Manufacturing method for noise suppression components

A manufacturing method for noise suppression members with a thin-walled magnetic core and resin molded member addresses installation challenges and core damage by using retaining pins to control resin injection, resulting in thinner, damage-resistant components.

JP7841746B2Active Publication Date: 2026-04-07KITAGAWA INDS
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-09-28
Publication Date
2026-04-07

AI Technical Summary

Technical Problem

Existing noise countermeasure members with ferrite sintered cores have a bulky structure due to a wall thickness of 5 mm or more, making them difficult to install in thin devices or narrow spaces, and the risk of damage during resin molding leads to performance deterioration.

Method used

A manufacturing method for noise suppression members with a magnetic core and resin molded member, featuring a thin-walled portion of 1.5 mm to 4.0 mm, uses retaining pins to retract during resin injection, maintaining a filling volume ratio of 60 ≤ E ≤ 90, to prevent core damage and ensure integration.

Benefits of technology

The method allows for the production of thinner noise suppression members that can be installed in tight spaces while minimizing core damage, enhancing productivity and maintaining performance.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a manufacturing method capable of manufacturing a noise countermeasure member which can be installed at thin-type equipment or a narrow place, and capable of suppressing damage to a magnetic core during manufacture of the same.SOLUTION: A noise countermeasure member comprises a magnetic core and a mold member. The magnetic core has a thin wall portion with a wall thickness of 1.5 mm to 4.0 mm. When molding the mold member, holding pins are allowed to be brought into contact with the magnetic core, to hold the magnetic core. The holding pins located in a position to be in contact with the thin wall portion are retracted to a position separating from the thin wall portion within a time period in which a filling volume ratio: E=(1-(D-C) / D)×100 that can be calculated based on a filling volume C and a volume D of the mold member becomes a value that satisfies 60≤E≤90.SELECTED DRAWING: Figure 1
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Description

Technical Field

[0001] The present disclosure relates to a method for manufacturing a noise countermeasure member.

Background Art

[0002] In a noise countermeasure member provided with a magnetic core, a technique of molding the magnetic core with a resin mold member is known (for example, see Patent Document 1). In such a noise countermeasure member, a ferrite sintered body may be used as the magnetic core.

Prior Art Documents

Patent Documents

[0003]

Patent Document 1

Summary of the Invention

Problems to be Solved by the Invention

[0004] When molding a ferrite sintered body with resin as described above, the wall thickness corresponding to the dimension between the inner peripheral side and the outer peripheral side of the magnetic core is generally about 5 mm or more. However, when resin molding is added to the inner peripheral side and the outer peripheral side of the magnetic core using such a ferrite sintered body, the overall noise countermeasure member has a relatively bulky structure. Therefore, it may be difficult to attach such a noise countermeasure member to a thin device or a narrow space.

[0005] Therefore, the inventor of the present case has been considering making the wall thickness of the magnetic core less than 5 mm. However, when the wall thickness of the magnetic core is less than 5 mm, when molten resin is injected into the mold in which the magnetic core is disposed, the magnetic core may be damaged, such as cracks occurring in the magnetic core, due to the pressure acting on the magnetic core. If the magnetic core is damaged, the performance as a noise countermeasure member may deteriorate.

[0006] In one aspect of this disclosure, it is desirable to provide a manufacturing method that can produce noise suppression components that can be installed in thin devices or in narrow spaces, and that can suppress damage to the magnetic core during manufacturing. [Means for solving the problem]

