This application claims priority of Taiwanese Application No. 102221061, filed on Nov. 11, 2013.
The disclosure relates to a shifting device, and more particularly to a controller shifting device for a powered wheelchair.
Powered wheelchairs are primary transportation tools for disabled persons. In order to conveniently control a powered wheelchair, a controller is mounted to an armrest of the powered wheelchair, and includes a standing operating lever for direction and speed control. In general, the controller is placed in front of the armrest such that a user can lay his/her arm on the armrest when controlling the standing operating lever. To prevent inadvertent operation of the controller from causing an accident when use of the controller is not needed, the controller is made to be rearward pivotable so as to be placed beside the armrest. However, the current controller is limited to horizontal rearward and forward shifting relative to the armrest. As such, the standing operating lever still protrudes from the armrest when the controller is pivotably disposed beside the armrest. As a result, inadvertent operation of the controller may still occur due to careless touch by the user's arm.
Therefore, an object of the present disclosure is to provide a controller shifting device that can alleviate at least one of the aforesaid drawbacks of the prior art.
According to the present disclosure, a controller shifting device for interconnecting an armrest and a controller of a powered wheelchair includes an adjustment mechanism including a casing, a first connection seat and a second connection seat.
The first connection seat is adapted to be secured to a bottom side of the armrest.
The casing has two opposite first and second end portions and is connected pivotally to the first connection seat in an inclined manner relative to the armrest.
The second connection seat is connected to the second end portion for installation of the controller.
In operation, the first connection seat has a first shaft that extends upward relative to the casing from the first end portion and a first mount body that is secured to and extends upwardly and obliquely relative to said casing from the first shaft for connection with the armrest. The casing is rotatable about the first shaft together with the second connection seat between an operating position where the second connection seat is situated in front of the armrest, and a folded position where the second connection seat is situated at one side of the armrest. One of the first and second end portions extends upward and forward relative to the armrest when the casing is in the operating position or in the folded position.
When the casing revolves rearward from the operating position to the folded position, the casing extends downward and rearward relative to the armrest from the first end portion to the second end portion to descend a top end of the second connection seat to a level lower than a top end of the first mount body, thereby placing the controller below the arm rest.
Other features and advantages of the present disclosure will become apparent in the following detailed description of the embodiment with reference to the accompanying drawings, of which:
Referring to
The controller shifting device includes an adjustment mechanism 3 and a transmission mechanism 4. In this disclosure, the adjustment mechanism 3 includes a first connection seat 31 that is adapted to be secured to a bottom side of the armrest 901, a casing 32 that has two opposite first and second end portions 322, 323 and that is connected pivotally to the first connection seat 31 in an inclined manner relative to the armrest 901, and a second connection seat 33 that is connected to the second end portion 323 for installation of the controller 902. In addition, the casing 32 is composed of upper and lower covers 321, 321′. The upper and lower covers 321, 321′ cooperatively define the first and second end portions 322, 323 of the casing 32.
In this embodiment, the first connection seat 31 has a first shaft 311 that extends upward relative to the casing 32 from the first end portion 322, and a first mount body 312 that is secured to and extends upwardly and obliquely relative to the casing 32 from the first shaft 311 and that has a top surface for connection with the bottom side of the armrest 901. The second connection seat 33 has a second shaft 331 that extends upward relative to the casing 32 from the second end portion 323 of the casing 32 and that is substantially parallel with the first shaft 311, and a second mount body 332 that is secured to the second shaft 331 for installation of the controller 902 on top thereof. Specifically, the second mount body 332 extends upwardly and obliquely relative to the casing 32 from the second shaft 331. The first shaft 311 is substantially perpendicular to the first end portion 322.
In this embodiment, after the adjustment mechanism 3 is installed on the armrest 901 and the controller 902 is to be operated by the user (see
In this embodiment, the casing 32 is rotatable about the first shaft 311 together with the second connection seat 33 between an operating position where the second connection seat 33 is situated in front of the armrest 901, and a folded position where the second connection seat 33 is situated at one side of the armrest 901. One of the first and second end portions 322, 323 extends upward and forward when the casing 32 is in the operating position or in the folded position. As shown in
As shown in
With reference to
In this embodiment, the transmission member 43 is exemplified by a drive chain. However, in actual implementation, the transmission member 43 may be, for instance, a gear unit that is transmissively meshed with the first gear 41 and the second gear 42, or a mechanical power transmission component. It should be noted that the structure and shape of the transmission member 43 is not limited to this disclosure.
