Remote control device movable structure
10054975 ยท 2018-08-21
Assignee
Inventors
Cpc classification
G06F3/0338
PHYSICS
Y10T74/20732
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
G05G2009/04766
PHYSICS
G05G1/02
PHYSICS
G05G9/047
PHYSICS
International classification
G05G1/02
PHYSICS
G06F3/0338
PHYSICS
G06F3/0354
PHYSICS
Abstract
A sliding portion of a slider slides on a sliding surface of a base. This slider is biased toward the base by a stabilizer formed by an elastic, small-diameter, rod-shaped member. Specifically, the stabilizer is formed by a center portion, a link portion, a spring portion, and an abutting portion. When the abutting portion abuts an abutting recess of a cover attached over the slider to be biased toward the base, the spring portion plastically deforms about an arc portion. Due to a resulting reaction force, a pressing portion formed by the center portion biases the sliding portion of the slider toward the base. Accordingly, play may be suppressed with a small number of components.
Claims
1. A remote control device movable structure, comprising: a base having a sliding surface at an upper portion thereof; a slider including a sliding portion that abuts the sliding surface of the base, and a fitting portion that stands on the sliding surface and fits together with a shaft protruding from the base; a cover attached over the slider to allow the fitting portion to protrude; and a stabilizer formed by an elastic, rod-shaped member, wherein the stabilizer includes an abutting portion that abuts the cover while being biased by the cover, a spring portion that is connected to the abutting portion, the spring portion elastically deforming due to a bias applied by the cover to the abutting portion, and a pressing portion that is connected to the spring portion, the pressing portion biasing the slider toward the base due to a reaction force resulting from the elastic deformation of the spring portion, wherein each of the abutting portion and the pressing portion has a longitudinal axis, and the longitudinal axis of the abutting portion and the longitudinal axis of the pressing portion are coaxial, the spring portion is formed in a U-shape and extends orthogonally to the longitudinal axis of the abutting portion and the longitudinal axis of the pressing portion, and the abutting portion is spaced apart from the pressing portion in the direction of the longitudinal axis of the pressing portion.
2. A remote control device movable structure, comprising: a base having a sliding surface at an upper portion thereof; a slider including a sliding portion that abuts the sliding surface of the base, and a fitting portion that stands on the sliding surface and fits together with a shaft protruding from the base; a cover attached over the slider to allow the fitting portion to protrude; and a stabilizer formed by an elastic, rod-shaped member, wherein the stabilizer includes an abutting portion that abuts the cover while being biased by the cover, a spring portion that is connected to the abutting portion, the spring portion elastically deforming due to a bias applied by the cover to the abutting portion, and a pressing portion that is connected to the spring portion, the pressing portion biasing the slider toward the base due to a reaction force resulting from the elastic deformation of the spring portion, wherein each of the abutting portion and the pressing portion has a longitudinal axis, and the longitudinal axis of the abutting portion and the longitudinal axis of the pressing portion are coaxial, the spring portion is formed in a U-shape and extends orthogonally to the longitudinal axis of the abutting portion and the longitudinal axis of the pressing portion, the pressing portion is shaped as a straight line traversing a top surface of the sliding portion in a first direction, the elastic, rod-shaped member is a first elastic, rod-shaped member, the stabilizer is a first stabilizer, the abutting portion is a first abutting portion, the spring portion is a first spring portion and the pressing portion is a first pressing portion, the remote control device includes a second stabilizer, which is formed by a second elastic, rod-shaped member, wherein the second stabilizer includes: a second abutting portion that abuts the cover while being biased by the cover, a second spring portion that is connected to the abutting portion, the second spring portion elastically deforming due to a bias applied by the cover to the second abutting portion, and a second pressing portion that is connected to the second spring portion, the second pressing portion biasing the slider toward the base due to a reaction force resulting from the elastic deformation of the second spring portion, and the first and second stabilizers are arranged such that the first and second pressing portions are respectively positioned on the top surface of each of two opposite ends of the sliding portion, and the two opposite ends are separated from one another along a second direction, which is orthogonal to the first direction.
3. The remote control device movable structure of claim 2, wherein the pressing portion is fitted together with a groove formed on the top surface of the sliding portion.
4. The remote control device movable structure of claim 3, wherein when the sliding portion moves in the first direction, the pressing portion slides along the groove in an inner portion of the groove.
5. The remote control device movable structure of claim 3, wherein when the sliding portion slides in the second direction, which is orthogonal to the first direction, the pressing portion moves, as a result of the stabilizer tilting, in the second direction without height change.
6. The remote control device movable structure of claim 2, wherein the stabilizer has a longitudinal axis, and the abutting portion, the pressing portion and the spring portion are spaced apart from one another in the direction of the longitudinal axis of the stabilizer.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
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EMBODIMENTS FOR CARRYING OUT INVENTION
(6) Hereinafter, a first embodiment of the present disclosure will be explained with reference to the drawings.
