In triangle \( PQR \), the lengths of \( PT \) and \( TR \) are in the ratio \( 3:2 \). ST is parallel to QR. Two semicircles are drawn with \( PS \) and \( PQ \) as diameters, as shown in the figure. Which one of the following statements is true about the shaded area \( PQS \)? (Note: The figure shown is representative.)

Given \( PT : TR = 3 : 2 \), the total length \( PR = PT + TR = 3x + 2x = 5x \).
Since ST is parallel to QR, the triangle \( PST \sim PQR \) (by AA similarity). So the side ratios are the same: \[ \frac{PS}{PQ} = \frac{PT}{PR} = \frac{3}{5} \Rightarrow \frac{PQ}{PS} = \frac{5}{3} \] Let the diameter of the semicircle on \( PS \) be \( d \), so its area is: \[ A_{PS} = \frac{1}{2} \pi \left( \frac{d}{2} \right)^2 = \frac{\pi d^2}{8} \] Then, \( PQ = \frac{5}{3}d \), so the area of the semicircle with diameter \( PQ \) is: \[ A_{PQ} = \frac{1}{2} \pi \left( \frac{5d}{6} \right)^2 = \frac{25 \pi d^2}{72} \] Shaded area = \( A_{PQ} - A_{PS} \): \[ = \frac{25\pi d^2}{72} - \frac{\pi d^2}{8} = \pi d^2 \left( \frac{25}{72} - \frac{1}{8} \right) = \pi d^2 \left( \frac{25 - 9}{72} \right) = \frac{16\pi d^2}{72} = \frac{2\pi d^2}{9} \] Compare this to \( A_{PS} = \frac{\pi d^2}{8} \): \[ \frac{{Shaded area}}{A_{PS}} = \frac{2\pi d^2}{9} \cdot \frac{8}{\pi d^2} = \frac{16}{9} \]

A continuous time periodic signal \( x(t) \) is given by: \[ x(t) = 1 + 2\cos(2\pi t) + 2\cos(4\pi t) + 2\cos(6\pi t) \] If \( T \) is the period of \( x(t) \), then evaluate: \[ \frac{1}{T} \int_0^T |x(t)|^2 \, dt \quad {(round off to the nearest integer).} \]
The maximum percentage error in the equivalent resistance of two parallel connected resistors of 100 \( \Omega \) and 900 \( \Omega \), with each having a maximum 5% error, is: \[ {(round off to nearest integer value).} \]
Consider a distribution feeder, with \( R/X \) ratio of 5. At the receiving end, a 350 kVA load is connected. The maximum voltage drop will occur from the sending end to the receiving end, when the power factor of the load is: \[ {(round off to three decimal places).} \]
In the circuit with ideal devices, the power MOSFET is operated with a duty cycle of 0.4 in a switching cycle with \( I = 10 \, {A} \) and \( V = 15 \, {V} \). The power delivered by the current source, in W, is: \[ {(round off to the nearest integer).} \] 
The induced emf in a 3.3 kV, 4-pole, 3-phase star-connected synchronous motor is considered to be equal and in phase with the terminal voltage under no-load condition. On application of a mechanical load, the induced emf phasor is deflected by an angle of \( 2^\circ \) mechanical with respect to the terminal voltage phasor. If the synchronous reactance is \( 2 \, \Omega \), and stator resistance is negligible, then the motor armature current magnitude, in amperes, during loaded condition is closest to: \[ {(round off to two decimal places).} \]