Linear Vibration Motor

The linear vibration motor design addresses the underutilization of driving force by fixing the iron core and coil to a mass block and magnetic steel to a housing, achieving improved electromagnetic field utilization and magnetic field strength for enhanced vibration performance.

JP7808178B2Active Publication Date: 2026-01-28AAC TECHNOLOGIES (NANJING) CO LTD
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Patent Information

Application Number
JP2024500005
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2023-05-29
Publication Date
2026-01-28
Estimated Expiration
2043-05-29

AI Technical Summary

Technical Problem

Existing linear vibration motors for portable electronic devices do not fully utilize the driving force of the solenoid and magnetic steel, resulting in suboptimal vibration feedback.

Method used

A linear vibration motor design that fixes the iron core and coil to a mass block forming a vibration assembly and the magnetic steel to a housing, with specific magnetization configurations and a three-stage magnetization structure for the magnetic steel, enhancing electromagnetic field utilization and magnetic field strength.

Benefits of technology

Significantly improves the driving force and vibration performance by optimizing the electromagnetic field utilization and magnetic field strength, resulting in enhanced vibration feedback.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

This application provides a linear vibration motor. 【Solution means】The linear vibration motor includes a housing having an accommodation space, a vibration assembly and a stator assembly accommodated in the accommodation space, and an elastic member that supports the vibration assembly in the accommodation space. The vibration assembly includes a mass block suspended in the accommodation space, and the mass block is provided with an accommodation hole penetrating therethrough. The vibration assembly further includes an iron core fixed to the mass block and accommodated in the accommodation hole, and a coil wound around the iron core. The stator assembly includes a magnetic steel fixed to the housing, and the magnetic steel extends into the accommodation hole and is disposed opposite to the coil and the mass block with a gap therebetween. The linear vibration motor according to this application has a high driving force and good vibration performance.
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Description

[Technical Field]

[0001] The present application relates to the technical field of motors, and in particular to linear vibration motors for portable mobile terminals. [Background technology]

[0002] 2. Description of the Related Art With the development of electronic technology, portable electronic products such as mobile phones, portable game consoles, etc. are increasingly sought after by people, and these electronic products generally use linear vibration motors to provide vibration feedback.

[0003] A linear vibration motor of the related art includes a housing having an accommodation space, a vibration assembly located in the accommodation space, a stator assembly fixed to the housing, and an elastic member supporting the vibration assembly. The stator assembly generally includes a solenoid consisting of a coil and an iron core, and the vibration assembly includes a mass block and magnetic steel fixed to the mass block. The solenoid and the magnetic steel interact to generate a driving force that drives the vibration assembly to vibrate back and forth, providing a vibration sensation. However, in the related art, the driving force of the solenoid and the magnetic steel of the linear vibration motor is not fully exerted, and the vibration feedback of the linear vibration motor cannot be optimally achieved.

[0004] Therefore, in order to solve the above technical problems, it is necessary to provide a new linear vibration motor. Summary of the Invention [Problem to be solved by the invention]

[0005] An object of the present application is to provide a linear vibration motor that has a high driving force and excellent vibration performance. [Means for solving the problem]

[0006] In order to achieve the above object, the present application provides a linear vibration motor comprising: a housing having an accommodation space; a vibration assembly and a stator assembly accommodated in the accommodation space; and an elastic member supporting the vibration assembly within the accommodation space; the vibration assembly comprising a mass block suspended within the accommodation space, the mass block having an accommodation hole passing therethrough; the vibration assembly further comprising an iron core fixed to the mass block and accommodated in the accommodation hole, and a coil wound around the iron core; the stator assembly comprising magnetic steel fixed to the housing, the magnetic steel extending into the accommodation hole and positioned opposite the coil and the mass block with a gap therebetween.

[0007] Preferably, the mass block includes a side wall formed to surround the receiving hole, and an end of the iron core is fixed to the side wall.

[0008] Preferably, the mass block is rectangular, and the side walls include a first side wall extending along the longitudinal direction and arranged opposite to each other, and a second side wall extending along the lateral direction and arranged opposite to each other.

