Trailer for balancing vehicle

Information

  • Patent Grant
  • 6435535
  • Patent Number
    6,435,535
  • Date Filed
    Wednesday, March 1, 2000
    24 years ago
  • Date Issued
    Tuesday, August 20, 2002
    22 years ago
Abstract
A trailer for a dynamically balanced transporter that allows leaning of the transporter such as for control of the combination of transporter and trailer. The trailer has a platform and an arm with two ends, one of which ends is coupled to the platform and the other of which is pivotally coupled about a horizontal axis to the transporter. The trailer has a ground-contacting member that may be a wheel, or a ski or a skid. A locking mechanism may lock the pivot in response to a fault condition. The platform of the trailer may support a rider in a seated or standing position and may have a characteristic transverse linear dimension comparable to the shoulder width of the rider.
Description




TECHNICAL FIELD




The present invention pertains to trailers that may be attached to a balancing vehicle, and more particularly, to an attachment mechanism that permits tilting action of the balancing vehicle.




BACKGROUND ART




Vehicles for transportation of individual persons may provide stabilization in one or both of the fore-aft or left-right planes, such as when no more than two wheels are in ground contact at a time. Vehicles of this sort may be operated in a mode in which motion of the vehicle, including acceleration (both linear and turning), is controlled partially or entirely by leaning of the vehicle as caused by a subject riding the vehicle. Vehicles whose stability with respect to fore-aft overturning is substantially affected by the orientation of the user on the vehicle will be referred to as “dynamically balanced” vehicles for purposes of this description and any appended claims. One such vehicle is shown in

FIG. 1

, while various other such vehicles are described in U.S. Pat. No. 5,971,091, and U.S. application Ser. No. 09/325,976, which patent and application are both incorporated herein by reference.





FIG. 1

shows a prior art personal transporter, designated generally by numeral


18


, that lacks static stability and that balances during the course of ordinary operation. A subject


10


stands on a support platform


12


and holds a grip


14


on a handle


16


attached to the platform


12


, so that vehicle


18


may be operated in a manner analogous to a scooter. A control loop may be provided so that leaning of the subject results in the application of torque to wheel


20


about axle


22


thereby causing an acceleration of the vehicle. Vehicle


18


may have one or more yaw controls


28


, such as a thumbwheel or thumb dial, for example, to enable subject


10


to steer the vehicle about a vertical axis z perpendicular to the plane defined by the direction of motion x and a transverse axis y.




SUMMARY OF THE INVENTION




In accordance with preferred embodiments of the present invention, there is provided a trailer for a dynamically balanced transporter that has a support and an attachment housing coupled to the support. The trailer has a platform and an arm with two ends, one of which ends is coupled to the platform and the other of which is pivotally coupled, about a horizontal axis to the attachment housing. Finally, the trailer has a ground-contacting member coupled to the platform.




In accordance with alternate embodiments of the invention, the ground-contacting member may be a wheel or a ski or a skid. The trailer may further have a locking mechanism for locking the pivot in response to a stabilization fault condition.




In accordance with another aspect of the invention, there is provided a rider support trailer for a dynamically balanced transporter having a support and an attachment coupled to the support. The rider support trailer has a base having a bottom side and a top side and a pivot coupled to the base for permitting motion of the base about a horizontal axis with respect to the support of the transporter. The rider support trailer also has a ground-contacting member coupled to the bottom side of the base and a substantially vertical support column coupled to the top surface of the base, and a rider support that may be a seat coupled to the support column.




In accordance with a further aspect of the invention, the platform of a trailer for supporting a user in a standing position may have a characteristic transverse linear dimension substantially comparable to the shoulder width of the user.











BRIEF DESCRIPTION OF THE DRAWINGS




The invention will be more readily understood by reference to the following description, taken with the. accompanying drawings, in which:





FIG. 1

is a side view of a prior art dynamically balancing vehicle of the type in which an embodiment of the invention may be advantageously employed;





FIG. 2

is a side view of a trailer pivotably coupled to a dynamically balancing vehicle in accordance with an embodiment of the present invention;





FIG. 3

is a perspective view of the trailer of

FIG. 2

;





FIG. 4

shows a side view of a trailer coupled to a dynamically balancing vehicle by means of a pivot disposed rearward of the support platform of the vehicle in accordance with other embodiments of the invention; and





FIGS. 5



a


and


5




b


show bottom views of a trailer coupled to a dynamically balancing vehicle by means of a scissors linkage enabling the trailer to follow the balancing vehicle in a tight turn, in accordance with another embodiment of the invention;





FIG. 6



a


is a top view of a two-wheeled trailer coupled to a dynamically balancing vehicle at a ball joint;





FIG. 6



b


is a top view of a one-wheeled trailer coupled to a dynamically balancing vehicle at a universal joint; and





FIG. 6



c


shows a schematic view of multiple trailers drawn by a single dynamically balancing vehicle.











