Springs - Extension, Drawbar

Image Part Number Description / PDF Quantity Rfq
5358CS

5358CS

Century Spring Corp.

EXT O= .843,L= 2.56,W= .100

174

546CS

546CS

Century Spring Corp.

EXT O= .250,L= .73,W= .020

117

80204SCS

80204SCS

Century Spring Corp.

EXT O= .180,L= 1.50,W= .029

414

624CS

624CS

Century Spring Corp.

EXT O=1.500,L= 8.50,W= .192

229

B3-18CS

B3-18CS

Century Spring Corp.

EXT O= .156,L= 1.13,W= .023

581

6012CS

6012CS

Century Spring Corp.

EXT O= .500,L= 1.75,W= .041

661

ZZ4-56CS

ZZ4-56CS

Century Spring Corp.

EXT O= .125,L= 1.00,W= .020

112

80816SCS

80816SCS

Century Spring Corp.

EXT O= .650,L= 2.50,W= .069

194

80361CS

80361CS

Century Spring Corp.

EXT O= .240,L= 1.50,W= .041

332

80594SCS

80594SCS

Century Spring Corp.

EXT O= .359,L= 6.00,W= .058

1156

80122SCS

80122SCS

Century Spring Corp.

EXT O= .120,L= 1.50,W= .022

215

5947CS

5947CS

Century Spring Corp.

EXT O=1.000,L= 4.50,W= .095

117

80616CS

80616CS

Century Spring Corp.

EXT O= .420,L= 3.00,W= .045

130

6034CS

6034CS

Century Spring Corp.

EXT O= .750,L= 4.25,W= .075

248

80256SCS

80256SCS

Century Spring Corp.

EXT O= .240,L= 1.50,W= .022

868

81091CS

81091CS

Century Spring Corp.

EXT O=1.250,L= 4.00,W= .095

115

S-586CS

S-586CS

Century Spring Corp.

EXT O= .500,L= 5.00,W= .062

316

166-ACS

166-ACS

Century Spring Corp.

EXT O= .188,L= 1.50,W= .016

685

12351CS

12351CS

Century Spring Corp.

EXT O= .500,L=12.00,W= .065

129

80443SCS

80443SCS

Century Spring Corp.

EXT O= .359,L= 2.00,W= .026

339

Springs - Extension, Drawbar

1. Overview

Extension springs and drawbar springs are critical mechanical components designed to absorb and store energy through axial deformation. Extension springs operate under tensile loads, providing resistance when stretched, while drawbar springs (typically compression springs) transmit force through rigid mechanical linkages. These springs are fundamental in maintaining structural integrity, controlling motion, and dampening vibrations across industries such as automotive, aerospace, and industrial machinery.

2. Main Types and Functional Classification

TypeFunctional CharacteristicsApplication Examples
Helical Extension SpringCoiled design with hooks/loops for tension absorptionGarage door mechanisms, trampolines
Drawbar Spring AssemblyEncased compression springs with mechanical actuationRailway couplers, heavy machinery
Variable Rate Extension SpringNon-linear load distribution through variable pitchMilitary vehicle suspension systems
Torsion Extension SpringRotational force transmission with angular displacementIndustrial valve actuators

3. Structure and Components

Both spring types share common structural elements:

  • Coil Body: Precision-wound wire (typically ASTM A227/A229 steel) with controlled pitch
  • End Attachments: Hooks (S-hook, double-loop), threaded inserts, or flange mounts
  • Coefficient Zones: Active coils for elasticity and inactive coils for structural support
  • Surface Treatment: Zinc plating, phosphate coating, or powder epoxy for corrosion resistance

Drawbar springs incorporate additional mechanical components: outer housing cylinders and integrated locking mechanisms.

4. Key Technical Parameters

ParameterDescriptionImportance
Spring Rate (k)Load per unit deflection (N/mm)Determines stiffness and energy absorption capacity
Max Working LoadUltimate tensile/compressive force (N)Defines operational safety limits
Wire Diameter (d)0.5 25 mm rangeImpacts fatigue resistance and load capacity
Active Coils (Na)Number of functional windingsControls spring flexibility and elasticity
Endurance LimitCyclic load threshold (10 10 cycles)Predicts service life under dynamic loads

5. Application Fields

  • Automotive: Suspension systems, engine valve trains
  • Railway: Coupler damping systems, carriage leveling
  • Manufacturing: Press machines, robotic arms
  • Consumer Goods: Washing machine balance springs
  • Aerospace: Landing gear shock absorption

6. Leading Manufacturers

ManufacturerHeadquartersRepresentative Product
MISUMI Group Inc.JapanOSPF Series Drawbar Springs
Barnes Group Inc.USAAcxess Spring Line
Lesj fors Spring ABSwedenVariforce Extension Springs
Suhner Holding AGSwitzerlandPowerLoc Spring Systems

7. Selection Guidelines

Key considerations during selection:

  1. Determine load requirements (static vs. dynamic)
  2. Evaluate environmental conditions (temperature, corrosion exposure)
  3. Match end attachment geometry with mating components
  4. Calculate fatigue life using Modified Goodman criteria
  5. Verify dimensional compatibility (free length, solid height)

Example: Selecting a drawbar spring for railway couplers requires ISO 9001:2015 certification and EN 13298 compliance for vibration damping at 1.2 million load cycles.

8. Industry Trends

Current developments include:

  • Adoption of carbon fiber-reinforced polymer springs for weight reduction
  • Smart springs with embedded piezoelectric sensors for real-time stress monitoring
  • 3D-printed lattice structures enabling complex load profiles
  • Increased demand for corrosion-resistant alloys in electric vehicle applications
  • Integration with Industry 4.0 predictive maintenance systems
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