On a frictionless air track, a 0.300 kg glider moving 0.40 m/s to the right collides with a 0.80 kg glider moving 0.15 m/s to the left. The collision is cushioned by a bumper made of perfectly elastic spring steel. a. What is the velocity of each glider after the collision? (−0.40 m/s,0.15 m/s) b. What is the minimum amount of total kinetic energy during the collision?

(a) The ball must be thrown vertically from ground level to rise to a maximum height of 54 m at a speed of 32.55 m/s . (b) The ball will be in the air for 5.52 sec.

(a) We can use the equation,

v^2 - u^2 = 2gh

Here, v = final velocity = 0 (at maximum height)

u = initial velocity

g = acceleration due to gravity = 9.8 m/s^2

h = maximum height = 54 m

Plugging in the values and solving for u,

u^2 = 2gh - v^2

= 2 × 9.8 × 54 - 0

= 1058.8u = ±√1058.8

= 32.55 m/s (rounded to two decimal places)

Therefore, ball must be thrown vertically from ground level to rise to a maximum height of 54 m at a speed of 32.55 m/s .

(b)We can use the formula,

s = ut + 1/2gt^2

Here, s = maximum height = 54 m

u = initial velocity = 32.55 m/s

g = acceleration due to gravity = 9.8 m/s^2

t = time taken

Plugging in the values,

54 = 32.55t + 1/2 × 9.8 × t^2

Simplifying,4.9t^2 + 32.55t - 54 = 0

Solving this quadratic equation, we get, t = 5.52 s

Therefore the ball will be in the air for 5.52 sec.

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(a) The ball rises to a height of approximately 5.10 meters.

(b) It takes approximately 1.02 seconds for the ball to reach its highest point.

(c) After reaching its highest point, it takes approximately 2.04 seconds for the ball to hit the ground.

(d) The velocity of the ball when it returns to the level from which it started is approximately -10.0 m/s.

To solve this problem, we can use the equations of motion for vertical motion.

Initial velocity (Vi) = 10.0 m/s

Acceleration due to gravity (g) = -9.8 m/s² (negative sign indicates downward direction)

(a) To find the height the ball rises to, we can use the equation:

Vf² = Vi² + 2ad

where Vf is the final velocity (0 m/s at the highest point), Vi is the initial velocity, a is the acceleration due to gravity, and d is the displacement.

0 m/s = (10.0 m/s)² + 2(-9.8 m/s²)d

0 = 100.0 m²/s² - 19.6 m/s² d

19.6 m/s² d = 100.0 m²/s²

d ≈ 5.10 m

Therefore, the ball rises to approximately 5.10 meters.

(b) The time it takes for the ball to reach its highest point can be found using the equation:

Vf = Vi + at

At the highest point, the final velocity is 0 m/s, so we have:

0 m/s = 10.0 m/s + (-9.8 m/s²) t

-10.0 m/s = -9.8 m/s² t

t ≈ 1.02 s

Therefore, it takes approximately 1.02 seconds to reach the highest point.

(c) The total time for the ball to hit the ground after reaching its highest point is twice the time to reach the highest point since the upward and downward journeys are symmetrical:

Total time = 2 * time to reach the highest point

Total time ≈ 2 * 1.02 s

Total time ≈ 2.04 s

Therefore, it takes approximately 2.04 seconds for the ball to hit the ground after reaching its highest point.

(d) The velocity of the ball when it returns to the level from which it started is equal in magnitude but opposite in direction to the initial velocity:

Velocity = -10.0 m/s

Therefore, the velocity of the ball when it returns to the level from which it started is -10.0 m/s.

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The correct banking angle of the road is approximately 3.85 degrees.

The correct banking angle of a road can be determined using the equation:

θ = arctan((v^2 / (r * g)))

where:

θ is the banking angle of the road,

v is the velocity of the vehicle,

r is the radius of the curve, and

g is the acceleration due to gravity.

