Tweezers

Image Part Number Description / PDF Quantity Rfq
18029ACU

18029ACU

Aven

TWEEZER POINTED FINE OC 3.54"

0

18036

18036

Aven

TWEEZER POINT STRONG OOC 4.72"

0

18069TS

18069TS

Aven

TWEEZER FLAT STRONG 6 4.25"

12

18070

18070

Aven

TWEEZER POINT ULTRA FINE 7 4.53"

0

18054

18054

Aven

TWEEZER POINT ULT FINE 3C 4.33"

0

18811

18811

Aven

TWEEZER POINT FINE STRONG 5.25"

0

18046TS

18046TS

Aven

TWEEZER POINTED SHARP 2 4.75"

0

18014

18014

Aven

TWEEZER POINTED STRONG AC 4.72"

0

18059ACU

18059ACU

Aven

TWEEZER PNT RND ULTRA FINE 4.33"

0

18053-MS

18053-MS

Aven

TWEEZERS POINT ULTRA FINE 3 2.8"

0

18801

18801

Aven

TWEEZER POINTED 5.12"

0

18062TS

18062TS

Aven

TWEEZER POINTED FINE 5 4.25"

0

18026ACU

18026ACU

Aven

TWEEZER POINTED FINE O 4.72"

0

18049ACU

18049ACU

Aven

TWEEZER FLAT BLUNT 2A 4.72"

0

18078ACU

18078ACU

Aven

TWEEZER POINT ULTRA FINE 4.33"

0

18076ACU

18076ACU

Aven

TWEEZER POINT ULTRA FINE 5.51"

12

18016

18016

Aven

TWEEZER POINTED STRONG AC 4.72"

0

18056TS

18056TS

Aven

TWEEZER POINTED STRONG 3C 4.25"

0

18062-MS

18062-MS

Aven

TWEEZERS POINT FINE 5 3.19"

0

18057

18057

Aven

TWEEZER PNT RND ULTRA FINE 4.33"

0

Tweezers

1. Overview

Tweezers are precision handheld tools designed to grasp, hold, or manipulate small objects inaccessible to human fingers. Modern tweezers integrate advanced materials and ergonomic designs to meet demands in electronics, healthcare, laboratory research, and industrial manufacturing. Their importance lies in enabling precise handling of components at micro and nano scales, critical for semiconductor assembly, surgical procedures, and material science applications.

2. Main Types and Functional Classification

TypeFunctional FeaturesApplication Examples
Anti-Static TweezersConductive carbon fiber composite, ESD protectionPCB assembly, IC handling
Carbide-Tipped TweezersHardened tungsten carbide tips, wear-resistantAutomotive sensor manufacturing
Smooth Tip TweezersPolished stainless steel, non-marking gripOptical lens alignment
Spring-Loaded TweezersAutomatic opening mechanism, fatigue reductionMicro-surgery procedures
High-Temperature TweezersChrome-cobalt alloy, 1200 C resistanceMetallurgical sample handling

3. Structure and Components

Typical construction includes:

  • Jaws: Angled or straight tips with precision-ground surfaces
  • Shaft: Hollow or solid design with length ranging 75-150mm
  • Material: Medical-grade stainless steel, titanium alloys, or polymer composites
  • Surface Treatment: Electropolishing, diamond-like carbon coating
  • Ergonomic Features: Bi-material handles, textured gripping zones

4. Key Technical Specifications

ParameterImportance
Tip Hardness (HV0.1): 550-1800Determines wear resistance and longevity
Parallelism Tolerance: 5 mEnsures uniform gripping force
Thermal Stability: -196 C to 1200 CEnables extreme environment operation
Surface Roughness (Ra): 0.05 mPrevents particle contamination
Spring Force: 0.5-5.0NOptimizes handling precision

5. Application Fields

Key industries include:

  • Electronics Manufacturing: SMT component placement, BGA rework
  • Medical Devices: Stent assembly, ophthalmic instrument calibration
  • Life Sciences: Cell manipulation, histology sample handling
  • Aerospace: Composite material repair, avionics maintenance
  • Photonics: Fiber optic alignment, laser component assembly

6. Leading Manufacturers and Products

ManufacturerRepresentative ProductKey Feature
ElectroForce SystemsESD-Pro SeriesIntegrated ionization coating
CarbTec AdvancedDuraTip XTReplaceable carbide inserts
MediTool SolutionsSurgiGrip+Autoclavable titanium construction
NanoPrecision Inc.UltraTweezerSub-micron tip accuracy

7. Selection Recommendations

Consider:

  • Material compatibility (e.g., non-magnetic for MRI components)
  • Tip geometry matching component size (0402 SMD vs. 01005 components)
  • Ergonomic assessment for >8-hour daily use
  • Traceability requirements (ISO 13485 certified tools)
  • Specialized coatings for corrosive environments

8. Industry Trends

Emerging developments:

  • Integration of piezoelectric actuators for micro-force feedback
  • Graphene-enhanced composites reducing tool weight by 40%
  • Smart tweezers with IoT-enabled usage analytics
  • 3D-printed custom geometries for specialized nanotechnology applications
  • Increased adoption of single-use polymer tweezers in sterile manufacturing
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