久久精品国产国产精-中文字幕久久波多野结衣av-精品久久久久久中文字幕无码vr-亚洲国产一区二区三区波多野结衣-最新国产精品久久精品

Technical document

Technical Characteristics and Applications of Precision Rubber Test Molds, Low-Temperature Weather-Resistant Rubber Test Molds, and High-Temperature Rubber Test Molds

2025-10-12 14:17:14 Rubber Test Molds

The quality verification of rubber products relies on a diversified system of rubber test molds, including ozone-resistant aging rubber test molds for outdoor durability evaluation, dynamic fatigue rubber test molds for verifying reliability under dynamic conditions, and oil-resistant corrosion rubber test molds for chemical scenario adaptation. Among these, precision rubber test molds, low-temperature weather-resistant rubber test molds, and high-temperature rubber test molds are key equipment for high-precision and extreme temperature applications, directly determining the accuracy of performance evaluation for core rubber components in automotive, medical, and new energy fields. This article focuses on their technical characteristics, production scenario adaptation, and technical trends.

1. Technical Characteristics and Production Applications of Core Rubber Test Molds

1.1 Precision Rubber Test Molds

1.1.1 Core Function

Used to produce high-precision rubber samples for testing tensile strength, elongation at break, and sealing performance, especially for precision rubber components (e.g., medical catheter seals, electronic device gaskets). It ensures sample dimensional tolerance ≤ 0.01mm to avoid test data deviation.

1.1.2 Key Parameters & Design

Precision control: Mold cavity tolerance ±0.005mm, surface roughness Ra ≤ 0.2μm; 5-axis CNC machining and 100% CMM inspection ensure consistency.

Structural optimization: Nano-release coating (e.g., PTFE) for sticky materials; 3–4 evenly distributed feed ports for uniform filling.

1.1.3 Production Adaptation

Suitable for medical silicone seals (φ5±0.005mm inner diameter, meeting ISO 80369-7) and ultra-thin electronic gaskets (0.1±0.005mm thickness).

injection mould

1.2 Low-Temperature Weather-Resistant Rubber Test Molds

1.2.1 Core Function

Simulates -60℃ to -20℃ environments to produce samples for testing elastic recovery, low-temperature brittleness, and compression set, adapted for cold-chain logistics and polar vehicle components.

1.2.2 Low-Temperature Design & Control

Material selection: 1Cr18Ni9Ti stainless steel (cold toughness); copper alloy inserts (thermal conductivity ≥380W/(m·K)).

Temperature management: ±1℃ control accuracy, 5–8mm polyurethane insulation; 2–3 hours pre-cooling for -40℃ tests.

1.2.3 Production Adaptation

Tests polar vehicle seals (-50℃ for 24h, tensile strength retention ≥80%) and cold-chain gaskets (-30℃, compression set ≤25%).

1.3 High-Temperature Rubber Test Molds

1.3.1 Core Function

Simulates 150℃ to 250℃ environments for testing thermal aging, high-temperature compression set, and thermal tensile strength, adapted for automotive engine compartments and new energy battery packs.

1.3.2 High-Temperature Design & Control

Material treatment: H13 hot-work steel (HRC 48–52, tensile strength ≥1200MPa at high temperature); Al?O? ceramic coating (5–10μm).

Thermal management: Φ6–8mm cooling channels (cooling from 250℃ to room temperature ≤30min); 0.02–0.03mm compensation gap for thermal expansion.

1.3.3 Production Adaptation

Tests engine oil seals (180℃ for 72h, hardness change ≤10 Shore A) and battery seals (200℃ thermal runaway resistance).

injection mould

2. Technical Trends of Rubber Test Molds

2.1 Intelligent Data Integration

Molds integrate micro-sensors (±0.5℃ accuracy) to transmit cavity temperature and filling pressure data to testing systems, improving data traceability efficiency by over 60%.

2.2 Advanced Material Application

Low-temperature molds: Titanium alloy (TC4) for -80℃ resistance (toughness +40%).

High-temperature molds: Silicon carbide composites (temperature resistance >300℃, weight -35%).

2.3 Modular Design

Interchangeable cavity inserts (φ3–10mm) reduce replacement time from 2h to <30min; quick calibration restores tolerance to ±0.005mm.

injection mould

3. Key Operational Points in Practice

3.1 Mold Maintenance

Precision molds: Clean with ethanol after use; monthly CMM inspection (repair if deviation >0.008mm).

Low-temperature molds: Dry cavities to prevent rust; quarterly insulation check.

High-temperature molds: Clean cooling channels every 50 tests; re-coat ceramics if wear >2μm.

3.2 Sample Preparation

Precision molds: Use low-viscosity release agent (5–8μm coating).

Low-temperature molds: Maintain cavity temperature ±2℃ during demolding.

High-temperature molds: Insulate for 10–15min after filling to avoid bubbles.

Conclusion

Precision, low-temperature, and high-temperature rubber test molds are critical for accurate rubber performance testing. With intelligent integration, advanced materials, and modular design, they will better meet the needs of extreme-condition performance verification in automotive, medical, and new energy fields, supporting rubber product quality upgrading.

injection mould

Home
Product
News
Contact
主站蜘蛛池模板: av无码av在线a∨天堂毛片| 亚洲综合无码一区二区三区| 亚洲国产日韩在线视频| 天堂俺去俺来也www色官网| 99精品人妻少妇一区二区| 日韩乱码人妻无码中文字幕视频 | 无码国产偷倩在线播放老年人| 五月婷婷六月丁香动漫| 亚洲精品无码高潮喷水a片软| 精品国产污污免费网站| 少妇被爽到高潮在线观看| 亚洲一区av无码少妇电影| 午夜精品久久久久久| 在线观看无码av网站永久| 99热成人精品热久久6网站| 亚洲熟妇色xxxxx欧美老妇y| 精品久久国产字幕高潮| 成 人 免费观看网站| 亚洲中文字幕无码不卡电影| 精品丝袜人妻久久久久久| 亚洲国产精品高清久久久| 人妻无码一区二区视频| 黄a大片av永久免费| 亚洲女教师丝祙在线播放| 人妻丰满熟妇av无码区动漫| 国产真实交换多p免视频| 超碰97人人做人人爱2020| 一本一道av无码中文字幕﹣百度| 日韩精品无码一区二区三区av| 19禁无遮挡啪啪无码网站性色| 国产亚洲tv在线观看| 久久精品国产99久久丝袜| 亚洲综合色区在线播放2019| 久久久久无码精品国产| 精品无码一区二区三区电影| 噜噜噜亚洲色成人网站∨| 亚洲熟妇真实自拍另类| 国产精品无码av有声小说| 2017亚洲天堂最新地址| 成人午夜高潮免费视频在线观看| 日韩 亚洲 制服 欧美 综合|