[0007] The structure of this disclosure is described below. (1) One aspect of the present disclosure is a method for manufacturing a noise suppression member, the noise suppression member comprising a magnetic core and a molded member. The magnetic core is made of a sintered body of a magnetic material and is shaped to allow a conductor to be placed at a position penetrating its inner circumference. The molded member is made of a resin material and is configured to mold the magnetic core. The magnetic core has a thin-walled portion with a wall thickness of 1.5 mm to 4.0 mm, corresponding to the dimension between the inner circumference and the outer circumference. The molded member is a single-piece molded product in which the portion that molds the inner circumference of the thin-walled portion and the portion that molds the outer circumference of the thin-walled portion are integrally molded from the resin material. When molding the molded member, before injecting the resin material into the mold, a retaining pin is brought into contact with the magnetic core placed in the mold to hold the magnetic core in the mold. When injecting resin material into the mold, retaining pins that are in contact with the thin-walled portion are moved to a position away from the thin-walled portion within a period during which the filling volume ratio E = (1 - (DC) / D) × 100, which can be calculated based on the filling volume C, which is the volume of resin material filled into the mold, and the volume D of the molded member, satisfies the value 60 ≤ E ≤ 90.

[0008] The noise suppression member manufacturing method configured in this way makes it possible to manufacture the noise suppression member described above. In particular, in this manufacturing method, when injecting the resin material into the mold, at least the retaining pins that are in contact with the thin-walled portion are retracted to a position away from the thin-walled portion within a period in which the filling volume ratio E satisfies a value of 60 ≤ E ≤ 90. Therefore, compared to the case in which the filling of the resin material to the inner circumference of the thin-walled portion is completed without retracting the retaining pins, it is possible to suppress the occurrence of cracks in the magnetic core in the thin-walled portion.

[0009] Furthermore, the method for manufacturing the noise suppression member described herein may also include the following configurations. (2) In one aspect of the present disclosure, when injecting resin material into the mold, retaining pins that are in contact with the thin-walled portion may be retracted to a position away from the thin-walled portion during a period in which the filling volume ratio E satisfies 60 ≤ E ≤ 80.

[0010] (3) In one aspect of the present disclosure, the filling volume C = A × B × t may be calculated based on the area A of the cross-sectional area perpendicular to the axial direction of the screw of the injection molding machine, the injection speed B corresponding to the axial movement speed of the screw, and the injection time t corresponding to the axial movement time of the screw.

[0011] (4) In one aspect of the present disclosure, the retaining pin may be configured to contact a surface on the outer circumference of the thin-walled portion that is perpendicular to the thickness direction of the thin-walled portion when it contacts the thin-walled portion. [Brief explanation of the drawing]

[0012] [Figure 1] Figure 1A is a perspective view of the noise suppression member of the first embodiment, viewed from the upper right front. Figure 1B is a perspective view of the noise suppression member of the first embodiment, viewed from the upper right rear. Figure 1C is a perspective view showing the internal structure of the noise suppression member of the first embodiment. Figure 1D is a perspective view showing an excerpt of a part of the internal structure of the noise suppression member of the first embodiment. [Figure 2] Figure 2A is a plan view of the noise suppression member of the first embodiment. Figure 2B is a front view of the noise suppression member of the first embodiment. Figure 2C is a right side view of the noise suppression member of the first embodiment. Figure 2D is a rear view of the noise suppression member of the first embodiment. Figure 2E is a bottom view of the noise suppression member of the first embodiment. [Figure 3] Figure 3A is a perspective view of the noise suppression member of the second embodiment, viewed from the upper right front. Figure 3B is a perspective view of the noise suppression member of the second embodiment, viewed from the upper left rear. Figure 3C is a perspective view showing the internal structure of the noise suppression member of the second embodiment. Figure 3D is a perspective view showing the noise suppression member of the second embodiment in use. [Figure 4] Figure 4A is a plan view of the noise suppression member of the second embodiment. Figure 4B is a left side view of the noise suppression member of the second embodiment. Figure 4C is a front view of the noise suppression member of the second embodiment. Figure 4D is a right side view of the noise suppression member of the second embodiment. Figure 4E is a bottom view of the noise suppression member of the second embodiment. [Modes for carrying out the invention]

