Full-automatic microphone sealing and curling machine
By introducing a feeding mechanism into the microphone sealing and rolling machine, and using a laser rangefinder and an electric telescopic rod to adjust the side plate spacing, the problem of unstable feeding that cannot be adapted to different microphone specifications in the existing technology has been solved, achieving stable feeding and convenient adaptation.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-08
- Publication Date
- 2026-03-10
AI Technical Summary
The existing microphone sealing and edge-rolling machine cannot be adapted to convey microphones of different specifications, resulting in unstable feeding.
The feeding mechanism includes a rectangular plate, a guide plate, side plates, an electric telescopic rod, and a laser rangefinder. The laser rangefinder monitors the microphone diameter in real time and adjusts the spacing between the side plates to ensure stable feeding. The clamping components and laser rangefinder are adapted to different microphone sizes.
It achieves stable feeding of microphones of different specifications, reduces the trouble of manual measurement, and improves the convenience and adaptability of use.
Smart Images

Figure CN223987177U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to microphone production equipment technical field, concretely is a full -automatic microphone sealing crimping machine. BACKGROUND
[0002] Microphone, also known as microphone, scientific name is microphone, also called microphone, microphone. Microphone is the energy converter that converts sound signal into electric signal, classification has moving coil type, electric capacity type, stationary body and the newly emerging silicon micro microphone, in addition, there is liquid microphone and laser microphone. Most microphones are stationary body capacitor microphones, and the working principle is to use the vibration film of the polymeric material with permanent charge isolation.
[0003] The existing microphone sealing crimping machine mainly has the following disadvantages in the process of using: the existing feeding mechanism cannot adapt to different specifications of microphone for conveying, therefore, there is room for improvement. UTILITY MODEL CONTENT
[0004] The utility model aims at solving one of the technical problems existing in the prior art or related art.
[0005] Therefore, the utility model adopts the technical scheme, which is a full -automatic microphone sealing crimping machine, which comprises a main body mechanism and a feeding mechanism.
[0006] The feeding mechanism comprises a rectangular plate fixed symmetrically on the conveying belt, a guide plate hingedly installed at one end of the rectangular plate, a side plate arranged on the conveying belt and hingedly connected at the other end of the guide plate, a second electric telescopic rod installed on one side of the conveying belt and fixedly connected with the side plate, a first laser ranging sensor installed on the opposite side plate, a U-shaped plate fixed on one side of the conveying belt, clamping pieces symmetrically arranged on both sides of the U-shaped plate, and a second laser ranging sensor installed on the top end of the opposite clamping piece.
[0007] In a preferred example, the clamping piece can be further configured as: the clamping piece comprises a cylinder symmetrically arranged and movably penetrating through one side of the U-shaped plate, a clamping plate fixed at one end of the cylinder, and a spring sleeved outside the cylinder and connected at one end of the clamping plate and the other end of the U-shaped plate.
[0008] In a preferred example, the utility model can be further configured as: the guide plate comprises a housing hingedly connected at one end of the rectangular plate, and a movable plate movably embedded in the inner cavity of the housing and hingedly connected at one end of the housing with the end of the side plate.
[0009] The utility model discloses in a preferable example can be further configured as: the push -in piece includes the push -in piece of setting in the top of placing seat and the first electric telescopic link fixed in the one side of placing seat and the end with push -in piece fixed connection.
[0010] The utility model discloses in a preferable example can be further configured as: first laser ranging sensor divides and receives the end, and the receiving end is installed on the side plate of one side, and the receiving end is installed on the side plate of the other side, and the both correspond to each other, second laser ranging sensor with first laser ranging sensor sets same.
[0011] Through adopting above -mentioned technical scheme, the utility model discloses the obtained beneficial effect is:
[0012] 1. In the utility model, the rectangular plate is fixed symmetrically on the conveying belt, the guide plate is hingedly installed at the end of the rectangular plate, the side plate is installed at the end of the guide plate, the second electric telescopic link is fixedly connected with the side plate on both sides of the conveying belt, the first laser ranging sensor is installed on both sides of the side plate, through the above setting, when different specifications of the microphone need to be conveyed, only the microphone diameter needs to be input, the second electric telescopic link can drive the side plate to move, the distance between the opposite side plates is adjusted, the distance between the opposite side plates is equal to the diameter of the microphone, the stable feeding of the microphone is ensured, different specifications of the microphone can be adapted, and the practicality is improved.