[0009] Preferably, the magnetic steel includes a first magnetic steel provided on both sides of the coil along a first direction and a second magnetic steel provided on both sides of the coil along a second direction, the first magnetic steel and the second magnetic steel being arranged around the periphery of the coil at intervals, and two of the first direction, the second direction and the vibration direction of the vibration assembly are perpendicular to each other.

[0010] Preferably, the first magnetic steel is magnetized along the first direction, and the two first magnetic steels are arranged opposite each other with the same pole along the first direction, and the second magnetic steel is magnetized along the second direction, and the two second magnetic steels are arranged opposite each other with the same pole along the second direction.

[0011] Preferably, the first magnetic steel and the second magnetic steel each have a three-stage magnetization structure.

[0012] Preferably, three of the first magnetic steel pieces are arranged in order along the vibration direction on one side of the coil along the first direction, and the magnetization direction of the first magnetic steel piece located in the middle position is opposite to the magnetization direction of the first magnetic steel pieces located at both ends, and three of the second magnetic steel pieces are arranged in order along the vibration direction on one side of the coil along the second direction, and the magnetization direction of the second magnetic steel piece located in the middle position is opposite to the magnetization direction of the second magnetic steel pieces located at both ends.

[0013] Preferably, the mass block further includes a fixing boss formed to protrude from the second side wall, and an end of the iron core is fixed to the fixing boss.

[0014] Preferably, the iron core includes an end face fixed to the fixing boss, and the iron core is provided with an adhesive receiving groove recessed from the end face in a direction away from the fixing boss.

[0015] Preferably, the housing includes an upper cover and a lower cover installed opposite each other with a gap therebetween, and a side wall connecting the upper cover and the lower cover, the upper cover, the lower cover and the side wall together surrounding the housing to form the storage space, one end of the elastic member is fixed to the side wall and the other end is fixed to the mass block, and the two second magnetic steels are fixed to the upper cover and the lower cover, respectively. [Effects of the Invention]

[0016] Compared with the related art, the linear vibration motor of the present application fixes the iron core and coil to a mass block to form a vibration assembly, and fixes the magnetic steel to a housing to form a stator assembly, thereby significantly improving the electromagnetic field utilization rate of the iron core and coil, improving the magnetic field strength of the magnetic steel, and significantly strengthening the driving force of the linear vibration motor, thereby improving the vibration performance of the linear vibration motor.

[0017] In order to more clearly explain the technical solutions of the embodiments of the present application, the following briefly introduces the drawings necessary for the embodiments. Obviously, the drawings described below are only some embodiments of the present application, and those skilled in the art can obtain other drawings based on these drawings without any creative efforts. [Brief explanation of the drawings]

[0018] [Figure 1] 1 is a perspective view of a linear vibration motor according to a first embodiment of the present invention; [Figure 2] 2 shows an exploded perspective view of the linear vibration motor in FIG. 1. [Figure 3] FIG. 2 is a cross-sectional view taken along the line AA in FIG. [Figure 4] FIG. 2 is a perspective view showing a configuration of a part of the linear vibration motor shown in FIG. [Figure 5] FIG. 2 is a cross-sectional view taken along the line BB in FIG. [Figure 6] FIG. 10 is a perspective view showing a partial configuration of a linear vibration motor according to a second embodiment of the present invention. DETAILED DESCRIPTION OF THE INVENTION

[0019] Hereinafter, the technical solutions in the embodiments of the present application will be described clearly and completely with reference to the drawings in the embodiments of the present application.

[0020] 1 to 5, a first embodiment of the present invention provides a linear vibration motor 100, which includes a housing 10 having an accommodation space 11, a vibration assembly 20 and a stator assembly 30 accommodated in the accommodation space 11, and an elastic member 40 supporting the vibration assembly 20 within the accommodation space 11. The elastic member 40 supports the vibration unit 20 so that it vibrates back and forth along a vibration direction, thereby providing a vibration sensation.

[0021] The housing 10 includes an upper cover 12 and a lower cover 13 that are installed opposite each other with a gap between them, and a side wall 14 that connects the upper cover 12 and the lower cover 13, and the upper cover 12, the lower cover 13, and the side wall 14 together surround the housing 10 to form the storage space 11.

