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IrinaVladis [17]
4 years ago
13

When light passes from a region with a higher index of refraction to a region with a lower index of refraction, at an angle of i

ncidence that is greater than the critical angle, total internal reflection occurs.
Please select the best answer from the choices provided

T
F

please dont guess
Physics
1 answer:
Gnesinka [82]4 years ago
3 0
The Answer is true.
Answer:T
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A particle moves along a circle with radius R, so that the tangential component of its acceleration is constant. At t = 0 the ve
Gala2k [10]
Answer: a


Explanation:
7 0
3 years ago
a stone is thrown vertically upward with a velocity of 29.4m/s from the top of tower 34.3m high.calculate the total time taken b
Alexus [3.1K]

Answer:

7 s

Explanation:

We'll begin by calculating the maximum height reached by the stone from the point of projection. This can be obtained as follow:

Initial velocity (u) = 29.4 m/s

Acceleration due to gravity (g) = 9.8 m/s²

Final velocity (v) = 0 m/s (at maximum height)

Maximum height (h) =?

v² = u² – 2gh (since the stone is going against gravity)

0² = 29.4² – (2 × 9.8 × h)

0 = 864.36 – 19.6h

Collect like terms

0 – 864.36 = –19.6h

–864.36 = –19.6h

Divide both side by –19.6

h = –864.36 / –19.6

h = 44.1 m

Next, we shall determine the time taken to reach the maximum height from the point of projection. This can be obtained as follow:

Initial velocity (u) = 29.4 m/s

Acceleration due to gravity (g) = 9.8 m/s²

Final velocity (v) = 0 m/s (at maximum height)

Time (t₁) take to reach the maximum height =?

v = u – gt (since the stone is going against gravity)

0 = 29.4 – (9.8 × t₁)

0 = 29.4 – 9.8t₁

Collect like terms

0 – 29.4 = – 9.8t₁

–29.4 = –9.8t₁

Divide both side by –9.8

t₁ = –29.4 / –9.8

t₁ = 3 s

Next, we shall determine the time taken for the stone to reach the ground from the maximum height reached by the stone. This can be obtained as follow:

Maximum height (H) from the ground = 34.3 + 44.1 = 78.4 m

Acceleration due to gravity (g) = 9.8 m/s²

Time (t₂) taken for the stone to reach the ground from the maximum height reached by the stone =?

H = ½gt₂²

78.4 = ½ × 9.8 × t₂²

78.4 = 4.9 × t₂²

Divide both side by 4.9

t₂² = 78.4 / 4.9

t₂² = 16

Take the square root of both side

t₂ = √16

t₂ = 4 s

Finally, we shall determine the total time taken for the stone to reach the ground. This can be obtained as follow:

Time (t₁) take to reach the maximum height = 3 s

Time (t₂) taken to reach the ground from the maximum height reached by the stone = 4s

Total time (T) taken to reach the ground =?

T = t₁ + t₂

T = 3 + 4

T = 7 s

Thus, it took the stone 7 s to reach the ground.

6 0
3 years ago
A car accelerates from 0 to 30m/s in 3s. Calculate its acceleration
creativ13 [48]

Answer:

10 m/s2

Explanation:

a = v- u/ t

=>a = 30-0 / 3

= 30/ 3

= 10m/s2

8 0
3 years ago
If the balloon can barely lift an additional 3500 N of passengers, breakfast, and champagne when the outside air density is 1.23
Bingel [31]

The complete question is :

A hot-air balloon has a volume of 2100 m3 . The balloon fabric (the envelope) weighs 860 N . The basket with gear and full propane tanks weighs 1300 N .

If the balloon can barely lift an additional 3400 N of passengers, breakfast, and champagne when the outside air density is 1.23kg/m3, what is the average density of the heated gases in the envelope?

Solution :

Given volume of the hot air balloon $=2100 \ m^3$

The balloon fabric weights = 860 N

The weight of the basket with the gear and propane tank = 1300 N

Density of outside air $= 1.23 \ kg/m^3$

∴  Total pay load = Weight of the air displaced - weight of gas inside the balloon

Total pay load = 860 + 1300 + 3400

                        = 5560 N

Mass = density x volume

Weight  $= \text{mass} \times g$

Weight = volume x density $\times \text{ acceleration due to gravity (g)}$

Weight of the displaced air = 2100 x 1.23 x 9.8

                                             = 25313 N

Weight of the gas inside the balloon = density $\times \text{ acceleration due to gravity (g)}$ x volume

                                                             = density x 9.8 x 2100

                                                             = density x 20580 N

Therefore substituting the values, we get

⇒ 25313 - (density x 20580) = 5560

⇒ density $=\frac{19753}{20580}$

                 $= 0.96 \ kg/m^3$

So the density of the heated gas $= 0.96 \ kg/m^3$

8 0
4 years ago
Neglecting air resistance, what maximum height will be reached by an arrow launched straight upward with an initial speed of 35
tankabanditka [31]
The velocity at the maximum height will always be 0. Therefore, you will count your final velocity as 0, and your initial velocity as 35 m/s. Next, we know that the acceleration will be 9.8 m/s^2. How? Because the ball is thrown directly upward, and the only force acting on it will be the force of gravity pushing it back down.

The formula we use is h = (Vf^2 - Vi^2) / (2*-9.8m/s^2)

Plugging everything in, we have h = (0-1225)/(19.6) = 62.5 meters is the maximum height.
3 0
3 years ago
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