Speaker and Terminal
20230362548 · 2023-11-09
Inventors
Cpc classification
H04R2400/11
ELECTRICITY
H04R7/20
ELECTRICITY
H04R2307/201
ELECTRICITY
International classification
H04R7/20
ELECTRICITY
Abstract
A speaker in which an end of a magnetic assembly close to the diaphragm has a magnetic gap. A coil is wound around a coil former, and at least a portion of the coil is located in the magnetic gap. A connecting member is arranged on a side of the coil former close to a side wall of the accommodating cavity. An annular first damper is arranged between the coil former and the connecting member. The first damper is close to an upper end of the coil and is distal from a lower end of the coil. An annular second damper is arranged between the connecting member and the side wall of the accommodating cavity. The second damper is close to the lower end of the coil and is distal from the upper end of the coil.
Claims
1.-24. (canceled)
25. A speaker comprising: a frame comprising a concave accommodating cavity, wherein the concave accommodating cavity comprises: an opening; a first bottom; and a first side wall; a diaphragm, configured to cover the opening and coupled to the frame; a magnetic assembly, wherein a first part of the magnetic assembly is arranged in the concave accommodating cavity and is coupled to the first bottom, and wherein the magnetic assembly comprises a first end that is proximate to the diaphragm and that has a magnetic gap; a vibrating assembly, located in the concave accommodating cavity, coupled to the diaphragm, and comprising: a coil former comprising a first side proximate to the first side wall; a coil wound around the coil former, wherein a portion of the coil is located in the magnetic gap, and wherein the coil comprises: an upper end proximate to the diaphragm; and a lower end distal from the diaphragm; and a connecting member arranged on the first side; an annular first damper proximate to the upper end, distal from the lower end, located in the concave accommodating cavity and between the coil former and the connecting member, and comprising: a first inner side coupled to the magnetic assembly; and a first outer side coupled to the connecting member to support the vibrating assembly in a first radial direction of the annular first damper; and an annular second damper proximate to the lower end, distal from the upper end, located in the concave accommodating cavity and between the connecting member and the first side wall, and comprising: a second inner side coupled to the connecting member; and a second outer side coupled to the first side wall to support the vibrating assembly in a second radial direction of the annular second damper.
26. The speaker of claim 25, wherein the coil further comprises: a second side proximate to the diaphragm; and a third side distal from the diaphragm, wherein the annular first damper is located on the second side, and wherein the annular second damper is located on the third side.
27. The speaker of claim 25, wherein the annular first damper further comprises a first surface proximate to the diaphragm, wherein the annular second damper further comprises a second surface distal from the diaphragm, and wherein the coil further comprises: a second end that is proximate to the diaphragm and that extends past first surface; and a third end that is distal from the diaphragm and that extends past the second surface.
28. The speaker of claim 25, further comprising: a first spacing (L1) between a geometric center of a vertical projection of the coil on the connecting member and the annular first damper; and a second spacing (L2) between the geometric center and the annular second damper, wherein L1=L2.
29. The speaker of claim 28, wherein a first elastic coefficient of the annular first damper is the same as a second elastic coefficient of the annular second damper.
30. The speaker of claim 25, wherein the annular first damper further comprises a surface proximate to the diaphragm, and wherein the coil further comprises: a second end that is proximate to the diaphragm and that extends past the surface; and a third end distal from the diaphragm, wherein a vertical projection of the third end on the connecting member is located between the annular first damper and the annular second damper.
31. The speaker of claim 25, wherein the annular second damper further comprises a surface distal from the diaphragm, and wherein the coil further comprises: a second end proximate to the diaphragm, wherein a vertical projection of the second end on the connecting member is located between the annular first damper and the annular second damper; and a third end that is distal from the diaphragm and that extends past the surface.
32. The speaker of claim 25, wherein the coil further comprises a first axis, wherein the annular first damper comprises a first inner hole having a second axis, wherein the annular second damper comprises a second inner hole having a third axis, wherein the second axis is overlapped with the first axis, and wherein the third axis is overlapped with the first axis.
