A house is fitted with `20` length of `60` watt each `10` fans consuming `0.5` ampere each an electric kettle of resistance `110 Omega`. If the energy is supplied at `120 V` and costs `150` paise `kWh`, calculate monthly bill for running these appliances for 6 hours a day (1 length = 30 days).

A house is fitted with `20` length of `60` watt each `10` fans consumi

1.	A house is fitted with `20` length of `60` watt each `10` fans consuming `0.5` ampere each an electric kettle of resistance `110 Omega`. If the energy is supplied at `120 V` and costs `150` paise `kWh`, calculate monthly bill for running these appliances for 6 hours a day (1 length = 30 days).
Answer» Correct Answer - `739.80 Rs` Total energy connected in a all appliance ltnrgt `= (n_(1)P_(1) + n_(2)//V = (V^(2))/(R )) t xx 30` `= ( 20 xx 600 + 10 xx 0.5 xx 220 + (220^(2))/(110)) xx 6 xx 30` `= (1200 + 1100 + 440 xx 6 xx 30 `watt hour `= (2740 xx 6 xx 30)/(1000) kWh` Cost of electricity consumption `= (1.50 xx 2740 xx 6 xx 30)/(1000) = 739.80 Rs`

Discussion

No Comment Found

Related InterviewSolutions

The effective between A&B in the given circuit isA. `7Omega`B. `2Omega`C. `6Omega`D. `5Omega`
A source of e.m.f. `E = 15V` and having negligible internal resistance is connected to a variable resistance so that the current in the circuit increases with time as `i = 1.2 t +3` Then, the total charge that will flow in first five second will beA. `10C`B. `20C`C. `30C`D. `40C`
Two cells of emfs approximately 5V and 10V are to be accurately compared using a poteniometer of length 400 cm.A. The battery that runs the potentiometer should have voltage of 8 VB. The battery of potentiometer can have a voltage of 15 V and R adjusted so that the potential drop across the wire slightly exceeds 10 VC. The first portion of 50 cm of wire itself should have a potential drop of 10 VD. Potentiometer is usually used for comparing resistance and not voltages
Two cells of emfs approximately 5V and 10V are to be accurately compared using a poteniometer of length 400 cm.A. The battery that runs the potentionmeter should have voltage of 8 VB. The battery of potentionmeter can have a voltage of 15V and R adjusted so that the potential drop across the wire slightly exceeds 10 VC. The first portion of 50cm of wire itself should have a potential drop of 10VD. Potentiometer is usually used for comparing resistances and not voltages
Two cells of e.m.f. 10V & 15V are connected in parallel to each other between points A&B. The cell of e.m.f. 10V is ideal but the cell of e.m.f. 15V has internal resistance `1Omega`. The equivalent e.m.f. between A and B is: A. `25/2V`B. not definedC. 15 VD. 10 V
Two cells of emfs approximately 5V and 10V are to be accurately compared using a poteniometer of length 400 cm.A. Toe battery that runs the potentiometer should have voltage of 8 V.B. Toe battery of potentiometer can have a voltage of 15 V and R adjusted so that the potential drop across the wire slightly exceeds 10 V.C. The first portion of 50 cm of wire itself should have a potential drop of 10 VD. Potentiometer is usually used for comparing resistances and not voltages.
In the `R_(1) = 10 Omega ,R_(2) = 20 Omega, R_(3) = 40 Omega R_(4) = 80 Omega` and `V_(A) = 5V,V_(B) = 10V,V_(c) = 20V,V_(D) = 15V` The current in the resistance `R_(1)` will be A. `0.4 A` toward OB. `0.4A` away from OC. `0.8A` toward OD. `0.8A` toward O
The amount of charge Q passed in time t through a cross-section of a wire is `Q=5t^(2)+3t+1`. The value of current at time t=5 s isA. 9AB. 49AC. 53AD. None of these
The charge flowing through a conductor varies with time as `q= 8 t - 3t^(2)+ 5t^(3)` Find (i) the initial current (ii) time after which the current reaches a maximum value of current
The current in a conductor varies with time `t` as `I=3t+4t^(2)` Where I in amp and t in sec. The electric charge flows through the section of the conductor between `t=1s` and `t=3s`A. `(100)/(3)C`B. `(127)/(4)C`C. `(140)/(3)C`D. `(150)/(3)C`

A house is fitted with `20` length of `60` watt each `10` fans consuming `0.5` ampere each an electric kettle of resistance `110 Omega`. If the energy is supplied at `120 V` and costs `150` paise `kWh`, calculate monthly bill for running these appliances for 6 hours a day (1 length = 30 days).

Discussion

No Comment Found

Related InterviewSolutions

Reply to Comment