A temperature-measuring precision mold device
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-12
- Publication Date
- 2026-08-14
AI Technical Summary
[0003]现有技术诸如公开号为CN217196785U的实用新型,该专利公开了一种用于探测塑胶模具内部温度压力的传感器结构,该专利采用外壳和设置在所述外壳内部的温度传感器、压力传感器;所述外壳包括同轴设置的温度传感器壳体和压力传感器壳体,所述压力传感器壳体套接在所述温度传感器壳体上;所述温度传感器通过固定块和密封胶固定在所述温度传感器壳体内;所述压力传感器位于所述压力传感器壳体内;所述压力传感器壳体上还穿设有数据传输线,数据传输线与温度传感器和压力传感器分别连接,解决了当前实际注塑时都是直接设定注塑机输出的温度和压力值,但是由于物料进入到模具后温度和压力会有不同程度的损耗,导致塑胶模具内部实际温度和压力与注塑机设定的数据相差很远;同时每台注塑机下发指令后,温度和压力损耗会不一样,这样不仅会影响产品的稳定性和质量,还会提高模具试模的时间和物料成本;因此,对于如何采集塑胶模具内的温度和压力值,获取塑胶模具内真实数据,从而提高产品质量,在提高产品的质量和稳定性的同时节约试模时间和成本的问题
[0022]本实用新型提供一种可测温精密模具设备,通过设置调节结构,现有技术中在对温度探头进行使用时,都是将探头靠近精密模具进行温度探测,但是有些模具温度过高导致人员接触过近容易发生灼伤,而且有些模具设置在较为狭小的位置,进而容易导致探头长度不够,本装置达到了可以方便对探头的长度进行调节,可以方便满足各种使用环境的效果。
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Figure CN224636106U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of precision mold temperature measurement, and in particular to a precision mold temperature measuring device. Background Technology
[0002] Temperature measuring equipment consists of a body, display screen, buttons, and probe. It is used to measure the temperature of precision molds and is quite common in daily life.
[0003] Existing technologies, such as the utility model patent with publication number CN217196785U, disclose a sensor structure for detecting the internal temperature and pressure of a plastic mold. This patent employs a housing and a temperature sensor and a pressure sensor disposed within the housing. The housing includes a temperature sensor housing and a pressure sensor housing coaxially arranged, with the pressure sensor housing sleeved on the temperature sensor housing. The temperature sensor is fixed within the temperature sensor housing by a fixing block and sealant. The pressure sensor is located within the pressure sensor housing. A data transmission line is also provided on the pressure sensor housing, and the data transmission line connects to the temperature sensor and the pressure sensor. By connecting sensors individually, the current practice of directly setting the temperature and pressure values output by the injection molding machine during actual injection molding is solved. However, due to varying degrees of temperature and pressure loss after the material enters the mold, the actual temperature and pressure inside the plastic mold differ significantly from the data set by the injection molding machine. Furthermore, the temperature and pressure losses vary from machine to machine after issuing commands, which not only affects product stability and quality but also increases mold trial time and material costs. Therefore, the solution lies in how to collect temperature and pressure values inside the plastic mold, obtain accurate data, and improve product quality and stability while saving trial time and costs.
[0004] In daily work, it has been found that in the use of temperature measuring equipment, the existing technology involves placing the temperature probe close to a precision mold for temperature detection. However, some molds are too hot, which can easily cause burns if personnel are too close. In addition, some molds are located in relatively narrow positions, which can lead to insufficient probe length.
[0005] Therefore, it is necessary to provide a new type of temperature-measuring precision mold equipment to solve the above-mentioned technical problems. Utility Model Content
[0006] The purpose of this invention is to address the shortcomings of existing technologies by proposing a precision temperature-measuring mold device.
[0007] To solve the above technical problems, this utility model provides a temperature-measuring precision mold device, comprising: a body and an adjustment structure. A display screen is mounted on the surface of the body, and a button is mounted on the side of the body near the display screen. A probe is disposed above the body, and the probe is connected to the body via the adjustment structure. The upper end of the body has an adjustment structure, which includes a sleeve fixedly connected to the body. A connecting pipe is slidably connected to the inner wall of the sleeve, and the probe is mounted on the connecting pipe. A threaded connection is rotatably attached to the upper end of the sleeve. The ring, the threaded ring being threadedly connected to the sleeve, the inner wall of the sleeve being rotatably connected to a spool, a gear being fixedly connected to the arc surface of one end of the spool, a rack being fixedly connected to the lower end of the connecting tube, the rack meshing with the gear, a rotating ring being rotatably connected to the inner wall of the end of the spool away from the gear, a fixing rod being fixedly connected to the inner wall of the rotating ring, the fixing rod being fixedly connected to the connecting tube, and a wire outlet hole being opened on the inner wall of the rotating ring, and wire groups being provided inside the connecting tube, the sleeve, and the spool, the wire groups including extension wires, small coils, connecting wires, large coils, and connecting wires.