DETAILED DESCRIPTION OF SPECIFIC EMBODIMENTS




Referring now to

FIGS. 2 and 3

, a side and perspective view are shown, respectively, of one embodiment of a trailer, designated generally by the numeral


30


, that may be attached to a dynamically balanced personal transporter, designated generally by numeral


32


. Trailer


30


is coupled to transporter


32


at an attachment housing


34


that is, in turn, fixedly coupled to support


12


of the transporter.




In the embodiment shown in

FIGS. 2 and 3

, trailer


30


has an arm


36


pivotally attached, at pivot end


37


, to the attachment housing


34


and capable of rotating about a pivot axis


38


which is horizontal and perpendicular to the fore/aft-vertical plane (i.e., the plane of the paper in FIG.


2


). In the embodiment shown in

FIG. 2

, arm


36


is shaped to avoid contact with support


12


when the rear edge


40


of the support is rotated upward in response to the rider leaning forward on the transporter. The opposite end, referred to herein as the ‘container end’


42


, of arm


36


is attached to a container


44


. Container


44


may be as simple as a flat surface capable of supporting one or more packages or bundles. In a preferred embodiment, container


44


also has walls defining an enclosed space where packages or bundles that may be of odd shapes can be secured and protected from the environment during transportation by transporter


32


.




In another embodiment of the invention, container


44


also includes a cover


50


(shown in

FIG. 3

) that covers the enclosed space of the container. The cover


50


may be completely detectable from container


44


, or, alternatively, the cover may be hinged to a wall of the container. In a further embodiment, cover


50


may be locked to provide additional security for the contents of the container.

FIG. 3

shows an embodiment wherein the container comprises two enclosed and covered spaces.




Container


44


is supported by at least one ground contacting member


46


. In a preferred embodiment, the ground contacting member is a wheel. In a further embodiment, wheel


46


can swivel about a vertical axis


48


in response to turns made by the transporter


32


. In yet another embodiment, the ground contacting member may be a ski.




Referring now to

FIG. 4

, a side view is shown of another embodiment of the invention wherein the relative placement and ordering of the trailer components differ from those of the embodiment depicted in

FIGS. 2 and 3

. In the embodiment of

FIG. 4

, attachment housing


48


is coupled at the rear of support


12


. Attachment housing


34


extends beyond the rear edge of support


12


and is pivotally connected to the trailer base


60


at a pivot


62


. Base


62


is supported by a ground-contacting member


46


which, in a preferred embodiment, is a wheel capable of swiveling about vertical axis


48


. A support column


64


is fixedly attached to base


60


and supports a seat


66


that may support a passenger in a seated position while minimizing the effect of the trailer


30


on the leaning or tilting of the transporter


32


. In a further embodiment of the present invention, support column


64


may also support containers or other payloads.




During normal operation, the pivot


62


remains free to pivot in the fore/aft-vertical plane. Pivot


62


allows transporter


32


to retain the control characteristics of a two-wheeled dynamically stabilized vehicle even though the transporter/trailer combination may be statically stable. In a fault condition where transporter


32


loses the ability to maintain dynamic stability, pivot


62


may be locked, by actuation of a solenoid, for example, in such a manner as to prevent trailer


30


from tipping forward and transporter


32


from tipping backward. The lock mechanism may be activated, in accordance with various embodiments of the invention, by a control signal or by power failure. The implementation of the pivot lock and activation of the lock is well known to one of ordinary skill in the mechanical art.




