Footrest tuck mechanism

Information

  • Patent Grant
  • 7182166
  • Patent Number
    7,182,166
  • Date Filed
    Tuesday, March 23, 2004
    20 years ago
  • Date Issued
    Tuesday, February 27, 2007
    17 years ago
Abstract
A wheelchair with a footrest that tucks as a power base on which the wheelchair seat is mounted rotates about an axis parallel to a surface. The rotation of the power base raises the height of the seat above the surface. The footrest, which is coupled to the support, tucks towards the power base and still avoids obstacles on the surface. The footrest tuck improves the maneuverability of the wheelchair by reducing the radius about which the footrest swings as the wheelchair turns.
Description
TECHNICAL FIELD

The present invention pertains to maneuverability improvements to personal transporters including self-propelled wheelchairs.


BACKGROUND OF THE INVENTION

Personal transporters that may be used by handicapped persons, may be self-propelled and user-guidable, and, further, may entail stabilization in one or more of the fore-aft or lateral planes, such as when no more than two wheels are in surface contact at a time. More particularly, such transporters may include one or more clusters of wheels, with wheels in each cluster capable of being motor-driven independently of the cluster in its entirety. One example of such a transporter is described in a patent to Kamen et al., U.S. Pat. No. 5,701,965, which is incorporated herein by reference. The utility of such transporters often depends on the transporter's maneuverability and weight since these transporters frequently need to carry users in confined spaces and for extended periods of time subject to limited battery charges.


SUMMARY OF THE INVENTION

The first embodiment of the invention is a transporter for carrying a payload over a surface. The transporter includes a surface-contacting module, a power base and a support for a payload. The power base is pivotally coupled to the surface-contacting module and the support is pivotally coupled to the power base. The surface-contacting module to which the present invention refers contains at least two surface-contacting elements, such as wheels, and also any structure, such as a cluster arm, for supporting those surface-contacting elements that are in contact with the surface at any particular instant. The power base serves to mechanically couple the surface-contacting module to the payload support. As the power base pivots with respect to the surface-contacting module, the height of the support over the surface changes. The support pivots in a direction opposite to the pivoting of the power base, the support remaining substantially parallel to the surface.


In a further embodiment of the invention, a rest is included to stabilize the payload with respect to the support. The rest is pivotally coupled to the support. In a specific embodiment of the invention, the rest is a footrest for a passenger on the transporter and the support includes a seat for the passenger. The rest is pivotally coupled to the support and power base through a four-bar linkage. In another embodiment, the rest coupled to the support and the powerbase, includes a follower, such as a roller follower, that is fixed with respect to the rest and movable with respect to the power base. The follower transfers part of the load from the rest to the support and/or the power base. The four-bar linkage transfers part of the load from the rest to support and to the powerbase through the lifting arm. The load transfer permits the power base to absorb some of the “shock” which would otherwise need to be borne wholly by the rest or the support, during a front impact to the rest.


In a further specific embodiment of the invention wherein the rest includes a follower, the power base is shaped so that the angle the rest makes with a vertical plane is determined by the rotation of the power base. This rest angle remains constant as the power base rotates until a specific power base rotation angle is attained. The specific angle corresponds to a minimum height of the support above the surface. When the power base is rotated beyond the specific angle, the rest tucks towards the power base. The increased height above the surface of the support and the rest allows the “tucked” rest to continue to clear the surface. This embodiment and the embodiment with the four-bar linkage, advantageously increases the maneuverability of the transporter by tucking the rest inward towards the ground contacting elements, thus, reducing the swing radius of the transporter.


In another specific embodiment of the invention, dual footrests are provided. The control mechanism linking the support height to the rotation of the power base, through the four-bar linkage, can differ for each footrest. Accordingly, it is possible to have independent control mechanisms for each footrest. Alternatively, when using the footrest with a follower, the profile of the power base, where the followers for the respective footrests contact the base can differ for each of the two footrests. This power base profile allows the tucking behavior of one footrest to be tailored differently from the behavior of the other footrest.


