Crimpers - Crimp Heads, Die Sets

Image Part Number Description / PDF Quantity Rfq
09990000388

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CRIMP DIE DIN46235 35MM2 (B12DIN

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CRIMP DIE 240MM2 FOR V1300

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CRIMP DIE DIN46235 240MM2 (13CB3

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CRIMP DIE DIN46235 185MM2 (13CB2

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09990000237

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DSUB CRIMP-TOOL DIES 37P

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09990000185

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DIN-TOOL AUFNAHMEBLOCK UNIVERSAL

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61030000178

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INDUCOM - CRIMP TOOL INSERT 13.5

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09990000813

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CRIMPING DIE FOR D,E&C CONTACT 2

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09990000398

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CRIMP DIE DIN46235 10MM2 (B6DIN)

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0998XXX3007

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QUICK CHANGE TOOL FC3 (AWG 20-16

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0998XXX8103

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INTERCHANGEABLE UNIT TC-SC FOR H

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INTERCHANGEABLE UNIT TC-SC FOR H

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0998XXX6902

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INTERCHANGEABLE UNIT TK-M FOR HA

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QUICK CHANGE TOOL BC (AWG 28-20)

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QUICK CHANGE TOOL FC1 (AWG 28-24

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09990000814

09990000814

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CRIMPING DIE FOR C CRIMP CONTACT

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0998XXX6002

0998XXX6002

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INTERCHANGEABLE UNIT FOR HAN E

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60990000010

60990000010

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HMIK HEAD+TABLE P/S MALE IDC

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0998XXX3008

0998XXX3008

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QUICK CHANGE TOOL D-SUB (AWG 28-

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0998XXX8104

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INTERCHANGEABLE UNIT TC-SC FOR H

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Crimpers - Crimp Heads, Die Sets

1. Overview

Crimpers - Crimp Heads and Die Sets are precision tools used to deform metal components (typically terminals or connectors) to establish secure electrical or mechanical connections. These systems are critical in industries requiring high reliability, such as automotive, aerospace, and electronics manufacturing. Modern advancements focus on automation, precision, and material compatibility to meet evolving industrial standards.

2. Main Types & Functional Classification

TypeFunctional FeaturesApplication Examples
Manual Crimp HeadsHand-operated, adjustable force controlPrototyping, low-volume production
Automatic Crimp HeadsMotor-driven, programmable force/positionHigh-speed wire harness assembly
Hydraulic Crimp HeadsHigh-force output, consistent pressureHeavy-duty cable termination
Dual-Action Die SetsMulti-stage crimping for complex geometriesCoaxial connector assembly
Quick-Change Die SetsModular design for rapid tool swappingMass production with frequent changeovers

3. Structure & Components

A typical crimping system consists of: - Frame: Rigid base structure (steel/aluminum) for vibration resistance - Crimping Module: Contains hydraulic/pneumatic actuators or mechanical linkages - Die Set Assembly: Precision-machined upper (punch) and lower (anvil) dies - Positioning System: Linear guides and digital encoders for 0.01mm accuracy - Force Transmission Components: Cam mechanisms or servo-driven systems - Safety Features: Emergency stop circuits and overload protection

4. Key Technical Specifications

ParameterImportance
Crimping Force (kN)Determines joint integrity and material compatibility
Working Range (mm)Defines applicable terminal sizes
Repeatability ( m)Ensures consistent connection quality
Cycle Rate (units/hour)Impacts production throughput
Durability (cycles before wear)Reduces maintenance frequency
Material Hardness (HRC)Affects die lifespan and precision retention

5. Application Fields

Primary industries include: - Automotive (wire harness assembly lines) - Telecommunications (fiber optic connector termination) - Aerospace (high-reliability avionics connections) - Renewable Energy (solar panel cable termination) - Consumer Electronics (miniaturized connector crimping) - Industrial Automation (PLC terminal block assembly)

6. Leading Manufacturers & Products

ManufacturerRepresentative ProductKey Features
TE ConnectivityCrimptool XE3AI-powered force control, 0.02mm repeatability
KOMAXZeta 1200Multi-axis robotic integration, 4,000 crimps/hour
Sumitomo ElectricCT-Pro2Laser-guided die alignment system
Yazaki CorporationWBC-RX7Hybrid electro-hydraulic actuation

7. Selection Recommendations

Key considerations: - Match crimp force to terminal material thickness (e.g., 1.2mm Cu requires 8-10kN) - Verify compatibility with industry standards (IPC/WHMA-A-620) - Assess production volume requirements (manual vs. automatic) - Prioritize modular systems for multi-product lines - Factor in calibration intervals and die replacement costs - Consider IoT-enabled models for predictive maintenance

8. Industry Trends Analysis

Current developments include: - Integration with Industry 4.0 through real-time data logging - Adoption of carbide-coated dies for 300% longer lifespan - Miniaturization for EV battery connection applications - Growth in demand for 0.1mm precision in 5G infrastructure - Shift toward energy-efficient servo-driven systems (30% power reduction) - Increased adoption of vision systems for automated quality control

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