Linear vibration generating device
10381910 ยท 2019-08-13
Assignee
Inventors
- SOON KOO SHIM (Chungcheongbuk-do, KR)
- YOUNG BIN CHONG (Chungcheongbuk-do, KR)
- Chun Choi (Chungcheongbuk-do, KR)
- WON GOOK LEE (Chungcheongbuk-do, KR)
- MIN GOO LEE (Chungcheongbuk-do, KR)
Cpc classification
International classification
H02K33/00
ELECTRICITY
H02K33/02
ELECTRICITY
Abstract
A linear vibration generating device, which includes a stator fixed on a bracket and having a center yoke concentrically fixed in an inner space of coil winding units and at least one blade extending from the center yoke in a direction perpendicular to the concentric axis, and a vibrator having a magnet surrounding outer circumferences of the coil winding units, and an elastic body disposed between the stator and the vibrator. The blade has at least one passage through which a coil wire for electrically connecting the coil winding units passes.
Claims
1. A linear vibration generating device, comprising: a stator fixed on a bracket and having a center yoke concentrically fixed in an inner space of coil winding units and at least one blade extending from the center yoke in a direction perpendicular to the concentric axis; a vibrator having a magnet surrounding outer circumferences of the coil winding units; and an elastic body disposed between the bracket and the vibrator to support a vibration of the vibrator, wherein the blade has at least one passage through which a coil wire for electrically connecting the coil winding units passes, and wherein the passage is formed with a passing groove.
2. The linear vibration generating device according to claim 1, wherein the blade is formed integrally with the center yoke, and the passage is formed to extend from a body of the center yoke or to be spaced apart from the body.
3. The linear vibration generating device according to claim 1, wherein the coil winding units are composed of first and second coil winding units, and wherein the first and second coil winding units are wound in opposite directions.
4. The linear vibration generating device according to claim 3, wherein the first and second coil winding units have winding numbers or heights symmetric to each other.
5. The linear vibration generating device according to claim 3, wherein the first and second coil winding units have winding numbers or heights asymmetric from each other.
6. The linear vibration generating device according to claim 1, wherein the blade includes first and second blades.
7. The linear vibration generating device according to claim 6, wherein the blade further includes a third blade.
8. The linear vibration generating device according to claim 2, wherein the blade is provided at a center of the body.
9. The linear vibration generating device according to claim 7, wherein the blade has a size equal to or smaller than an outer diameter of the coil winding units or greater than the outer diameter.
10. The linear vibration generating device according to claim 1, wherein a case is further provided above the bracket to form an internal mounting space.
11. The linear vibration generating device according to claim 1, wherein the elastic body is disposed between the case and the vibrator.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DETAILED DESCRIPTION
(16) A best mode of the present disclosure is directed to a linear vibration generating device, which includes a stator fixed on a bracket and having a center yoke concentrically fixed in an inner space of coil winding units and at least one blade extending from the center yoke in a direction perpendicular to the concentric axis; a vibrator having a magnet surrounding outer circumferences of the coil winding units; and an elastic body disposed between the stator and the vibrator, wherein the blade has at least one passage through which a coil wire for electrically connecting the coil winding units passes.
(17) Electronic equipment (not shown) having a linear vibration generating device according to various embodiments of the present disclosure will be described. First, the electronic equipment according to the embodiment of the present disclosure may include all kinds of mobile communication terminals operating based on communication protocols corresponding to various communication systems, as well as all kinds of information communication devices, multimedia devices and application devices therefor such as a video telephone, an e-book reader, a laptop personal computer, a netbook computer, a personal digital assistant (PDA), a portable multimedia player (PMP), an MPEG-1 audio layer-3 (MP3) player, a mobile medical device, a camera or a wearable device (for example, a head-mounted device (HMD), an electronic apparel, an electronic bracelet, an electronic necklace, an electronic accessory, an electronic tattoo, or a smart watch).
(18) According to some embodiments, the electronic equipment (not shown) having a linear vibration generating device may be a smart home appliance. The smart home appliance may include at least one of, for example, a television, a digital video disk (DVD) player, an audio, a refrigerator, an air conditioner, a cleaner, an oven, a microwave, a washing machine, an air cleaner, a set-top box, a TV box (for example, Samsung HomeSync, Apple TV, or Google TV), a game console, an electronic dictionary, an electronic key, a camcorder, and an electronic photo frame.
(19) According to some embodiments, the electronic equipment (not shown) having a linear vibration generating device may include at least one of various medical devices (for example, magnetic resonance angiography (MRA), magnetic resonance imaging (MRI), computed tomography (CT), tomograph, ultrasonic devices, or the like), a navigation device, a global positioning system (GPS) receiver, an event data recorder (EDR), a flight data recorder (FDR), an automotive infotainment device, a marine electronic device (for example, a marine navigation device, a gyro compass or the like), avionics, a security device, a car head unit, an industrial or home robot, an automatic teller's machines (ATM), and a point of sale (POS) at a shop.
