The Fourier series expansion of \( f(x) = \sin^2 x \) in the interval \((- \pi, \pi)\) is derived as follows:
Step 1: Simplify the function using a known trigonometric identity.
We use the identity: \[ \sin^2 x = \frac{1}{2} - \frac{1}{2} \cos 2x \] This simplifies the given function to a form that is already in terms of Fourier series.
Step 2: Compare with the options.
(A) Correct. This matches the simplified form of the Fourier expansion.
(B) Incorrect. This form does not represent the correct Fourier series for \( \sin^2 x \).
(C) Incorrect. This option represents a sum of sines, whereas the Fourier series of \( \sin^2 x \) has only cosines.
(D) Incorrect. This expression is more complex and does not match the correct form of the Fourier series for \( \sin^2 x \).
Consider a system represented by the block diagram shown below. Which of the following signal flow graphs represent(s) this system? Choose the correct option(s).
A closed system is undergoing a reversible process 1–P–2 from state 1 to 2, as shown in the figure, where X and Y are thermodynamic properties. An irreversible process 2–Q–1 brings the system back from 2 to 1. The net change in entropy of the system and surroundings during the above-mentioned cycle are _______ respectively.
A ship of 3300 tonne displacement is undergoing an inclining experiment in seawater of density 1025 kg/m\(^3\). A mass of 6 tonne is displaced transversely by 12 m as shown in the figure. This results in a 0.12 m deflection of a 11 m long pendulum suspended from the centerline. The transverse metacenter of the ship is located at 7.25 m above the keel.
The distance of the center of gravity from the keel is ________ m (rounded off to two decimal places).
A multi-cell midship section of a ship with \( B = 40 \, {m} \) and \( D = 20 \, {m} \) is shown in the figure. The shear-flows are given as \( q_1 = q_2 = q_3 = 0.9376 \, {MN/m} \). The applied twisting moment on the midship section is ___________ MN·m (rounded off to two decimal places).
Consider a weightless, frictionless piston with a 2 kg mass placed on it as shown in the figure. At equilibrium in position 1, the cylinder contains 0.1 kg of air. The piston cross-sectional area is 0.01 m2. The ambient pressure in the surroundings outside the piston-cylinder arrangement is 0 bar (absolute). When the mass above the piston is removed instantaneously, it moves up and hits the stop at position 2, which is 0.1 m above the initial position.
Assuming \( g = 9.81 \, {m/s}^2 \), the thermodynamic work done by the system during this process is ________ J (answer in integer).