Alternate embodiments of the invention employ a scissors linkage as depicted in the bottom view shown in

FIGS. 5



a


and


5




b


. Referring first to

FIG. 5



a


, trailer


30


is, again, coupled to transporter


32


, where transporter


32


is preferably a dynamically balancing vehicle. Coupling to transporter


32


may be by means of hitch


70


which pivots about horizontal (pitch) axis


72


to allow leaning of the transporter. In the embodiment shown in

FIGS. 5



a


and


5




b


, trailer


30


rides on a single trailer wheel


74


, however trailers with additional wheels or other ground-contacting elements, such as skids, for example, are within the scope of the present invention. Trailer wheel


74


pivots about a vertical (yaw) axis


76


to allow it to track as the transporter executes turns. Scissor linkage


78


provides for steering of wheel


74


to allow for tight turns of the coupled system


80


of transporter and trailer. In fact, as depicted in

FIG. 5



b


, coupled system


80


of transporter


32


and trailer


30


may be rotated in place, as shown by arrows


82


, to the degree that wheel


74


is perpendicular to line


84


connecting the center


86


of rotation axis


88


of transporter


32


to vertical axis


76


of steerability of wheel


74


, at which point coupled system


80


may turn in place.




Referring now to

FIG. 6



a


, a bottom view is shown of a further embodiment of the invention in which trailer


90


has two non-castering wheels


92


and trailer


90


is coupled to transporter


32


at ball joint


94


, allowing rotation about all axes. In an alternate embodiment shown in

FIG. 6



b


, trailer


96


is supported above the ground by a single non-castering wheel


98


and is coupled to transporter


32


at universal joint


100


, permitting rotation about both pitch and yaw axes. Both of the embodiments of

FIGS. 6



a


and


6




b


effectively decouple trailers


90


and


96


, respectively, from fore/aft leaning of the transporter


32


, which, as described above, may be used for control of the motion of the coupled systems. A further feature of the embodiments described is that trailers


90


and


96


and, more particularly, their platforms


60


(indicated in

FIG. 4

) may be sized to accommodate a person in either a standing or a seated position. In preferred embodiments of the invention, the platforms have a characteristic transverse linear dimension substantially comparable to the shoulder width of a user. Since the leaning of the respective trailer and transporter components are effectively decoupled, a passenger standing on the trailer need merely hold onto the driver of the transporter in order to maintain balance. Additionally, by exerting force on the driver of the transporter, it is possible for the passenger conveyed on the trailer to drive the coupled system.




In accordance with an alternate embodiment of the invention depicted schematically in

FIG. 6



c


, multiple trailers


102


may be attached to each other in series and drawn by a single transporter


32


.




The described embodiments of the invention are intended to be merely exemplary and numerous variations and modifications will be apparent to those skilled in the art. All such variations and modifications are intended to be within the scope of the present invention as defined in the appended claims.



