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KonstantinChe [14]
3 years ago
3

An oscillator with frequency f = 2.1×1012 Hz (about typical for a greenhouse gas molecule) is in equilibrium with a thermal rese

rvoir at temperature T. The spacing between the energy levels of the oscillator is given by ε = hf, where h = 6.626×10-34 J*sec. 1)For what temperature does P1/P0 = 1/2, where P1 is the probability that the oscillator has E = ε (the first excited state) and P0 is the probability that it has E = 0 (the lowest energy state)?
Physics
1 answer:
Viktor [21]3 years ago
4 0

Answer:

T = 55.39 K

Explanation:

Given data:

frequency F = 2.1\times 10^{12} Hz

Plank constant H = 6.626 ×10^{-34} J s

\frac{P_1}{P_o} = \frac{1}{2}

we know that expression for calculating temperature is given as

\frac{P_1}{P_o} = e^{\frac{h F}{k_b t}

here, P_1 probability that oscillator has E = \epsilon . P_o is probability  that has  E = 0 and Boltzman constant has a valuek_b = 1.3807\times 10^{-23} J/k

from above expression

ln\frac{1}{2} = \frac{6.626\times 10^{-34} \times 8\times 10^{11}}{1.3807\times 10^{-23} \times T}

SOLVING FOR T WE HAVET = \frac{5.3008\times 10^{-22}}{9.57\times 10^{-24}}

T = 55.39 K

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pashok25 [27]

\bf \underline{Given : }

  • Initial velocity,u = -2 m/s

  • Final velocity,v = -10 m/s

  • Time taken, t = 4 seconds

\bf \underline{To  \: find  \: out : }

Find the acceleration ( a ) .

\bf \underline{Solution : }

We know that,

\sf \: Acceleration =  \dfrac{v - u}{t}

Substituting the values in the above formula, we get

\implies \sf \: Acceleration =  \dfrac{ - 10 - ( - 2)}{4}

\implies\sf \: Acceleration =  \dfrac{ - 10 + 2}{4}

\implies \sf \: Acceleration = \cancel  \dfrac{ - 8}{4}

\implies\sf \: Acceleration =  - 2 \: ms {}^{ - 2}

Hence,the acceleration of a body is -2 m/s².

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4 years ago
What is angle of dip​
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8 0
3 years ago
A rock is thrown from a height of 2.0 m at a window that is located 9.0 m above the ground. The initial velocity of the rock is
ELEN [110]

Answer:

The value is  x = 11.81 \ m

Explanation:

From the question we are told that

   The height is h =  2.0 m

   The height of the window is d = 9.0 \ m

    The initial velocity of the rock is u =  20 \ m/s

    The angle at which it is thrown is \theta  =  40

Generally the  vertical component of the velocity of the stone is mathematically represented as

    v_y = 20 sin (40)

=>v_y = 12.86 \ m/s

Generally the height of the window from the ground is mathematically represented as using kinematic equation as

      d = h  +  v_yt + \frac{1}{2} gt^2

=>   9 = 2  +12.86 t + \frac{1}{2} * - 9.8 t^2

Here g is negative -9.8 m/s^2 because the direction of the stone is against gravity

   So

       4.9 t^2 -12.86 t + 7 =0

Solving this quadratic equation using quadratic formula we obtain

     t = 0.770 s

Generally the velocity of the stone on the x axis is mathematically represented as

       v_x =  20 * cos(40 )

=>    v_x =  15.32 \  m/s

Generally the distance between the person throwing the rock and the window is mathematically represented as

       x =  v_x * t

=>    x =  15.32 * 0.771

=>    x = 11.81 \ m

8 0
3 years ago
An iron anchor of density 7890.00 kg/m3 appears 299 N lighter in water than in air. (a) What is the volume of the anchor? (b) Ho
PtichkaEL [24]

Answer:

weigh is 2353.13 N

Explanation:

Given data

density = 7890.00 kg/m3

lighter =  299 N

to find out

the volume of the anchor and weigh in air

solution

from question we can say that

apparent weight = actual weight - buoyant force

we know weight = mg and buoyant force = water density × g

so volume of anchor is = actual weight - apparent weight / buoyant force

volume of anchor is = 299 / 1000 × 9.81

volume of anchor is = 0.0304791 m³

and

weight of anchor is mg

here mass m = density Fe g

density Fe = 7870 from table 14-1

so weight = 7870 × 0.0304791  × 9.81

weigh is 2353.13 N

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Serjik [45]
The amount of force required is 69J
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