33. The speaker of claim 32, wherein the connecting member further comprises a fourth axis overlapped with the first axis, wherein the coil former further comprises a fifth axis, and wherein the first axis is further overlapped with the fifth axis.
34. The speaker of claim 25, wherein the magnetic assembly further comprises a second side proximate to the diaphragm, wherein the speaker further comprises a damper bracket located on the second side and comprising: a third side distal from the diaphragm; and a fourth side proximate to the diaphragm, wherein a first surface on the third side is coupled to the magnetic assembly, and wherein a second surface on the fourth side is coupled to the first inner side.
35. The speaker of claim 34, wherein a height of the damper bracket is greater than an amplitude of the vibrating assembly, and wherein a direction of the height is perpendicular to the first bottom.
36. The speaker of claim 34, wherein the magnetic assembly further comprises: a T-yoke comprising: a base plate coupled to the first bottom and comprising a fifth side proximate to the diaphragm; and a pole post located on the fifth side and coupled to the first bottom; an annular first magnet coupled to a surface on the fifth side and comprising: a first inner hole, wherein the pole post is further located in the first inner; and a sixth side proximate to the diaphragm; an annular washer coupled to the sixth side and comprising: a second inner hole, wherein the pole post is further located in the second inner hole; an upper surface proximate to the diaphragm; and an inner ring, wherein the magnetic gap is formed between the inner ring and the pole post, and wherein the damper bracket is further located on the upper surface.
37. The speaker of claim 36, wherein the annular washer further comprises a longitudinal section perpendicular to the first bottom and comprising: a third part that is proximate to the diaphragm and that is a right trapezoid, wherein an inclined edge of the right trapezoid is proximate to the first side wall; and a fourth part that is distal from the diaphragm and that is a rectangle.
38. The speaker of claim 36, wherein the coil further comprises a first axis, wherein the first inner hole further comprises a second axis, wherein the second inner hole further comprises a third axis, wherein the pole post further comprises a fourth axis, wherein the second axis and the third axis are overlapped with the fourth axis, and wherein the first axis of the coil is overlapped with the fourth axis.
39. The speaker of claim 25, wherein the magnetic assembly further comprises: a U-yoke comprising a groove, wherein the groove comprises: a second bottom coupled to the first bottom; and a second side wall comprising a second side, wherein a surface on the second side is proximate to the diaphragm and is coupled to the first inner side; a second magnet located in the groove, coupled to the second bottom, and comprising a third side proximate to the diaphragm; and a pole piece located in the groove and coupled to the third side, wherein the magnetic gap is formed between the pole piece and the second side wall.
40. The speaker of claim 39, wherein the U-yoke further comprises a first axis, wherein the second magnet and the pole piece are cylinders, wherein the second magnet comprises a second axis, wherein the pole piece comprises a third axis, wherein the second axis and the third axis are overlapped with the first axis, and wherein the coil comprises a fourth axis overlapped with the first axis.
41. The speaker of claim 25, wherein the connecting member comprises: a second side distal from the diaphragm, wherein the second inner side is attached to a surface on the second side; and a first step surface parallel to the first bottom and bonded to the first outer side, wherein the frame further comprises a second step surface parallel to the first bottom and attached to the second outer side.
42. The speaker of claim 25, wherein the connecting member comprises a second end proximate to the diaphragm and coupled to the diaphragm, and wherein the coil former further comprises a third end proximate to the diaphragm and coupled to the connecting member.
43. The speaker of claim 25, wherein the coil former further comprises a second end proximate to the diaphragm and coupled to the diaphragm, and wherein the connecting member comprises a third end proximate to the diaphragm and coupled to the coil former.