[0013] Next, the manufacturing method of the noise suppression member described above will be explained with reference to exemplary embodiments. (1) First Embodiment The first embodiment will be described below. As shown in Figures 1A, 1B, 1C, and 1D, the noise suppression member 1 comprises a magnetic core 3, a collar 5, a molded member 7, and a conductor 9. In the following description, in order to briefly explain the relative positions and orientations of each part of the noise suppression member 1, the directions front, back, left, right, up, and down, indicated in the figures, will be used for the explanation. These directions are defined as follows: front is the direction towards which the part shown in the front view (see Figure 2B) of the noise suppression member 1 is facing; rear is the direction towards which the part shown in the rear view (see Figure 2D) is facing; left is the direction towards which the part shown in the left side view (not shown; the left side view is shown identically to the right side view); right is the direction towards which the part shown in the right side view (see Figure 2C) is facing; up is the direction towards which the part shown in the top view (see Figure 2A) is facing; and down is the direction towards which the part shown in the bottom view (see Figure 2E) is facing.

[0014] The magnetic core 3 is made of a sintered magnetic material (in this embodiment, a sintered ferrite). The magnetic core 3 is shaped to allow the conductor 9 to be positioned to penetrate its inner circumference. In this embodiment, the magnetic core 3 is configured as a flattened cylindrical shape with an oval cross-section perpendicular to the axial direction, and its axial direction is oriented in the front-to-back direction as shown in the figure. Therefore, the conductor 9, which extends in the front-to-back direction as shown in the figure, can be positioned to penetrate its inner circumference.

[0015] The magnetic core 3 has a thin-walled portion 3A with a wall thickness corresponding to the dimension between the inner peripheral side and the outer peripheral side of the magnetic core 3 being 1.5 mm to 4.0 mm. In the case of this embodiment, the magnetic core 3 has a wall thickness of 4.0 mm over the entire circumference. That is, in the case of the embodiment, the entire magnetic core 3 is the thin-walled portion 3A.

[0016] The collar 5 is formed of a metallic material (e.g., stainless steel). The collar 5 is a cylindrical member. When, for example, fixing the noise countermeasure member 1 to a predetermined mounting position with bolts, the axis of the bolt is passed through the inner peripheral side of the collar 5.

[0017] The conductor 9 is a plate-like conductor (bus bar) made of a copper alloy. Near the center in the longitudinal direction (the front-back direction in the figure) of the conductor 9, a protrusion 13 protruding in the width direction (the left-right direction in the figure) of the conductor 9 is provided. This protrusion 13 suppresses the relative displacement of the conductor 9 in the front-back direction with respect to the mold member 7.

[0018] The mold member 7 is formed of a resin material (e.g., polyamide) and is configured to mold the magnetic core 3, the collar 5, and the conductor 9. The mold member 7 is an integrally molded product in which the portion molding the inner peripheral side of the thin-walled portion 3A and the portion molding the outer peripheral side of the thin-walled portion 3A are integrally molded with a resin material.

[0019] In the mold member 7, as shown in FIGS. 2C, 2D, 2E, etc., a left positioning recess 21, a right positioning recess 22, a first lower positioning recess 23, a second lower positioning recess 24, a third lower positioning recess 25, a fourth lower positioning recess 26, a first rear positioning recess 27, a second rear positioning recess 28, etc. are formed.

[0020] The left positioning recess 21, the right positioning recess 22, the first lower positioning recess 23, the second lower positioning recess 24, the third lower positioning recess 25, the fourth lower positioning recess 26, the first rear positioning recess 27, and the second rear positioning recess 28 are the locations where a holding portion (not shown) that holds the magnetic core 3 in a predetermined position in the mold contacted the magnetic core 3 when molding the mold member 7 with a mold (not shown).

[0021] The holding portions that contact the magnetic core 3 in the left positioning recess 21 and the right positioning recess 22 position the left - right position of the magnetic core 3. The holding portions that contact the magnetic core 3 in the first rear positioning recess 27 and the second rear positioning recess 28 position the front - rear position of the magnetic core 3.

