calculate the maximum possible error y=4 mgL/πd^2L
Answers
Answer:
Y=
Y= πD
Y= πD 2
Y= πD 2 l
Y= πD 2 l 4MgL
Y= πD 2 l 4MgL
Y= πD 2 l 4MgL
Y= πD 2 l 4MgL
Y= πD 2 l 4MgL Y
Y= πD 2 l 4MgL Y ΔY
Y= πD 2 l 4MgL Y ΔY
Y= πD 2 l 4MgL Y ΔY =
Y= πD 2 l 4MgL Y ΔY = L
Y= πD 2 l 4MgL Y ΔY = L ΔL
Y= πD 2 l 4MgL Y ΔY = L ΔL
Y= πD 2 l 4MgL Y ΔY = L ΔL +
Y= πD 2 l 4MgL Y ΔY = L ΔL + D
Y= πD 2 l 4MgL Y ΔY = L ΔL + D 2D
Y= πD 2 l 4MgL Y ΔY = L ΔL + D 2D
Y= πD 2 l 4MgL Y ΔY = L ΔL + D 2D +
Y= πD 2 l 4MgL Y ΔY = L ΔL + D 2D + l
Y= πD 2 l 4MgL Y ΔY = L ΔL + D 2D + l Δl
Y= πD 2 l 4MgL Y ΔY = L ΔL + D 2D + l Δl
Y= πD 2 l 4MgL Y ΔY = L ΔL + D 2D + l Δl
Y= πD 2 l 4MgL Y ΔY = L ΔL + D 2D + l Δl
Y= πD 2 l 4MgL Y ΔY = L ΔL + D 2D + l Δl 200
Y= πD 2 l 4MgL Y ΔY = L ΔL + D 2D + l Δl 200 0.1
Y= πD 2 l 4MgL Y ΔY = L ΔL + D 2D + l Δl 200 0.1
Y= πD 2 l 4MgL Y ΔY = L ΔL + D 2D + l Δl 200 0.1 +2×
Y= πD 2 l 4MgL Y ΔY = L ΔL + D 2D + l Δl 200 0.1 +2× 0.075
Y= πD 2 l 4MgL Y ΔY = L ΔL + D 2D + l Δl 200 0.1 +2× 0.075 0.001
Y= πD 2 l 4MgL Y ΔY = L ΔL + D 2D + l Δl 200 0.1 +2× 0.075 0.001
Y= πD 2 l 4MgL Y ΔY = L ΔL + D 2D + l Δl 200 0.1 +2× 0.075 0.001 +
Y= πD 2 l 4MgL Y ΔY = L ΔL + D 2D + l Δl 200 0.1 +2× 0.075 0.001 + .325
Y= πD 2 l 4MgL Y ΔY = L ΔL + D 2D + l Δl 200 0.1 +2× 0.075 0.001 + .325 0.001
Y= πD 2 l 4MgL Y ΔY = L ΔL + D 2D + l Δl 200 0.1 +2× 0.075 0.001 + .325 0.001
Y= πD 2 l 4MgL Y ΔY = L ΔL + D 2D + l Δl 200 0.1 +2× 0.075 0.001 + .325 0.001
Y= πD 2 l 4MgL Y ΔY = L ΔL + D 2D + l Δl 200 0.1 +2× 0.075 0.001 + .325 0.001
Y= πD 2 l 4MgL Y ΔY = L ΔL + D 2D + l Δl 200 0.1 +2× 0.075 0.001 + .325 0.001 Y
Y= πD 2 l 4MgL Y ΔY = L ΔL + D 2D + l Δl 200 0.1 +2× 0.075 0.001 + .325 0.001 Y ΔY
Y= πD 2 l 4MgL Y ΔY = L ΔL + D 2D + l Δl 200 0.1 +2× 0.075 0.001 + .325 0.001 Y ΔY
Y= πD 2 l 4MgL Y ΔY = L ΔL + D 2D + l Δl 200 0.1 +2× 0.075 0.001 + .325 0.001 Y ΔY =0.03024
Y= πD 2 l 4MgL Y ΔY = L ΔL + D 2D + l Δl 200 0.1 +2× 0.075 0.001 + .325 0.001 Y ΔY =0.03024
Y= πD 2 l 4MgL Y ΔY = L ΔL + D 2D + l Δl 200 0.1 +2× 0.075 0.001 + .325 0.001 Y ΔY =0.03024 Y
Y= πD 2 l 4MgL Y ΔY = L ΔL + D 2D + l Δl 200 0.1 +2× 0.075 0.001 + .325 0.001 Y ΔY =0.03024 Y ΔY
Y= πD 2 l 4MgL Y ΔY = L ΔL + D 2D + l Δl 200 0.1 +2× 0.075 0.001 + .325 0.001 Y ΔY =0.03024 Y ΔY
Y= πD 2 l 4MgL Y ΔY = L ΔL + D 2D + l Δl 200 0.1 +2× 0.075 0.001 + .325 0.001 Y ΔY =0.03024 Y ΔY %=0.03024×100
Y= πD 2 l 4MgL Y ΔY = L ΔL + D 2D + l Δl 200 0.1 +2× 0.075 0.001 + .325 0.001 Y ΔY =0.03024 Y ΔY %=0.03024×100 =3.024%
Explanation: