Horn wire damper with yarns on two sides of wire combination distributed in arc shape and manufacturing method of horn wire damper
By distributing the yarns on both sides of the conductor combination in an arc shape in the speaker conductor elastic wave and forming a resin solid layer, the problem of uneven hardness and toughness of the conductor combination is solved, the uniform performance of the speaker conductor elastic wave is achieved, and the sound quality and fatigue resistance are improved.
Patent Information
- Application Number
- CN202410300410.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2024-03-15
- Publication Date
- 2025-09-16
AI Technical Summary
The existing speaker wire dampers have uneven hardness, elasticity and toughness of the wire combination, resulting in uneven sound quality of the speaker output and easy deformation and brittle cracking.
By distributing the yarns on both sides of the conductor combination in an arc shape and forming a resin solid layer on its surface, the hardness, elasticity and toughness of the conductor setting area are adjusted to form an elastic adjustment area to uniform the performance of the conductor setting area.
The hardness, elasticity and toughness of the speaker wire elastic wave are made uniform, the sound quality and fatigue resistance of the speaker are improved, and deformation and brittle cracking are avoided.
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Figure CN120658986A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to a speaker wire damper and a manufacturing method thereof, and in particular to a speaker wire damper in which yarns on both sides of a wire assembly are distributed in an arc shape and a manufacturing method thereof. Background Art
[0002] Typical dynamic speakers produce sound by exploiting the principle that the reaction force of a fixed magnetic field causes another magnetic field to move in the opposite direction (i.e., opposites attract, likes repel). Specifically, the AC power generated by the power amplifier is transmitted to the voice coil via wires, changing the polarity of the magnetic field, causing the voice coil to generate a reaction force relative to the fixed magnetic field generated by the magnetic return device. Positive pulses cause the diaphragm to move outward relative to the magnet, while negative pulses cause it to move inward. When the voice coil pushes the diaphragm back and forth, the diaphragm pushes against the air, causing changes in air pressure to form sound waves. The elastic wave is responsible for maintaining the voice coil's correct position within the gap between the magnet core and the voice coil, ensuring that the voice coil reciprocates along its axis when subjected to force.
[0003] Conventional speaker wire dampers consist of a main body, multiple wire assemblies, and a resin solidifying layer. The main body is woven from multiple yarns and has multiple wire mounting areas. The wire assemblies are positioned on these mounting areas, each consisting of multiple monofilament wires. The resin solidifying layer covers the surfaces of the yarns and wire assemblies.
[0004] However, because the conductor assembly is harder than yarn and its elasticity and toughness are lower than those of yarn, the conductor mounting area is harder than the rest of the speaker wire damper, and the elasticity and toughness of the conductor mounting area are lower than those of the rest of the speaker wire damper. As a result, the hardness, elasticity, and toughness of the speaker wire damper are uneven, leading to uneven elastic recovery and fatigue resistance. This makes the speaker wire damper susceptible to deformation, which in turn affects the sound quality of the speaker output. Summary of the Invention
[0005] The main purpose of the present invention is to provide a speaker conductor damper with yarns on both sides of the conductor assembly distributed in an arc shape and a manufacturing method thereof, which can adjust the hardness, elasticity and toughness of the conductor setting area through the elastic adjustment area.
[0006] To achieve the aforementioned objectives, the present invention provides a method for manufacturing a speaker wire damper in which yarns on both sides of a wire assembly are distributed in an arc shape. The method comprises the following steps: weaving a plurality of yarns into a base material, and disposing a plurality of wire assemblies on a plurality of wire placement areas of the base material, wherein each wire assembly is composed of a plurality of wires, each of which is a monofilament; soaking the base material in a resin solution; drying the base material to form a solid resin layer on the base material; hot-pressing a speaker wire damper on the base material, wherein the yarns on both sides of each wire assembly are distributed in an arc shape to form two elastic adjustment areas; and separating the speaker wire damper from the base material.
[0007] In some embodiments, the step of respectively arranging the conductor assemblies on the conductor areas further includes: a plurality of warp yarns of the yarns extend straight and parallel to the conductor assemblies, and a plurality of weft yarns of the yarns extend straight and perpendicular to the warp yarns and the conductor assemblies; wherein the step of hot-pressing the speaker conductor damper further includes: the weft yarns on both sides of each conductor assembly are distributed in an arc shape and form the elastic adjustment areas with the warp yarns on both sides of each conductor assembly.
