This application claims the priority benefit of Taiwan patent application number 102201121 filed on Jan. 18, 2013.
The present invention relates to a movement assistive device, and more particularly, to a movement assistive device that enables convenient movement of a wheelchair onto and off a carrier. The present invention also relates to a wheelchair equipped with the movement assistive device.
A wheelchair is an assistive device for helping people with disabilities to move to different places. The wheelchair can be operated by a user or by an operator to move. For wheelchair users to conveniently access different places, some public places are designed to be barrier-free.
There are times the wheelchair user along with the wheelchair needs to get on a vehicle. It would be very difficult and inconvenient for the wheelchair user or the wheelchair operator to perform this action unless the vehicle is equipped with some special movement assistive devices, such as those displayed in the following web pages: http://www.youtube.com/watch?v=5dZpzuDTCso and http://www.youtube.com/watch?v=oFXTN6G4Mmg. However, vehicles and/or wheelchairs equipped with the special movement assistive devices shown in the above web pages have complicate structures and are time and labor consuming in operation to still possibly cause inconvenience and discomfort to the wheelchair users and operators. Moreover, it is very expensive to install the wheelchair-specific lift device on a vehicle, and not all the vehicles are adaptable for installing the wheelchair-specific lift device. Therefore, the problem of transporting a wheelchair and the user sitting thereon has not been thoroughly solved.
There are many prior art patents related to lifting mechanisms for the movement of a wheelchair, some examples are listed below:
A primary object of the present invention is to provide a novel movement assistive device for use with a wheelchair, so that the wheelchair can be more conveniently operated to move vertically and horizontally.
Another object of the present invention is to provide a wheelchair equipped with a movement assistive device, so that a wheelchair user or operator can conveniently move the wheelchair onto and off a carrier.
A further object of the present invention is to provide a movement assistive device that can be used with different apparatuses to easily move the apparatuses vertically and horizontally.
To achieve the above and other objects, the movement assistive device according to a preferred embodiment of the present invention includes a vertical lift module and a horizontal extension module. The vertical lift module includes a lift table vertically movable upward and downward. The horizontal extension module is arranged atop the lift table to vertically move upward and downward along with the lift table, and can be driven to switch horizontally between a first state and a second state.
To achieve the above and other objects, the wheelchair according to the present invention includes a wheelchair main body and a movement assistive device mounted to the wheelchair main body. The movement assistive device includes a vertical lift module and a horizontal extension module. The vertical lift module includes a lift table vertically movable upward and downward. The horizontal extension module is arranged atop the lift table to vertically move upward and downward along with the lift table, and can be driven to switch horizontally between a first state and a second state.
According to an operable embodiment of the present invention, the vertical lift module further includes a base located below the lift table and including a plurality of legs; a first locating sleeve and a second locating sleeve; a reduction unit provided on the base and including an upright rotational screw rod; a lift power unit connected to the reduction unit; a first fixing bar and a second fixing bar vertically downwardly inserted into the first locating sleeve and the second locating sleeve, respectively, so as to locate at two lateral outer sides of the rotational screw rod and be parallel to the rotational screw rod; and a lift support unit including a flange portion, a sleeve portion upward projected from a center of the flange portion, and a bore axially extended through the sleeve portion and the flange portion. The lift support unit is externally fitted around the rotational screw rod to move upward and downward on along the rotational screw rod.
According to an operable embodiment of the present invention, the lift table further includes a central hole, which extends through the lift table in a thickness direction thereof and is externally fitted around the sleeve portion of the lift support unit, enabling the lift table to be supported on the flange portion of the lift support unit; and a first and a second supporting arm, which are separately located at two lateral sides of the lift table. The first supporting arm has a first locating hole provided thereon for movably fitting around the first fixing bar; and the second supporting arm has a second locating hole provided thereon for movably fitting around the second fixing bar.