[0008] The effect achieved by the above components is as follows: when the length of the probe needs to be adjusted, the threaded ring is rotated to move, the threaded ring drives the connecting tube to move, the connecting tube slides on the inner wall of the sleeve, the connecting tube drives the probe to move, the connecting tube drives the rack to move, the rack drives the gear to rotate, the gear drives the reel to rotate, and the reel drives the large coil to be wound up or loosened, thereby adjusting the length of the probe.
[0009] Preferably, the arc surface of the threaded ring is provided with a plurality of slots, and the plurality of slots are evenly distributed on the threaded ring.
[0010] The effect achieved by the above components is that the groove can increase the friction between the threaded ring and the hand, preventing slippage when rotating the threaded ring.
[0011] Preferably, both the rack and the gear are made of stainless steel.
[0012] Preferably, the large coil is wound on the spool, the small coil is located inside the spool, the end of the large coil near the gear is fixedly connected to the connecting line, the connecting line is fixedly connected to the probe, the end of the large coil away from the connecting line is fixedly connected to the connecting line, the connecting line is fixedly connected to the spool, the lower end of the connecting line is fixedly connected to the small coil, the end of the small coil away from the connecting line is connected to the extension line, the extension line is fixedly connected to the outlet hole, and the lower end of the extension line is fixedly connected to the machine body.
[0013] The effect achieved by the above components is as follows: when adjusting the length of the probe, the rack drives the gear and the reel to rotate, and the reel drives the large coil to wind or unwind. When unwinding, the probe drives the connecting line to move upward and tighten. When the reel rotates, the extension line will not move because the rotating ring and the sleeve are fixed. Because the connecting line and the reel are fixed, the reel will only wind the large coil and the connecting line. When the rotating ring and the reel rotate, there is a small coil in the middle, so the connecting line and the connecting line will not move.
[0014] Preferably, the arc surface of the machine body is provided with a plurality of anti-slip structures, the anti-slip structures including a plurality of connecting rods, the plurality of connecting rods being slidably connected to the machine body, a magnetic sheet being fixedly connected to one end of the connecting rod near the machine body, a plurality of iron sheets being fixedly connected inside the machine body, the iron sheets being attracted to the magnetic sheets, and a rubber pad being fixedly connected to one end of the connecting rod away from the machine body.
[0015] The effect achieved by the above components is as follows: when the rubber pad needs to be installed, the rubber pad is pulled to move, the rubber pad moves the connecting rod, the connecting rod moves the magnetic sheet, then the connecting rod is aligned with the machine body, and then the connecting rod is inserted into the machine body. After moving to the appropriate position, the magnetic sheet and the iron sheet are attracted and fixed. Then the rubber pad can increase the friction between the hand and the machine body.
[0016] Preferably, the rubber pad has several auxiliary grooves on the side away from the machine body, and the several auxiliary grooves are evenly distributed on the rubber pad.
[0017] The effect achieved by the above components is that the auxiliary groove can increase the friction between the rubber pad and the hand, further increasing the friction between the hand and the rubber pad.
[0018] Preferably, the internal structure of the machine body has a plurality of positioning rods fixedly connected, and the plurality of positioning rods are slidably connected to the connecting rods.
[0019] The effect achieved by the above components is that the positioning rod can position the connecting rod, preventing misalignment when the connecting rod is connected to the machine body, and improving the installation speed of the rubber pad.
[0020] Compared with related technologies, the temperature-measuring precision mold device provided by this utility model has the following advantages:
[0021] Beneficial effects:
[0022] This utility model provides a temperature-measuring precision mold device. By setting an adjustment structure, the existing technology requires the temperature probe to be brought close to the precision mold for temperature detection. However, some molds are too hot, which can easily cause burns if personnel are too close. In addition, some molds are located in relatively narrow positions, which can lead to insufficient probe length. This device can easily adjust the length of the probe to meet the needs of various usage environments.