[0008] In some embodiments, the step of arranging the conductor assemblies on the conductor areas further includes: the plurality of warp yarns of the yarns extend straight and parallel to each other, and the plurality of weft yarns of the yarns extend straight and perpendicular to the warp yarns along with the conductor assemblies. The step of hot-pressing the speaker conductor damper further includes: the warp yarns on both sides of each conductor assembly are distributed in an arc shape and form the elastic adjustment areas with the weft yarns on both sides of each conductor assembly.
[0009] In some embodiments, the step of thermoforming the speaker wire damper further includes: yarns on both sides of each wire assembly are distributed in an asymmetrical arc shape.
[0010] In some embodiments, the step of weaving the substrate further comprises: the conductive wire assemblies are woven into, sewn into, bonded into, or sandwiched into the substrate.
[0011] To achieve the aforementioned objectives, the present invention provides a speaker wire damper with yarns arranged in an arc shape on both sides of the wire assembly. The device comprises a main body, multiple wire assemblies, and a resin solid layer. The main body is woven from multiple yarns and has multiple wire placement areas. The wire assemblies are respectively placed on the wire placement areas, wherein each wire assembly is composed of multiple wires, each of which is a single-filament wire. The resin solid layer covers the surfaces of the yarns and wires. The yarns on both sides of each wire assembly are arranged in an arc shape to form two elastic adjustment areas.
[0012] In some embodiments, the yarns include multiple warp yarns and multiple weft yarns, the warp yarns and the conductor combinations extend in a straight line and are parallel to each other, and the weft yarns extend in a straight line and are perpendicular to the warp yarns and the conductor combinations; wherein the weft yarns on both sides of each of the conductor combinations are distributed in an arc shape and form the elastic adjustment areas with the warp yarns on both sides of each of the conductor combinations.
[0013] In some embodiments, the yarns include multiple warp yarns and multiple weft yarns, the warp yarns extend in a straight line and are parallel to each other, and the weft yarns and the conductor combinations extend in a straight line and are perpendicular to the warp yarns; wherein the warp yarns on both sides of each conductor combination are distributed in an arc shape and form the elastic adjustment areas with the weft yarns on both sides of each conductor combination.
[0014] In some embodiments, the yarns on both sides of each conductor assembly are distributed in an asymmetrical arc shape.
[0015] In some embodiments, the wire assemblies are woven into, sewn into, bonded into, or clamped into the body.
[0016] The present invention's effectiveness lies in its ability to adjust the hardness, elasticity, and toughness of the wire-mounting areas through the elasticity-adjustable regions, softening them while increasing their elasticity and toughness. The hardness, elasticity, and toughness of the wire-mounting areas and the wires combined are equivalent to those of the other areas of the speaker wire damper. As a result, the speaker wire damper possesses uniform hardness, elasticity, and toughness, resulting in uniform elastic recovery and fatigue resistance, making it less susceptible to deformation and cracking, and thus improving the sound quality of the speaker output. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 It is a flow chart of the manufacturing method of the present invention.
[0018] Figure 2 FIG. 1 is a schematic diagram of step S10 of the first embodiment of the manufacturing method of the present invention.
[0019] Figure 3 1 is a schematic diagram of steps S20 to S50 of the first embodiment of the manufacturing method of the present invention.
[0020] Figure 4 FIG. 1 is a perspective view of a first embodiment of a speaker wire damper according to the present invention.
[0021] Figure 5 yes Figure 4 Schematic diagram of area A.
[0022] Figure 6 FIG. 1 is a schematic diagram of step S10 of the second embodiment of the manufacturing method of the present invention.
[0023] Figure 7FIG. 2 is a perspective view of a second embodiment of a speaker wire damper according to the present invention.
[0024] Figure 8 yes Figure 7 Schematic diagram of area B.
[0025] Figure 9 FIG. 1 is a schematic diagram of step S10 of the third embodiment of the manufacturing method of the present invention.