44. A terminal, comprising: a speaker comprising: a frame comprising a concave accommodating cavity, wherein the concave accommodating cavity comprises: an opening; a first bottom; and a first side wall; a diaphragm configured to cover the opening and coupled to the frame; a magnetic assembly, wherein a first part of the magnetic assembly is arranged in the concave accommodating cavity and is coupled to the first bottom, and wherein the magnetic assembly comprises a first end that is proximate to the diaphragm and that has a magnetic gap; a vibrating assembly located in the concave accommodating cavity, coupled to the diaphragm, and comprising: a coil former comprising a first side proximate to the first side wall; a coil wound around the coil former, wherein a portion of the coil is located in the magnetic gap, and wherein the coil comprises: an upper end proximate to the diaphragm; and a lower end distal from the diaphragm; and a connecting member arranged on the first side; an annular first damper proximate to the upper end, distal from the lower end, located in the concave accommodating cavity between the coil former and the connecting member, and comprising: a first inner side coupled to the magnetic assembly; and a first outer side coupled to the connecting member to support the vibrating assembly in a first radial direction of the annular first damper; and an annular second damper proximate to the lower end, distal from the upper end, located in the concave accommodating cavity between the connecting member and the first side wall, and comprising: a second inner side coupled to the connecting member; and a second outer side coupled to the first side wall to support the vibrating assembly in a second radial direction of the annular second damper; and a housing comprising a mounting hole, wherein a third part of the speaker is located in the mounting hole.
Description
BRIEF DESCRIPTION OF DRAWINGS
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REFERENCE NUMERALS
[0056] 01: sound box; 02: housing; 03: mounting hole; 10: speaker; 100: accommodating cavity; A1: bottom of the accommodating cavity; A2: side wall of the accommodating cavity; 20: frame; 30: diaphragm; 31: surround; 40: magnetic assembly; 401: T-yoke; 402: first magnet; 403: 15 washer; 404: U-yoke; 414: bottom of a groove of the U-yoke; 424: side wall of the groove of U-yoke; 405: second magnet; 406: pole piece; 400: magnetic gap; 50: vibrating assembly; 51: voice coil; 501: coil; 502: coil former; 503: connecting member; 61: first damper; 62: second damper; 70: damper bracket; 411: base plate; 412: pole post; B1: first step surface; B2: second step surface; and 600: third damper.
DESCRIPTION OF EMBODIMENTS
[0057] The following describes the technical solutions in embodiments of this application with reference to the accompanying drawings in the embodiments of this application. It is clear that the described embodiments are merely a part rather than all of the embodiments of this application.
[0058] In the following, the terms “first”, “second”, or the like are merely intended for a purpose of description, and shall not be understood as an indication or implication of relative importance or implicit indication of a quantity of indicated technical features. Therefore, a feature limited by “first”, “second”, or the like may explicitly or implicitly include one or more features.
[0059] In addition, in this application, orientation terms such as “left”, “right”, “upper”, and “lower” are defined relative to schematic placement orientations of components in the accompanying drawings. It should be understood that, these orientation terms are relative concepts and are used for relative description and clarification, and may change correspondingly according to changes in the placement orientations of the components in the accompanying drawings.
[0060] In this application, unless otherwise clearly specified and defined, the term “connection” should be understood in a broad sense. For example, the “connection” may be fixed connection, detachable connection, or integrated connection, may be direct connection, or may be indirect connection through an intermediate medium.
[0061] An embodiment of this application provides a terminal. The terminal may be a television, a computer, a vehicle-mounted device, a sound box, or the like. The terminal is provided with a sound box 01 shown in
[0062] The frame 20 is provided with a concave accommodating cavity 100 shown in
[0063] A material of the diaphragm 30 is not limited in this application. For example, the material may be at least one of a paper material, plastics, metal, or fiber. In addition, the surround 31 is prepared from an elastic material, for example, a rubber material. A texture of the surround 31 is softer than that of the diaphragm 30. In this case, a flexible connection between the diaphragm 30 and the frame 20 may be implemented through the surround 31. In addition, after the speaker 10 is mounted in the mounting hole 03 of the housing 02 shown in
[0064] In some embodiments of this application, as shown in
[0065] Shapes of the surround 31 and the diaphragm 30 are not limited in this application. For the convenience of description, the following provides descriptions by using an example in which the diaphragm 30 is bulged in the direction away from the bottom A1 of the accommodating cavity 100 and the surround 31 is sunken in the direction close to the bottom A1 of the accommodating cavity 100.