(7) As shown in
(8) The base 10 is resin molded and is substantially rectangular solid shaped. Further, as shown in
(9) As shown in
(10) Further, as shown in
(11) As shown in
(12) The stabilizer 30 is disposed along the X direction on the sliding surfaces 10a of the base 10. As shown in
(13) The stabilizer 30 is arranged so that the link portions 32 are housed within the fitting grooves 12a formed by the contact portions 12 of the base 10 (see
(14) The cover 40 is a thin plate and is a box member with an open bottom. As shown in
(15) The knob 50 has a rounded top, and is substantially rectangular shaped when viewed from the top. The knob 50 is attached to an upper end of the cylindrical portion 23 of the slider 20.
(16) When the knob 50 is moved in the X direction, since the pressing portion 31a is weakly fit together with the grooves 21a of the sliding portion 21, this pressing portion 31a slides within the grooves 21a. As a result, the slider 20 moves in the X direction.
(17) When the knob 50 is moved in the Y direction, the pressing portion 31a of the stabilizer 30 moves in the Y direction. At this time, this pressing portion 31a is weakly fit together with the grooves 21a of the sliding portion 21. Further, the link portions 32 of the stabilizer 30 are housed in the fitting grooves 12a of the base 10. The link portions 32 are restricted from moving in the Y direction, and are freely movable in the Z direction. Accordingly, as shown in
(18) Next, effects of the movable structure 1 will be explained.
(19) Further, for easy understanding of this explanation, a movable structure of a reference example will be explained with reference to
(20) As shown in
(21) Further, as shown in
(22) Conversely, in the present embodiment, the sliding portion 21 of the slider 20 slides on the sliding surfaces 10a formed on top of the base 10. Then, the slider 20 is biased toward the base 10 by the stabilizer 30 which is formed by a small-diameter, rod-shaped, elastic member. Specifically, the stabilizer 30 is formed by the center portion 31, the link portions 32, the spring portions 33, and the abutting portions 34. Then, the abutting portions 34 are biased toward the base 10 by abutting the abutting recesses 40a of the cover 40, which is attached over the slider 20. Consequently, the spring portions 33 elastically deform about the arc portions 33a. Due to a reaction force resulting from the elastic deformation by the spring portions 33, the sliding portion 21 of the slider 20 is biased toward the base 10 by the pressing portion 31a formed by the center portion 31.
(23) In other words, by interposing a single component (i.e., the stabilizer 30) between the cover 40 and the slider 20, the slider 20 is pressed down toward the base 10. Accordingly, with a small number of components, play can be suppressed in the pitch direction about the X axis and the roll direction about the Y axis.
(24) Further, in the present embodiment, the two ends of the sliding portion 21 of the slider 20 are positioned within the substantially U-shaped center portion 31. Then, the pressing portion 31a, which is formed by the center portion 31, traverses the sliding portion 21 in the X direction. In other words, the pressing portion 31a is shaped as a straight line traversing the top surface of the sliding portion 21 in a first direction (the X direction). Accordingly, sufficient biasing force may be obtained from one stabilizer 30.
(25) In the present embodiment, the slider 20 is biased toward the base 10 by two stabilizers 30. In other words, two stabilizers 30 are provided such that a respective pressing portion 31a is positioned on the surface of each end of the sliding portion 21 in a second direction (the Y direction) orthogonal to the first direction (the X direction). Accordingly, with a smaller number of components, play can be suppressed in the pitch direction about the X axis and the roll direction about the Y axis.
(26) Even further, in the present embodiment, the stabilizer 30 is arranged so that the pressing portion 31a is weakly fit together with the grooves 21a of the sliding portion 21 (see
(27) Further, in the present embodiment, when the knob 50 is moved in the X direction, the pressing portion 31a of the stabilizer 30 is weakly fit together with the grooves 21a of the sliding portion 21. Accordingly, the pressing portion 31a slides within the grooves 21a, and the slider 20 moves in the X direction. In other words, when the sliding portion 21 moves in the first direction (the X direction), the pressing portion 31a slides in the grooves 21a along an inner portion of the grooves 21a. Accordingly, movement operation in the X direction becomes smooth.
(28) Even further, in the present embodiment, when the knob 50 is moved in the Y direction, the pressing portion 31a of the stabilizer 30 moves in the Y direction. At this time, as shown in
(29) At this time, the pressing portion 31a and the abutting portions 34 are positioned coaxially (i.e., on the same straight line). In other words, the abutting portions 34 are formed, via the spring portions 33, coaxially with the pressing portion 31a. Accordingly, the abutting recesses 40a of the cover 40 bias the abutting portions 34 with a fixed biasing force, and as a result, biasing force against the slider 20 does not change. Due to this point as well, movement operation of the knob 50 in the Y direction becomes smooth.
(30) The present disclosure is not intended to be limited to the above described embodiment(s), and a variety of embodiments are contemplated given these embodiments do not depart form the technical scope of the present disclosure.