Angebot
Federrechner

Extension spring calculator

Calculate the rate, initial tension and maximum load of extension springs with hooks. Enter the dimensions and the hook-to-hook length.

Einheiten
mm
mm
mm
N
Ergebnis
Federrate9.008 lbf/in [1.58 N/mm]
Max. zulässige Kraft11.746 lbf [52.25 N]
Max. zulässiger Federweg1.104 in [28.05 mm]
Innere Vorspannung2.255 lbf [10.03 N]
Wickelverhältnis9.00
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Formel

k = G·d⁴ / (8·D³·Na)
F = IT + k·x

Symbole

kspring rate (N/mm or lbf/in)
Gshear modulus of the material (psi or MPa)
dwire diameter (in or mm)
Dmean coil diameter: OD − d (in or mm)
Nanumber of active coils
ITinitial tension: force before the coils separate (lbf or N)
xextension from the hook-to-hook length (in or mm)

Rechenbeispiel

Eingaben
Drahtdurchmesser0.063 in [1.60 mm]
Außendurchmesser0.630 in [16.00 mm]
Gesamtlänge (Haken zu Haken)2.362 in [60.00 mm]
Gesamtwindungen12
WerkstoffEdelstahl 302 (SS302)
Ergebnis
Federrate9.008 lbf/in [1.58 N/mm]
Max. zulässige Kraft11.746 lbf [52.25 N]
Max. zulässiger Federweg1.104 in [28.05 mm]

Berechnet mit derselben Engine wie der Rechner oben, unter Verwendung der Startwerte des Formulars.

Extension springs work under pull load and carry an initial tension that must be overcome before the coils separate.

The tool estimates initial tension from geometry and validates that the hooks fit within the overall length.

Hooks are usually the weak point: bending stress at the loop limits the load before the spring body does. The full designer computes that limit for each hook style.

So messen Sie Ihre Feder

  1. Measure the wire diameter (d) on the body, not on the hook.
  2. Measure the outer diameter (OD) across the closed coils.
  3. Measure the hook-to-hook length (end to end, inside the hooks) with no load.
  4. Count the body coils. On extension springs every body coil is active.
  5. Identify the hook style: machine loop, crossover loop, side loop, extended hook or swivel eye.

Werkstoffmoduln und Dichte

WerkstoffSchubmodul GElastizitätsmodul EDichte
Kohlenstoffstahl (MW)11.5 × 10⁶ psi (79.3 GPa)29.5 × 10⁶ psi (203.4 GPa)7.85 g/cm³
Edelstahl 302 (SS302)10.0 × 10⁶ psi (69.0 GPa)28.0 × 10⁶ psi (193.0 GPa)7.90 g/cm³
Edelstahl 17-7 PH (SS177)11.0 × 10⁶ psi (75.8 GPa)29.4 × 10⁶ psi (203.0 GPa)7.81 g/cm³
Edelstahl 316 (SS316)10.0 × 10⁶ psi (69.0 GPa)28.0 × 10⁶ psi (193.0 GPa)7.98 g/cm³
Ölschlussvergütet MB (OT)11.2 × 10⁶ psi (77.2 GPa)29.5 × 10⁶ psi (203.4 GPa)7.85 g/cm³
Chrom-Silizium (CS)11.2 × 10⁶ psi (77.2 GPa)29.5 × 10⁶ psi (203.4 GPa)7.85 g/cm³
Hartgezogen (HD)11.5 × 10⁶ psi (79.3 GPa)29.5 × 10⁶ psi (203.4 GPa)7.85 g/cm³
Phosphorbronze (PB)6.0 × 10⁶ psi (41.4 GPa)14.9 × 10⁶ psi (103.0 GPa)8.86 g/cm³
Berylliumkupfer (BC)7.0 × 10⁶ psi (48.3 GPa)18.6 × 10⁶ psi (128.0 GPa)8.25 g/cm³
Chrom-Vanadium (CV)11.2 × 10⁶ psi (77.2 GPa)29.5 × 10⁶ psi (203.4 GPa)7.85 g/cm³

Häufig gestellte Fragen

What is initial tension in an extension spring?

It is the force wound into the spring that holds the coils closed. The spring only starts to extend once the load exceeds that force, so F = IT + k·x.

How do I measure the rate of an extension spring?

Measure the force at two different lengths and divide the force difference by the travel difference. Using two points cancels initial tension out of the math.

Do hooks affect the strength of the spring?

Yes. The loop concentrates bending stress and typically fails before the body. Extended hooks and swivel eyes change both the usable length and the load limit.

Konstruieren Sie die Feder und erhalten Sie ein Sofortangebot

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