[0022] In the present embodiment, the flow path of the resin material in the mold is configured to be from the front of the magnetic core 3 toward the rear. Therefore, the magnetic core 3 is in a state of being pushed rearward by the resin material, and if the holding portion contacts the magnetic core 3 in the first rear positioning recess 27 and the second rear positioning recess 28, the front - rear position of the magnetic core 3 can be positioned.

[0023] The holding portions that contact the magnetic core 3 in the first lower positioning recess 23, the second lower positioning recess 24, the third lower positioning recess 25, and the fourth lower positioning recess 26 cooperate with holding pins (not shown) that contact the upper surface side of the magnetic core 3 to position the up - down position of the magnetic core 3. The holding pins that contact the upper surface side of the magnetic core 3 are configured to be able to move forward and backward in the vertical direction within the mold at the locations indicated by the dashed lines in FIGS. 1A, 1B, and 2A.

[0024] Therefore, when the holding pin contacts the thin - wall portion 3A, it contacts a surface perpendicular to the thickness direction of the thin - wall portion 3A on the outer peripheral side of the thin - wall portion 3A. When molding the mold member 7, before injecting the resin material into the mold, the holding pin is moved downward to contact the magnetic core 3 disposed in the mold. Thereby, the magnetic core 3 is held in the mold with its up - down position positioned.

[0025] When injecting resin material into the mold, after injecting the resin material, and before the resin material is fully filled into the inner circumference of the thin-walled portion 3A, the retaining pin is moved upward and retracted to a position away from the thin-walled portion 3A. More specifically, the process of injecting resin material into the mold includes an injection process in which a predetermined amount of resin material is injected into the mold, and a holding pressure process in which pressure is applied to the resin material inside the mold after the injection process is completed.

[0026] In this embodiment, during the injection process, the resin material is injected by speed control, and the screw of the injection molding machine is driven at a preset speed, resulting in the injection of an amount of resin material corresponding to the amount of screw drive. In this embodiment, the injection process takes approximately 0.24 seconds. Once the screw has been driven and reached a predetermined switching position, the control switches from speed control to pressure control, and the process moves to the holding pressure process. In the holding pressure process, a preset pressure is applied to the resin material in the mold, and this state is maintained. In this embodiment, the holding pressure process takes approximately 2 seconds.

[0027] Of the processes described above, the retaining pin is retracted upward during the injection process. The specific means for retracting the retaining pin are arbitrary; for example, power can be transmitted from a power source such as a cylinder to actively operate the retaining pin. If the timing of moving the retaining pin upward is too early, it may cause misalignment of the magnetic core 3, while if it is too late, it may cause cracks in the magnetic core 3.

[0028] Therefore, based on the volume of molten resin filled into the mold (referred to as the filling volume C in this specification) and the volume D of the mold member 7, the filling volume ratio E = (1 - (DC) / D) × 100 was calculated, and the relationship between the filling volume ratio E and the timing of moving the retaining pin upward was verified. The filling volume C can be calculated as filling volume C = A × B × t based on the area A of the cross-section perpendicular to the axial direction of the screw of the injection molding machine, the injection speed B corresponding to the axial movement speed of the screw, and the injection time t corresponding to the axial movement time of the screw.

[0029] The filling volume fraction E is a value that changes from 0% to 100% as time elapses from the start to the completion of injection. The filling volume Cx when the filling volume fraction E is Ex% is Cx = D × (Ex / 100). Therefore, the injection time tx at which the filling volume Cx = D × (Ex / 100) is tx = Cx / (A × B), which is tx = D × (Ex / 100) / (A × B).

[0030] In the following verification experiment, the injection time tx was calculated based on the above relationship: tx = D × (Ex / 100) / (A × B) such that the filling volume fraction E was Ex = 50%, 60%, 70%, 80%, 90%, and 100%. When molding the mold member 7, the retaining pin was moved upward at the timing of each injection time tx, and six test specimens corresponding to Ex = 50%, 60%, 70%, 80%, 90%, and 100% were created.