[0023] By incorporating an anti-slip structure, the friction between the hand and the temperature measuring device is increased when using it, thus preventing slippage. Attached Figure Description
[0024] Figure 1 A schematic diagram of the structure of a temperature-measuring precision mold device provided by this utility model;
[0025] Figure 2 for Figure 1 The diagram shows the adjustment structure.
[0026] Figure 3 for Figure 2 The diagram shows the internal structure.
[0027] Figure 4 for Figure 3 The enlarged view at point A is shown below;
[0028] Figure 5 for Figure 2 The diagram shows a partial structure.
[0029] Figure 6 for Figure 5 The enlarged view at point B is shown below;
[0030] Figure 7 for Figure 1 The diagram shows the anti-slip structure.
[0031] Figure 8 for Figure 7 The diagram shows a partial structural schematic.
[0032] Labels in the diagram: 1. Body; 2. Display screen; 3. Button; 4. Probe head; 5. Adjustment structure; 501. Sleeve; 502. Threaded ring; 503. Connecting pipe; 504. Groove; 505. Wire group; 5051. Extension wire; 5052. Small coil; 5053. Connecting wire; 5054. Large coil; 5055. Connecting wire; 506. Fixing rod; 507. Reel; 508. Rotary ring; 509. Outlet hole; 510. Gear; 511. Rack; 6. Anti-slip structure; 61. Rubber pad; 62. Auxiliary groove; 63. Connecting rod; 64. Positioning rod; 65. Magnetic sheet; 66. Iron sheet. Detailed Implementation
[0033] 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 the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative of the present utility model and are not intended to limit the present utility model.
[0034] The specific implementation of this utility model will be described in detail below with reference to specific embodiments.
[0035] Please see Figures 1 to 8 The present invention provides a temperature-measuring precision mold device, comprising: a body 1 and an adjustment structure 5. A display screen 2 is mounted on the surface of the body 1. A button 3 is mounted on the side of the body 1 near the display screen 2. A probe 4 is provided on the top of the body 1. The probe 4 is connected to the body 1 by means of the adjustment structure 5. The upper end of the body 1 is provided with the adjustment structure 5. The arc surface of the body 1 is provided with a plurality of anti-slip structures 6.
[0036] In the embodiments of this utility model, please refer to Figures 2 to 6The adjusting structure 5 includes a sleeve 501, which is fixedly connected to the body 1. A connecting pipe 503 is slidably connected to the inner wall of the sleeve 501. The probe head 4 is mounted on the connecting pipe 503. A threaded ring 502 is rotatably connected to the upper end of the sleeve 501, and the threaded ring 502 is threadedly connected to the sleeve 501. A roller 507 is rotatably connected to the inner wall of the sleeve 501. A gear 510 is fixedly connected to the arc surface of one end of the roller 507. A rack 511 is fixedly connected to the lower end of the connecting pipe 503. The rack 511 and the gear... 510 meshes with the gear. The inner wall of the end of the spool 507 away from the gear 510 is rotatably connected to a rotating ring 508. The inner wall of the rotating ring 508 is fixedly connected to a fixing rod 506. The fixing rod 506 is fixedly connected to the connecting pipe 503. The inner wall of the rotating ring 508 is provided with a wire outlet hole 509. The connecting pipe 503, the sleeve 501 and the spool 507 are all provided with wire groups 505. The wire group 505 includes an extension wire 5051, a small coil 5052, a connecting wire 5053, a large coil 5054 and a connecting wire 5055. When the length of the probe head 4 needs to be adjusted, the threaded ring 502 is rotated to move it. The threaded ring 502 drives the connecting tube 503 to move. The connecting tube 503 slides on the inner wall of the sleeve 501. The connecting tube 503 drives the probe head 4 to move. The connecting tube 503 drives the rack 511 to move. The rack 511 drives the gear 510 to rotate. The gear 510 drives the winding shaft 507 to rotate. The winding shaft 507 drives the large coil 5054 to be wound or loosened, thereby adjusting the length of the probe head 4. The arc surface of the threaded ring 502 is provided with several slots 504, which are evenly distributed on the threaded ring 502. The slot 504 increases the friction between the threaded ring 502 and the hand, preventing slippage when rotating the threaded ring 502. Both the rack 511 and the gear 510 are made of stainless steel. The large coil 5054 is wound on the reel 507, and the small coil 5052 is located inside the reel 507. The end of the large coil 5054 near the gear 510 is fixedly connected to the connecting line 5055, which is fixedly connected to the probe head 4. The end of the large coil 5054 away from the connecting line 5055 is fixedly connected to the connecting line 5053, which is fixedly connected to the reel 507. The lower end of the connecting line 5053 is fixedly connected to the small coil 5052. The end of the small coil 5052 away from the connecting line 5053 is connected to the extension line 5051, which is fixedly connected to the outlet hole 509. The lower end of the extension line 5051 is fixedly connected to the body 1.When adjusting the length of the probe head 4, as the rack 511 drives the gear 510 and the reel 507 to rotate, the reel 507 drives the large coil 5054 to wind up or unwind. When unwinding, the probe head 4 drives the connecting line 5055 to move upward and tighten. When the reel 507 rotates, because the rotating ring 508 and the sleeve 501 are fixed, the extension line 5051 will not move. Because the connecting line 5053 and the reel 507 are fixed, the reel 507 will only wind up the large coil 5054 and the connecting line 5055. When the rotating ring 508 and the reel 507 rotate, there is a small coil 5052 in the middle, so the connecting line 5053 and the connecting line 5055 will not move.
