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kenny6666 [7]
2 years ago
10

In this problem you will consider the balance of thermal energy radiated and absorbed by a person.Assume that the person is wear

ing only a skimpy bathing suit of negligible area. As a rough approximation, the area of a human body may be considered to be that of the sides of a cylinder of length L=2.0m and circumference C=0.8m.For the Stefan-Boltzmann constant use σ=5.67×10−8W/m2/K4.If the surface temperature of the skin is taken to be Tbody=30∘C, how much thermal power Prb does the body described in the introduction radiate?Take the emissivity to be e=0.6.Express the power radiated into the room by the body numerically, rounded to the nearest 10 W.
Physics
1 answer:
Ivahew [28]2 years ago
7 0

Answer:P=14.6 W

Explanation:

According to the Stefan-Boltzmann law for real radiating bodies:

P=\sigma A \epsilon T^{4} (1)

Where:

P is the energy radiated (in Watts)

\sigma=5.67(10)^{-8}\frac{W}{m^{2} K^{4}} is the Stefan-Boltzmann's constant.  

A is the Surface area of the body  

T=30\°C + 273.15= 303.15 K is the effective temperature of the body (its surface absolute temperature) in Kelvin

\epsilon=0.6 is the body's emissivity

On the other hand, we are told the human body is roughly approximated to a cylinder of length L=2.0m and circumference C=0.8m.

The circumference of a circle is:C=0.8m=2 \pi r where r is the radius. Hence r=\frac{0.8m}{2 \pi}=0.1273 m.

Now we have to input this value for r  in the Area of a cylinder formula:

A=\pi r^{2}L

A=\pi (0.1273 m)^{2}(2 m)

A=0.0509 m^{2} (2)

Substituting (2) in (1):

P=(5.67(10)^{-8}\frac{W}{m^{2} K^{4}}) (0.0509 m^{2}) (0.6) (303.15 K)^{4} (3)

Finally:

P=14.62 W \approx 14.6 W

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If a 110 kg go-cart traveling at a velocity of 13.41 m/s has a collision with an impulse of 615 Nxs, what is the
mafiozo [28]

Answer:

5.59 m/s

Explanation:

We are given;

Mass = 110 kg

Initial velocity: u = 13.41 m/s

Force = 615 N

Time(t) = 1 s

Now, the formula for force is;

Force = mass x acceleration

Thus;

615 = 110 × acceleration

\Acceleration(a) = 615/110 = 5.591 m/s²

Now, using Newton's first law of motion, we can find acceleration (a). Thus;

v = u + at

v = 13.41 + (5.591 × 1)

v ≈ 19 m/s

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6 0
2 years ago
Consider two waves defined by the wave functions y1(x,t)=0.50msin(2π3.00mx+2π4.00st) and y2(x,t)=0.50msin(2π6.00mx−2π4.00st). Wh
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Answer:

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Explanation: comparing the wave equation above with the general wave equation

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A Honda Civic travels in a straight line along a road. The car’s distance x from a stop sign is given as a function of time t by
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a) Average velocity: 2.8 m/s

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c) Average velocity: 7.6 m/s

Explanation:

a)

The position of the car as a function of time t is given by

x(t)=\alpha t^2 - \beta t^3

where

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The average velocity is given by the ratio between the displacement and the time taken:

v=\frac{\Delta x}{\Delta t}

The position at t = 0 is:

x(0)=\alpha \cdot 0^2 - \beta \cdot 0^3 = 0

The position at t = 2.00 s is:

x(2)=\alpha \cdot 2^2 - \beta \cdot 2^3=5.6 m

So the displacement is

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b)

The position at t = 0 is:

x(0)=\alpha \cdot 0^2 - \beta \cdot 0^3 = 0

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\Delta t = 4.0 - 0 = 4.0 s

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c)

The position at t = 2 s is:

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While the position at t = 4 s is:

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While the time interval is

\Delta t = 4.0 - 2.0 = 2.0 s

So the average velocity is

v=\frac{15.2}{2.0}=7.6 m/s

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brainly.com/question/8893949

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The hammer throw was one of the earliest Olympic events. In this event, a heavy ball attached to a chain is swung several times
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Answer:

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We know that g = 10 m/s²

So

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a= 44.7 g m/s²

7 0
2 years ago
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