[0026] Figure 10 FIG. 4 is a perspective view of a third embodiment of a speaker wire damper according to the present invention.
[0027] Figure 11 yes Figure 10 Schematic diagram of region C.
[0028] Figure 12 FIG. 1 is a schematic diagram of step S10 of the fourth embodiment of the manufacturing method of the present invention.
[0029] Figure 13 FIG. 4 is a perspective view of a fourth embodiment of a speaker wire damper according to the present invention.
[0030] Figure 14 yes Figure 13 Schematic diagram of area D.
[0031] Figure 15 FIG. 1 is a schematic diagram of step S10 of the fifth embodiment of the manufacturing method of the present invention.
[0032] Figure 16 FIG. 4 is a perspective view of a fifth embodiment of a speaker wire damper according to the present invention.
[0033] Figure 17 yes Figure 16 Schematic diagram of region E.
[0034] Figure 18 FIG. 1 is a schematic diagram of step S10 of the sixth embodiment of the manufacturing method of the present invention.
[0035] Figure 19 FIG. 4 is a perspective view of a sixth embodiment of a speaker wire damper according to the present invention.
[0036] Figure 20 yes Figure 19 Schematic diagram of region F.
[0037]
Explanation of symbols
[0038] 10: Yarn
[0039] 11: Warp
[0040] 12: Weft
[0041] 20,20A,20B:Wire combination
[0042] 21: Wire
[0043] 30: Base material
[0044] 31: Wire setting area
[0045] 40: Resin tank
[0046] 41: Resin solution
[0047] 50: Drying device
[0048] 51: Place on baking sheet
[0049] 52: Lower baking sheet
[0050] 60:Hot pressing forming device
[0051] 61: Molding mold
[0052] 611: Upper mold
[0053] 612: Lower mold
[0054] 70: Cutting device
[0055] 71: Upper cutting tool
[0056] 72: Lower cutting tool
[0057] 100,100A,100B,100C,100D,100E: Speaker wire spring
[0058] 110:Ontology
[0059] 130: resin solid layer
[0060] 140: Elastic adjustment area
[0061] S10~S50: Steps DETAILED DESCRIPTION
[0062] The following describes the embodiments of the present invention in more detail with reference to the accompanying drawings and reference numerals, so that those skilled in the art can implement the invention accordingly after studying the specification.
[0063] Figure 1 It is a flow chart of the manufacturing method of the present invention. Figure 2 FIG. 1 is a schematic diagram of step S10 of the first embodiment of the manufacturing method of the present invention. Figure 3 Schematic diagram of steps S20 to S50 of the first embodiment of the manufacturing method of the present invention. The present invention provides a method for manufacturing a speaker wire damper in which yarns on both sides of a wire assembly are distributed in an arc shape, comprising the following steps:
[0064] Step S10, as Figure 1 and Figure 2 As shown, a plurality of yarns 10 are woven into a base material 30, and a plurality of conductor assemblies 20 are respectively arranged on a plurality of conductor arrangement areas 31 of the base material 30. Each conductor assembly 20 is composed of a plurality of conductors 21, each conductor 21 being a monofilament, and the conductors 21 are arranged at intervals.
[0065] Specifically, the plurality of warp yarns 11 of the yarns 10 and the conductive wire assemblies 20 extend straight and parallel to each other, and the plurality of weft yarns 12 of the yarns 10 extend straight and perpendicular to the warp yarns 11 and the conductive wire assemblies 20 .
[0066] In the first embodiment, step S10 further includes: arranging the warp yarns 11 and the conductor assemblies 20 at intervals, the warp yarns 11 and the conductor assemblies 20 extending straight and parallel to each other; and interweaving the weft yarns 12 with the warp yarns 11 and the conductor assemblies 20 to weave the base material 30.
[0067] In some embodiments, step S10 further includes: sewing the conductive wire assemblies 20 onto the substrate 30 using multiple stitches. In some embodiments, step S10 further includes: adhering the conductive wire assemblies 20 onto the substrate 30 using multiple adhesive layers. In some embodiments, step S10 further includes: sandwiching the conductive wire assemblies 20 between two substrates 30.
