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WARRIOR [948]
3 years ago
8

A train passes your stop at 17m/s it slow downs near the next stop, to 2/ms it travels 70 m as it slows down how long did it tak

e to slow down
Physics
1 answer:
erastova [34]3 years ago
8 0

Answer:

The required time is 7.3[seconds]

Explanation:

First, we need to find the deceleration for the slow down, we can do this using the following kinematic equation.

v^{2}=v_{i}^{2} +2*a*x\\ where:\\v=final velocity [m/s]\\v_{i}=initial velocity [m/s]\\a=acceleration or deceleration [m/s^{2}]\\ x=distance[m]\\2^{2}=17^{2}+2*a*(70)\\  a=-2.03[m/s^2]

The minus sign means that the train is decreasing its velocity.

Now using another kinematic equation, we cand find the time.

v=v_{i} + a*t\\v=final velocity [m/s]\\v_{i}=initial velocity [m/s]\\t = time [s]\\a = acceleration [m/s^2]\\

2=17+(-2.03)*t\\t=7.3 [s]

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Answer:

4 smaller disks

Explanation:

We are given;

Mass of smaller and larger disks = M

Radius of smaller disk = R

Radius of larger disk = 4R

Formula for moment of inertia about cylinder axis is:

I = ½MR²

Thus;

For small disk, I_small = ½MR²

For large disk, I_large = ½M(2R)² = 2MR²

We are told that moment of inertia of System A consists of two of the larger disks. Thus;

I_A = 2 × I_large = 2 × 2MR²

I_A = 4MR²

We are also told that System B consists of one of the larger disks and a number of the smaller disks. Thus;

I_B = I_large + n(I_small)

Where n is the number of smaller disks.

I_B = 2MR² + n(½MR²)

I_B = MR²(2 + n/2)

We are told that the moment of inertia for system A equals the moment of inertia for system B. Thus;

I_A = I_B

So;

4MR² = MR²(2 + n/2)

MR² will cancel out to give;

4 = 2 + n/2

Multiply through by 2 to give;

8 = 4 + n

n = 8 - 4

n = 4

5 0
3 years ago
A 860g block of titanium metal has a volume of 200 cm3 and the density of 4.3g/cm^3.
valina [46]

Answer:

4.3 g/ cm^3

Explanation:

Mass / Volume = density . so 2150/500= 4.3 g/cm^3

6 0
3 years ago
Earthquakes along the subduction zones near Sumatra and Chile are some of the strongest in
Lana71 [14]
Yes
The earthquakes in the san andrais fault line are one of the most dangerous. 
6 0
3 years ago
An alpha particle travels at a velocity of magnitude 520 m/s through a uniform magnetic field of magnitude 0.034 T. (An alpha pa
Keith_Richards [23]

Answer:

(a) Magnetic force F=38.584\times 10^{-19}N

(b) Acceleration a=5.846\times 10^8m/sec^2

(C) Speed will remain same

Explanation:

We have given velocity of alpha particle v = 520 m/sec

Magnetic field B = 0.034 T

Charge on alpha particle q=3.2\times 10^{-19}C

Mass of alpha particle m=6.6\times 10^{-27}kg

Angle between velocity and magnetic field 43°

(a) Force acting on the particle is equal to

F=q(v\times B)=qvBsin\Theta

F=3.2\times 10^{-19}\times 320\times 0.034\times sin43^{\circ}

F=38.584\times 10^{-19}N

(B) According to newton's law

F = ma. here m is mass and a is acceleration.

So acceleration

a=\frac{F}{m}=\frac{38.584\times 10^{-19}}{6.6\times 10^{-27}}=5.846\times 10^8m/sec^2

(c) As the magnetic force is always perpendicular to velocity so speed will remain same neither decreases nor increases.

4 0
3 years ago
Check all that apply. An ammeter is used to measure current. An ammeter must be placed in parallel with a resistor to measure th
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<u>Out of all given choices, the following statements are true:</u>

  • An ammeter is used to measure current.
  • A voltmeter is used to measure voltage.
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Options A, E, and F

<u>Explanation:</u>

An instrument by which the current in a circuit is measured is  called ammeter whereas an instrument in which voltage is measured in a circuit is called a voltmeter . The ammeter is placed in series with the resistor while the voltmeter is placed in parallel with the resistor.

For the option B, since the ammeter must be placed in series with the resistor to measure current, it is false. Option C is false because an ammeter has zero internal resistance. Option D is also false because a voltmeter has a high internal resistance and is actually infinite.

6 0
3 years ago
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