Answer: The energy of the wave increases by a factor of 9
Explanation:
3 x 3 = 9
Hey there!:
E = energy gained (input) - energy lost (output)
∆E = 150J - 115 J
∆E = 35 J
Hope that helps!
The change in internal energy (?E) of the system is 35 J based on the first law of thermodynamics.
This problem can be solved using the first law of thermodynamics, which states that the change in internal energy (?E) of a system is equal to the heat added to it (Q) minus the work done by it (W) - this is expressed as ?E = Q - W.
In this particular case, the system loses 115 J of heat, so Q equals -115 J (as it's lost, it's negative), and 150J work is performed on the system which equals +150 J (as work is done on it, it is positive). Therefore, substituting these values into the formula, we get: ?E = -115 J - (-150 J) = 35 J:
So, the change in internal energy of the system is 35 J.
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The decomposition of Nickel(II) hydroxide produces Nickel(II) oxide and water. The chemical equation is: Ni(OH)2 (s) → NiO (s) + H2O (l).
The decomposition reaction of Nickel(II) hydroxide into Nickel(II) oxide and water can be written as follows: Ni(OH)2 (s) → NiO (s) + H2O (l) . In this reaction, solid Nickel(II) hydroxide decomposes into solid Nickel(II) oxide and liquid water. It’s important to remember that in these reactions, a single, complex reactant breaks down into multiple, simpler products.
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Explanation:
1mm = 10^-3 micrometre
8.5 x 10^-3 mm = 8.5 x 10^-6 micrometre
(2) an indicator (4) thermal energy
Answer : The amount of mass in kilograms lost would be,
Solution : Given,
Energy of released in the reaction =
Speed of light = c =
Formula used :
where,
E = energy released
m = mass
c = speed of light
Now put all the given values in the above formula, we get the amount of mass would have been lost.
conversion :
Therefore, the amount of mass in kilograms lost would be,