[0022] The vibration assembly 20 includes a mass block 21 suspended in the accommodation space 11, an iron core 22 fixed to the mass block 21, and a coil 23 wound around the iron core 22. Specifically, the mass block 21 has an accommodation hole 211 formed therethrough, and the iron core 22 and the coil 23 are accommodated in the accommodation hole 211. One end of the elastic member 40 is fixed to the side wall 14, and the other end is fixed to the mass block 21.

[0023] As shown in Figures 2 to 5, the stator assembly 30 includes a magnetic steel 31 fixed to the housing 10, and the magnetic steel 31 extends into the accommodating hole 211 and is positioned opposite the coil 23 and the mass block 21 with a gap therebetween.

[0024] The mass block 21 includes a sidewall 212 surrounding the accommodating hole 211, and an end of the iron core 22 is fixed to the sidewall 212. As shown in FIG. 2 , the mass block 21 has a rectangular shape, and the sidewall 212 includes a first sidewall 2121 extending longitudinally and facing each other, and a second sidewall 2122 extending laterally and facing each other. The magnetic steel 31 includes a first magnetic steel 311 provided on both sides of the coil 23 along a first direction and a second magnetic steel 312 provided on both sides of the coil 23 along a second direction, and the first direction, the second direction, and the vibration direction are perpendicular to each other. The accommodating hole 211 penetrates the mass block 21 along the second direction. The first magnetic steel 311 is spaced apart from the first sidewall 2121.

[0025] As can be seen, when the coil 23 is provided with one first magnetic steel piece 311 on each side along the first direction and one second magnetic steel piece 312 on each side along the second direction, the first magnetic steel piece 311 and the second magnetic steel piece 312 are arranged around the coil 23 at a distance from each other. In the present application, the first magnetic steel piece 311 is magnetized along the first direction, and the two first magnetic steel pieces 311 are arranged with the same poles facing each other along the first direction, and the second magnetic steel piece 312 is magnetized along the second direction, and the two second magnetic steel pieces 312 are arranged with the same poles facing each other along the second direction. As shown in FIG. 5 , the two second magnetic steel pieces 312 are fixed to the upper cover 12 and the lower cover 13, respectively. In addition, in this embodiment, one end of the first magnetic steel 311 along the second direction is fixed to the lower cover 13, and the other end is installed at a distance from the upper cover 12; in other embodiments, one end of the first magnetic steel 311 may be fixed to the upper cover 12, and the other end may be installed at a distance from the lower cover 13, and can be selected according to actual design needs.

[0026] In the present application, the coil 23 has three first magnetic steel pieces 311 arranged in order along the vibration direction on one side along the first direction, and the magnetization direction of the first magnetic steel piece 311 located in the middle position is opposite to the magnetization direction of the first magnetic steel pieces 311 located at both ends, and the coil 23 has three second magnetic steel pieces 312 arranged in order along the vibration direction on one side along the second direction, and the magnetization direction of the second magnetic steel piece 312 located in the middle position is opposite to the magnetization direction of the second magnetic steel pieces 312 located at both ends.

[0027] 6, the linear vibration motor of Example 2 of the present application differs from the linear vibration motor of Example 1 only in that the first magnetic steel 311 and the second magnetic steel 312 are both solid magnetic steel and have a three-stage magnetization structure. As can be seen, the first magnetic steel 311 includes three magnetized regions (not shown) arranged in order along the vibration direction, with the magnetized region located at the middle position having the opposite magnetization direction to the magnetized regions at both ends. Similarly, the second magnetic steel 312 includes three magnetized regions (not shown) arranged in order along the vibration direction, with the magnetized region located at the middle position having the opposite magnetization direction to the magnetized regions at both ends.

[0028] In order to improve the magnetic field performance of the magnetic steel 31, the stator assembly 30 further includes a first magnetic yoke 32 fixed to the side of the first magnetic steel 311 facing the first side wall 2121, and the first magnetic yoke 32 is installed at a distance from the first side wall 2121.