According to an operable embodiment of the present invention, the rotational screw rod is externally threaded to provide an external thread section, and the bore of the lift support unit is internally threaded to provide an internal thread section for meshing with the external thread section of the rotational screw rod.
According to an operable embodiment of the present invention, the horizontal extension module includes a first slide unit and a second slide unit, which are arranged atop the lift table, and are spaced from and parallel to each other; and a horizontal displacement unit, which is located between and connected to the first and the second slide unit to move horizontally. When the horizontal extension module is in the first state, the horizontal displacement unit brings the first and the second slide unit to move from a first position to a second position. And, when the horizontal extension module is in the second state, the horizontal displacement unit brings the first and the second slide unit to move from the second position back to the first position.
According to an operable embodiment of the present invention, the first slide unit includes a first case and a first slide. The first case is provided at an end with a first connection sleeve for movably fitting around the first fixing bar, and another end of the first case opposite to the first connection sleeve is an open end. The first slide is received in and slidable relative to the first case to be extendable from and retractable into the first case via the open end thereof. According to an operable embodiment of the present invention, the second slide unit includes a second case and a second slide. The second case is provided at an end with a second connection sleeve for movably fitting around the second fixing bar, and another end of the second case opposite to the second connection sleeve is an open end. The second slide is received in and slidable relative to the second case to be extendable from and retractable into the second case via the open end thereof.
According to an operable embodiment of the present invention, the horizontal displacement unit includes a first coupled section, a second coupled section, a first crossbar, a second crossbar, a scissor structure unit, and a horizontal power element. The first coupled section is connected to the first slide and the wheelchair main body. The second coupled section is connected to the second slide and the wheelchair main body. The first crossbar is connected at two opposite ends to the first case of the first slide unit and the second case of the second slide unit, respectively; and the second crossbar is connected at two opposite ends to the first coupled section and the second coupled section, respectively. The scissor structure unit is movably connected to between the first crossbar and the second crossbar, and includes a plurality of intersected first and second link bar sets that are pivotally connected end-to-end. The intersected first and second link bars in each set are pivotally connected to each other at a middle pivot point formed at middle points of the intersected first and second link bars. The scissor structure unit has a first outer side corresponding to the first crossbar and a second outer side corresponding to the second crossbar. The interested first and second link bars that form the first outer side and the intersected first and second link bars that form the second outer side of the scissor structure unit are movably connected at respective outer end to the first crossbar and the second crossbar, respectively, via a movable ring each. The horizontal power element is connected to the lift table of the vertical lift module and the first outer side of the scissor structure unit.
According to an operable embodiment of the present invention, the lift power unit is an electric motor and the horizontal power element can be an air cylinder or a hydraulic cylinder. The horizontal power element includes a barrel connected to the lift table and a piston rod connected to the middle pivot point of the intersected first and second link bars that form the first outer side of the scissor structure unit.
According to an operable embodiment of the present invention, the wheelchair main body includes a seat and back upholstery located above the movement assistive device.
According to an operable embodiment of the present invention, the wheelchair further includes a plurality of wheels. The wheels can be rotatably mounted to the bottom sides of the legs of the base of the vertical lift module, or to two lateral outer sides of the wheelchair main body.
According to an operable embodiment of the present invention, the vertical lift module further includes a manual operation unit connected to the reduction unit.
With the movement assistive device and the wheelchair equipped with same according to the present invention, the wheelchair user or operator can manipulate the wheelchair to move it vertically and horizontally in a much more convenient manner. Therefore, the wheelchair user and operator can overcome the inconvenience encountered by them at places that are not barrier-free for them.
The structure and the technical means adopted by the present invention to achieve the above and other objects can be best understood by referring to the following detailed description of the preferred embodiments and the accompanying drawings, wherein
The present invention will now be described with some preferred embodiments thereof and with reference to the accompanying drawings. For the purpose of easy to understand, elements that are the same in the preferred embodiments are denoted by the same reference numerals.