[0066] In addition, as shown in
[0067] It should be noted that
[0068] A material of the T-yoke 401 may be iron with relatively high purity. As shown in
[0069] A cross-sectional view, obtained by sectioning alone a dotted line OO in
[0070] It should be noted that the bonding mode in embodiments of this application may be bonding, by using liquid glue or by using a solid bonding layer, two components that need to be bonded to each other.
[0071] In addition, as shown in
[0072] In this way, under an action of magnetic conduction of the T-yoke 401 and the washer 403, a magnetic line emitted from an N pole of the first magnet 402 can pass through the T-yoke 401, pass through the magnetic gap 400, and then return to an S pole of the first magnet 402, thereby forming a magnetic loop in the magnetic assembly 40. Alternatively, a magnetic line emitted from an N pole of the first magnet 402 can pass through the magnetic gap 400, pass through the T-yoke 401, and then return to an S pole of the first magnet 402, thereby forming a magnetic loop in the magnetic assembly 40.
[0073] It should be noted that when the magnetic assembly 40 includes the T-yoke 401, the first magnet 402, and the washer 403, the axis U-U of the magnetic assembly 40 may be an axis of the pole post 412 in the T-yoke 401. Based on this, in some embodiments of this application, an axis of the inner hole of the first magnet 402 and an axis of the inner hole of the washer 403 may be overlapped with the axis of the pole post 412, thereby generating a relatively high magnetic field intensity.
[0074] In addition, as shown in
[0075] The coil former 502 shown in
[0076] In some embodiments of this application, as shown in
[0077] Alternatively, in some other embodiments of this application, as shown in
[0078] Alternatively, in some other embodiments of this application, as shown in
[0079] A connection manner between the vibrating assembly 50 and the diaphragm 30 is not limited in this application. For the convenience of description, the following provides descriptions by using an example shown in
[0080] Based on this, during the operation of the speaker 10, as shown in
[0081] For example, an end of the first magnet 402 close to the bottom A1 of the accommodating cavity 100 may be an N pole, and an end of the first magnet 402 close to the diaphragm 30 may be an S pole. A direction of the current introduced to the coil 501 is shown in
[0082] and comes out from a right end of the cross section of the coil 501 (represented by “⊙”), according to the left-hand rule, it can be learned that a direction of a Lorentz force F suffered by the coil 501 located in the magnetic gap 400 under an action of a magnetic field provided by the magnetic assembly 40 may be an upward direction perpendicular to the bottom A1 of the accommodating cavity 100 (a direction close to the diaphragm 30). In this way, the coil 501 drives the entire vibrating assembly 50 to push the diaphragm 30 upward.
[0083] In addition, a direction of a current introduced to the coil 501 is shown in
[0084] Based on this, by changing the direction of the current in the coil 501, the diaphragm 30 may move up and down in a direction perpendicular to the bottom A1 of the accommodating cavity 100 (Z direction) under a vibrating action of the vibrating assembly 50. During the vibration, the diaphragm 30 may drive the air outside the housing 02 of the terminal 01 to vibrate to generate sound.
[0085] It should be noted that in
[0086] In addition, it can be learned from the foregoing that the coil 501 vibrates up and down under an action of the magnetic field in the magnetic gap 400 after being energized. When the coil 501 is not energized, the coil 501 does not vibrate. In this case, other components (the coil former 502 and the connecting member 503) of the vibrating assembly 50 connected to the coil 501 and the diaphragm 30 connected to the vibrating assembly 50 are all in a stationary state, so that they are located at respective initial positions.
