Vibration exciter
The vibration exciter design addresses the high process costs of existing technologies by using a coating bonding method to integrate the mass block, pole core, and magnetic steel, achieving high stability and reduced production costs.
Patent Information
- Application Number
- JP2023572819
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2023-04-10
- Publication Date
- 2025-05-13
- Estimated Expiration
- 2043-04-10
AI Technical Summary
The high process costs associated with manufacturing vibrational exciters in existing technologies, primarily due to the need for multiple welding contact surfaces and the resulting high demand for mass block molding.
A vibration exciter design that integrates an annular mass block, a coating member, a pole core, and magnetic steel within a mounting cavity, using a coating bonding method instead of welding, which eliminates the need for welding equipment and reduces production costs.
The coating bonding method provides high fixing stability compared to conventional welding, reduces production costs, and simplifies the molding requirements for the mass block, leading to a more cost-effective and efficient manufacturing process.
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Figure 2025514890000001_ABST
Abstract
Description
[Technical field]
[0001] The present invention relates to the technical field of vocalization devices, in particular vibration exciters. [Background technology]
[0002] With the development of electronic technology, portable consumer electronic products such as mobile phones, portable game consoles, navigation devices, and handheld multimedia devices are becoming more and more popular, and all of these electronic products are inseparable from the application of sound generating devices, and these sound generating devices are often associated with vibration exciters. In the related art, the mass block for providing vibration on the vibration exciter is often fixed between the pole core, magnet steel, and other parts by welding, which has many welding contact surfaces, high requirements for the molding of the mass block, and high process costs. Summary of the Invention [Problem to be solved by the invention]
[0003] An object of the present application is to provide a vibration exciter that can solve the technical problem of high process costs for vibration exciters in related art. [Means for solving the problem]
[0004] The technical solution of the present application is as follows: a vibration exciter, comprising: a housing having an accommodation space, a vibration unit suspended in the accommodation space, an elastic unit connected to the vibration unit and accommodated in the accommodation space, and a drive unit fixed to the housing for driving the vibration of the vibration unit, the vibration unit comprising: an annular mass block, a covering member covering the outside of the mass block and surrounding the inside to form a mounting cavity, a pole core coupled to the covering member and located inside the mounting cavity, and a magnet steel fixed to the pole core on the side remote from the mass block, and the drive unit is accommodated and left in the mounting cavity.
[0005] Furthermore, an elastic unit is provided on each of the opposing sides of the mass block, and the elastic unit includes a spring holder suspended in the accommodation space and a first fixed block fixed between one end of the spring holder and the housing side wall, and a second fixed block is provided between the other end of the spring holder and the mass block.
[0006] Furthermore, the covering member includes a first covering portion that is covered on the mass block and a second covering portion that is connected to the outside of the first covering portion, and the second covering portion is covered on the outside of the second fixed block and the outside of the corresponding end of the spring support.
[0007] Furthermore, the second fixing block is fixed to the outside of the mass block and protrudes to the outside of the covering member, and the outer end surface of the second fixing block is welded and fixed to the elastic unit.
[0008] Furthermore, the mounting cavity has at least two sub-cavities that are arranged in sequence and communicate with each other and are formed inside the covering member, one pole core is fixed between two adjacent sub-cavities, magnet steel is fixed to each side inner wall of each sub-cavity, and a drive unit is provided inside each sub-cavity.
[0009] Furthermore, the drive unit includes a bobbin fixed to the housing, a coil wound around the bobbin, and an FPC unit fixed to the housing and electrically connected to the coil, and there is a gap between the magnet steel and the coil.
[0010] Furthermore, the covering member is fixed to the pole core and the magnet steel by adhesive curing or heat curing, respectively.
[0011] Furthermore, a positioning portion is provided within the mounting cavity extending from the side wall into the cavity, a positioning notch is opened in the positioning portion, and positioning protrusions protrude from both ends of the pole core, and the positioning protrusions are fitted into the corresponding positioning notches.
[0012] Furthermore, two adjacent positioning portions are spaced apart to form a positioning groove, and the magnet steel is fitted into the positioning groove.