In another specific embodiment of the invention, a separate and independent motor is provided to drive a footrest. The motor can drive the coupled footrest to correspondingly move with respect to the power base or support height. With dual footrests, separate and independent motors can provide independent control of each footrest, thus, the footrests correspondingly move with respect to the power base or support height. Accordingly, the motors can enable separate and independent tucking movements for each footrest.





BRIEF DESCRIPTION OF THE DRAWINGS

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



FIG. 1 shows a side view of a self-balancing wheelchair according to a preferred embodiment of the invention with a four-bar linkage;



FIGS. 2A–2E show a sequence of side views of the wheelchair with the four-bar linkage as the power base is rotated with respect to the surface-contacting module;



FIG. 3 shows a side view of a self-balancing wheelchair according to an embodiment of the invention with a follower; and



FIGS. 4A–4F show a sequence of side views of the wheelchair with the follower as the power base is rotated with respect to the surface-contacting module.





DETAILED DESCRIPTION OF SPECIFIC EMBODIMENTS

Referring to FIG. 1, a side view is shown of a personal transporter, in this case a self-balancing wheelchair, designated generally by numeral 10, according to a preferred embodiment of the invention. Transporter 10 may be described in terms of three fundamental structural components: a support 20 for carrying a passenger or other load, a power base 40 to which the support is coupled and a surface-contacting module 60, to which the power base is coupled. The passenger or other load carried by the support 20 may be referred to herein and in any appended claims as a “payload.” The surface-contacting module (“SCM”) transports support 20 with any payload across the ground, or, equivalently, across any other surface. It has one or more elements that contact the ground, typically a pair of wheels. The power base 40 includes at least one power source and at least one motor that drive a ground-contacting element. A rest may be provided to aid in preventing the payload from slipping with respect to the support. In the embodiment shown in FIG. 1, a rest 80 is provided for support of a portion of the payload. Rest 80 may be a footrest, for example, for supporting one, or both, of the feet of a passenger.


Kamen '965, column 3, line 55 through column 5, line 44, describes a mechanism and process for automatically balanced operation of wheelchair 10 in an operating position that is unstable with respect to tipping when the motorized drive arrangement is not powered.


Referring further to FIG. 1, the modes of operation described herein apply to transporters having two or more surface-contacting elements 65, where each surface-contacting element is movable about an axis 70, which is substantially parallel to the surface, and where the axis 70 can itself be moved. For example, surface-contacting element 65 may be a wheel, as shown, in which case axis 70 corresponds to an axle about which the wheel rotates. Note that a forward wheel that rotates about axis 72 (shown in FIG. 3) has not been shown for clarity of illustration. In other embodiments of the invention, other surface contacting elements, as are known in the art, may be employed. Active control of the position of the axis 70 about which surface-contacting element 65 rotates may contribute to balancing of the transporter in that the position may be controlled in response to specified conditions of the traversed surface or specified modes of operation of the transporter. Motion of axis 70 of surface-contacting elements 65 is referred to in this description and in any appended claims as “cluster motion.” Cluster motion is defined with respect to a second axis 75, also parallel to the surface. Additionally, non-driven wheels may be provided for the transporter, such as caster or pilot wheels 100 coupled to the power base 40, to the support 20 or the rest 80.