[0013] 2. In the utility model, the U-shaped plate is fixed on one side of the conveying belt, the clamping pieces are arranged on both sides of the U-shaped plate, and the second laser ranging sensor is installed on the clamping pieces, through the above setting, before conveying different specifications of the microphone, only the microphone sample needs to be placed on the U-shaped plate, the clamping pieces clamp the microphone, and the second laser ranging sensor detects the distance between the clamping pieces, that is, the diameter of the microphone, then the second electric telescopic link is started, the distance between the opposite side plates is adjusted according to the measured distance, the diameter of the microphone can be adjusted, the inconvenience of manually measuring the diameter of the microphone is avoided, and the convenience of use is further improved. ACCURACY OF DRAWINGS
[0014] Figure 1 It is the structural schematic diagram of the utility model;
[0015] Figure 2 It is the feeding mechanism schematic diagram of the utility model;
[0016] Figure 3 It is the feeding mechanism sectional view schematic diagram of the utility model;
[0017] Figure 4 It is the clamping piece structural schematic diagram of the utility model.
[0018] Reference signs:
[0019] 100. Main structure; 110. Edge sealing device; 120. Placement seat; 130. Positioning seat; 140. Push-in component; 141. Push plate; 142. First electric telescopic rod; 150. Conveyor belt;
[0020] 200. Feeding mechanism; 210. Rectangular plate; 220. Guide plate; 221. Housing; 222. Movable plate; 230. Side plate; 240. Second electric telescopic rod; 250. First laser rangefinder sensor; 260. U-shaped plate; 270. Clamping component; 271. Cylinder; 272. Clamping plate; 273. Spring; 280. Second laser rangefinder sensor. Detailed Implementation
[0021] To make the objectives, technical solutions, and advantages of this utility model clearer, the present utility model will be further described in detail below with reference to specific embodiments and accompanying drawings. It should be noted that, unless otherwise specified, the embodiments and features of the present utility model can be combined with each other.
[0022] Some embodiments of this utility model are described below with reference to the accompanying drawings.
[0023] Example 1:
[0024] Combination Figures 1-4 As shown, this embodiment provides a fully automatic microphone sealing and edge-rolling machine, including: a main body mechanism 100 and a feeding mechanism 200.
[0025] The main structure 100 includes a crimping and sealing device 110, a placement seat 120 fixed to one side of the crimping and sealing device 110, a positioning seat 130 fixed to the top of the placement seat 120, a push-in member 140 installed on one side of the placement seat 120, and a conveyor belt 150 disposed on one side of the placement seat 120.
[0026] The edge-sealing device 110 is used to perform edge-sealing operations on the microphone. The placement seat 120 is used to place the microphone that needs to be sealed. The positioning seat 130 is fixed at the top of the placement seat 120 and is used to position the microphone to ensure that the microphone is directly below the edge-sealing device 110. The pusher 140 is used to push the microphone into one side of the positioning seat 130 and cooperate with the positioning seat 130 to fix the microphone. The pusher 140 includes a push plate 141 set at the top of the placement seat 120 and a first electric telescopic rod 142 fixed to one side of the placement seat 120 and whose end is fixedly connected to the push plate 141. The first electric telescopic rod 142 drives the push plate 141 to move and pushes the microphone fed by the conveyor belt 150 onto the placement seat 120 into one side of the positioning seat 130. The conveyor belt 150 is used for feeding the microphone.
[0027] The feeding mechanism 200 is used to guide and arrange the microphones on the conveyor belt 150 so that the microphones form a single row before entering the placement seat 120. It includes a rectangular plate 210 symmetrically fixed on the conveyor belt 150, a guide plate 220 with one end hinged to the end of the rectangular plate 210, a side plate 230 set on the conveyor belt 150 and with its end hinged to the other end of the guide plate 220, a second electric telescopic rod 240 installed on one side of the conveyor belt 150 and fixedly connected to the side plate 230, a first laser rangefinder 250 installed on the opposite side plate 230, a U-shaped plate 260 fixed on one side of the conveyor belt 150, clamping members 270 symmetrically arranged on both sides of the U-shaped plate 260, and a second laser rangefinder 280 installed at the top of the opposite clamping member 270.
[0028] The rectangular plate 210 is used to limit the microphones on the conveyor belt 150 on both sides of the conveyor belt 150 to prevent the microphones from falling off the conveyor belt 150. The guide plate 220 is used to guide the microphones on the conveyor belt 150 between the opposite side plates 230. It includes a housing 221 with its end hinged to the rectangular plate 210 and a movable plate 222 that is movably fitted into the cavity of the housing 221 and has its end extending out of the housing 221 and hinged to the end of the side plate 230. The end of the movable plate 222 can freely extend and retract within the cavity of the housing 221. This arrangement prevents the side plate 230 from being interfered with by the guide plate 220 when it moves.
[0029] A feeding channel for the microphones is formed between the opposite side plates 230, which facilitates the single-row arrangement of the microphones. The end of the second electric telescopic rod 240 is fixedly connected to the side plate 230 to drive the side plate 230 to move, thereby adjusting the distance between the opposite side plates 230.