First, the structure of a movement assistive device 10 of the present invention is described in detail below. Please refer to
The reduction unit 218 is arranged on a top of the base 21 and includes an upright rotational screw rod 215, which is externally threaded to provide an external thread section 2151. The reduction unit 218 is a type of reduction gear for speed reduction, power transmission and torque increase. Generally speaking, the reduction unit 218 is an assembly of transmission parts, such as gears or worm screws, a shaft, bearings, a case, and other accessories. By meshing a fewer-teeth gear on an input shaft of the reduction unit 218 with a larger gear on an output shaft of the reduction unit 218, the rotational speed of an engine, an internal combustor, a motor or other high-speed rotating power can be reduced. The ratio of the small input gear's tooth number to the large output gear's tooth number, i.e. the gear ratio, is also the transmission ratio. In the illustrated preferred embodiment of the present invention, the input shaft (i.e. an input end) of the reduction unit 218 is connected to the lift power unit 214, and the output shaft (i.e. an output end) of the reduction unit 218 is the rotational screw rod 215.
The lift power unit 214 is preferably an electric motor but is not necessarily limited thereto. A manual operation unit 217 is connected to the input shaft, or the input end, of the reduction unit 218, allowing a user to manually actuate the rotational screw rod 215 of the reduction unit 218. The manual operation unit 217 is a backup design to be used when the lift power unit 214 runs out of power.
The first fixing bar 23 and the second fixing bar 24 are vertically downwardly inserted into the first locating sleeve 212 and the second locating sleeve 213, respectively, so as to locate at two lateral outer sides of the rotational screw rod 215 and be parallel to the latter.
The lift support unit 22 includes a flange portion 221, a sleeve portion 222 upward projected from a center of the flange portion 221, and a bore 223 axially extended through the sleeve portion 222 and the flange portion 221. The bore 223 is internally threaded to provide an internal thread section 2231 for meshing with the external thread section 2151 of the rotational screw rod 215. The lift support unit 22 is externally fitted around the rotational screw rod 215 with the internal thread section 2231 in the bore 223 meshed with the external thread section 2151 of the rotational screw rod 215. Therefore, when the rotational screw rod 215 is rotated, the lift support unit 22 is brought to move on along the rotational screw rod 215. That is, the lift support unit 22 is vertically straightly movable upward and downward on along the rotational screw rod 215.
The lift table 25 includes a central hole 253 that extends through the lift table 25 in a thickness direction thereof. The central hole 253 has an inner diameter larger than an outer diameter of the sleeve portion 222 of the lift support unit 22, so that the lift table 25 can be supported on the flange portion 221 of the lift support unit 22 with the central hole 253 externally fitted around the sleeve portion 222. That is, the lift table 25 has a bottom surface in contact with a top surface of the flange portion 221. Whereby, when the lift support unit 22 vertically straightly moves upward or downward on along the rotational screw rod 215, the lift table 25 is brought to move along with the lift support unit 22. A first supporting arm 251 and a second supporting arm 252 are located at two lateral sides of the lift table 25. The first supporting arm 251 has a first locating hole 2511 provided thereon for movably fitting around the first fixing bar 23, and the second supporting arm 252 has a second locating hole 2521 provided thereon for movably fitting around the second fixing bar 24, so as to ensure that the lift table 25 would not rotate while moving upward or downward.
The first slide unit 31 and the second slide unit 32 are arranged atop the lift table 25, as shown in
The horizontal displacement unit 33 includes a first coupled section 331 connected to the first slide 312, a second coupled section 332 connected to the second slide 322, a first crossbar 333, a second crossbar 334 parallel spaced from the first crossbar 333, a scissor structure unit 34, and a horizontal power element 35. The first crossbar 333 is connected at two opposite ends to the first case 311 of the first slide unit 31 and the second case 321 of the second slide unit 32, respectively. The second crossbar 334 is connected at two opposite ends to the first coupled section 331 and the second coupled section 332, respectively.