Let's plug in the given values:

v = 71.09 km/h = 19.74 m/s (converted to m/s)

r = 591.21 m

g = 9.8 m/s²

θ = arctan((19.74^2 / (591.21 * 9.8)))

Calculating the expression:

θ = arctan(0.067092)

Now, evaluating the arctan:

θ ≈ 0.0672 radians

To convert this angle to degrees, we can multiply it by the conversion factor:

θ ≈ 0.0672 * (180/π)

θ ≈ 3.85 degrees

Therefore, the correct banking angle of the road is approximately 3.85 degrees.

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In the photoelectric effect, the stopping potential value is 0.6 V when the light source is placed at a distance of 10 cm. When the source is moved to a distance of 20 cm, the stopping potential will be 0.3 V. Therefore the correct option is B) 0.3 V.

The stopping potential in the photoelectric effect is determined by the energy of the incident photons and the work function of the material. The stopping potential depends on the intensity of the incident light, which is inversely proportional to the square of the distance from the source.

Given that the stopping potential is 0.6 V when the light source is 10 cm away, we can use the inverse square law to determine the stopping potential when the source is 20 cm away.

Let's denote the stopping potential when the source is 20 cm away as V'.

According to the inverse square law, the intensity of the light at a distance of 20 cm would be (10 cm / 20 cm)^2 = 0.25 times the intensity at 10 cm.

Since the stopping potential is directly proportional to the intensity of the incident light, the stopping potential when the source is 20 cm away would also be 0.25 times the stopping potential at 10 cm.

0.25 * 0.6 V = 0.15 V

Therefore, the stopping potential when the source is kept at 20 cm away would be 0.15 V.

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The proton must be placed at a distance of 2.9 × 10^-6 m from the point charge at the origin in the negative x-direction so that the electric force acting on it is exactly opposite to its weight.

Given data:

Charge of point charge q = -0.53 n

CThe proton has a positive charge, which means it is attracted towards the negative charge and is under the influence of the gravitational force. Now we have to find the position of the proton, where the electric force will be equal to the weight of the proton and in the opposite direction to the weight of the proton.

Part A

To find the position where the electric force will be equal to the weight of the proton and in the opposite direction to the weight of the proton, we have to consider the equation for the electric force and the weight of the proton.

F_e= \frac{kq_1q_2}{r^2}F_g=mg

where

Fe = Electric forceq1 = Charge of point chargeq2 = Charge of proton

r = Distance between charges

G = Gravitational constant

m = Mass of proton

g = Acceleration due to gravityI

n the question, the proton should be at such a distance where Fe and Fg have opposite signs. So, we need to add the negative sign in the electric force equation.

F_e=- \frac{kq_1q_2}{r^2}F_g=mg

The electric force and weight of the proton should have equal magnitude and opposite direction.

So, we equate the magnitude of the electric force with the weight of the proton

.\frac{kq_1q_2}{r^2} = g\frac{q_1q_2}{r^2} = \frac{mg}{k}q_2 = \frac{mg}{kq_1}q_2 = \frac{(9.8\text{ m/s}^2)(1.67×10^{-27}\text{ kg})}{(8.99×10^9\text{ N m}^2/\text{C}^2)(-0.53×10^{-9}\text{ C})}q_2 = 3.46 × 10^{-19} \text{ C}

The charge on the proton is 3.46 × 10^-19 C.

The proton is positively charged, which means it will be attracted towards the negatively charged point charge that is fixed at the origin. So, the proton must be placed on the x-axis in the negative x-direction so that it is at a distance of 2.9 × 10^-6 m from the point charge at the origin.

Let the proton be placed at a distance of r from the point charge at the origin.

Then,\frac{kq_1q_2}{r^2} = mg\frac{(8.99×10^9\text{ N m}^2/\text{C}^2)(-0.53×10^{-9}\text{ C})(3.46 × 10^{-19} \text{ C})}{r^2} = (9.8\text{ m/s}^2)(1.67×10^{-27}\text{ kg})r^2 = \frac{(8.99×10^9\text{ N m}^2/\text{C}^2)(-0.53×10^{-9}\text{ C})(3.46 × 10^{-19} \text{ C})}{(9.8\text{ m/s}^2)(1.67×10^{-27}\text{ kg})}r = 2.9 × 10^{-6} \text{ m}

Therefore, the proton must be placed at a distance of 2.9 × 10^-6 m from the point charge at the origin in the negative x-direction so that the electric force acting on it is exactly opposite to its weight.

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The final speed of the car after acceleration at 1.9 m/s^2 for 27 seconds is approximately 60.3 m/s.

The final speed of the car can be calculated using the formula for uniformly accelerated motion:

The final speed of the car can be determined using the formula:

final speed = initial speed + (acceleration * time)

Given:

Initial speed (u) = 9 m/s

Acceleration (a) = 1.9 m/s^2

Time (t) = 27 seconds

Plugging in these values into the formula, we can calculate the final speed:

final speed = 9 m/s + (1.9 m/s^2 * 27 s)

final speed = 9 m/s + 51.3 m/s

final speed ≈ 60.3 m/s

Therefore, the final speed of the car after accelerating at 1.9 m/s^2 for 27 seconds is approximately 60.3 m/s.

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The magnitude of vector B is 119.9 units and points 67.0° east of north.

The magnitude of vector C is 89.5 units and points 20.0° west of south.

Given:

Vector A has a magnitude of 147 units and points 33.0° north of west.

Vector B points 67.0° east of north.

Vector C points 20.0° west of south.

Calculate the components of each vector.

For vector A:

Ax = -147 * cos(33°)

Ay = -147 * sin(33°)

For vector B:

Bx = B * cos(67°)

By = B * sin(67°)

For vector C:

Cx = -C * cos(20°)

Cy = -C * sin(20°)

Set up the equations based on the sum of vectors being zero.

Ax + Bx + Cx = 0

Ay + By + Cy = 0

Substitute the component values into the equations and solve for B and C.

B * sin(67°) - 147 * cos(33°) - C * cos(20°) = 0

B * cos(67°) + C * sin(20°) - 147 * sin(33°) = 0

Solve the system of equations.

substitute the expressions into the equations and solve for B and C.

Obtain the magnitudes of vector B and vector C.

The magnitude of vector B is the absolute value of B.

The magnitude of vector C is the absolute value of C.

The magnitude of vector B is 119.9 units.

The magnitude of vector C is 89.5 units.

The magnitudes of vector B and vector C are 119.9 units and 89.5 units, respectively.

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A sphere with radius 4 cm having a uniformly distributed surface charge of +25nC. Its magnitude will be approximately 1.48 × [tex]10^7[/tex] N/C.

To find the magnitude of the electric field created by the spherical shell at a point outside the shell, we can use the formula you mentioned:

E = (1 / (4πε₀)) * (Q / [tex]r^2[/tex])

where:

E is the electric field,

ε₀ is the permittivity of free space,

Q is the charge of the spherical shell, and

r is the distance between the center of the shell and the point of interest.

Given:

Radius of the sphere, R = 4 cm = 0.04 m

Surface charge density, σ = +25 nC (uniformly distributed over the surface of the sphere)

To calculate the magnitude of the electric field at a point 6 cm from the center of the sphere, we need to find the total charge Q of the sphere. The charge Q can be obtained by multiplying the surface charge density σ by the surface area of the sphere.

Surface area of the sphere, A = 4π[tex]r^2[/tex]

Substituting the given values:

A = 4π[tex](0.04)^2[/tex]

A = 0.0201 π [tex]m^2[/tex]

Total charge, Q = σ * A

Q = (25 × [tex]10^{(-9)[/tex]) * (0.0201 π)

Q ≈ 1.575 × [tex]10^{(-9)[/tex]C

Now we can calculate the electric field using the formula:

E = (1 / (4πε₀)) * (Q / [tex]r^2[/tex])

Substituting the values:

E = (1 / (4π(8.85 × [tex]10^{(-12)[/tex]))) * (1.575 × [tex]10^{(-9)[/tex] / [tex](0.06)^2[/tex])

E ