehicle speed is changed during a turn while the turning operation input to the turning operation input device is in a constant state, controls the torque of the centripetal force generating actuator while controlling the tilt actuator based on the turning operation input to the turning operation input device, so that the centripetal force generated at the front steered wheels and the rear wheels changes without changing the tilt angle of the vehicle body, or so that the centripetal force generated at the front steered wheels and the rear wheels does not change as the tilt angle of the vehicle body changes. A tilting vehicle with steered front wheels.
11. A tilting vehicle having a steered front wheel according to any one of claims 1 to 9, The control device, when the tilt angle of the vehicle body during turning corresponding to the turning operation inputted to the turning operation input device is a predetermined restricted tilt angle, controls the torque of the centripetal force generating actuator while controlling the tilt actuator based on the turning operation inputted to the turning operation input device so that the centripetal force generated in the front steering wheels and the rear wheels is increased without changing the tilt angle of the vehicle body.
12. A tilting vehicle having a steered front wheel according to any one of claims 1 to 11, The tilt actuator is a tilt rotating electric motor that rotates its output member in a first rotation direction to tilt the vehicle body to the left when the turning operation input to the turning operation input device is a turning operation for turning the vehicle to the left, and rotates its output member in a second rotation direction to tilt the vehicle body to the right when the turning operation input to the turning operation input device is a turning operation for turning the vehicle to the right. A tilting vehicle with steered front wheels.
13. A tilting vehicle having a steered front wheel according to any one of claims 1 to 12, The centripetal force generating actuator is A tilting vehicle having steered front wheels, which is any of the following (a), (b), (c), (a) and (b), (a) and (c), (b) and (c), or (a), (b) and (c). (a) The steering actuator is a front steering wheel steering rotary electric motor that is mechanically connected to the front steering wheel and rotates in a third rotational direction to impart a torque that oscillates the front steering wheel in a fifth rotational direction and rotates in a fourth rotational direction to impart a torque that oscillates the front steering wheel in a sixth rotational direction. (b) A power unit that applies different torques to two wheels consisting of the left and right wheels of the front steering wheels or the rear wheels. (c) A brake unit that applies different torques to two wheels consisting of the left and right wheels of the front steering wheels or the rear wheels.
Citation Information
Patent Citations
Vehicle
JP2013112238A
Vehicle
JP2013144471A
Vehicle
JP2014069673A
vehicle
JP2016165986A
Vehicle
JP2017177905A