Springs - Compression, Tapered

Image Part Number Description / PDF Quantity Rfq
B8-67CS

B8-67CS

Century Spring Corp.

COMP O=1.125,L= 2.66,W= .125

370

12530CS

12530CS

Century Spring Corp.

COMP O= .406,L= 1.31,W= .038

5420

71733SCS

71733SCS

Century Spring Corp.

COMP O= .600,L= 1.25,W= .049

57

S-368CS

S-368CS

Century Spring Corp.

COMP O= .703,L= 1.00,W= .072

996

72039CS

72039CS

Century Spring Corp.

COMP O= .720,L= 1.50,W= .080

1078

2829CS

2829CS

Century Spring Corp.

COMP O= .578,L= 3.13,W= .047

508

2963CS

2963CS

Century Spring Corp.

COMP O= .234,L= .53,W= .011

1525

B8-53CS

B8-53CS

Century Spring Corp.

COMP O= .765,L= 2.72,W= .055

225

DD-36CS

DD-36CS

Century Spring Corp.

COMP O= .281,L= .56,W= .038

356

4152CS

4152CS

Century Spring Corp.

COMP O= .437,L= 3.13,W= .062

180

S-3209CS

S-3209CS

Century Spring Corp.

COMP O= .609,L= 1.06,W= .039

277

71400CS

71400CS

Century Spring Corp.

COMP O= .420,L= .88,W= .055

370

71436SCS

71436SCS

Century Spring Corp.

COMP O= .420,L= 2.25,W= .067

270

10017CS

10017CS

Century Spring Corp.

COMP O= .375,L= 1.25,W= .034

885

70441CS

70441CS

Century Spring Corp.

COMP O= .180,L= 1.50,W= .032

247

71174SCS

71174SCS

Century Spring Corp.

COMP O= .360,L= .44,W= .0475

376

1906CS

1906CS

Century Spring Corp.

COMP O= .625,L= 3.00,W= .047

1895

II-77CS

II-77CS

Century Spring Corp.

COMP O= .375,L= 2.00,W= .0475

159

2819CS

2819CS

Century Spring Corp.

COMP O= .500,L= .88,W= .135

1116

U-79CS

U-79CS

Century Spring Corp.

COMP O= .125,L= .31,W= .017

222

Springs - Compression, Tapered

1. Overview

Compression tapered springs are helical springs with variable coil diameters, designed to provide non-linear load-deflection characteristics. Unlike uniform-diameter compression springs, tapered springs offer progressive stiffness, enabling compact designs and enhanced load-bearing capacity. Their unique geometry reduces coil contact during compression, minimizing vibration and noise. These springs are critical in applications requiring space optimization, dynamic load management, and shock absorption, such as automotive suspensions, aerospace actuators, and industrial machinery.

2. Main Types and Functional Classification

TypeFunctional CharacteristicsApplication Examples
Single Tapered SpringsOne end with smaller diameter, linear stiffness gradientValve systems, electrical connectors
Double Tapered SpringsSymmetrical diameter reduction at both ends, improved buckling resistanceAerospace landing gear, vibration dampers
Composite Tapered SpringsMulti-segment diameter changes, tailored load curvesHeavy-duty truck suspensions, railway shock absorbers

3. Structure and Composition

Compression tapered springs feature a conical helical structure with gradually decreasing or increasing coil diameters. The cross-section typically uses round wire (occasionally rectangular for high-torque applications), manufactured via cold/hot forming processes. Key structural elements include:

  • Variable pitch design to control spring rate
  • Ground ends for uniform load distribution
  • Surface treatments (zinc plating, phosphate coating) for corrosion resistance

Materials commonly include high-carbon steel (SAE 1065-1095), stainless steel (SUS 304/316), and alloy steels (ASTM A231) for elevated temperature environments.

4. Key Technical Specifications

ParameterImportance
Free Height (mm)Determines maximum deflection range
Wire Diameter (mm)Affects shear strength and fatigue life
Material GradeDictates temperature resistance and corrosion performance
Load Capacity (N)Defines maximum operational force
Spring Rate (N/mm)Controls stiffness and energy absorption
Working Temperature ( C)Limits application environments

5. Application Fields

Major industries utilizing tapered compression springs include:

  • Automotive: Engine valve trains, clutch systems
  • Aerospace: Flight control actuators, landing gear dampers
  • Industrial Machinery: Hydraulic cylinder cushions, die springs
  • Energy: Subsea wellhead connectors, wind turbine pitch systems

Example: In automotive dual-mass flywheels, tapered springs absorb torsional vibrations across varying RPM ranges.

6. Leading Manufacturers and Products

ManufacturerRepresentative ProductKey Features
MISUMITAPEX SeriesCustomizable taper angles, zinc-nickel coating
Barnes GroupAeroSpring HTHigh-temperature Inconel alloy construction
Lesj forsRailSpring ProEN 14587-2 certified for railway applications

7. Selection Guidelines

Key considerations during selection:

  • Calculate required spring index (D/d ratio) to avoid stress concentration
  • Verify solid height vs. available installation space
  • Account for dynamic loads using fatigue life calculations (e.g., S-N curves)
  • Select end configurations (closed/open) based on load transfer requirements
  • Evaluate environmental factors (temperature, corrosive media)

Example: For a 150mm stroke application with 500N maximum load, select a spring with 1.5 safety factor and 10% greater free height than required stroke.

8. Industry Trends

Emerging trends include:

  • Adoption of composite materials (e.g., carbon fiber-reinforced polymers) for weight reduction
  • Integration of additive manufacturing for complex taper profiles
  • Smart spring systems with embedded strain sensors
  • Development of corrosion-resistant coatings meeting IP68 standards
  • Standardization efforts under ISO 11891 for aerospace applications

Market growth is projected at 4.2% CAGR through 2030, driven by electric vehicle suspension systems and renewable energy equipment demands.

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