[0068] Step S20, as Figure 1 and Figure 3 As shown, the substrate 30 is immersed in a resin solution 41 in a resin tank 40 , so that the warp yarns 11 , the weft yarns 12 and the conductive wires 21 absorb and adhere to the resin.
[0069] Step S30, as Figure 1 and Figure 3 As shown, a drying device 50 includes an upper baking plate 51 and a lower baking plate 52. The temperature of the upper baking plate 51 and the lower baking plate 52 is used to remove moisture and volatile substances in the resin on the substrate 30 to dry the substrate 30. At the same time, the resin penetrates into the substrate 30 and adheres to the warp yarns 11, the weft yarns 12 and the conductive wires 21 to form a resin solid layer 130 (see Figure 5 ), the resin solid layer 130 covers the surfaces of the warp yarns 11, the weft yarns 12 and the conductive wires 21.
[0070] Step S40, as Figure 1 and Figure 3As shown, a hot press forming device 60 includes a forming mold 61 and a heating device (not shown), and the forming mold 61 includes an upper mold 611 and a lower mold 612. When the upper mold 611 and the lower mold 612 are closed and pressurized on the substrate 30, the heating device is energized to increase the temperature of the upper mold 611 and the lower mold 612 to 190°C to 270°C, thereby softening the resin on the substrate 30. In addition to breaking up the resin, the resin also fills the gaps and connects to form the final shape of the resin solid layer 130 to cover between the warp yarns 11, the weft yarns 12 and the conductors 21, thereby hot press-forming a speaker conductor damper 100 on the substrate 30. It is important that the weft yarns 12 on both sides of each conductor assembly 20 are distributed in an arc shape and form two elastic adjustment areas 140 with the warp yarns 11 on both sides of each conductor assembly 20 (see Figure 5 Preferably, the weft yarns 12 on both sides of each conductor assembly 20 are distributed in an asymmetrical arc shape (see Figure 5 ).
[0071] Step S50, as Figure 1 and Figure 3 As shown, a cutting device 70 includes an upper cutter 71 and a lower cutter 72 . The upper cutter 71 and the lower cutter 72 cut the speaker wire damper 100 from the substrate 30 , so that the speaker wire damper 100 is separated from the substrate 30 .
[0072] Figure 4 FIG. 1 is a perspective view of a first embodiment of a speaker wire damper 100 according to the present invention. Figure 5 yes Figure 4 Schematic diagram of area A. Figure 4 and Figure 5 As shown, the present invention provides a speaker wire damper 100 with yarns arranged in an arc shape on both sides of the wire assembly. The device comprises a body 110, a plurality of wire assemblies 20, and a resin solidifying layer 130. The body 110 is woven from a plurality of yarns 10 and has a plurality of wire placement areas 31. The wire assemblies 20 are disposed on the wire placement areas 31. Each wire assembly 20 is composed of a plurality of wires 21, each of which is a monofilament. The resin solidifying layer 130 covers the surfaces of the yarns 10 and the wires 21.
[0073] Specifically, the yarns 10 include a plurality of warp yarns 11 and a plurality of weft yarns 12. The warp yarns 11 and the conductive wire assemblies 20 extend straight and parallel to each other, while the weft yarns 12 extend straight and perpendicular to the warp yarns 11 and the conductive wire assemblies 20. Importantly, the weft yarns 12 on either side of each conductive wire assembly 20 are arranged in an arc shape and, together with the warp yarns 11 on either side of each conductive wire assembly 20, form two elastic adjustment regions 140. Preferably, the weft yarns 12 on either side of each conductive wire assembly 20 are arranged in an asymmetrical arc shape.
[0074] In the first embodiment, the warp yarns 11 and the conductive wire assemblies 20 are spaced apart and extend straight and parallel to each other, and the weft yarns 12 are interwoven with the warp yarns 11 and the conductive wire assemblies 20 to weave the body 110 .
[0075] In some embodiments, the wire assemblies 20 are sewn onto the body 110 using multiple stitches. In some embodiments, the wire assemblies 20 are adhered to the body 110 using multiple adhesive layers. In some embodiments, the wire assemblies 20 are sandwiched between two pieces of the body 110.