As shown in FIGS. 2A through 2E (numbering in FIG. 1), power base 40 rotates about the SCM to which it is coupled by a pivot at axis 75. Support 20 is pivotally coupled to the power base rotating about a support pivot axis 45 that is substantially parallel to the surface. As the power base rotates, support 20 rotates in the opposite direction such that the orientation of the support with respect to the surface remains substantially constant. Rest 80 is pivotally coupled by rest support pivot point 95 to the support 20, rotating about an axis that is also parallel to the surface. In a preferred embodiment, a linkage 90 is pivotally coupled to the rest 80 and the powered lifting arm 42. The linkage 90 may be slidably moveable. A slidably moveable linkage mechanism is useful for increasing, or decreasing the range of the trick and allowing the footrest to freely swing up and away from the seat about the axis of rest support pivot point 95. The arrangement of the following four points of contact form a four bar linkage: the rest support pivot point 95, coupling the rest 80 to the support 20; the rest linkage pivot point 94, coupling the linkage 90 to the rest 80; the lifting arm support pivot point 93, coupling the powered lifting arm 42 to the support 20; and the lifting arm linkage pivot point 91, coupling the linkage 90 to the powered lifting arm 42. The linkage 90, as part of the four-bar linkage, allows the rest to transfer some of the load that would otherwise be borne by the rest support pivot point 95 and the support 20. In other words, if this linkage 90 were not provided, the pivot point attaching the footrest to support 20 would need to be substantially more rugged as is the point of the support at which the pivot is attached, to carry the load. The support and the power base, acting through the linkage, may advantageously serve as a shock absorber for the load on the footrest and support if the wheelchair 10 footrest strikes an object.


Further, as shown in FIGS. 2A through 2E, the four bar linkage, allows the footrest to maintain its pivot angle, φ, substantially constant with respect to a vertical plane until the seat is raised to a specified height above the surface. This feature allows the footrest to clear a curb as shown in FIG. 2B. Above this specified height, the footrest begins to rotate towards the vertical, i.e., φ decreases. Thus, the footrest “tucks” towards the power base. Operationally, as the powerbase pivots to raise the support height, the powered lifting arm coupled to the linkage, pulls back the linkage. The linkage subsequently pulls back the pivotably coupled footrest towards the powerbase to tuck the footrest. The tuck of the footrest improves the maneuverability of the wheelchair by reducing the radius about which the footrest swings as the wheelchair turns. As the power base is rotated in the opposite direction, the height of the support above the surface decreases. When the specified height is reached, the footrest begins to pivot, increasing φ. Thus, the clearance of the footrest above the surface is maintained.


A stop 98 may be provided to inhibit rotation of the footrest past a specified angle to the vertical plane, facilitating rider comfort. In a preferred embodiment with a stop, when the transporter hits an obstacle, the force is transferred to the support 20. This force transfer may result in a better distribution of the load. In an alternate embodiment, the stop can be placed on either the support 20, at the point where the footrest is coupled to the support, or on the power base of the device.


In an alternate embodiment as shown in FIG. 3, a follower 90A, rigidly coupled to the footrest 80 and moveably coupled to the powerbase 40 through a guidewheel 92A, can attain similar functions as the four-bar linkage described above. FIG. 3 shows a side view of a self-balancing wheelchair according to an embodiment of the invention with the follower 90A. As shown in FIGS. 4A through 4F and analogous to the four-bar linkage, the follower allows the power base to offload some of the load that would otherwise be borne by the pivot point and the support. In other words, if this follower were not provided, the pivot point attaching the footrest to the support would need to be substantially more rugged as would the point of the support at which the pivot is attached, to carry the load. The power base via the follower advantageously acts as a shock absorber for the load on the footrest and support if the wheelchair 10 footrest strikes an object.



FIGS. 4A through 4F, also show the operation of the follower embodiment of the invention. Here, the follower allows the footrest to maintain its pivot angle, φ, substantially constant with respect to a vertical plane until the seat is raised to a specified height above the surface. This feature allows the footrest to clear a curb as shown FIG. 4B. Above this specified height, the footrest begins to rotate towards the vertical, i.e., φ decreases. Thus, the footrest “tucks” towards the power base. The tuck of the footrest improves the maneuverability of the wheelchair by reducing the radius about which the footrest swings as the wheelchair turns. As the power base is rotated in the opposite direction, the height of the support above the surface decreases. When the specified height is reached, the footrest begins to pivot, increasing φ. Thus, the clearance of the footrest above the surface is maintained. Similarly, a stop 98A, as shown in FIG. 3, may attain all the advantages of the invention as described above.


