Errors in Measurement | Physics MCQ

option b

Density=\frac{Mass}{Volume}
D=\frac{m}{V}
Taking logarithm in both sides
ln(D) = ln (m) – ln(V)
Differentiating the above equation
\frac{dD}{D}=\frac{dm}{m}-\frac{dV}{V}
So, the maximum error is (neglect negative sign to calculate the maximum error)
\frac{\Delta D}{D} \times 100\%=\frac{\Delta m}{m}\times 100\%+\frac{\Delta V}{V} \times 100\%
Here, \Delta m = 0.01 gm, m = 22.42 gm, \Delta V = 0.1cc, V= 4.7cc
\frac{\Delta D}{D} \times 100 \%=\frac{0.01}{22.42}\times 100\%+\frac{0.1}{4.7} \times 100\%
\frac{\Delta D}{D} \times 100\%= 2\%

option b

Volume of a sphere of radius r is
V=\frac{4}{3} \pi r^{3}
Taking logarithm
ln (V) = ln ( \frac{4}{3} \pi) +3ln (r)
By differentiating this equation
\frac{dV}{V}=3\frac{dr}{r}
So, the error in measurement is
\frac{\Delta V}{V} \times 100\%=3\frac{\Delta r}{r} \times 100\%
The error in radius measurement is
\frac{\Delta r}{r} \times 100\%=2\%
Therefore,
\frac{\Delta V}{V}\times 100\%=3\times 2\%
\frac{\Delta V}{V}\times 100\%=6\%

option d

P=\frac{a^{3}b^{2}}{cd}
Taking logarithm
ln (P) = 3ln (a)+2ln(b)-lnc-lnd
Differentiating
\frac{dP}{P} = 3\frac{da}{a}+2\frac{db}{b}-\frac{dc}{c}-\frac{dd}{d}
The percentage error in P is (neglect negative sign to calculate the maximum error)
\frac{\Delta P}{P} \times 100\% = 3\frac{\Delta a}{a} \times 100\%+2\frac{\Delta b}{b} \times 100\%+\frac{\Delta c}{c} \times 100\%+\frac{\Delta d}{d} \times 100\%
Here, the given values are
\frac {\Delta a}{a} \times 100\% = 1\%, \frac{\Delta b}{b} \times 100\% = 2\%, \frac{\Delta c}{c} \times 100\%=3\%, \frac{\Delta d}{d} \times 100\% = 4\%
so,
\frac{\Delta P}{P} = (3\times 1\%)+(2\times 2\%)+(3\%)+(4\%) = 14\%

option c

Kinetic energy of mass m and speed v is given by
K=\frac{1}{2}mv^{2}
Taking logarithm
ln(K)=ln(\frac{1}{2})+ln(m)+2ln(v)
Differentiating this
\frac{dK}{K}=\frac{dm}{m}+2\frac{dv}{v}
The percentage error of kinetic energy is
\frac{\Delta K}{K}\times 100\%=\frac{\Delta m}{m}\times 100\%+2\frac{\Delta v}{v}\times 100\%
The given values are
\frac{\Delta m}{m}\times 100\%=2\% and \frac{\Delta v}{v}\times 100\% = 3\%
By putting these values, we can write
\frac{\Delta K}{K}\times 100\%=2\%+(2\times 3\%) =8\%

option c

The given relation is
A=\frac{\sqrt{pq}}{r^{2}s^{3}}
Taking log in both sides
ln(A) = \frac{1}{2}ln(p)+\frac{1}{2}ln(q)-2ln(r)-3ln(s)
Differentiation of the above equation gives
\frac{dA}{A}=\frac{1}{2}\frac{dp}{p}+\frac{1}{2}\frac{dq}{q}-2\frac{dr}{r}-3\frac{ds}{s}
So, the maximum percentage error (taking only positive values)
\frac{\Delta A}{A}\times 100\%=\frac{1}{2}\frac{\Delta p}{p}\times 100\%+\frac{1}{2}\frac{\Delta q}{q}\times 100\%+2\frac{\Delta r}{r}\times 100\%+3\frac{\Delta s}{s}\times 100\%
Putting all the values in the above equation
\frac{\Delta A}{A}\times 100\%=\frac{1}{2}(1\%)+\frac{1}{2}(3\%)+2(0.5\%)+3(0.33)\%
\frac{\Delta A}{A}\times 100\%=4\%