[0013] Furthermore, an adhesive containing groove is formed around the periphery of the second fixed block, and the covering member covers the outer periphery of the second fixed block and fills the adhesive containing groove. Effect of the Invention
[0014] The beneficial effect of the present application is that the outside of the mass block is covered with a coating material, and the coating material is inserted into the mounting cavity formed inside the mass block, into which the pole core and magnet steel are inserted, thereby making it possible to integrate and connect parts such as the mass block, pole core and magnet steel with the coating material. Compared with the conventional welding fixing method, the fixing stability of the coating connection method is relatively high, and there is no need to input equipment such as welding, so that production costs can be effectively reduced. [Brief description of the drawings]
[0015] [Figure 1] FIG. 1 is an exploded view of the vibration exciter of the present application. [Diagram 2] FIG. 2 is a schematic diagram of a partial structure of an embodiment of the vibration exciter of the present application. [Diagram 3] FIG. 3 is a schematic diagram of a partial structure of another embodiment of the vibration exciter of the present application. [Figure 4] FIG. 4 is a schematic diagram of the overall shape of the vibration exciter of the present application. [Diagram 5] FIG. 5 is a cross-sectional view of the vibration exciter of the present application taken along the line AA in FIG. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0016] The present application will be further described below in conjunction with the drawings and embodiments, in which the examples are shown in the drawings, in which the same or similar reference numerals throughout indicate the same or similar elements or elements having the same or similar functions. The examples described below with reference to the drawings are merely examples intended to interpret the present invention, and should not be understood as limitations on the present invention. All other examples obtained on the premise that a person skilled in the art can obtain them based on the examples in the present invention without performing creative labor are all within the scope of protection of the present invention.
[0017] In addition, in the description of the present invention, the orientations or positional relationships indicated by terms such as "center," "vertical," "horizontal," "length," "width," "thickness," "upper," "lower," "front," "rear," "left," "right," "vertical," "horizontal," "top," "base," "inner," "outer," "clockwise," "counterclockwise," "axial direction," "circumferential direction," and "radial direction" are orientations or positional relationships shown based on the drawings, and are intended to facilitate and simplify the description of the present invention. They do not indicate or imply that the devices or elements shown necessarily have a specific orientation and are configured and operate in a specific orientation, and therefore cannot be understood as limitations of the present invention.
[0018] Furthermore, the terms "first" and "second" are used for descriptive purposes only and cannot be understood as indicating or implying a relative importance or implying a number of technical features shown. Thus, a feature qualified as "first" or "second" may explicitly or implicitly include one or more of said features. In the description of the present invention, unless otherwise expressly and specifically limited, the meaning of "plurality" means two or more.
[0019] Working Example: As shown in Figures 1-5, in this embodiment, the vibration exciter comprises a housing 1 having an accommodation space, a vibration unit 2 suspended in the accommodation space, an elastic unit 3 connected to the vibration unit 2 and accommodated in the accommodation space, and a drive unit 4 fixed to the housing 1 and for driving the vibration of the vibration unit 2, and the vibration unit 2 comprises an annular mass block 21, a covering member 22 that covers the outside of the mass block 21 and encloses the inside to form a mounting cavity 221, a pole core 23 that is connected to the covering member 22 and located inside the mounting cavity 221, and a magnetic steel 24 that is fixed to the side of the pole core 23 away from the mass block 21, and the drive unit 4 is accommodated and left in the mounting cavity 221.
[0020] Specifically, the outside of the mass block 21 is covered with a layer of the covering member 22, and the covering member 22 inserts the pole core 23 and the magnet steel 24 into the mounting cavity 221 formed inside the mass block 21, so that the mass block 21, the pole core 23, the magnet steel 24, and other components can be integrated and connected by the covering member 22. Compared with the conventional welding fixing method, the covering joining method has a relatively high fixing stability, and does not require the input of equipment such as welding, so that the production cost can be effectively reduced. Furthermore, in the related art, the mass block 21 is generally synthesized using a material of Wu-Ni-Cu / 316L, which is expensive, but in this embodiment, the stability between the mass block 21 and the components such as the pole core 23 and the magnet steel 24 is ensured by the injection covering member 22, so that welding is not required and the molding requirements for the mass block 21 are also significantly reduced. In this embodiment, a low-cost plate material is used and obtained by pressing, so that the molding cost of the mass block 21 can be significantly reduced.
[0021] In this embodiment, elastic units 3 are provided on both opposing sides of the mass block 21, and the elastic units 3 include a spring bearing 31 suspended in the accommodation space and a first fixed block 32 fixed between one end of the spring bearing 31 and a side wall of the housing 1, and a second fixed block 25 is provided between the other end of the spring bearing 31 and the mass block 21. An adhesive accommodating groove 251 is formed around the second fixed block 25, and the covering member 22 covers the outer periphery of the second fixed block 25 and fills the adhesive accommodating groove 251, which is advantageous in improving the bonding stability between the covering member 22 and the second fixed block 25.