In another embodiment of the invention, dual footrests are provided. Each footrest is pivotally coupled 95 to the support 20, rotating about an axis that is substantially parallel to the surface. In a preferred dual footrests embodiment, individual linkages 90 and the corresponding four-bar linkages, are pivotally coupled to each footrest and the power base. In an alternate embodiment with followers, the individual followers 90A are rigidly coupled to each footrest and movably coupled to the power base through each follower's guide wheel 92A. The profile of the power base where the guide wheels of the followers contact the base can differ for each of the footrests. In the dual footrests embodiment, the control mechanism for each of the footrests may differ and thus the footrests may operate independently. In this embodiment, one footrest may tuck towards the power base differently than the other as the support is raised above this surface. This embodiment can be used advantageously, for example, to reduce the radius about which the footrest swings if one leg of a user differs from the other. Examples of this situation would be for amputees or users with a leg in a cast.


In another embodiment, the footrest 80 is pivotally coupled 95 to the support 20, rotating about an axis that is also parallel to the surface. The footrest may have an independent motor driving it. The motor may drive the footrest to correspondingly move with the support height. In this embodiment, each footrest can have a separate motor as described above to enable independent control of the footrest correspondingly move with the support height. Such independent movements may also achieve the advantages of the dual footrests embodiment described above.


While the description of the preceding embodiments have described the transporter as a self-balancing wheelchair, the described embodiments are intended to be merely exemplary and numerous variations and modifications will be apparent to those skilled in the art. For example, the transporter need not be self-balancing and may include surface-contacting elements that stabilize the transporter to tipping in a fore-aft or lateral plane at substantially all times, e.g., a four wheeled wheelchair. The support may not include a seat for a passenger, but may include other devices for supporting a payload. The rest may be any device that tends to stabilize the payload with respect to the support.


Other variations and modifications are intended to be within the scope of the present invention as defined in the appended claims.

