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mihalych1998 [28]
4 years ago
11

The first law of thermodynamics describes how the heat added to a system is conserved. Heat the internal energy of the system or

is transformed into , or both. Heat is just transformed, not created or destroyed.
Physics
1 answer:
worty [1.4K]4 years ago
6 0

Answer: The first law of thermodynamics describes how the heat added to a system is conserved.

Explanation:

According to the first law of thermodynamics:  

<em />

<em>"Energy is not created, nor destroyed, but it is conserved."  </em>

Therefore, this law relates the work and the transferred heat exchanged in a system through the internal energy, which is neither created nor destroyed, <u>it is only transformed.  </u>

In other words: The change in the internal energy of a system is equal to the net heat that is transferred to it plus the net work done on it.

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carbon dioxide

is the answer

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3 years ago
Read 2 more answers
if 500 watts hit the surface of a solar panel every second and it generates 150 watts every second, how efficient is it?
alukav5142 [94]
The electrical efficiency is defined as the ratio between the useful power output and the total power input:
\epsilon =  \frac{P_{out}}{P_{in}}

In our problem, P_{out} = 150 W (power generated by the solar panel) and P_{in} = 500 W (power hitting the surface of the solar panel), therefore the efficiency of the panel is
\epsilon =  \frac{150 W}{500 W}=0.3
which corresponds to 30%.
4 0
3 years ago
The weight of a box having of 100 kg is __n
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Answer:

mom                                                                                                

Explanation:

8 0
3 years ago
PLEASE HELP ME WITH THE WORKSHEET ONLY THE PART ABOUT MECHANICAL ADVANTAGE NOT SPEED RATIO
fenix001 [56]
Here's the formula for mechanical advantage.
It's very important, and you should memorize it:

      Mechanical Advantage  =  (output force) divided by (input force) .

#1).  Force that moves the object = output force = 550N
        Force that it takes  =  input force  =  200N
       
       Use the formula:

       (output force) divided by (input force) = 550N/200N =  2.75  . 

#2).
#3).
#4).
#5).
#6).
#7).
#8).
#9).
#10).

All of the rest of the problems on the page tell you the input force
and the output force.  They can be solved by using the same formula
to calculate the mechanical advantage, just like I did in #1).

I disagree with the first sentence of #11.  But by the time you get there,
you'll be an expert in mechanical advantage, so you can investigate and
decide who's correct ... the sheet or me.
7 0
3 years ago
A string with a mass density of 3 * 10^-3 kg/m is under a tension of 380 N and is fixed at both ends. One of its resonance frequ
Delvig [45]

Answer:

(a) the fundamental frequency of this string is 65 Hz

(b) the harmonics of the given frequencies are third and fourth respectively.

(c) the length of the string is 2.74 m

Explanation:

Given;

mass density of the string, μ = 3 x 10⁻³ kg/m

tension of the string, T = 380 N

resonating frequencies, 195 Hz and 260 N

For the given resonant frequencies;

195 = \frac{n}{2l} \sqrt{\frac{T}{\mu} } ---(1)\\\\260 = \frac{n+1}{2l} \sqrt{\frac{T}{\mu} } ---(2)\\\\divide \ (2) \ by (1)\\\\\frac{260}{195} = \frac{n+1 }{n} \\\\260n = 195(n+1)\\\\260 n = 195 n + 195\\\\260n - 195n = 195\\\\65n = 195\\\\n = \frac{195}{65} \\\\n = 3

(c) From any of the equations, solve for Length of the string (L);

195 = \frac{n}{2l} \sqrt{\frac{T}{\mu} } \\\\195 = \frac{3}{2l}\sqrt{\frac{380}{3\times 10^{-3}} } \\\\l = \frac{3}{2\times 195}\sqrt{\frac{380}{3\times 10^{-3}} }\\\\l = 2.74 \ m

(a) the fundamental frequency is calculated as;

f_o = \frac{1}{2l} \sqrt{\frac{T}{\mu} } \\\\f_o = \frac{1}{2\times 2.74} \sqrt{\frac{380}{3\times 10^{-3} } }\\\\f_o =  65 \ Hz

(b) harmonics of the given frequencies;

the first harmonic (n = 1) = f₀ = 65 Hz

the second harmonic (n = 2) = 2f₀ = 130 Hz

the third harmonic (n = 3) = 3f₀ = 195 Hz

the fourth harmonic (n = 4) = 4f₀ = 260 Hz

Thus, the harmonics of the given frequencies are third and fourth respectively.

7 0
3 years ago
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