[0087] For example, as shown in
[0088] In addition, an initial state of the diaphragm 30 means that a geometric center of the diaphragm 30 in a stationary state is overlapped with or approximately overlapped with a vertical projection of the axis U-U of the magnetic assembly 40 on the diaphragm 30. Moreover, in the Z direction, there is a fourth initial spacing S4 between the geometric center of the diaphragm 30 and the bottom A1 of the accommodating cavity 100. Based on this, in a process in which the coil 501 moves in a direction perpendicular to the bottom A1 of the accommodating cavity 100, to prevent the coil 501 from swinging left and right in a horizontal direction (on an XOY plane shown in
[0089] In some embodiments of this application, the first damper 61 (or the second damper 62) may be of an annular structure shown in
[0090] As shown in
[0091] In this case, in a process in which the coil 501 is energized to drive the coil former 502 to vibrate up and down, since the coil former 502 may be directly connected to the connecting member 503, or the coil former 502 may be indirectly connected to the connecting member 503 through the diaphragm 30 (as shown in the solution in
[0092] In addition, the first damper 61 is provided with a plurality of wave structures in a radial direction of the first damper 61. The second damper 62 is provided with a plurality of wave structures in a radial direction of the second damper 62. The wave structures may cause elastic deformation of the first damper 61 and the second damper 62 in extension directions of the wave structures (that is, the radial directions of the dampers), thereby providing restoring forces for the coil 501 during the elastic deformation.
[0093] For example, as shown in
[0094] The coil 501, the coil former 502, and the connecting member 503 in the vibrating assembly 50 are all bilaterally symmetrical with respect to the axis U-U of the magnetic assembly. The following first uses a right half part of the vibrating assembly 50 as an example for description. As shown in
[0095] In this case, a right haft part of the first damper 61 arranged close to the upper end a of the coil 501 is subjected to elastic deformation under tension. During the elastic deformation, the first damper 61 applies a first restoring force F-re I leftwards to the part of the connecting member 503 close to the upper end of the coil 501, so that the connecting member 503 drives the upper end a of the coil 501 to move to the left to restore to the initial position of the coil 501.
[0096] In addition, the lower end b of the coil 501 shifts to the left side of the initial position of the coil 501 during the swing. In this case, a right half part of the second damper 62 arranged close to the lower end b of the coil 501 is subjected to elastic deformation under tension. During the deformation, the second damper 62 applies a second restoring force F-re2 rightwards to the part of the connecting member 503 close to the lower end b of the coil 501, so that the connecting member 503 drives the lower end b of the coil 501 to move to the right to restore to the initial position of the coil 501.
[0097] Since the coil 501, the coil former 502, and the connecting member 503 in the vibrating assembly 50 are all bilaterally symmetrical with respect to the axis U-U of the magnetic assembly, when the entire vibrating assembly 50 shifts to the right, as shown in
[0098] In this way, the first damper 61 applies the first restoring force F-re1 leftwards to the part of the connecting member 503 close to the upper end a of the coil 501, and the second damper 62 applies the second restoring force F-re2 rightwards to the part of the connecting member 503 close to the lower end b of the coil 501. so that the connecting member 503 can drive the coil 501 to restore to the initial position of the coil 501 in the process of restoring the initial position of the connecting member 503.
[0099] The foregoing description is provided by using an example in which the voice coil 51 drives the connecting member 503 to swing to the right in the process in which the coil 501 is energized and vibrates. In some other embodiments of this application, the right half part of the vibrating assembly 50 is used as an example for description. As shown in
[0100] In this case, the right half part of the first damper 61 arranged close to the upper end a of the coil 501 is subjected to elastic deformation under pressure. During the elastic deformation, the first damper 61 applies a first restoring force F-re1 rightwards to the part of the connecting member 503 close to the upper end a of the coil 501, so that the connecting member 503 drives the upper end a of the coil 501 to move to the right to restore to the initial position of the coil 501.