[0031] For these six test specimens, the following were evaluated: (A) cracking and displacement of the magnetic core 3, (B) resin appearance of the molded member 7, and (C) resin strength of the molded member 7. For (A) above, part or all of the molded member 7 was peeled off and the cracking and displacement of the magnetic core 3 was visually checked. If there were no cracks or displacement, it was evaluated as "A," and if there were cracks or displacement, it was evaluated as "C." For (B) above, the appearance of the molded member 7 was visually checked and evaluated as "A" if there were no pin marks or weld marks, "B" if there were weld marks, and "C" if there were pin marks. For (C) above, the test specimens were subjected to a temperature change of -40°C / 125°C using a thermal shock tester, and the appearance of the molded member 7 after 1000 hours was visually checked and evaluated as "A" if there was no change, "B" if thin lines were observed, and "C" if cracks occurred in the resin. Based on the above, the overall evaluation was determined as follows: if all three evaluation items received an "A" rating, the overall evaluation was "A"; if there were no "C" ratings but there were at least one "B" rating, the overall evaluation was "B"; and if even one item received a "C" rating, the overall evaluation was "C". The evaluation results are shown in [Table 1].

[0032] [Table 1]

[0033] In the above [Table 1], when the retaining pin was moved with a filling volume ratio E=50%, a slight displacement occurred in the magnetic core 3, resulting in an evaluation of "C" and an overall evaluation of "C". When the retaining pin was moved with a filling volume ratio E=60% to 80%, all three evaluation items were "A", resulting in an overall evaluation of "A". When the retaining pin was moved with a filling volume ratio E=90%, weld marks appeared on the surface of the molded member 7, and thin lines were observed after the thermal shock test, resulting in "B" for two evaluation items and an overall evaluation of "B". If weld marks etc. do not pose a practical problem, there are no performance issues even with a specimen that receives an overall evaluation of "B", but if appearance is also important, it is preferable to move the retaining pin with a filling volume ratio of E=60% to 80%. When the retaining pin was moved with a filling volume ratio E=100%, cracks occurred in the magnetic core 3. Furthermore, pin marks remained on the surface of molded component 7, and cracks were observed after the thermal shock test. Therefore, each item received a "C" rating, and the overall rating was also "C".

[0034] Based on the above evaluation results, it is preferable to retract the retaining pins that are in contact with the thin-walled portion 3A to a position away from the thin-walled portion 3A during the period in which the above-mentioned filling volume ratio E satisfies a value of 60 ≤ E ≤ 90. Furthermore, if the appearance of the molded member 7 is also important, it is preferable to retract the retaining pins to a position away from the thin-walled portion 3A during the period in which the above-mentioned filling volume ratio E satisfies a value of 60 ≤ E ≤ 80.

[0035] As explained above, by retracting the retaining pin at the timing described above, crack formation can be suppressed even in magnetic cores 3 with extremely thin walls, such as those with a wall thickness of 0.15 mm to 0.4 mm in the thin-walled portion 3A. Therefore, the noise suppression effect of the noise suppression member 1 can be fully demonstrated. Furthermore, by suppressing the occurrence of cracks as described above, the occurrence of defective products can be suppressed, thereby improving the productivity of the noise suppression member 1.

[0036] The noise suppression member 1 configured as described above has a thin-walled section 3A with a wall thickness of 1.5 mm to 4.0 mm, corresponding to the distance between the inner and outer circumferences of the magnetic core 3. Therefore, the noise suppression member 1 can be made thinner compared to conventional products, which generally have a wall thickness of 5 mm or more. Consequently, such a noise suppression member 1 can be installed on thin devices or in narrow spaces where conventional products were difficult to install.

[0037] (2) Second Embodiment Next, a second embodiment will be described. Since the second embodiment only modifies some of the configurations illustrated in the first embodiment, the differences from the first embodiment will be described in detail, and detailed explanations of parts similar to the first embodiment will be omitted.

