We know the mass of water m and the temperature change AT. The specific heat of water is C- 4 186 J/kg - °C. For the energy input by heat, we have Q = mcAT Iw ko) (4 186 J/kg · °C) ( 20 116 Your response is within 10% of the correct value. This may be due to roundoff error, or you could have a mist 2.039 Your response differs from the correct answer by more than 10%. Double check your calculations. x 10? J. SubmitSkip (you cannot come back)
We know the mass of water m and the temperature change AT. The specific heat of water is C- 4 186 J/kg - °C. For the energy input by heat, we have Q = mcAT Iw ko) (4 186 J/kg · °C) ( 20 116 Your response is within 10% of the correct value. This may be due to roundoff error, or you could have a mist 2.039 Your response differs from the correct answer by more than 10%. Double check your calculations. x 10? J. SubmitSkip (you cannot come back)
College Physics
1st Edition
ISBN:9781938168000
Author:Paul Peter Urone, Roger Hinrichs
Publisher:Paul Peter Urone, Roger Hinrichs
Chapter20: Electric Current, Resistance, And Ohm's Law
Section: Chapter Questions
Problem 7PE: (a) A defibrillator sends a 6.00-A current through the chest of a patient by applying a 10,000-V...
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![Tutorial Exercise
A well-insulated electric water heater warms 116 kg of water from 20.0° C to 42.0° C in 24.0 min. Find the
resistance of its heating element, which is connected across a 240-V potential difference.
Part 1 of 5 - Conceptualize
We expect the water heater to be high-powered compared to other household appliances. For the power to be
on the order of kilowatts, the current would be several amperes and the resistance only a few ohms.
Part 2 of 5 - Categorize
We will find the energy required to heat the water. Then we will find the power of the heating element and
calculate its resistance from the power and the potential difference.
Part 3 of 5 - Analyze
We know the mass of water m and the temperature change AT. The specific heat of water is
C = 4 186 J/kg • °C. For the energy input by heat, we have
Q = mcAT
116
kg) (4 186 J/kg · °C)
20
°C)
Your response is within 10% of the correct value. This may be due to roundoff error, or you could have a mistake in your calculation. Carry out all intermediate results to at least four-digit accuracy to minimize roundoff error.
2.039
Your response differs from the correct answer by more than 10%. Double check your calculations. x 10' J.
Submit Skip (you cannot come back)](/v2/_next/image?url=https%3A%2F%2Fcontent.bartleby.com%2Fqna-images%2Fquestion%2F4b3e014c-59a4-4bb0-b114-31f5ea482dfe%2F90cd235f-2828-4de8-8e36-a91df01f1339%2Ftfvul3s_processed.png&w=3840&q=75)
Transcribed Image Text:Tutorial Exercise
A well-insulated electric water heater warms 116 kg of water from 20.0° C to 42.0° C in 24.0 min. Find the
resistance of its heating element, which is connected across a 240-V potential difference.
Part 1 of 5 - Conceptualize
We expect the water heater to be high-powered compared to other household appliances. For the power to be
on the order of kilowatts, the current would be several amperes and the resistance only a few ohms.
Part 2 of 5 - Categorize
We will find the energy required to heat the water. Then we will find the power of the heating element and
calculate its resistance from the power and the potential difference.
Part 3 of 5 - Analyze
We know the mass of water m and the temperature change AT. The specific heat of water is
C = 4 186 J/kg • °C. For the energy input by heat, we have
Q = mcAT
116
kg) (4 186 J/kg · °C)
20
°C)
Your response is within 10% of the correct value. This may be due to roundoff error, or you could have a mistake in your calculation. Carry out all intermediate results to at least four-digit accuracy to minimize roundoff error.
2.039
Your response differs from the correct answer by more than 10%. Double check your calculations. x 10' J.
Submit Skip (you cannot come back)
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