[0076] Figure 6 FIG. 1 is a schematic diagram of step S10 of the second embodiment of the manufacturing method of the present invention. Figure 6 As shown, in terms of method, the difference between the second embodiment and the first embodiment is that: in step S10, the conductors 21 are twisted so that each conductor combination 20A forms a multifilament wire body with a circular cross section.
[0077] Figure 7 FIG. 1 is a perspective view of a second embodiment of a speaker wire damper 100A according to the present invention. Figure 8 yes Figure 7 Schematic diagram of area B. Figure 7 and Figure 8 As shown, in terms of structure, the conductors 21 are twisted so that each conductor combination 20A forms a multifilament wire body with a circular cross section.
[0078] Figure 9 FIG. 1 is a schematic diagram of step S10 of the third embodiment of the manufacturing method of the present invention. Figure 9 As shown, in terms of method, the third embodiment differs from the first embodiment and the second embodiment in that: in step S10, the wires 21 are interwoven and braided with each other so that each wire assembly 20B forms a multifilament wire body with a flat cross section.
[0079] Figure 10 FIG. 1 is a perspective view of a speaker wire damper 100B according to a third embodiment of the present invention. Figure 11 yes Figure 10 Schematic diagram of region C. Figure 10 and Figure 11 As shown, in terms of structure, the third embodiment differs from the aforementioned embodiments in that the conductors 21 are interwoven and braided with each other, so that each conductor assembly 20B forms a multifilament wire body with a flat cross section.
[0080] Figure 12 FIG. 1 is a schematic diagram of step S10 of the fourth embodiment of the manufacturing method of the present invention. Figure 12As shown, in terms of method, the difference between the fourth embodiment and the first embodiment is: First, in step S10, the warp yarns 11 extend straight and parallel to each other, and the weft yarns 12 and the conductor assembly 20 extend straight and perpendicular to the warp yarns 11. Specifically, step S10 further includes: arranging the warp yarns 11 at intervals and extending them straight; and arranging the weft yarns 12 and the conductor assembly 20 at intervals and interweaving them with the warp yarns 11 to weave the base material 30. Second, in step S40, the warp yarns 11 on both sides of each conductor assembly 20 are distributed in an arc shape and form two elastic adjustment areas 140 (see Figure 14 Preferably, the warp yarns 11 on both sides of each conductor assembly 20 are distributed in an asymmetric arc shape (see Figure 14 ).
[0081] Figure 13 FIG. 1 is a perspective view of a speaker wire damper 100C according to a fourth embodiment of the present invention. Figure 14 yes Figure 13 Schematic diagram of area D. Figure 13 and Figure 14 As shown, the fourth embodiment differs from the first embodiment in structure in that: first, the warp yarns 11 extend straight and parallel to each other, while the weft yarns 12 and the conductive wire assemblies 20 extend straight and perpendicular to the warp yarns 11. Specifically, the warp yarns 11 are spaced apart and extend straight, while the weft yarns 12 and the conductive wire assemblies 20 are spaced apart and interwoven with the warp yarns 11 to weave the body 110. Second, the warp yarns 11 on either side of each conductive wire assembly 20 are arranged in an arc shape and, together with the weft yarns 12 on either side of each conductive wire assembly 20, form two elastic adjustment regions 140. Preferably, the warp yarns 11 on either side of each conductive wire assembly 20 are arranged in an asymmetrical arc shape.
[0082] Figure 15 FIG. 1 is a schematic diagram of step S10 of the fifth embodiment of the manufacturing method of the present invention. Figure 15 As shown, in terms of method, the difference between the fifth embodiment and the second embodiment is: First, in step S10, the warp yarns 11 extend straight and parallel to each other, and the weft yarns 12 and the conductor assembly 20A extend straight and perpendicular to the warp yarns 11. Specifically, step S10 further includes: arranging the warp yarns 11 at intervals and extending them straight; and arranging the weft yarns 12 and the conductor assembly 20A at intervals and interweaving them with the warp yarns 11 to weave the base material 30. Second, in step S40, the warp yarns 11 on both sides of each conductor assembly 20A are distributed in an arc shape and form two elastic adjustment areas 140 (see Figure 17 Preferably, the warp yarns 11 on both sides of each conductor assembly 20 are distributed in an asymmetric arc shape (see Figure 17 ).
