Answer to Question #306381 in Civil and Environmental Engineering for ale

l = Length of tape = 50 m

L = Length of measurement = 458.650 m

Po = Pull at the time of measurement = 8 kg

Ps = Pull at the time of standardization = 5. 5 kg

w = Weight of tape = 0.05 kg/m

A = Cross — sectional area of tape = 0.04 cm²

E = Modulus of Elasticity = 2. 1 x 10⁶ Kg/cm² 

Temperature (°C) = 18°C

linear expansion coefficient = 0.0000116/°C

(a.) Correction due to the applied pull of 8 kg

"Cp=\\frac{(Po-Ps)L}{AE}"

"Cp=\\frac{(8-5.5)458.65}{0.04(2. 1 x 10^6)}"

"Cp=\\frac{1146.625}{84,000}"

"Cp= 0.01365"

(b.) Correction due to weight of tape

"Cs= \\frac{W^2L}{24Po}"

"Cs= \\frac{0.05^2(50)}{24(8)}"

"Cs= \\frac{0.125}{192}"

"Cs= 0.000651"

(c.) True length of the measured line AB due to the combined effects of tension, sag and temperature. 

L= 50+0.0000116(20-18)(50)+"\\frac{(8-5.5)(50)}{0.04(2. 1 x 10^6)}"

L= 50.00116+0.00119

L= 50.00235m