[0101] In addition, the lower end b of the coil 501 shifts to the right side of the initial position of the coil 501 during the swing. In this case, the right half part of the second damper 62 arranged close to the lower end b of the coil 501 is subjected to elastic deformation under pressure. During the deformation, the second damper 62 applies a second restoring force F-re2 leftwards to the part of the connecting member 503 close to the lower end b of the coil 501, so that the connecting member 503 drives the lower end b of the coil 501 to move to the left to restore to the initial position of the coil 501.
[0102] Similarly, since the coil 501, the coil former 502, and the connecting member 503 in the vibrating assembly 50 are all bilaterally symmetrical with respect to the axis U-U of the magnetic assembly, when the entire vibrating assembly 50 shifts to the left, as shown in
[0103] The left half part of the second damper 62 applies a second restoring force F-re2 leftwards to the part of the connecting member 503 close to the lower end b of the coil 501, so that the connecting member 503 drives the lower end b of the coil 501 to move to the left to restore to the initial position of the coil 501.
[0104] In this way, the first damper 61 applies the first restoring force F-re1 rightwards to the part of the connecting member 503 close to the upper end a of the coil 501, and the second damper 62 applies the second restoring force F-re2 leftwards to the part of the connecting member 503 close to the lower end b of the coil 501, so that the connecting member 503 can drive the coil 501 to restore to the initial position of the coil 501 in the process of restoring the initial position of the connecting member 503.
[0105] In conclusion, on one hand, in the process in which the coil 501 swings left and right, the first damper 61 arranged close to the upper end a of the coil 501 may provide, for the upper end a of the coil 501, a first restoring -force F-re1 whose direction is opposite to a swing direction of the coil 501. Moreover, the second damper 62 arranged close to the lower end b of the coil 501 may provide, for the lower end of the coil 501, a second restoring -force F-re2 whose direction is opposite to the swing direction of the coil 501. Under a combined action of the first restoring force F-re1 and the second restoring force F-re2, the coil 501 can be located close to the initial position of the coil 501 as much as possible, or can be overlapped with the initial position of the coil 501.
[0106] It can be learned from the foregoing that during the swing of the coil 501, as shown in
[0107] On the other hand, by reducing the amplitude of the roll swinging of the coil 501 through the first damper 61 and the second damper 62, compliance of the speaker 10 can also be improved, and a resonance frequency (F0) of the speaker 10 at a low frequency can be reduced, to obtain a better low frequency effect.
[0108] Furthermore, since the amplitude of the roll swinging of the coil 501 is reduced under the support action of the first damper 61 and the second damper 62, when the speaker 10 operates in a low frequency state, a size of the magnetic gap 400 required for a large amplitude of the coil 501 may be effectively reduced under the drive of the high power signal. In this way, a small first magnet 402 capable of forming a small-size magnetic gap 400 may be selected in the speaker 10, to reduce a size of the speaker 10, Moreover, a higher magnetic induction intensity may be obtained by using a smaller magnetic gap 400. In this case, when a same current is introduced to the coil 501, the diaphragm 30 can obtain a greater driving force to improve sound production efficiency of the speaker 10.
[0109] Based on this, as shown in
[0110] In addition, in some related technologies, if a third damper 600 is directly connected to the coil former 502, as shown in
[0111] Compared with the solution shown in
[0112] In addition, the first damper 61 and the second damper 62 are arranged on the outer side of the coil former 502. In this way, during the vibration of the first damper 61 and the second damper 62, a probability of interference between the first damper 61 and the second damper 62 and the magnetic assembly 40 located close to the coil former 502 can be reduced. Moreover, the first damper 61 is closer to the upper end of the coil 501 than the second damper 62, and the second damper 62 is closer to the lower end of the coil 501 than the first damper 61, so that roll swinging of both ends of the coil 501 is limited through the first damper 61 and the second damper 62.