option d

The given relation is
\rho =\frac{\alpha ^{3}\beta ^{2}}{\eta \sqrt{\gamma }}
Taking logarithm
ln(\rho ) =3 ln(\alpha )+2ln(\beta )-ln(\eta)-\frac{1}{2}ln(\gamma)
Differentiating above equation
\frac{d\rho }{\rho } == 3\frac{d\alpha }{\alpha }+2\frac{d\beta }{\beta }-\frac{d\eta }{\eta }-\frac{1}{2}\frac{d\gamma }{\gamma }
The percentage error in \rho is
\frac{\Delta \rho }{\rho }\times 100\% = (3\frac{\Delta \alpha }{\alpha }\times 100\%)+(2\frac{\Delta \beta }{\beta }\times 100\%)+(\frac{\Delta \eta }{\eta }\times 100\%)+(\frac{1}{2}\frac{\Delta \gamma }{\gamma })\times 100\%)
The percentage errors of measurements in α, β, γ and η are 1%, 3%, 4% and 2% respectively. So,
\frac{\Delta \rho }{\rho }\times 100\% = (3\times 1\%)+(2\times 3\%)+(2\%)+(\frac{1}{2}\times 4\%)=13 \%

option b

Time of 20 oscillation (n) is 25 s (t) and least count is 0.2s (\Delta t) .
T=\frac{t}{n}
Where T = time period
The percentage error in time period (T) will be
\frac{\Delta T}{T}\times 100\% = \frac{\Delta t}{t}\times 100\%

\frac{\Delta T}{T}\times 100\% = \frac{0.2 s}{25 s}\times 100\% = 0.8\%

option a

Time period, T
T=2\pi \sqrt{\frac{l}{g}}
g=\frac{4\pi^{2}l}{T^{2}}
ln (g) = ln ( 4\pi^{2} )+ln(l)-2ln(T)
differentiating this
\frac{dg}{g}=\frac{dl}{l}-2\frac{dT}{T}
The maximum percentage error in g (acceleration due to gravity) is
\frac{\Delta g}{g}\times 100\%=\frac{\Delta l}{l}\times 100\%+2\frac{\Delta T}{T}\times 100\% ———————– (1)

The value of \frac{\Delta l}{l}\times 100\% = \frac{1mm}{100cm}\times 100\% = \frac{0.1cm}{100cm}\times 100\% =0.1\%
Time to complete 100 oscillation (n) is 2 s (t) and error is 0.1s (\Delta t) .
T=\frac{t}{n}
The percentage error in T will be
\frac{\Delta T}{T}\times 100\% = \frac{\Delta t}{n}\frac{1}{T}\times 100\%

\frac{\Delta T}{T}\times 100\% = \frac{1}{100}\frac{0.1 s}{2s}\times 100\% = 0.05\%
So, by putting all values in equation (1)
\frac{\Delta g}{g}\times 100\%=0.1\%+(2\times 0.05\%) = 0.2 \%

option c

Sum of all observations = 90+91+95+92 = 368 s
Mean value = 368/4 = 92 s
The errors in each measurement are (92-90 = 2s), (92-91=1s), (92-92=0s) and (95-92=3s).
Sum of all errors = 2+1+0+3 = 6s
Average error = 6/4 = 1.5 s
The minimum division in the clock is 1s, so the average error in measurement should be rounded of to 2s.
The mean time is 92±2 s