.025” to  .040” O.D. ± .001”
 .057” to  .094” O.D. ± .003”
 .102” to  .250” O.D. + .003”–.005”
 .300” to  .500” O.D. ± .008”
 .540” to  .850” O.D. ± .015”
 .875” to 1.125” O.D. ± .020”
1.150” to 1.218” O.D. ± .025”
1.250” to 1.460” O.D. ± .030”
1.480” to 1.687” O.D. ± .040”
1.937” to 2.000” O.D. ± .055”
Spring rate: ± 10%

 0.64mm to  1.02mm ±  .03mm
 1.45mm to  2.36mm ±  .08mm
 2.59mm to  6.10mm +  .08mm–.13mm
 7.62mm to 12.70mm ±  .20mm
13.97mm to 21.59mm ±  .38mm
22.23mm to 28.58mm ±  .51mm
29.21mm to 30.94mm ±  .64mm
31.75mm to 37.08mm ±  .76mm
37.59mm to 42.85mm ± 1.02mm
49.20mm to 50.80mm ± 1.40mm
Solid height: + 5%, no lower limit

  To find the load at any working length, when free length
  and rate are given, use the formula:  P = R x F
  where P is the load in lbs.; R is the rate in lbs. per
  inch; F is the  deflection from free length.
    Example: (Lee Stock Spring Catalog #LC-032C-8) — Given
	a free length of .750” and a rate of 22 pounds per
	inch, 	find the load at 1/2” working length.
       P = 22 x .250 = 5.5lbs.

  To find the load at any working length,  when the free
  length, rate and initial tension are given, use the
  formula:  P= (R x F) + I.T.
  where P is the load in lbs.; R is the rate in lbs. per inch;
  F is the deflection from free length; I.T. is the initial
  tension.
     Example: (Lee Stock Spring Catalog #LE-031C-1) — Given a
     free length of 1”, a rate of 6.9 pounds per inch, and
	 .7 pounds initial tension, find the load at 1.500”.
      P = (6.9 x .500) + .7 = 3.45 + .7 = 4.15 lbs.