Claims
  • 1. A transporter for carrying a payload over a surface, the transporter comprising: a. a surface-contacting module for traversing the surface;b. a power base including at least one power source and at least one motor for powering the surface-contacting module, the power base pivotally coupled to the surface-contacting module about a base pivot axis, the base pivot axis substantially parallel to the surface, the base characterized by a base pivot angle with respect to the surface-contacting module;c. a support for supporting the payload, the support pivotally coupled to the power base about a support pivot axis, characterized by a support pivot angle with respect to the vertical plane;d. a mechanical linkage for maintaining the support pivot angle substantially constant as the power base pivots with respect to the surface-contacting module; ande. a rest for partial support of the payload, the rest pivotally coupled to the support about a rest pivot axis, the rest pivot axis substantially parallel to the surface and defining a rest pivot angle with respect to the vertical plane;wherein the rest pivot angle is less than a specified angle when the support pivot axis is above a specified height and wherein the rest pivot angle is greater than the specified angle when the support pivot axis is below the specified height.
  • 2. The transporter according to claim 1, further comprising a linkage, coupling the rest to the power base in such a manner as to vary the rest pivot angle as a function of the base pivot angle.
  • 3. A transporter according to claim 1, wherein the rest further includes a stop such that the rest pivot angle is at least a specified angle.
  • 4. A transporter according to claim 1, wherein the rest is a footrest for supporting a foot of a user.
  • 5. A transporter according to claim 1, further including a caster coupled to the power base in such a manner as to be capable of being brought into engagement with the surface during operation of the transporter.
  • 6. A transporter for carrying a payload over a surface, the transporter comprising: a. a surface-contacting module for traversing the surface;b. a power base including at least one power source and at least one motor for powering the surface-contacting module, the power base pivotally coupled to the surface-contacting module about a base pivot axis, the base pivot axis substantially parallel to the surface, the base characterized by a base pivot angle with respect to the surface-contacting module;c. a support for supporting the payload, the support pivotally coupled to the power base about a support pivot axis, characterized by a support pivot angle with respect to the vertical plane; andd. a mechanical linkage for maintaining the support pivot angle substantially constant as the power base pivots with respect to the surface-contacting module;e. a rest for partial support of the payload, the rest pivotally coupled to the support about a rest pivot axis, the rest pivot axis substantially parallel to the surface and defining a rest pivot angle with respect to the vertical plane; andf. a roller follower for governing the rest pivot angle as a function of the base pivot angle.
  • 7. A transporter for carrying a payload over a surface, the transporter comprising: a. a surface-contacting module for traversing the surface;b. a power base including at least one power source and at least one motor for powering the surface-contacting module, the power base pivotally coupled to the surface-contacting module about a base pivot axis, the base pivot axis substantially parallel to the surface, the base characterized by a base pivot angle with respect to the surface-contacting module;c. a support for supporting the payload, the support pivotally coupled to the power base about support pivot axis, characterized by a support pivot angle with respect to the vertical plane; andd. a mechanical linkage for maintaining the support pivot angle substantially constant as the power base pivots with respect to the surface-contacting module;e. a rest for partial support of the payload, the rest pivotally coupled to the support about a rest pivot axis, the rest pivot axis substantially parallel to the surface and defining a rest pivot angle with respect to the vertical plane; andf. a motor, coupled to the rest, for driving the rest to move with respect to the support such that the rest pivot angle with respect to the vertical plane varies as the power base pivots with respect to the surface-contacting module.