The scissor structure unit 34 is movably connected to between the first crossbar 333 and the second crossbar 334. The scissor structure unit 34 includes a plurality of sets of intersected first and second link bars 341, 342, and the intersected first and second link bar sets are pivotally connected end-to-end. The intersected first and second link bars 341, 342 in each set are pivotally connected to each other at a middle pivot point 343 formed at middle points of the intersected first and second link bars 341, 342. The scissor structure unit 34 has a first outer side corresponding to the first crossbar 333 and a second outer side corresponding to the second crossbar 334. The intersected first and second link bars 341, 342 that form the first outer side and the intersected first and second link bars 341, 342 that form the second outer side of the scissor structure unit 34 are movably connected at respective outer end to the first crossbar 333 and the second crossbar 334, respectively, via a movable ring 344 each, such that the outer ends of the intersected first and second link bars 341, 342 connected to the movable rings 344 can move along the first or the second crossbar 333, 334 toward or away from each other.
The horizontal power element 35 can be an air cylinder or a hydraulic cylinder, either power-operated or manually operated, and includes a barrel 351 connected to the lift table 25, and a piston rod 352 connected to the middle pivot point 343 of the intersected first and second link bars that form the first outer side of the scissor structure unit 34, as can be clearly seen in
As shown in
When the piston rod 352 of the horizontal power element 35 is pulled back into the barrel 351, it drives the sets of the intersected first and second link bars 341, 342 of the scissor structure unit 34 to turn about the middle pivot points 343 in the same plane, so that all the pivotally connected first and second link bars 341, 342 are moved back to the original folded position. Meanwhile, the movable rings 344 connecting the intersected first and second link bars 341, 342 to each of the first and the second crossbar 333, 334 also move away from each other on along the first and the second crossbar 333, 334. At this point, the second crossbar 334 is brought by the linearly folded scissor structure unit 34 to move in a direction toward the first crossbar 333, so that the distance between the first and the second crossbar 333, 334 is shortened. Meanwhile, the second crossbar 334 brings the first and the second coupled section 331, 332 connected thereto to horizontally move along with it in the same direction. Further, the first slide 312 of the first slide unit 31 and the second slide 322 of the second slide unit 32 are also brought by the first and the second coupled section 331, 332, respectively, to slide from the second position, i.e. the extended position beyond the open end of the first and the second slide unit 31, 32, to the first position, i.e. the retracted position in the first and the second case 311, 321, as shown in
A wheelchair equipped with movement assistive device according to the present invention is described in detail below.
The movement assistive device 10 is the device having been described in previous paragraphs with reference to
The wheelchair 40 of the present invention of
The operation of the wheelchair equipped with movement assistive device is now described in detail as below. Please refer to
As shown in
As shown in
As shown in
Then, as shown in
Finally, as shown in
An example of moving the wheelchair 40 equipped with the movement assistive device 10 onto and off a carrier 50 is described in detail as below. Please refer to
Please refer to
Please refer to
According to the present invention, the movement assistive device 10 can be removably assembled to the wheelchair 40 completely depending on the user's actual need in use. In other words, the movement assistive device 10 can be freely disassembled from the wheelchair 40. When the wheelchair user uses the wheelchair 40 outdoors without the need of getting on or off a vehicle, the movement assistive device 10 can be optionally removed from the wheelchair 40 simply in a manual manner and uses the wheelchair 40 alone. Further, in addition to the wheelchair, the movement assistive device 10 can also be used with other types of apparatuses.
According to the present invention, different units and/or elements of the movement assistive device 10 can be assembled together by welding, riveting, screw-fastening or any other functionally similar connection means.
The present invention has been described with some preferred embodiments thereof and it is understood that many changes and modifications in the described embodiments can be carried out without departing from the scope and the spirit of the invention that is intended to be limited only by the appended claims.
Number | Date | Country | Kind |
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102201121 | Jan 2013 | TW | national |