[0113] Specific arrangement positions of the first damper 61 and the second damper 62 in the speaker 10 are described in detail below
[0114] In some embodiments of this application, as shown in
[0115] It should be noted that in
[0116] In addition, when the inner side of the first damper 61 is connected to the magnetic assembly 40, to prevent the first damper 61 from touching an upper surface of the washer 403 in the magnetic assembly 40 when the coil 501 vibrates at a large amplitude, the speaker 10 further includes a damper bracket 70 shown in
[0117] The damper bracket 70 is located on a side of the magnetic assembly 40 close to the diaphragm 30, and is connected to the magnetic assembly 40. For example, when the magnetic assembly 40 includes the washer 403, the damper bracket 70 may be located on the upper surface of the washer 403 (that is, a surface of the washer 403 close to the diaphragm 30), and the damper bracket 70 may be connected to the upper surface of the washer 403 by using an adhesive. In addition, a surface on a side of the damper bracket 70 close to the diaphragm 30 may be connected to the inner side of the first damper 61 through bonding.
[0118] As shown in
[0119] Alternatively, in some other embodiments of this application, as shown in
[0120] On the other hand, as shown in
[0121] Alternatively, in some other embodiments of this application, when a distance between the magnetic assembly 40 and the connecting member 503 is enough to mount the first damper 61 that meets a design requirement, as shown in
[0122] For the convenience of description, the following provides a description by using an example in which the inner side of the first damper 61 is connected to the damper bracket 70 (as shown in
[0123] In addition, as shown in
[0124] It should be noted that in
[0125] In this case, on one hand, the first damper 61 may be located on an inner side of the connecting member 503 (a side close to the coil 501), and the second damper 62 may be located on an outer side of the connecting member 503 (a side close to the side wall A2 of the accommodating cavity 100). In this way, even if the coil 501 operates in a high power mode and vibrates up and down at a relatively large amplitude, under the drive of the coil 501, the first damper 61 and the second damper 62 that vibrate up and down do not touch each other.
[0126] On the other hand, if the first damper 61 and the second damper 62 are arranged on a same side of the connecting member 503, to prevent the first damper 61 and the second damper 62 that vibrate up and down from touching each other, a distance between the first damper 61 and the second damper 62 needs to be increased. In this way, a height (a size in the Z direction) of the connecting member 503 is increased, thereby increasing a thickness of the speaker 10. In this application, since the first damper 61 is located on the inner side of the connecting member 503 and the second damper 62 is located on the outer side of the connecting member 503, there is no need to increase the height of the connecting member 503 to prevent the first damper 61 and the second damper 62 from touching each other.
[0127] Furthermore, as shown in
[0128] In addition, to enable the first damper 61 to be arranged close to the upper end of the coil 501 (the end of the coil 501 close to the diaphragm 30) and the second damper 62 to be arranged close to the lower end of the coil 501 (the end of the coil 501 away from the diaphragm 30), in some embodiments of this application, as shown in
[0129] In this way, a vertical projection of the entire coil 501 on the connecting member 503 may be located between a vertical projection of the first damper 61 on the connecting member 503 and a vertical projection of the second damper 62 on the connecting member 503. In this case, since the first damper 61 is located at the upper end of the coil 501 and is relatively far away from the lower end of the coil 501, torque provided by the first damper 61 for the upper end of the coil 501 is relatively large. This is more conducive to limiting roll swinging of the upper end of the coil 501. Similarly, since the second damper 62 is located at the lower end of the coil 501 and is relatively far away from the upper end of the coil 501, torque provided by the second damper 62 for the lower end of the coil 501 is relatively large. This is more conducive to limiting roll swinging of the lower end of the coil 501.
[0130] Based on this, when the coil 501 is not energized, there is a first spacing L1 between a geometric center of the vertical projection of the coil 501 on the connecting member 503 and the first damper 61. In addition, there is a second spacing L2 between the geometric center of the vertical projection of the coil 501 on the connecting member 503 and the second damper 62. L1=L2.