US Referenced Citations (112)
Number Name Date Kind
584127 Draullette et al. Jun 1897 A
849270 Schafer et al. Apr 1907 A
2742973 Johannesen Apr 1956 A
3145797 Taylor Aug 1964 A
3260324 Suarez Jul 1966 A
3283398 Andren Nov 1966 A
3288234 Feliz Nov 1966 A
3348518 Forsyth et al. Oct 1967 A
3374845 Selwyn Mar 1968 A
3399742 Malick Sep 1968 A
3446304 Alimanestiano May 1969 A
3450219 Fleming Jun 1969 A
3515401 Gross Jun 1970 A
3580344 Floyd May 1971 A
3596298 Durst, Jr. Aug 1971 A
3860264 Douglas et al. Jan 1975 A
3872945 Hickman et al. Mar 1975 A
3952822 Udden et al. Apr 1976 A
4018440 Deutsch Apr 1977 A
4062558 Wasserman Dec 1977 A
4076270 Winchell Feb 1978 A
4088199 Trautwein May 1978 A
4094372 Notter Jun 1978 A
4109741 Gabriel Aug 1978 A
4111445 Haibeck Sep 1978 A
4151892 Francken May 1979 A
4222449 Feliz Sep 1980 A
4264082 Fouchey, Jr. Apr 1981 A
4266627 Lauber May 1981 A
4293052 Daswick et al. Oct 1981 A
4325565 Winchell Apr 1982 A
4354569 Eichholz Oct 1982 A
4363493 Veneklasen Dec 1982 A
4373600 Buschbom et al. Feb 1983 A
4375840 Campbell Mar 1983 A
4510956 King Apr 1985 A
4560022 Kassai Dec 1985 A
4566707 Nitzberg Jan 1986 A
4570078 Yashima et al. Feb 1986 A
4571844 Komasaku et al. Feb 1986 A
4618155 Jayne Oct 1986 A
4624469 Bourne, Jr. Nov 1986 A
4657272 Davenport Apr 1987 A
4685693 Vadjunec Aug 1987 A
4709772 Brunet Dec 1987 A
4716980 Butler Jan 1988 A
4740001 Torleumke Apr 1988 A
4746132 Eagan May 1988 A
4770410 Brown Sep 1988 A
4786069 Tang Nov 1988 A
4790400 Sheeter Dec 1988 A
4790548 Decelles et al. Dec 1988 A
4794999 Hester Jan 1989 A
4798255 Wu Jan 1989 A
4802542 Houston et al. Feb 1989 A
4809804 Houston et al. Mar 1989 A
4834200 Kajita May 1989 A
4863182 Chern Sep 1989 A
4867188 Reid Sep 1989 A
4869279 Hedges Sep 1989 A
4874055 Beer Oct 1989 A
4890853 Olson Jan 1990 A
4919225 Sturges Apr 1990 A
4953851 Sherlock et al. Sep 1990 A
4984754 Yarrington Jan 1991 A
4985947 Ethridge Jan 1991 A
4998596 Miksitz Mar 1991 A
5002295 Lin Mar 1991 A
5011171 Cook Apr 1991 A
5052237 Reimann Oct 1991 A
5111899 Reimann May 1992 A
5158493 Morgrey Oct 1992 A
5168947 Rodenborn Dec 1992 A
5171173 Henderson et al. Dec 1992 A
5186270 West Feb 1993 A
5221883 Takenaka et al. Jun 1993 A
5241875 Kochanneck Sep 1993 A
5248007 Watkins et al. Sep 1993 A
5314034 Chittal May 1994 A
5350033 Kraft Sep 1994 A
5366036 Perry Nov 1994 A
5376868 Toyoda et al. Dec 1994 A
5419624 Adler et al. May 1995 A
5577567 Johnson et al. Nov 1996 A
5701965 Kamen et al. Dec 1997 A
5701968 Wright-Ott et al. Dec 1997 A
5775452 Patmont Jul 1998 A
5791425 Kamen et al. Aug 1998 A
5794730 Kamen Aug 1998 A
5971091 Kamen et al. Oct 1999 A
5973463 Okuda et al. Oct 1999 A
5975225 Kamen et al. Nov 1999 A
5986221 Stanley Nov 1999 A
6003624 Jorgensen et al. Dec 1999 A
6039142 Eckstein et al. Mar 2000 A
6050357 Staelin et al. Apr 2000 A
6059062 Staelin et al. May 2000 A
6125957 Kauffmann Oct 2000 A
6131057 Tamaki et al. Oct 2000 A
6223104 Kamen et al. Apr 2001 B1
6225977 Li May 2001 B1
6288505 Heinzmann et al. Sep 2001 B1
6302230 Kamen et al. Oct 2001 B1
6311794 Morrell et al. Nov 2001 B1
6405816 Kamen et al. Jun 2002 B1
6443251 Morrell et al. Sep 2002 B1
6484829 Cox Nov 2002 B1
6538411 Field et al. Mar 2003 B1
6571892 Kamen et al. Jun 2003 B2
6581714 Kamen et al. Jun 2003 B1
6837327 Heinzmann Jan 2005 B2
20020063006 Kamen et al. May 2002 A1
Foreign Referenced Citations (35)
Number Date Country
2 048 593 May 1971 DE
31 28 112 Feb 1983 DE
32 42 880 Jun 1983 DE
3411489 Oct 1984 DE
44 04 594 A 1 Aug 1995 DE
196 25 498 C 1 Nov 1997 DE
0 109 927 Jul 1984 EP
0 193 473 Sep 1986 EP
0 537 698 Apr 1993 EP
0 958 978 Nov 1999 EP
980 237 May 1951 FR
2 502 090 Sep 1982 FR
82 04314 Sep 1982 FR
152664 Feb 1922 GB
1213930 Nov 1970 GB
2 139 576 Nov 1984 GB
52-44933 Oct 1975 JP
57-87766 Jun 1982 JP
57-110569 Jul 1982 JP
59-73372 Apr 1984 JP
62-12810 Jul 1985 JP
60255580 Dec 1985 JP
61-31685 Feb 1986 JP
63-305082 Dec 1988 JP
2-190277 Jul 1990 JP
4-201793 Jul 1992 JP
6-171562 Dec 1992 JP
5-213240 Aug 1993 JP
6-105415 Dec 1994 JP
7255780 Mar 1995 JP
WO 8605752 Oct 1986 WO
WO 8906117 Jul 1989 WO
WO 9623478 Aug 1996 WO
WO 9846474 Oct 1998 WO
WO 00 75001 Dec 2000 WO
Related Publications (1)
Number Date Country
20050211477 A1 Sep 2005 US