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A refrigerator using 1005 W runs one-third of the time. How much does the electricity cost to run the refrigerator each month (30 days) at 19¢ per kWh?answer in:____$

User StefMa
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1 Answer

14 votes
14 votes

We are asked to calculate the cost to run a 1005 W refrigerator over one-third of 30 days.

To do that we will first convert the 1005W into kW using the following conversion factor:


1kW=1000W

Multiplying by the conversion factor we get:


1005W*(1kW)/(1000W)=1.005kW

Now, we multiply the kW by the number of hours. Since the refrigerator operates one-third of the time during a 30 days period, this means that the time of operation is 10 days. We convert days into hours using the following conversion factor:


24h=1day

Multiplying by the conversion factor we get:


10days*(24h)/(1day)=240h

Multiplying by the power we get:


E=(1.005kW)(240h)=241.2kWh

Now, to determine the cost we multiply by the cost per kWh:


C=(241.2kWh)(0.19(dollars)/(kWh))=45.83

Therefore, the cost is $45.83

User Marco Cutecchia
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