[0038] As shown in Figures 3A, 3B, and 3C, the noise suppression member 31 comprises a magnetic core 33, a collar 35, and a molded member 37. The molded member 37 has a through-hole 41 (see Figure 4C) that penetrates in the front-to-back direction. A conductor 39 (for example, the flat cable shown in Figure 3D) is passed through this through-hole 41, thereby positioning the conductor 39 to penetrate the inner circumference of the magnetic core 33.

[0039] Although the shape and dimensions of the magnetic core 33, collar 35, and mold member 37 differ from those of the first embodiment, their constituent materials and functions are the same as those of the first embodiment. In particular, the magnetic core 33 has a thin-walled portion 33A with a thickness of 1.5 mm to 4.0 mm around its entire circumference, which is also the same as in the first embodiment.

[0040] As shown in Figures 4A, 4B, 4D, and 4E, the molded member 37 has a left positioning recess 51, a right positioning hole 52, a first lower positioning recess 53, a second lower positioning recess 54, a first rear positioning recess 55, and a second rear positioning recess 56 formed thereon. The left positioning recess 51, the right positioning hole 52, the first lower positioning recess 53, the second lower positioning recess 54, the first rear positioning recess 55, and the second rear positioning recess 56 are the locations where a holding portion (not shown) that holds the magnetic core 33 in a predetermined position within the mold (not shown) during molding of the molded member 37 with the mold (not shown) was in contact with the magnetic core 33.

[0041] The retaining portion that contacts the magnetic core 33 in the left positioning recess 51 and the right positioning hole 52 positions the magnetic core 33 in the left-right direction. The retaining portion that contacts the magnetic core 33 in the first rear positioning recess 55 and the second rear positioning recess 56 positions the magnetic core 33 in the front-rear direction. In this embodiment, the flow path of the resin material inside the mold is configured to proceed from the front to the rear of the magnetic core 33. Therefore, the magnetic core 33 is pushed backward by the resin material, and when the retaining portion contacts the magnetic core 33 in the first rear positioning recess 55 and the second rear positioning recess 56, the front-rear position of the magnetic core 33 can be positioned.

[0042] The retaining portions that contact the magnetic core 33 in the first lower positioning recess 53 and the second lower positioning recess 54 work in cooperation with retaining pins (not shown) that contact the upper surface of the magnetic core 33 to position the magnetic core 33 in the vertical direction. The retaining pins that contact the upper surface of the magnetic core 33 are configured to move up and down within the mold at the locations shown by dashed lines in Figures 3A, 3B, and 4A. Therefore, when the retaining pins contact the thin-walled portion 3A, they contact a surface on the outer circumference of the thin-walled portion 3A that is perpendicular to the thickness direction of the thin-walled portion 3A. When molding the molded member 37, before injecting the resin material into the mold, the retaining pins are moved downward to bring them into contact with the magnetic core 33 placed inside the mold. As a result, the magnetic core 33 is held inside the mold in a vertically positioned state.

[0043] By adopting this configuration, the molded member 37 can be formed in the same process as in the first embodiment. Furthermore, by retracting the retaining pin at the same timing as in the first embodiment, crack formation can be suppressed even with a magnetic core 33 having an extremely thin shape, such as a wall thickness of 0.15 mm to 0.4 mm in the thin-walled portion 33A. Therefore, the noise suppression effect of the noise suppression member 31 can be fully demonstrated. In addition, by suppressing the occurrence of cracks as described above, the occurrence of defective products can be suppressed, thereby improving the productivity of the noise suppression member 31.

[0044] The noise suppression member 31 configured as described above has a thin-walled portion 33A with a wall thickness of 1.5 mm to 4.0 mm, corresponding to the dimension between the inner and outer circumferences of the magnetic core 33. Therefore, the noise suppression member 31 can be made thinner compared to conventional products, which generally have a wall thickness of 5 mm or more. Consequently, such a noise suppression member 31 can be installed on thin devices or in narrow spaces where installation of conventional products was difficult.