[0131] For example, when the coil 501 is evenly wound around the coil former 502, the geometric center of the vertical projection of the coil 501 that is not electrified on the connecting member 503 may be a center of mass of the coil 501. In this case, the spacing L1 between the center of mass of the coil 501 and the first damper 61 is equal to the spacing L2 between the center of mass of the coil 501 and the second damper 62. In this way, in the process of supporting the coil 501 by the first damper 61 and the second damper 62, magnitudes of the first restoring force F-re1 applied by the first damper 61 to the coil 501 and the second restoring force F-re2 applied by the second damper 62 to the coil 501 may be the same or approximately the same, so that in a process in which the coil 501 vibrates up and down, the axis of the coil 501 can keep overlapped with the axis (U-U) of the magnetic assembly 40 as much as possible.
[0132] In addition, an elastic coefficient of the first damper 61 may be the same as an elastic coefficient of the second damper 62. In this way, in the process of supporting the coil 501 by the first damper 61 and the second damper 62, this can be more helpful to make a value of the first restoring force F-re1 applied by the first damper 61 to the coil 501 close to or the same as a value of the second restoring force F-re2 applied by the second damper 62 to the coil 501,
[0133] Alternatively, to enable the first damper 61 to be arranged close to the upper end of the coil 501 (the end of the coil 501 close to the diaphragm 30) and the second damper 62 to be arranged close to the lower end of the coil 501 (the end of the coil 501 away from the diaphragm 30), in some other embodiments of this application, as shown in
[0134] Alternatively, in some other embodiments of this application, as shown in
[0135] Alternatively, in some other embodiments of this application, as shown in
[0136] The foregoing description is provided by using an example in which the magnetic assembly 40 includes the T-yoke 401, the first magnet 402, and the washer 403. In some other embodiments of this application, as shown in
[0137] For example, the bottom 414 of the groove of the U-yoke 404 may pass through a through bole in the bottom A1 of the accommodating cavity 100, and is connected to the bottom A1 of the accommodating cavity 100. In this case, one part of the U-yoke 404 may be located inside the accommodating cavity 100, and the other part of the U-yoke 404 may be located outside the accommodating cavity 100. A material of the U-yoke 404 may be iron with higher purity. A shape of a longitudinal section of the U-yoke 404 (perpendicular to the bottom A1 of the accommodating cavity 100) may be a U shape.
[0138] In addition, the second magnet 405 is located in the groove of the U-yoke 404 and is connected to the bottom 414 of the groove of the U-yoke 404. The second magnet 405 is a permanent magnet and is configured to provide a constant magnetic field in the speaker 10. The pole piece 406 is located in the groove of the U-yoke 404 and is connected to a surface on a side of the second magnet 405 close to the diaphragm 30, and a magnetic gap 400 is formed between the pole piece 406 and the side wail 424 of the groove of the U-yoke 404. The pole piece 406 may have a function of magnetic conduction.
[0139] In this way, under an action of magnetic conduction of the U-yoke 404 and the pole piece 406, a magnetic line emitted from an N pole of the second magnet 405 can pass through the U-yoke 404, pass through the coil 501 located in the magnetic gap 400, and then return to an S pole of the second magnet 405, thereby forming a magnetic loop in the magnetic assembly 40. Alternatively, a magnetic line emitted from an N pole of the second magnet 405 can pass through the coil 501 located in the magnetic gap 400, pass through the U-yoke 404, and then return to an S pole of the second magnet 405, thereby forming a magnetic loop in the magnetic assembly 40.
[0140] It should be noted that when the magnetic assembly 40 includes the U-yoke 404, the second magnet 405, and the pole piece 406, the axis U-U of the magnetic assembly 40 may be an axis of the U-yoke 404. Based on this, in some embodiments of this application, the second magnet 405 and the pole piece 406 may be cylinders, and an axis of the second magnet 405 and an axis of the pole piece 406 may be overlapped with the axis of the U-U-yoke 404, thereby generating a relatively high magnetic field intensity.
[0141] The foregoing descriptions are merely specific implementations of this application, but are not intended to limit the protection scope of this application. Any variation or replacement readily figured out by a person skilled in the art within the technical scope disclosed in this application shall fall within the protection scope of this application. Therefore, the protection scope of this application shall be subject to the protection scope of the claims.