Claims
  • 1. A trailer for carrying a user behind a dynamically balanced transporter, the trailer comprising:a) a platform for supporting the user in a standing position; b) a ground-contacting member supporting the platform, the ground-contacting member capable of swiveling about a vertical axis in a first rotation direction; c) a pivot arm having a pivot end with a pivot and a trailer end, the trailer end coupled to the platform, the trailer end capable of swiveling about a trailer end vertical axis in a trailer end rotation direction; and d) a scissor linkage coupled to the pivot arm and ground contacting member so that the first rotation direction is counter to the trailer end rotation direction.
  • 2. A vehicle comprising:a) a dynamically balanced transporter having a support and an attachment housing coupled to the support; and b) a trailer further comprising: i) a platform, the platform having an upper side; ii) a ground-contacting member supporting the platform, the ground-contacting member capable of swiveling about a vertical axis in a first rotation direction; iii) a pivot arm having a pivot end with a pivot and a trailer end, the trailer end coupled to the platform, the trailer end capable of swiveling about a trailer end vertical axis in a trailer end rotation direction, the pivot coupled to the attachment housing; and iv) a scissor linkage coupled to the pivot arm and ground contacting member so that the first rotation direction is counter to the trailer end rotation direction.
US Referenced Citations (44)
Number Name Date Kind
584127 Draullette et al. Jun 1897 A
1551610 Ohman Sep 1925 A
1739716 Fisher Dec 1929 A
2742973 Johannesen Apr 1956 A
2913256 Sharpe Nov 1959 A
3145797 Taylor Aug 1964 A
3260324 Suarez Jul 1966 A
3288234 Feliz Nov 1966 A
3348518 Forsyth et al. Oct 1967 A
3374845 Selwyn Mar 1968 A
3399742 Malick Sep 1968 A
3580344 Floyd May 1971 A
3596298 Durst, Jr. Aug 1971 A
4088199 Trautwein May 1978 A
4109741 Gabriel Aug 1978 A
4222449 Feliz Sep 1980 A
4354569 Eichholz Oct 1982 A
4375840 Campbell Mar 1983 A
4566707 Nitzberg Jan 1986 A
4624469 Bourne, Jr. Nov 1986 A
4645230 Hammons Feb 1987 A
4657272 Davenport Apr 1987 A
4709772 Brunet Dec 1987 A
4790548 Decelles et al. Dec 1988 A
4794999 Hester Jan 1989 A
4802542 Houston et al. Feb 1989 A
4809804 Houston et al. Mar 1989 A
4874055 Beer Oct 1989 A
4998596 Miksitz Mar 1991 A
5011170 Forbes et al. Apr 1991 A
5052237 Reimann Oct 1991 A
5111899 Reimann May 1992 A
5248007 Watkins et al. Sep 1993 A
5314034 Chittal May 1994 A
5350033 Kraft Sep 1994 A
5366036 Perry Nov 1994 A
5655615 Mick Aug 1997 A
5701965 Kamen et al. Dec 1997 A
5718534 Neuling Feb 1998 A
5791425 Kamen et al. Aug 1998 A
5873582 Kaufman, Jr. et al. Feb 1999 A
5921844 Hollick Jul 1999 A
5947505 Martin Sep 1999 A
5971091 Kamen et al. Oct 1999 A
Foreign Referenced Citations (25)
Number Date Country
29 07 509 Feb 1979 DE
31 28 112 Feb 1983 DE
32 42 880 Jun 1983 DE
0 109 927 Jul 1984 EP
0 193 473 Sep 1986 EP
0 537 698 Apr 1993 EP
980 237 May 1951 FR
71.26024 Mar 1972 FR
2 502 090 Sep 1982 FR
150393 May 1919 GB
1213930 Nov 1970 GB
2 139 576 Nov 1984 GB
52-44933 Oct 1975 JP
57-87766 Jun 1982 JP
0255580 Dec 1985 JP
63-305082 Dec 1988 JP
01316810 Dec 1989 JP
6-105415 Dec 1989 JP
02292185 Mar 1990 JP
4-19206 May 1990 JP
2-190277 Jul 1990 JP
4-201793 Jul 1992 JP
7255780 Mar 1995 JP
WO 8906117 Jul 1989 WO
WO 9623478 Aug 1996 WO
Non-Patent Literature Citations (12)
Entry
Osaka et al., Stabilization of Unicycle, Systems and Control, Vo. 25, No. 3, Japan 1981, pp. 159-166 (Abstract only).
Kawaji, S., Stabilization of Unicycle Using Spining Motion, Denki Gakkai Ronbushi, D, vol. 107, Issue 1, Japan, (1987), pp. 21-28.
Schoonwinkel, A., Design and Test of a Computer-Stabilized Unicycle. Stanford University (1988), UMI Dissertation Services.
Vos, D., Dynamics and Nonlinear Adaptive Control of an Autonomous Unicycle, Massachusetts Institute of Technology, 1989.
Vos, D., Nonlinear Control of an Autonomous Unicycle Robot: Practical Issues, Massachusetts Institute of Technology, 1992.
Koyanagi et al., A Wheeled Inverse Pendelum Type Self-Contained Mobile Robot and Its Posture Control and Vehicle Control, The Society of Instrument and Control Engineers, Special issue of the 31st SICE Annual Conference, Japan 1992, pp. 13-16.
Koyanagi et al., A Wheeled Inverse Pendulum Type Self-Contained Mobile Robot, The Society of Instrument and Control Engineers, Special issue of the 31st SICE Annual Conference, Japan 1992, pp. 51-56.
Koyanagi et al., A Wheeled Inverse Pendulum Type Self-Contained Mobile Robot and its Two Dimensional Trajectory Control, Proceeding of the Second International Symposium on Measurement and Control in Robotics, Japan 1992, pp. 891-898.
News article Amazing Wheelchair Goes Up and Down Stairs.
Roy et al., Five-Wheel Unicycle System, Medical & Biological Engineering & Computing, vol. 23, No. 6, United Kingdom 1985, pp. 593-596.
Kawaji, S., Stabilization of Unicycle Using Spinning Motion, Denki Gakkai Ronbushi, D, vol. 107, Issue 1, Japan 1987, pp. 21-28 (Abstract Only).
Osaka et al., Stabilization of Unicycle, Systems and Control, Vo. 25, No. 3, Japan 1981, pp. 159-166 (Abstract only).