[0083] Figure 16 FIG. 1 is a perspective view of a fifth embodiment of a speaker wire damper 100D according to the present invention. Figure 17 yes Figure 16 Schematic diagram of region E. Figure 16 and Figure 17 As shown, the fifth embodiment differs from the second embodiment in structure in that: first, the warp yarns 11 extend straight and parallel to each other, while the weft yarns 12 and the conductive wire assemblies 20A extend straight and perpendicular to the warp yarns 11. Specifically, the warp yarns 11 are spaced apart and extend straight, while the weft yarns 12 and the conductive wire assemblies 20A are spaced apart and interwoven with the warp yarns 11 to weave the body 110. Second, the warp yarns 11 on either side of each conductive wire assembly 20A are arranged in an arc shape and, together with the weft yarns 12 on either side of each conductive wire assembly 20A, form two elastic adjustment regions 140. Preferably, the warp yarns 11 on either side of each conductive wire assembly 20A are arranged in an asymmetrical arc shape.
[0084] Figure 18 FIG. 1 is a schematic diagram of step S10 of the sixth embodiment of the manufacturing method of the present invention. Figure 18 As shown, in terms of method, the difference between the sixth embodiment and the third embodiment is: First, in step S10, the warp yarns 11 extend straight and parallel to each other, and the weft yarns 12 and the conductor assembly 20B extend straight and perpendicular to the warp yarns 11. Specifically, step S10 further includes: arranging the warp yarns 11 at intervals and extending them straight; and arranging the weft yarns 12 and the conductor assembly 20B at intervals and interweaving them with the warp yarns 11 to weave the base material 30. Second, in step S40, the warp yarns 11 on both sides of each conductor assembly 20B are distributed in an arc shape and form two elastic adjustment areas 140 (see Figure 20 Preferably, the warp yarns 11 on both sides of each conductor assembly 20 are distributed in an asymmetric arc shape (see Figure 20 ).
[0085] Figure 19 FIG. 1 is a perspective view of a sixth embodiment of a speaker wire damper 100E according to the present invention. Figure 20 yes Figure 19 Schematic diagram of region F. Figure 19 and Figure 20As shown, the sixth embodiment differs from the third embodiment in structure in that: first, the warp yarns 11 extend straight and parallel to each other, while the weft yarns 12 and the conductive wire assemblies 20B extend straight and perpendicular to the warp yarns 11. Specifically, the warp yarns 11 are spaced apart and extend straight, while the weft yarns 12 and the conductive wire assemblies 20B are spaced apart and interwoven with the warp yarns 11 to weave the body 110. Second, the warp yarns 11 on either side of each conductive wire assembly 20B are arranged in an arc shape and, together with the weft yarns 12 on either side of each conductive wire assembly 20B, form two elastic adjustment regions 140. Preferably, the warp yarns 11 on either side of each conductive wire assembly 20B are arranged in an asymmetrical arc shape.
[0086] In summary, the present invention utilizes the elasticity adjustment regions 140 to adjust the hardness, elasticity, and toughness of the wire mounting areas 31, softening them while increasing their elasticity and toughness. The hardness, elasticity, and toughness of the wire mounting areas 31 and the wire assemblies 20, 20A, and 20B are equivalent to those of the other regions of the speaker wire dampers 100-100E. Consequently, the speaker wire dampers 100-100E exhibit uniform hardness, elasticity, and toughness, resulting in uniform elastic recovery and fatigue resistance, making them less susceptible to deformation and cracking, and thus improving the sound quality of the speaker output.
[0087] The above description is only used to explain the preferred embodiments of the present invention and is not intended to limit the present invention in any form. Therefore, any modifications or changes made to the present invention under the same inventive spirit should still be included in the scope of protection intended by the present invention.
Claims
1. A method for manufacturing a speaker wire damper in which yarns on both sides of a wire assembly are distributed in an arc shape, comprising the following steps: A plurality of yarns are woven into a base material, and a plurality of conductors are respectively arranged on a plurality of conductor arrangement areas of the base material, wherein: Each of the wire assemblies is composed of a plurality of wires, and each of the wires is a monofilament wire; soaking the substrate in a resin solution; drying the substrate to form a solid resin layer on the substrate; A speaker wire spring is formed on the substrate by heat pressing, and the yarns on both sides of each wire assembly are distributed in an arc shape to form two elastic adjustment areas; as well as The speaker wire damper is separated from the substrate.
