Springs - Torsion

Image Part Number Description / PDF Quantity Rfq
TO-1087CS

TO-1087CS

Century Spring Corp.

TOR O=.450, W=.035

803

TO-1035CS

TO-1035CS

Century Spring Corp.

TOR O=.427, W=.026

114

TO-5212LCS

TO-5212LCS

Century Spring Corp.

TOR O=.949, W=.096

319

TO-5103LSCS

TO-5103LSCS

Century Spring Corp.

TOR O=.386, W=.038

194

TO-5023LSCS

TO-5023LSCS

Century Spring Corp.

TOR O=.187, W=.023

358

TO-5040LCS

TO-5040LCS

Century Spring Corp.

TOR O=.235, W=.017

1062

TO-1049CS

TO-1049CS

Century Spring Corp.

TOR O=.264, W=.062

3702

TO-5182RSCS

TO-5182RSCS

Century Spring Corp.

TOR O=.757, W=.075

296

TO-1054CS

TO-1054CS

Century Spring Corp.

TOR O=.670, W=.077

211

TO-5164LCS

TO-5164LCS

Century Spring Corp.

TOR O=.628, W=.051

410

TO-5134RCS

TO-5134RCS

Century Spring Corp.

TOR O=.519, W=.040

222

TO-1048CS

TO-1048CS

Century Spring Corp.

TOR, O=.219, W=.0475

121

TO-1050CS

TO-1050CS

Century Spring Corp.

TOR O=.655, W=.062

433

TO-5245RSCS

TO-5245RSCS

Century Spring Corp.

TOR O=1.243, W=.095

145

TO-5036LCS

TO-5036LCS

Century Spring Corp.

TOR O=.217, W=.018

139

TO-5005LCS

TO-5005LCS

Century Spring Corp.

TOR, O=.124, W=.014

1544

TO-5117LCS

TO-5117LCS

Century Spring Corp.

TOR O=.464, W=.042

412

TO-5121RCS

TO-5121RCS

Century Spring Corp.

TOR O=.470, W=.045

878

TO-5097RCS

TO-5097RCS

Century Spring Corp.

TOR O=.377, W=.030

139

TO-5153LCS

TO-5153LCS

Century Spring Corp.

TOR O=.575, W=.045

80

Springs - Torsion

1. Overview

Torsion springs are elastic components designed to store and release angular energy or to statically hold a mechanism in a rotated position. They operate by twisting about their axis when torque is applied, generating a restoring force proportional to the rotation angle. These springs are critical in modern mechanical systems for precise motion control, vibration damping, and maintaining structural stability across industries.

2. Main Types and Functional Classification

TypeFunctional CharacteristicsApplication Examples
Single Torque Torsion SpringSimple helical design with one direction of torque outputDoor hinges, clipboards, automotive latch mechanisms
Double Torque Torsion SpringBifilar winding for balanced torque in two directionsCounterbalance systems, robotic joints
Multi-Flex Torsion SpringSegmented coils for variable torque curvesIndustrial valves, precision instruments
Linear Torsion SpringConstant torque output through entire rotationCable reels, rotational actuators
Tapered Torsion SpringVariable pitch coils for progressive torque responseAerospace control surfaces, clutch mechanisms

3. Structure and Composition

Typical torsion springs feature helically wound wire with straight or shaped ends (legs) that transmit torque. Key components include:

  • Coiled body: Provides elastic deformation through torsional stress
  • Arms/legs: Transfer torque to mating components (straight, angular, or hooked configurations)
  • Material: High-carbon steel, stainless steel, phosphor bronze, or titanium alloys
  • Surface treatment: Zinc plating, powder coating, or nitriding for corrosion resistance

Design variations include cylindrical, conical, and barrel-shaped geometries to optimize space utilization.

4. Key Technical Parameters

ParameterDescriptionImportance
Spring Rate (Nm/deg)Torque per degree of angular deflectionDetermines stiffness and response characteristics
Max Torque CapacityUltimate torsional load before plastic deformationDefines operational safety limits
Number of CoilsImpacts spring index and stress distributionAffects fatigue life and space requirements
Leg OrientationAngle and offset between spring armsCritical for proper torque transmission
Material Shear ModulusDictates elastic properties under torsionKey factor in torque-rotation relationship
Operating Temperature RangeThermal limits affecting dimensional stabilityDetermines environmental compatibility

5. Application Fields

Major industries utilizing torsion springs include:

  • Automotive: Windshield wiper mechanisms, door check systems, transmission shifters
  • Industrial Equipment: Conveyors, packaging machines, robotic arms
  • Aerospace: Flight control actuators, landing gear mechanisms
  • Consumer Electronics: Laptop hinges, camera lens barrels, medical device triggers
  • Energy Systems: Circuit breaker mechanisms, renewable energy dampers

Example: Automotive seat recline systems use dual torsion springs to maintain position while allowing smooth adjustment.

6. Leading Manufacturers and Products

ManufacturerKey ProductsSpecialization
MISUMIVFS2- Series Precision Torsion SpringsHigh-volume industrial applications
Lee SpringCT Series Custom Torsion SpringsMiniature and medical-grade springs
Barnes Group Inc.Associated Spring RAFI LineAerospace and defense solutions
Smalley Steel RingWave Spring-Actuated Torsion DevicesSpace-saving wave spring technology
CrosbySwager Torsion SpringsHeavy-duty industrial applications

7. Selection Guidelines

Key considerations for torsion spring selection:

  1. Calculate required torque using: M = k (M=torque, k=spring rate, =angular displacement)
  2. Verify maximum stress levels against material endurance limits
  3. Account for installation space constraints (diameter, length, leg clearance)
  4. Specify corrosion resistance requirements based on environmental exposure
  5. Consider dynamic loading conditions and fatigue life expectations
  6. Validate rotational direction compatibility with handedness of coil winding

Recommend consulting manufacturer's load-deflection charts during specification.

8. Industry Trends

Current development trends include:

  • Advanced materials: Carbon fiber composites and shape-memory alloys
  • Miniaturization for micro-electromechanical systems (MEMS)
  • Smart integration with embedded strain sensors
  • Topology optimization via generative design algorithms
  • Environmentally friendly surface treatments replacing hexavalent chromium

Market growth driven by electric vehicle component demands and industrial automation expansion.

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