[0037] In the embodiments of this utility model, please refer to Figure 7 and Figure 8 The anti-slip structure 6 includes several connecting rods 63, which are slidably connected to the body 1. A magnetic sheet 65 is fixedly connected to one end of each connecting rod 63 near the body 1. Several iron sheets 66 are fixedly connected inside the body 1, attracting the magnetic sheet 65. A rubber pad 61 is fixedly connected to the other end of each connecting rod 63 away from the body 1. When the rubber pad 61 needs to be installed, it is pulled to move, causing the connecting rods 63 to move, which in turn moves the magnetic sheet 65. The connecting rods 63 are then aligned with the body 1 and inserted into the body 1. After moving to the appropriate position, the magnetic sheet 65 attracts and fixes the iron sheet 66. The rubber pad 61 increases the friction between the hand and the body 1. Several auxiliary grooves 62 are evenly distributed on the side of the rubber pad 61 away from the body 1. The auxiliary groove 62 increases the friction between the rubber pad 61 and the hand, further increasing the friction between the hand and the rubber pad 61. Several positioning rods 64 are fixedly connected inside the body 1, and these positioning rods 64 are slidably connected to the connecting rod 63. The positioning rods 64 can position the connecting rod 63, preventing misalignment when connecting the connecting rod 63 to the body 1, thus improving the installation speed of the rubber pad 61.
[0038] The working principle of the temperature-measuring precision mold device provided by this utility model is as follows: When it is necessary to adjust the length of the probe head 4, the threaded ring 502 is rotated to move it. The threaded ring 502 drives the connecting tube 503 to move. The connecting tube 503 slides on the inner wall of the sleeve 501, which in turn drives the probe head 4 to move. The connecting tube 503 drives the rack 511 to move, which in turn drives the gear 510 to rotate. The gear 510 drives the winding shaft 507 to rotate, which in turn drives the large coil 5054 to wind or loosen, thereby adjusting the length of the probe head 4. The slot 504 can increase the friction between the threaded ring 502 and the hand, preventing friction when rotating the threaded ring 502. When slippage occurs, during the adjustment of the length of the probe head 4, as the rack 511 drives the gear 510 and the reel 507 to rotate, the reel 507 drives the large coil 5054 to wind up or unwind. When unwinding, the probe head 4 drives the connecting line 5055 to move upward and tighten. When the reel 507 rotates, because the rotating ring 508 and the sleeve 501 are fixed, the extension line 5051 will not move. Because the connecting line 5053 and the reel 507 are fixed, the reel 507 will only wind up the large coil 5054 and the connecting line 5055. When the rotating ring 508 and the reel 507 rotate, there is a small coil 5052 in the middle, so the connecting line 5053 and the connecting line 5055 will not move.
[0039] When the rubber pad 61 needs to be installed, pull the rubber pad 61 to move it. The rubber pad 61 drives the connecting rod 63 to move, and the connecting rod 63 drives the magnetic piece 65 to move. Then, align the connecting rod 63 with the body 1 and insert the connecting rod 63 into the body 1. After moving to the appropriate position, the magnetic piece 65 and the iron piece 66 are attracted and fixed. The rubber pad 61 can increase the friction between the hand and the body 1. The auxiliary groove 62 can increase the friction between the rubber pad 61 and the hand, further increasing the friction between the hand and the rubber pad 61. The positioning rod 64 can position the connecting rod 63 to prevent misalignment when connecting the connecting rod 63 to the body 1, thus improving the installation speed of the rubber pad 61.