[0022] Specifically, the spring bearing 31 in this embodiment may be a long spring piece that is wide at both ends and narrow at the middle, and the number of spring bearings 31 located on the same side of the mass block 21 may be one or more, and preferably two. In this embodiment, a welding block is provided between the ends of two parallel spring bearings 31 on the same side, and the two spring bearings 31 on the same side are welded and fixed to the welding block. A stopper piece 33 is provided below the center of the spring bearing 31, and the stopper piece 33 is fixed to the base housing 11 in the housing 1, and the thickness of the stopper piece 33 is greater than the height from the center of the spring bearing 31 to the base housing 11 and less than the height from the end of the spring bearing 31 to the base housing 11. The first fixing block 32 and the second fixing block 25 are located at diagonal positions of the spring bearing 31, and the two second fixing blocks 25 connected to both opposing sides of the mass block 21 are also located at diagonal positions of the mass block 21. In this embodiment, a driving potential is generated by the driving unit 4, so that the entire vibration unit 2 vibrates back and forth in the direction in which the two elastic units 3 are located, thereby achieving vibration sound production.
[0023] 1 and 2, in one embodiment of this embodiment, the covering member 22 includes a first covering portion 223 covering the mass block 21 and a second covering portion 224 connected to the outside of the first covering portion 223, and the second covering portion 224 covers the outside of the second fixed block 25 and the outside of the corresponding end of the spring bearing 31. The covering member 22 not only covers the outside of the mass block 21, but also covers the periphery of the second fixed block 25 and the outside of one end of the spring bearing 31 that is connected to the second fixed block 25, so that the mass block 21, the magnet steel 24, the pole core 23 and the spring bearing 31 can be connected together by injection coating only, and the assembly molding operation is simple.
[0024] As shown in FIG. 3, in another embodiment of this embodiment, the second fixed block 25 is fixed to the outside of the mass block 21 and protrudes to the outside of the covering member 22, and the outer end surface of the second fixed block 25 is welded and fixed to the elastic unit 3. That is, even if the mass block 21 and the second fixed block 25, and the second fixed block 25 and the spring support 31 are both fixed by welding, a stable connection between the elastic unit 3 and the vibration unit 2 can be similarly achieved.
[0025] In this embodiment, the drive unit 4 includes a bobbin 43 fixed to the housing 1, a coil 41 wound around the bobbin 43, and an FPC unit 42 fixed to the housing 1 and electrically connected to the coil 41, and there is a gap between the magnet steel 24 and the coil 41. An alternating current is generated by the coil 41, and the alternating current cuts the magnetic induction line of the magnet steel 24 to generate an induced potential, which drives the elastic unit 3 to move.
[0026] In this embodiment, the mounting cavity 221 has at least two sub-cavities 2211 which are arranged in sequence and communicate with each other and are formed inside the covering member 22, one pole core 23 is fixed between two adjacent sub-cavities 2211, a magnetic steel 24 is fixed to each side inner wall of the sub-cavity 2211, and a drive unit 4 is provided inside each sub-cavity 2211.
[0027] Specifically, this embodiment is applied to a multi-magnetic circuit structure (for example, a two-magnetic circuit structure, a three-magnetic circuit structure, etc.), and the number of coils 41 in different magnetic circuit structures corresponds to the number of sub-cavities 2211. The two-magnetic circuit structure as shown in the drawing is as follows: a coil 41 is fixed in each sub-cavity 2211 via a bobbin 43, and one magnet steel 24 is fixed to the side wall of each sub-cavity 2211, so that the coil 41 is surrounded by the magnet steel 24. Note that this embodiment is also applied to a single magnetic circuit structure, that is, one coil 41 is fixed in the mounting cavity 221, and it is only necessary to fix the pole core 23 and the magnet steel 24 correspondingly to the four side walls of the mounting cavity 221 without the need to divide the multiple sub-cavities 2211.
[0028] In this embodiment, the covering member 22 fixes the pole core 23 and the magnet steel 24 by adhesive curing or heat curing.
[0029] Specifically, in one embodiment, the pole core 23 and the corresponding magnet steel 24 are bonded and fixed, and then the pole core 23 and the magnet steel 24 are inserted into the corresponding position in the mounting cavity 221, and then the corresponding connection points of the pole core 23, the magnet steel 24, and the covering member 22 are bonded, so that the desired elastic component can be obtained after hardening. In another embodiment, the pole core 23 and the magnet steel 24 are inserted into the corresponding position in the mounting cavity 221, and then the covering member 22 is heat-treated, so that the pole core 23, the magnet steel 24, and the covering member 22 are integrated, and the desired elastic component can be obtained after hardening. By adopting these two methods, the mass block 21, the pole core 23, and the magnet steel 24 are mutually fixed, and the fixing stability is high, which is advantageous for improving the reliability of the product. Note that the pole core 23 and the corresponding magnet steel 24 may be fixed before being inserted into the mounting cavity 221, or may be inserted into the mounting cavity 221 and then fixed.