[0029] The mass block 21 further includes a fixing boss 213 protruding from the second side wall 2122, and an end of the iron core 22 is fixed to the fixing boss 213. The iron core 22 further includes an end face 221 fixed to the fixing boss 213, and the iron core 22 is provided with an adhesive receiving groove 222 recessed from the end face 221 in a direction away from the fixing boss 213. When the end face 221 of the iron core 22 is fixed to the fixing boss 213 by adhesive, the adhesive receiving groove 222 can receive a portion of the adhesive to prevent adhesive leakage, thereby improving the fixing strength between the iron core 22 and the mass block 21 and improving the vibration reliability of the linear vibration motor 100.

[0030] Compared with the related art, the linear vibration motor of the present application fixes the iron core and coil to a mass block to form a vibration assembly, and fixes the magnetic steel to a housing to form a stator assembly, thereby significantly improving the electromagnetic field utilization rate of the iron core and coil, improving the magnetic field strength of the magnetic steel, significantly strengthening the driving force of the linear vibration motor, and improving the vibration performance of the linear vibration motor.

[0031] The above is only an embodiment of the present application, and various modifications may be made by those skilled in the art to which the present application pertains without departing from the creative concept of the present application, and it should be understood that all of these modifications fall within the scope of protection of the present application.

Claims

1. A linear vibration motor, a housing having an accommodation space, a vibration assembly and a stator assembly accommodated in the accommodation space, and an elastic member supporting the vibration assembly within the accommodation space; the vibration assembly includes a mass block suspended within the receiving space, the mass block having a receiving hole therethrough; The vibration assembly further includes an iron core fixed to the mass block and housed in the housing hole, and a coil wound around the iron core. the stator assembly includes a magnetic steel member fixed to the housing, the magnetic steel member extending into the receiving hole and facing the coil and the mass block with a gap therebetween; the mass block includes a side wall formed to surround the receiving hole, and an end of the iron core is fixed to the side wall; the mass block has a rectangular shape, and the side walls include a first side wall extending along a longitudinal direction and opposed to each other, and a second side wall extending along a lateral direction and opposed to each other; the magnetic steel includes a first magnetic steel provided on both sides of the coil along a first direction and a second magnetic steel provided on both sides of the coil along a second direction, the first magnetic steel and the second magnetic steel are provided around the coil at an interval, and the first direction, the second direction, and the vibration direction of the vibration assembly are perpendicular to each other, one end of the iron core along the vibration direction is fixed to one of the second side walls provided opposite to the iron core, and the other end of the iron core along the vibration direction is fixed to the other of the second side walls provided opposite to the iron core, the first magnetic steel is magnetized along the first direction, and two of the first magnetic steels are arranged with the same poles facing each other along the first direction; the second magnetic steel is magnetized along the second direction, and two of the second magnetic steels are arranged with the same poles facing each other along the second direction; a linear vibration motor, characterized in that three of the first magnetic steel pieces are arranged in order along the vibration direction on one side of the coil along the first direction, and the magnetization direction of the first magnetic steel piece located at an intermediate position is opposite to the magnetization direction of the first magnetic steel pieces located at both ends; and three of the second magnetic steel pieces are arranged in order along the vibration direction on one side of the coil along the second direction, and the magnetization direction of the second magnetic steel piece located at an intermediate position is opposite to the magnetization direction of the second magnetic steel pieces located at both ends.

2. 2. The linear vibration motor according to claim 1, wherein the first magnetic steel and the second magnetic steel each have a three-stage magnetization structure.

3. The linear vibration motor according to claim 1 , wherein the mass block further includes a fixing boss formed by protruding from the second side wall, and an end of the iron core is fixed to the fixing boss.

4. 4. The linear vibration motor according to claim 3, wherein the iron core includes an end face that is fixed to the fixing boss, and the iron core is provided with an adhesive accommodating groove that is recessed from the end face in a direction away from the fixing boss.

5. 2. The linear vibration motor of claim 1, wherein the housing includes an upper cover and a lower cover installed opposite each other with a gap therebetween, and a side wall connecting the upper cover and the lower cover, the upper cover, the lower cover, and the side wall together enclose the storage space, one end of the elastic member is fixed to the side wall and the other end is fixed to the mass block, and the two second magnetic steels are fixed to the upper cover and the lower cover, respectively.

Citation Information

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