The Earth has a radius of $6400 \ km$. The inner core of $1000 \ km$ radius is solid. Outside it,there is a region from $1000 \ km$ to a radius of $3500 \ km$ which is in a molten state. Then again from $3500 \ km$ to $6400 \ km$,the Earth is solid. Only longitudinal $(P)$ waves can travel inside a liquid. Assume that the $P$ wave has a speed of $8 \ kms^{-1}$ in solid parts and of $5 \ kms^{-1}$ in liquid parts of the Earth. An earthquake occurs at some place close to the surface of the Earth. Calculate the time after which it will be recorded in a seismometer at a diametrically opposite point on the Earth if the wave travels along the diameter.

Vedclass pdf generator app on play store
Vedclass iOS app on app store
(N/A) The total time taken $t$ is the sum of the time taken to travel through each distinct layer along the diameter.
The diameter consists of three regions: the inner solid core,the molten middle region,and the outer solid crust.
The total distance for each region along the diameter is twice its radial thickness.
$1$. Inner solid core ($0$ to $1000 \ km$): Distance $d_1 = 2 \times 1000 \ km = 2000 \ km$,Speed $v_1 = 8 \ kms^{-1}$.
Time $t_1 = \frac{d_1}{v_1} = \frac{2000}{8} = 250 \ s$.
$2$. Molten region ($1000 \ km$ to $3500 \ km$): Distance $d_2 = 2 \times (3500 - 1000) \ km = 5000 \ km$,Speed $v_2 = 5 \ kms^{-1}$.
Time $t_2 = \frac{d_2}{v_2} = \frac{5000}{5} = 1000 \ s$.
$3$. Outer solid crust ($3500 \ km$ to $6400 \ km$): Distance $d_3 = 2 \times (6400 - 3500) \ km = 5800 \ km$,Speed $v_3 = 8 \ kms^{-1}$.
Time $t_3 = \frac{d_3}{v_3} = \frac{5800}{8} = 725 \ s$.
Total time $t = t_1 + t_2 + t_3 = 250 + 1000 + 725 = 1975 \ s$.

Explore More

Similar Questions

The speed of sound in oxygen $(O_2)$ at a certain temperature is $460 \, m/s$. The speed of sound in helium $(He)$ at the same temperature will be ............. $m/s$ (assume both gases to be ideal).

Difficult
View Solution

Two monoatomic ideal gases '$1$' and '$2$' of molecular masses $m_1$ and $m_2$ respectively are enclosed in separate containers kept at the same temperature. The ratio of the speed of sound in gas '$1$' to that in gas '$2$' is

$A$ plane wave of sound traveling in air is incident upon a plane surface of a liquid. The angle of incidence is $60^{\circ}.$ The speed of sound in air is $300 \, m/s$ and in the liquid it is $600 \, m/s.$ Assume Snell's law to be valid for sound waves.

The ratio of the speed of sound in hydrogen gas to the speed of sound in oxygen gas at the same temperature is

An earthquake generates both transverse $S$ and longitudinal $P$ waves in the earth with speeds $4.5 \,km/s$ and $8.0 \,km/s$, respectively. $A$ seismograph records that the first $P$-wave arrives $3.5 \,min$ earlier than the first $S$-wave. From the seismograph, the epicentre of the earthquake is located at a distance of: (in $\,km$)

Vedclass Products

For Students

Vedclass Test Series

Mock tests in real JEE/NEET style with performance analysis. 5-day free trial.

Start Free Trial
For Teachers

Exam Paper Generator

Generate Set A/B/C/D exam papers from 7.5L+ questions in 2 minutes. 3 chapters free.

Try Free
For Institutes

Online Exam Module

Live online exams with unlimited students, 360° analytics & white-label branding.

See Demo