[0030] 1, 3 and 5, in this embodiment, a positioning portion 222 extending from a side wall into the mounting cavity 221 is provided in the mounting cavity, a positioning notch 2221 is formed in the positioning portion 222, and a positioning protrusion 231 is formed protrudingly on each end of the pole core 23, and the positioning protrusion 231 is fitted into the corresponding positioning notch 2221. Two adjacent positioning portions 222 form a positioning groove 222a with a gap therebetween, and the magnet steel 24 is fitted into the positioning groove 222a. That is, the shape of the positioning notch 2221 matches the shape of the positioning protrusion 231, and the shape of the positioning groove 222a matches the shape of the magnet steel 24. In the process of inserting the magnetic core and the magnet steel 24 into the mounting cavity 221 from the end where the positioning notch 2221 is located, the pole core 23, the magnet steel 24 and the mounting cavity 221 are subsequently adhesively fixed or heat fixed, so that the positioning groove 222a and the positioning notch 2221 can accurately determine the fixing positions of the magnet steel 24 and the pole core 23.
[0031] The above is merely an embodiment of the present application, and as should be pointed out here, those skilled in the art may make improvements without departing from the creative concept of the present application, all of which fall within the scope of protection of the present application.
Claims
1. A vibration exciter comprising: a housing having an accommodation space; a vibration unit suspended in the accommodation space; an elastic unit connected to the vibration unit and accommodated in the accommodation space; and a drive unit fixed to the housing for driving the vibration of the vibration unit, The vibration unit includes an annular mass block, a covering member that covers the outside of the mass block and surrounds the inside to form a mounting cavity, a pole core that is connected to the covering member and located inside the mounting cavity, and a magnet steel that is fixed to a side of the pole core that is far from the mass block, and the drive unit is housed and left in the mounting cavity. A vibration exciter characterized by the above.
2. The elastic units are provided on opposite sides of the mass block, the elastic units each including a spring bearing suspended in the accommodation space and a first fixed block fixed between one end of the spring bearing and the housing side wall, and the vibration unit further includes a second fixed block fixed between the other end of the spring bearing and the mass block.
2. The vibration exciter according to claim 1 .
3. the covering member includes a first covering portion covering the outside of the mass block, and a second covering portion protruding outward from the first covering portion, the second covering portion covering the outside of the second fixed block and the outside of a corresponding end of the spring bearing; 3. The vibration exciter according to claim 2.
4. the second fixing block is fixed to the outside of the mass block and protrudes to the outside of the covering member, and an outer end surface of the second fixing block is welded to the elastic unit.
3. The vibration exciter according to claim 2.
5. the mounting cavity includes at least two sub-cavities arranged in sequence and communicating with each other, the pole core being fixed between two adjacent sub-cavities, the magnet steel being fixed to each side inner wall of each of the sub-cavities, and the driving unit being provided in each of the sub-cavities; 2. The vibration exciter according to claim 1 .
6. the drive unit includes a bobbin fixed to the housing, a coil wound around the bobbin, and an FPC unit fixed to the housing and electrically connected to the coil, and there is a gap between the magnet steel and the coil; 6. The vibration exciter according to claim 5.
7. The covering member is fixed to the pole core and the magnet steel by adhesive curing or heat curing, respectively.
2. The vibration exciter according to claim 1 .
8. A positioning portion is provided in the mounting cavity, extending from a side wall into the cavity, a positioning notch is formed in the positioning portion, and positioning protrusions are protruded from both ends of the pole core, and the positioning protrusions are fitted into the corresponding positioning notches.
2. The vibration exciter according to claim 1 .
9. The two adjacent positioning portions are spaced apart to form a positioning groove, and the magnet steel is fitted into the positioning groove.
9. The vibration exciter according to claim 8.
10. an adhesive receiving groove is formed around the periphery of the second fixed block, and the covering member covers the outer periphery of the second fixed block and fills the adhesive receiving groove; 3. The vibration exciter according to claim 2.
Citation Information
Patent Citations
Vibrator structure and linear motor using vibrator structure
CN110112880A
Vibration generator and a production method therefor
US20130169072A1