[0040] The circuits and controls involved in this utility model are all existing technologies, and will not be described in detail here.
[0041] The above description is merely an embodiment of this utility model and does not limit the patent scope of this utility model. Any equivalent structural or procedural transformations made based on the description and drawings of this utility model, or direct or indirect applications in other related technical fields, are similarly included within the patent protection scope of this utility model.
Claims
1. A precision mold device capable of temperature measurement, characterized in that, include: The device comprises a body (1) and an adjustment structure (5). A display screen (2) is mounted on the surface of the body (1). A button (3) is mounted on the side of the body (1) near the display screen (2). A probe (4) is mounted on the top of the body (1). The probe (4) is connected to the body (1) via the adjustment structure (5). The upper end of the body (1) is provided with the adjustment structure (5). The adjustment structure (5) includes a sleeve (501). The sleeve (501) is fixedly connected to the body (1). A connecting pipe (503) is slidably connected to the inner wall of the sleeve (501). The probe (4) is mounted on the connecting pipe (503). A threaded ring (502) is rotatably connected to the upper end of the sleeve (501). The threaded ring (502) is threadedly connected to the sleeve (501). A scroll (507) is rotatably connected to the inner wall of the sleeve (501). A gear (510) is fixedly connected to the arc surface of one end of the scroll (507), and a rack (511) is fixedly connected to the lower end of the connecting pipe (503). The rack (511) meshes with the gear (510). A rotating ring (508) is rotatably connected to the inner wall of the end of the scroll (507) away from the gear (510). A fixing rod (506) is fixedly connected to the inner wall of the rotating ring (508). 506) is fixedly connected to the connecting tube (503). The inner wall of the rotating ring (508) is provided with a wire outlet hole (509). The connecting tube (503), the sleeve (501) and the reel (507) are all provided with wire groups (505). The wire group (505) includes an extension wire (5051), a small coil (5052), a connecting wire (5053), a large coil (5054) and a connecting wire (5055).
2. A temperature measurable precision mold apparatus according to claim 1, wherein The threaded ring (502) has a plurality of slots (504) on its arc surface, and the plurality of slots (504) are evenly distributed on the threaded ring (502).
3. The temperature-measurable precision mold apparatus according to claim 1, wherein Both the rack (511) and the gear (510) are made of stainless steel.
4. The temperature-measurable precision mold apparatus according to claim 1, wherein The large coil (5054) is wound on the reel (507), and the small coil (5052) is located inside the reel (507). The end of the large coil (5054) near the gear (510) is fixedly connected to the connecting line (5055), and the connecting line (5055) is fixedly connected to the probe (4). The end of the large coil (5054) away from the connecting line (5055) is fixedly connected to the connecting line (5053), and the connecting line (5053) is fixedly connected to the reel (507). The lower end of the connecting line (5053) is fixedly connected to the small coil (5052). The end of the small coil (5052) away from the connecting line (5053) is connected to the extension line (5051). The extension line (5051) is fixedly connected to the outlet hole (509), and the lower end of the extension line (5051) is fixedly connected to the machine body (1).
5. The temperature-measurable precision mold apparatus according to claim 1, wherein The arc surface of the body (1) is provided with several anti-slip structures (6). The anti-slip structure (6) includes several connecting rods (63). The several connecting rods (63) are slidably connected to the body (1). A magnetic sheet (65) is fixedly connected to one end of the connecting rod (63) near the body (1). Several iron sheets (66) are fixedly connected inside the body (1). The iron sheets (66) are attracted to the magnetic sheets (65). A rubber pad (61) is fixedly connected to one end of the connecting rod (63) away from the body (1).
6. A temperature-measurable precision mold apparatus according to claim 5, wherein The rubber pad (61) has several auxiliary grooves (62) on the side away from the body (1), and the several auxiliary grooves (62) are evenly distributed on the rubber pad (61).
7. A temperature measurable precision moulding apparatus according to claim 5, wherein, The body (1) is internally fixedly connected to several positioning rods (64), and the positioning rods (64) are slidably connected to the connecting rods (63).
Citation Information
Patent Citations
Sensor structure for detecting temperature and pressure in plastic mold
CN217196785U