With reference to
In this embodiment, the positioning member 44 is provided with a notch 440 on a periphery thereof. The engagement unit 45 includes a base seat 451 that is mounted fixedly inside the casing 32, an engagement protrusion 452 that is movably mounted inside, and a resilient member 453 that is mounted inside the base seat 451 and that urges the engagement protrusion 452 to protrude outwardly of the base seat 451 to releasably engage the notch 440. Preferably, the engagement protrusion 452 has a cone shape, and is provided with a cone tip portion tapered in a direction out from the base seat 451 to extend into the notch 440.
In this embodiment, when the casing 32 is in the operating position, the notch 440 of the positioning member 44 faces the engagement unit 45, and thus, the cone tip portion of the engagement protrusion 452 of the engagement unit 45 is partially inserted into and positioned in the notch 440. Accordingly, when the powered wheelchair 900 is in use, the controller 902 is securely positioned in front of the armrest 901 to prevent wobbling thereof.
When the casing 32 is required to be rotated from the operating position to the folded position, only a slight force is required to act on the second end portion 323 of the casing 32, such that the positioning member 44 is caused to push the cone tip portion of the engagement protrusion 452, thereby retracting the engagement protrusion 452 into the base seat 451. Accordingly, the engagement protrusion 452 is released from the notch 440 of the positioning member 44, and the second connection seat 33 is rotatable relative to the casing 32. Since the first shaft 311 is perpendicular to the first end portion 322 and is obliquely connected to the armrest 901, the second end portion 323 is lower than the first end portion 322 when the casing 32 is in the operating position. As the engagement protrusion 452 is released from the notch 440 of the positioning member 44, the second connection seat 33 and the controller 902 have a tendency to rotate together with the second end portion 323 of the casing 32 about the first shaft 311 to the one side of the armrest 901 due to gravity action. As such, the second connection seat 33 revolves at the one side of the armrest 901 in a descending manner relative to the first connection seat 31 to eventually bring the controller 902 to be lower than the armrest 901. That is to say, when the casing 32 is rotated about the first shaft 311 between the folded position and the operating position, the transmission mechanism 4 is driven by the rotation of the casing 32 to actuate relative rotation between the second connection seat 33 and the casing 32 for maintaining the constant forward orientation of the controller 902 to prevent confusing steering directions that would otherwise be caused if the orientation of the controller 902 changes with the changing of the position of the casing 32.
In this embodiment, by the engagement protrusion 452 resiliently and releasably inserted into the notch 440 of the positioning member 44, the engagement unit 45 is releasably engaged with and immobilizes the positioning member 44 so as to position the casing 32 in the operating position relative to the first connection seat 31. Since arrangements of the releasable engagement between the engagement unit 45 and the positioning member 44 may vary, the positioning structure between the engagement unit 45 and the positioning member 44 is not limited to this disclosure.
To sum up, by virtue of an oblique arrangement of the first shaft 311 and the second mount body 332, after the first connection seat 31 is connected to the armrest 901, the casing 32 remains oblique relative to the armrest 901 regardless of whether the casing 32 is in the operating or in the folded position. When rotating the casing 32 to the folded position, the second connection seat 33 is driven to rotate, bringing together the controller 902, relative to the casing 32. When the casing 32 is in the folded position, since the controller 902 is entirely lower than the armrest 901, a user is prevented from inadvertently contacting the operating lever 903 of the controller 902, thereby enhancing safety of the powered wheelchair 900 in use. Furthermore, by virtue of cooperation between the positioning member 44 and the engagement unit 45, the controller 902 is securely positioned in front of the armrest 901 to prevent wobbling thereof relative to the armrest 901 when the casing 32 is in the operating position. In addition, by virtue of the transmission mechanism 4 to actuate relative rotation between the second connection seat 33 and the casing 32, the constant forward-pointing orientation of the controller 902 is remained when the casing 32 is rotated to the folded position, thereby enhancing convenient operation of the controller 902.
While the present disclosure has been described in connection with what is considered the most practical embodiment, it is understood that this disclosure is not limited to the disclosed embodiment but is intended to cover various arrangements included within the spirit and scope of the broadest interpretation so as to encompass all such modifications and equivalent arrangements.
Number | Date | Country | Kind |
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102221061 U | Nov 2013 | TW | national |
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Number | Date | Country | |
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20150128751 A1 | May 2015 | US |