2. The method for manufacturing a speaker conductor damper with arc-shaped yarns on both sides of the conductor assembly according to claim 1, wherein: The step of arranging the plurality of conductor assemblies on the plurality of conductor areas further includes: the plurality of warp yarns of the plurality of yarns extend straight and parallel to the plurality of conductor assemblies, and the plurality of weft yarns of the plurality of yarns extend straight and perpendicular to the plurality of warp yarns and the plurality of conductor assemblies. The step of hot-pressing the speaker conductor damper further includes: the weft yarns on both sides of each conductor assembly are distributed in an arc shape and form the plurality of elastic adjustment areas with the warp yarns on both sides of each conductor assembly.
3. The method for manufacturing a speaker conductor damper with arc-shaped yarns on both sides of the conductor assembly according to claim 1, wherein: The step of arranging the plurality of conductor assemblies respectively on the plurality of conductor areas further includes: the plurality of warp yarns of the plurality of yarns extend straight and parallel to each other, and the plurality of weft yarns of the plurality of yarns extend straight and perpendicular to the plurality of warp yarns along with the plurality of conductor assemblies. The step of hot-pressing the speaker conductor damper further includes: the warp yarns on both sides of each conductor assembly are distributed in an arc shape and form the plurality of elastic adjustment areas with the weft yarns on both sides of each conductor assembly.
4. The method for manufacturing a speaker conductor damper with yarns on both sides of the conductor assembly distributed in an arc shape according to claim 1, wherein: The step of hot pressing to form the speaker wire damper further includes: the yarns on both sides of each wire combination are distributed in an asymmetrical arc shape.
5. The method for manufacturing a speaker conductor damper with yarns on both sides of the conductor assembly distributed in an arc shape according to claim 1, wherein: The step of weaving the base material further includes: the plurality of wire combinations are woven into, sewn into, bonded into, or sandwiched into the base material.
6. A speaker conductor spring with yarns on both sides of a conductor assembly distributed in an arc shape, comprising: A body is woven from a plurality of yarns and has a plurality of conductor arrangement areas; A plurality of wire assemblies are respectively arranged on the plurality of wire arrangement areas, wherein each of the wire assemblies is composed of a plurality of wires, and each of the wires is a monofilament; and a resin solid layer covering the surfaces of the plurality of yarns and the plurality of conductive wires; The yarns on both sides of each conductor assembly are distributed in an arc shape to form two elastic adjustment areas.
7. The speaker wire damper with yarns on both sides of the wire assembly distributed in an arc shape according to claim 6, wherein: The multiple yarns include multiple warp yarns and multiple weft yarns, the multiple warp yarns and the multiple conductor combinations extend in a straight line and are parallel to each other, and the multiple weft yarns extend in a straight line and are perpendicular to the multiple warp yarns and the multiple conductor combinations; wherein the weft yarns on both sides of each of the conductor combinations are distributed in an arc shape and form the multiple elastic adjustment areas with the warp yarns on both sides of each of the conductor combinations.
8. The speaker wire damper with yarns on both sides of the wire assembly distributed in an arc shape according to claim 6, wherein: The multiple yarns include multiple warp yarns and multiple weft yarns, the multiple warp yarns extend in a straight line and are parallel to each other, and the multiple weft yarns and the multiple conductor combinations extend in a straight line and are perpendicular to the multiple warp yarns; wherein the warp yarns on both sides of each conductor combination are distributed in an arc shape and form the multiple elastic adjustment areas with the weft yarns on both sides of each conductor combination.
9. The speaker wire damper with yarns on both sides of the wire assembly distributed in an arc shape according to claim 6, wherein: The yarns on both sides of each conductor assembly are distributed in an asymmetrical arc shape.
10. The speaker wire damper with yarns on both sides of the wire assembly distributed in an arc shape according to claim 6, wherein: The plurality of wire assemblies are woven into, sewn into, adhered to, or clamped into the body.