[0045] (3) Other embodiments The above-described method for manufacturing noise suppression members has been explained with reference to exemplary embodiments, but the above-described embodiments are merely illustrative examples of one aspect of the present disclosure. In other words, the present disclosure is not limited to the above-described exemplary embodiments, and can be implemented in various forms without departing from the technical idea of ​​the present disclosure.

[0046] For example, in the above embodiment, specific shapes and materials for the magnetic core, conductor, and molded member were given as examples, but the shapes and materials for the magnetic core, conductor, and molded member are not limited to the above examples.

[0047] Furthermore, while specific times were given for the injection and holding pressure processes in the above embodiment, these times can be adjusted arbitrarily, taking into consideration the shape and dimensions of the molded member, the performance of the injection molding machine, etc.

[0048] Furthermore, multiple functions realized by one component as exemplified in the above embodiment may be realized by multiple components. One function realized by one component as exemplified in the above embodiment may be realized by multiple components. Multiple functions realized by multiple components as exemplified in the above embodiment may be realized by one component. One function realized by multiple components as exemplified in the above embodiment may be realized by one component. Some of the configurations exemplified in the above embodiment may be omitted. At least a part of the configuration exemplified in one of the above embodiments may be added to or replaced with the configuration exemplified in the other embodiments. [Explanation of symbols]

[0049] 1,31...Noise suppression member, 3,33...Magnetic core, 3A,33A...Thin-walled section, 5,35...Collar, 7,37...Molded member, 9,39...Conductor, 13...Protrusion, 21,51...Left positioning recess, 22...Right positioning recess, 22,52...Right positioning hole, 23,53...First lower positioning recess, 24,54...Second lower positioning recess, 25...Third lower positioning recess, 26...Fourth lower positioning recess, 27,55...First rear positioning recess, 28,56...Second rear positioning recess, 41...Through hole.

Claims

1. A method for manufacturing a noise suppression member, The noise suppression member is A magnetic core is made of a sintered magnetic material and has a shape that allows a conductor to be placed at a position that penetrates the inner circumference, A mold member formed from a resin material and configured to mold the magnetic core, Equipped with, The magnetic core has a thin-walled portion with a wall thickness of 1.5 mm to 4.0 mm, corresponding to the distance between the inner and outer circumferences. The molded member is a one-piece molded product in which a portion that molds the inner circumference of the thin-walled portion and a portion that molds the outer circumference of the thin-walled portion are integrally molded from the resin material. When forming the aforementioned mold member, Before injecting the resin material into the mold, the retaining pin is brought into contact with the magnetic core placed inside the mold to hold the magnetic core inside the mold. When injecting the resin material into the mold, the retaining pins that are in contact with the thin-walled portion are retracted to a position away from the thin-walled portion during a period in which the filling volume ratio E = (1 - (D - C) / D) × 100, which can be calculated based on the filling volume C, which is the volume of the resin material filled in the mold, and the volume D of the mold member, satisfies 60 ≤ E ≤ 90. A method for manufacturing noise suppression components.

2. A method for manufacturing a noise suppression member according to claim 1, When injecting the resin material into the mold, the retaining pins that are in contact with the thin-walled portion are retracted to a position away from the thin-walled portion during a period in which the filling volume ratio E satisfies 60 ≤ E ≤ 80. A method for manufacturing noise suppression components.

3. A method for manufacturing a noise suppression member according to claim 1 or claim 2, Based on the area A of the cross-sectional area perpendicular to the axial direction of the screw of the injection molding machine, the injection speed B corresponding to the axial movement speed of the screw, and the injection time t corresponding to the axial movement time of the screw, the filling volume C = A × B × t is calculated. A method for manufacturing noise suppression components.

4. A method for manufacturing a noise suppression member according to claim 1 or claim 2, The retaining pin is configured to contact a surface on the outer circumference of the thin-walled portion that is perpendicular to the thickness direction of the thin-walled portion when it contacts the thin-walled portion. A method for manufacturing noise suppression components.

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