(20) According to some embodiments, the electronic equipment (not shown) may include at least one of a part of furniture or building/structure having a communication function, an electronic board, an electronic signature receiving device, a projector, and various measuring instruments (for example, water, electricity, gas or radio wave measuring instruments, or the like).
(21) According to various embodiments of the present disclosure, the electronic equipment (not shown) may be one of various devices described above or a combination thereof. In addition, the electronic equipment according to various embodiments of the present disclosure may be a flexible device. Moreover, it is be apparent to those skilled in the art that the electronic equipment according to various embodiments of the present disclosure is not limited to the devices described above.
(22) For example, the electronic equipment may be a smart phone or a wearable device. A touch screen may be disposed at a front center of the electronic equipment, and the touch screen may occupy most of the front surface of the electronic equipment. Thus, a linear vibration generating device is used to generate vibration when the touch screen is touched.
(23) In other words, the linear vibration generating device is a component that converts electrical energy into mechanical vibration by using the electromagnetic force generating principle, and the linear vibration generating device is mounted to portable electronic equipment and is used for silently notifying any input or generating vibration when the touch screen is touched.
(24) The linear vibration generating device applied to the electronic equipment according to various embodiments of the present disclosure may be provided with a smaller and slimmer design according to the trend of market demanding a smaller and slimmer design of portable electronic equipment, and also the linear vibration generating device may be produced efficiently.
(25)
(26) Referring to
(27) The center yoke 40 includes a body 41 and an at least one blade 42, and the blades 42 may be provided to extend in an outer direction of the body 41 so that the coil winding units 30 may be disposed thereon to face the blades 42.
(28) For example, the blades are formed integrally with the center yoke, and a passage extends from a body of the center yoke. The coil winding unit 30 is composed of first and second coil winding units 31, 32, where the first coil winding unit 31 may be disposed at one surface of the blade 42 and the second coil winding unit 32 may be disposed at the other surface of the blade 42.
(29) The first and second coil winding units 31, 32 are disposed at upper and lower sides of the blades 42 and simultaneously face the blades 42.
(30) The first and second coil winding units 31, 32 may be wound in opposite directions.
(31) The first and second coil winding units 31, 32 may have winding numbers or heights symmetrically or asymmetrically. More specifically, as shown in
(32) If the center of the linear vibration generating device and the center of the vibrator (or, the magnet) are dislocated as shown in
(33) That is, if the magnet 71 is positioned above the center of the vibrator 70 when the linear vibration generating device 10 is in a stop state as shown in
(34) On the contrary, if the magnet 71 is positioned below the center of the vibrator 70 when the linear vibration generating device 10 is in a stop state as shown in
(35) In other words, in the present disclosure, as shown in
(36) In addition, seeing the blade in more detail, as shown in
(37) The body 41 may be a cylindrical body 41 so as to be inserted into and disposed within the coil winding units 30. The body 41 may have other shapes, different from the cylindrical body 41. For example, the body 41 may be a rectangular body 41 or a triangular body 41. However, the body is preferably shaped to correspond to an inner circumferential shape of the section of the magnet 71 surrounding the body.
(38) The elastic body 80 may be disposed between the bracket 20 and the magnet 71 to surround the outside of the coil winding units 30. In other words, one end of the elastic body 80 is provided at a lower portion of the vibrator 70, and the other end of the elastic body 80 is provided at the bracket 20, thereby supporting the vibration of the vibrator 70.
(39) As described above, the blade 42 is integrally formed at the body 41 of the center yoke 40, the first and second coil winding units 31, 32 are disposed at the upper and lower portions of the blade 42, and the passage 42a for allowing the coil wire (not shown) of the coil winding units 30 to pass therethrough is formed. By doing so, a current may be easily applied to the coil winding unit 30, and thus it is possible to greatly generate an electromagnetic force according to the interaction between the coil winding unit 30 and the magnet 71, thereby generating a vibrating force sufficiently at the product.
(40) In other words, as shown in
(41) In addition,
(42) First, as shown in
(43) The first blade 101 protrude at the center of the body 41, and the second blade 102 protrudes at a top end of the body 41 to be spaced apart from the first blade 101.
(44) As shown in
(45) The first coil winding unit 31 is provided between the first and second blades 101, 102, and the second coil winding unit 32 is provided at the lower surface of the first blade 102 so that the first and second coil winding units 31, 32 face each other.
(46) In this state, if a current is applied to the first and second coil winding units 31, 32, a magnetic field may be induced around the first and second coil winding units 31, 32. At this time, an electromagnetic force is generated through the first and second coil winding units 31, 32, the magnet 71 forms a magnetic flux is formed to pass the first and second coil winding units 31, 32 in a lateral direction, and the magnetic field generated by the first and second coil winding units 31, 32 is formed in a vertical direction so that the vibrator 70 vibrates up and down. The direction of the magnetic flux of the magnet 71 is perpendicular to the vibrating direction of the vibrator 70. Thus, the vibrator 70 generates vibration in an up and down direction.
