HORIZONTAL LINEAR VIBRATION MOTOR
20170373575 · 2017-12-28
Inventors
Cpc classification
H02K33/00
ELECTRICITY
F16F1/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A horizontal linear vibration motor for securing the straightness of a coil spring and preventing a driving unit, such as a mass body, from axially rotating around the axis of a shaft within a housing due to the rotational property of the coil spring by providing a coil and a magnet for generating a force that enables the reciprocating motion of the driving unit including the mass body and an anti-rotation member provided in the driving unit to slide and come into contact with the housing.
Claims
1. A horizontal linear vibration motor comprising: a housing (2) configured to have an internal space; a main shaft (4) fixed to the housing (2); a driving unit (3) configured to comprise a mass body (31) capable of driving through the main shaft (4); an anti-rotation member (21) provided within the housing (2); a coil (5) and magnet (6) disposed at locations facing each other within the housing (2) and supplied with external power to generate a force that enables the driving unit (3) to perform a reciprocating motion; and one or more elastic members (7) disposed between the housing (2) and the driving unit (3) to transfer vibration.
2. The horizontal linear vibration motor of claim 1, wherein: the anti-rotation member (21) comprises a hollow part (211), and one side of the mass body (31) is inserted into the hollow part (211).
3. The horizontal linear vibration motor of claim 2, wherein: the anti-rotation member (21) comprises a main body (212) and at least one protrusion part (213) provided on one side of the main body (212), and the anti-rotation member (21) is included in the driving unit (3) and driven along with the mass body (31).
4. The horizontal linear vibration motor of claim 1, wherein the driving unit (3) further comprises a guide shaft (32) connected to one side of the mass body (31) to slide and come into contact with the anti-rotation member (21).
5. The horizontal linear vibration motor of claim 4, wherein: the anti-rotation member (21) is fixed with the housing (2) and comes into contact with the housing (2), the anti-rotation member (21) comprises a hollow part (211), and a guide shaft (32) is disposed within the housing (2) through the hollow part (211) of the anti-rotation member (21) separately from the main shaft (4).
6. The horizontal linear vibration motor of claim 5, wherein a longitudinal section of the hollow part (211) comprises any one of a rectangle, a circle and an oval.
7. The horizontal linear vibration motor of claim 3, further comprising a slide film (8) provided in a gap between the anti-rotation member (21) and the housing (2).
8. The horizontal linear vibration motor of claim 1, further comprising magnet yokes (9) disposed at ends of the magnet (6) or the coil (5).
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
DETAILED DESCRIPTION
[0026] Hereinafter, in this specification, the contents of the present invention will be described in detail in connection with some exemplary embodiments, with reference to the accompanying drawings. It is to be noted that in assigning reference numerals to elements in the drawings, the same reference numerals denote the same elements throughout the drawings even in cases where the elements are shown in different drawings. Furthermore, in describing the embodiments of the present invention, a detailed description of the known functions and constitutions will be omitted if it is deemed to make the gist of the present invention unnecessarily vague.
[0027] Furthermore, in describing the elements of this specification, terms, such as the first, the second, A, B, (a), and (b), may be used. However, although the terms are used only to distinguish one element from the other element, the essence, order, or sequence of the elements is not limited by the terms. When it is said that one element is “connected”, “combined”, or “coupled” to the other element, the one element may be directly connected or coupled” to the other element, but it should also be understood that a third element may be “connected”, “combined”, or “coupled” between the two elements.
[0028]
[0029] Referring to
[0030] Coil type springs are disposed on both sides of the driving unit.
[0031] Accordingly, if straightness is secured, but the characteristics of the coil type spring having a rotational property are taken into consideration, there is a need for an efficient anti-rotation member for preventing the rotation of the driving unit incidental to the coil type spring.
[0032] In an embodiment of the present invention, the anti-rotation member 21 is coupled to the mass body 31 in order to prevent the entire driving unit 3 including the mass body from rotating within the housing 2.
[0033]
[0034] As shown in
[0035] More specifically, the anti-rotation member 21 includes a main body 212 and at least one protrusion part 213 provided on one side of the main body 212. Accordingly, the anti-rotation member 21 is included in the driving unit 3 and can be driven along with the mass body 31.
[0036] The protrusion part 213 does not need to be essentially hemispherical. The protrusion part is coupled to a slide film within the housing 2 to prevent the entire driving unit 3, including the anti-rotation member 21, from rotating.
[0037]
[0038] Referring to
[0039] Through such a structure, the mass body 31 can be coupled to the anti-rotation member without adding a separate element to the mass body.
[0040]
[0041] From
[0042] The driving unit 3 may further include a guide shaft 32 connected to one side of the mass body 31 to slide and come into contact with the anti-rotation member 21.
[0043] Furthermore, the anti-rotation member 21 is fixed within the housing 2 and comes into contact therewith. The anti-rotation member 21 includes the hollow part 211. The guide shaft 32 may be disposed within the housing 2 through the hollow part 211 of the anti-rotation member 21 separately from the main shaft 4.
[0044] As shown in (a) of
[0045]
[0046] Referring to
[0047] Furthermore, referring back to
[0048] The slide film is provided in the gap between the anti-rotation member 21 and the housing 2, thus being capable of helping the coil type spring a smoother straight motion.
[0049] Additionally, referring to
[0050] According to the present invention, the coil and magnet for generating a force that enables the reciprocating motion of the driving unit including the mass body, and the anti-rotation member is provided in the driving unit to slide and come into contact with the housing. Accordingly, there are advantages in that the straightness of the coil spring can be secured and the driving unit, such as the mass body, can be prevented from axially rotating around the axis of the shaft within the housing due to the rotational property of the coil spring.
[0051] Although the present invention has been described above, a person having ordinary skill in the art to which the present invention pertains will recognize that the present invention may be implemented in other forms while maintaining the technical spirit and essential characteristics of the present invention.
[0052] Accordingly, the aforementioned embodiments are merely illustrative and are not intended to restrict the scope of the present invention to the aforementioned embodiments only. Furthermore, the illustrated flowcharts are only sequences illustrated to obtain the most preferred results in implementing the present invention, and other steps may be added to the flowcharts or some steps may be omitted from the flowcharts.
[0053] The scope of the present invention will be defined by the claims, but it is to be construed that all of changes or modified forms derived from an element directly derived from the writing of the claims and an equivalent element thereof belong to the scope of right of the present invention.