Question #69805

1 Answer
Dwight
Oct 6, 2017

This heat effect would be seen by sing 2.98 g of Al.

Explanation:

This solution of this problem will require that you look up the specific heat, C, of aluminum, as it is required in the formula that relates the quantities of mass, temperature change and energy:

E=mxxCxxDeltat

where Deltat is the temperature change (in Kelvin or Celsius) and m is the mass of the sample.

To save you the trouble, the specific heat of Al is 0.900 J/g °C (meaning that it takes 0.900 J of energy to warm 1.0 g of Al by 1.0 °C)

Putting it all together:

150.0J=mxx0.900xx56°C

m=150.0/(0.900xx56) = 2.98 g

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