[0030] The first laser rangefinder sensor 250 is divided into a transmitter and a receiver. The transmitter is installed on one side plate 230, and the receiver is installed on the other side plate 230. The two correspond to each other and can monitor the distance between the opposite side plates 230 in real time, thereby ensuring that the distance between the opposite side plates 230 is equal to the diameter of the microphone.
[0031] The U-shaped plate 260 is used to place the microphone sample and to install the clamping component 270. The clamping component 270 includes a cylinder 271 symmetrically arranged and movable through one side of the U-shaped plate 260, a clamping plate 272 fixed to the end of the cylinder 271, and a spring 273 sleeved on the outside of the cylinder 271 with one end connected to the clamping plate 272 and the other end connected to the inner side of the U-shaped plate 260. The cylinder 271 is used to install the clamping plate 272 and limit the movement of the clamping plate 272. The clamping plate 272 is used to press against one side of the microphone. When both clamping plates 272 are pressed against the microphone, the distance between the relative clamping plates 272 is the diameter of the microphone. The spring 273 is used to ensure that the clamping plate 272 is pressed against the microphone.
[0032] The second laser rangefinder 280 is configured the same as the first laser rangefinder 250. The transmitting end is mounted on a clamp 272 on one side, and the receiving end is mounted on a clamp 272 on the other side. The two correspond to each other and can measure the distance between the clamps 272, which is the diameter of the microphone.
[0033] The working principle and usage process of this utility model are as follows: When it is necessary to feed microphones of different specifications, pull the clamping parts 270 to both sides to place the microphone on the U-shaped plate 260. Release the clamping parts 270, and the clamping plates 272 on both sides of the microphone will be clamped by the spring 273. At this time, the second laser ranging sensor 280 measures the distance between the relative clamping plates 272, which is the diameter of the microphone. Then, the second electric telescopic rod 240 is started, which drives the side plate 230 to move. At the same time, the first laser ranging sensor 250 monitors the distance between the relative side plates 230 in real time. When the distance between the relative side plates 230 is equal to the distance measured by the second laser ranging sensor 280, the second electric telescopic rod 240 is closed. At this time, the microphones on the conveyor belt 150 move with the conveyor belt 150 and enter between the relative side plates 230 under the action of the guide plate 220 to form a single row, which facilitates the subsequent pusher 140 to push the microphones one by one into the edge sealing device 110 for sealing.
[0034] Although embodiments of the present invention have been shown and described, those skilled in the art will understand that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the claims and their equivalents.
Claims
1. A fully automatic microphone tip crimping machine, comprising: The main body mechanism (100) and the feeding mechanism (200) are characterized in that the main body mechanism comprises a crimping sealing device (110), a placing seat (120) fixed on one side of the crimping sealing device (110), a positioning seat (130) fixed on the top end of the placing seat (120), a push-in piece (140) installed on one side of the placing seat (120), and a conveying belt (150) arranged on one side of the placing seat (120); The feeding mechanism (200) comprises a rectangular plate (210) symmetrically fixed on the conveying belt (150), a guide plate (220) hingedly installed at one end of the rectangular plate (210), a side plate (230) arranged on the conveying belt (150) and hingedly connected at the other end of the guide plate (220), a second electric telescopic rod (240) installed on one side of the conveying belt (150) and fixedly connected with the side plate (230), a first laser ranging sensor (250) installed on the opposite side plate (230), a U-shaped plate (260) fixed on one side of the conveying belt (150), clamping pieces (270) symmetrically arranged on both sides of the U-shaped plate (260), and a second laser ranging sensor (280) installed on the top end of the opposite clamping piece (270).
2. The fully automatic microphone seal crimping machine according to claim 1, characterized in that, The clamping piece (270) comprises a cylinder (271) symmetrically arranged and movably penetrating one side of the U-shaped plate (260), a clamping plate (272) fixed at one end of the cylinder (271), and a spring (273) sleeved outside the cylinder (271) and connected at one end of the clamping plate (272) and at the other end of the inner side of the U-shaped plate (260).
3. The fully automatic microphone seal crimping machine according to claim 1, characterized in that, The guide plate (220) comprises a housing (221) hingedly connected at one end of the rectangular plate (210), and a movable plate (222) movably embedded in the inner cavity of the housing (221) and hingedly connected at one end of the housing (221) and at the other end of the side plate (230).
4. The fully automatic microphone seal crimping machine according to claim 1, characterized in that, The push-in piece (140) comprises a push plate (141) arranged at the top end of the placing seat (120), and a first electric telescopic rod (142) fixed on one side of the placing seat (120) and fixedly connected at one end of the push plate (141).
5. The fully automatic microphone seal crimping machine according to claim 1, characterized in that, The first laser ranging sensor (250) is divided into a transmitting end and a receiving end, the transmitting end is installed on one side of the side plate (230), the receiving end is installed on the other side of the side plate (230), and the two correspond to each other, and the second laser ranging sensor (280) is arranged in the same way as the first laser ranging sensor (250).