(47) In addition,
(48) First, as shown in
(49) The first blade 201 protrude at the center of the body 41, and the second blade 202 protrudes at a bottom end of the body 41 to be spaced apart from the first blade 101.
(50) As shown in
(51) The second coil winding unit 32 is provided between the first and second blades 201, 202, and the second coil winding unit 32 is provided at the upper surface of the second blade 202 so that the first and second coil winding units 31, 32 face each other.
(52) In this state, the operations of the first and second coil winding units 31, 32 and the magnet 71 are identical to those of the first and second coil winding units 31, 32 and the magnet 71 depicted in
(53) In addition,
(54) First, as shown in
(55) As shown in
(56) The first coil winding unit 31 is provided between the first and second blades 301, 302, and the second coil winding unit 32 is provided between the first and third blades 301, 303. In other words, the first and second coil winding units 31, 32 are provided between the first blade 301 and the second blade 302 and between the second blade 302 and the third blade 303 to face each other.
(57) In this state, the operations of the first and second coil winding units 31, 32 and the magnet 71 are identical to those of the first and second coil winding units 31, 32 and the magnet 71 depicted in
(58) Here, referring to
(59) In this state, the lower anti-collision member 93 and the substrate 94 are provided at an upper portion of the bracket 20, the elastic body 80 is provided at the upper portion of the bracket 20, and the lower plate 95 and the weight 96 are provided at an upper portion of the elastic body 80. At this time, the center yoke 40 is coupled to the center of the elastic body 80. The first and second coil winding units 31, 32 are disposed to face upper and lower portions of the blade 42 which protrudes out of the body 41 of the center yoke 40. In other words, the first coil winding unit 31 is provided at the upper surface of the blade 42, and simultaneously the first coil winding unit 31 is inserted into the body 41. The second coil winding unit 32 is provided at the lower surface of the blade 42, and simultaneously the second coil winding unit 32 is inserted into the body 41.
(60) The magnet 71 is disposed to surround the outer circumference of the first and second coil winding units 31, 32 and is provided at the center of the weight 96. The upper anti-collision member 92 for preventing a collision of the center yoke 40 is provided at the ceiling of the case 90.
(61) In this state, the case 90 is coupled to the upper portion of the bracket 20. An inner space 91 is formed in the case 90, and the inner space 91 accommodates and protects the upper and lower anti-collision members 92, 93, the elastic body 80, the center yoke 40, the weight 96, the magnet 71 and the first and second coil winding units 31, 32.
(62) In addition, the blades 42 are formed larger than the outer diameter of the first and second coil winding units 31, 32 to protect the first and second coil winding units 31, 32.
(63) Moreover, since at least one passage 42a is formed in the blades 42 so that a coil wires (not shown) of the first and second coil winding units 31, 32 may pass therethrough, when the first and second coil winding units 31, 32 are disposed to face the upper and lower portions of the blade 42, the coil wires (not shown) of the first and second coil winding units 31, 32 may pass through the passage 42a to electrically connect the first and second coil winding units 31, 32. Thus, it is easy to apply a current to the first and second coil winding units 31, 32.
(64) In addition, a fixing protrusion 43 is formed at a lower portion of the center yoke 40 so as to be coupled and fixed to a fixing portion 21 formed at the center of the bracket 20.
(65) In other words, as shown in
(66) Meanwhile, the operation of the linear vibration generating device 10 in an assembled state will be described. First,
(67) As shown in
(68) In other words, if an electromagnetic force having the same frequency as the natural frequency of the vibrator 70 is provided, the vibrator 70 may vibrate to have the maximum vibration amount, and the natural frequency of the vibrator 70 is influenced by the mass of the vibrator 70 and the elasticity of the elastic body 80.
(69) In other words, the elastic body 80 gives elasticity and supporting force so that the vibrator 70 may vibrate.
(70) The substrate 94 is electrically coupled to the coil wires (not shown) of the first and second coil winding units 31, 32, which configure an electromagnet 71, to apply a current. The coil wires (not shown) pass through the passage 42a formed in the blade 42 and are electrically connected to the first and second coil winding units 31, 32.
(71) As described above, the first and second coil winding units 31, 32 are disposed at the upper and lower portions of the blade 42 extending in an outer direction of the center yoke 40 to face the upper and lower portions of the blade 42, and simultaneously the coil wire (not shown) of the first and second coil winding units 31, 32 passes through the passage 42a of the blade 42 to electrically connect the first and second coil winding units 31, 32 so that a current may be easily applied to the first and second coil winding units 31, 32. By doing so, a magnetic field may be induced more easily by the coil winding unit 30, and the vibrator 70 may generate vibrations as much as possible by the electromagnetic force of the first and second coil winding units 31, 32 and the magnet 71.