A : Bulls not selected for breeding are castrated when young and converted to bullocks
R : They are the main source of animal drought power in India

Study the given life cycle of cellular slime moulds and select the incorrect option. P. Structure (i) is formed in response to drought conditions and exhaution of food supply. Q. Structure (ii) represents myxamoeba, which rounds off and is converted to a spore. R. (iii) are uninucleate, haploid sturctures without any cell wall. S. (iv) are uninucleate, haploid structures possessing a conspicuous xwll qLL.

A : In Young.s interference experiment the incident light used is white. When one slit is convered with red filter and the other with blue filter, the phase difference at any point on the screen will continuously change and producing uniform illumination. R : Two independent sources of light would no longer act as coherent sources.

The colour of high yielding Mexican wheats were not liked by the indians. It was originally red grained. Their cultivation was adopted in India on large scale only when exposure to gamma radiations converted them to amber grained. Which of following methods of plant-breeding has been put into practice in the given case ?

In a series RLC AC circult, the frequency of source can be varied. When frequency is varied gradually in one direction from f_1 to f_2 , the power is found to be maximum at f_1 . When frequency is varied gradually at the other direction from f_1 to f_3 , the power is found to be same at f_1 and f_3 . Match the proper entries from column-2 to column-1 using the codes given below the columns, (consider f_1 gt f_2 ) {:("Column-I",,"Column-II"),("when the frequency is equal to",,"The circuit is or can be"),("AM: arithmatic mean GM:geometic mean",,),("(P) AM of "f_(1) and "f"_(2),,"(1) capacitance"),((Q) "GM of "f_(1) and "f"_(2),,"(2) inductive"),("(R) AM of " f_(1) and "f"_(3),,"(3) resistive"),("(S) GM of " f_(1) and "f"_(3),,"(4) at resonance"):}

Select incorrect pair w. r. t. animals and methods of breeding by which they were developed.

A : In Young.s double slit experiment, we observe an interference pattern on the screen if both the slits are illuminated by two bulbs of same power. R : The interference pattern is obserbed only when source are monochromatic.

An L-C-R series circuit with L = 0.120 H, R = 240 a , and C = 7.30muF carries an rms current of 0.450 A with a frequency of 400 Hz . (a) What are the phase angle and power factor for this circuit? (b) What is the impedance of the circuit? (c) What is the rms voltage of the source? (d) What average power is delivered by the source? (e) What is the average rate at which electrical energy is converted to thermal energy in the resistor? (f) What is the average rate at which electrical energy is dissipated ( converted to other forms) in the capacitor? (g) In the inductor ?

Electric fuse is a protective device used in series with an electric circuit or an electric appliance to save it from damage due to overheating porduced by strong current in the circuit or application. Fuse wire is generally made from an alloy of lead and tin, which has hifh resistance and low melting point. It is connected in series in an electric installation. If a circuit gets accidentally short-circuited, a large current flows, then fuse wire melts away, which causes a break in the circuit. The power through fuse (F') is equal to heat energy lost per unit area per unit time (h) (neglecting heat loses from ends of the wire). P = I^2R = h xx 2pirl [R = (rhol)/(pir^2)] where r and l are the length and radius of fuse wire, respectively. A Battery is described by its emf (E) and internal resistance (r). Efficiency of battery (eta) is defined as the ratio of the output to the input power. eta = (Output power)/(Input power) xx 100% But I= E//(R+r), input power = EI. Output power = EI - I^2r , then. eta = ((EI - I^2r)/(EI)) xx 100 = (1-(Ir)/E) xx 100 =[1 - (E/(R+r)) (r/E)] xx 100 = (R/(R+r)) xx 100 We know that output power of a source is maximum when the external resistance is equal to internal resistance, i.e., R = r . Two fuse wires of same potential , material have length ratio 1:2 and ratio of radius 4:1 . Then respective ratio of their current rating will be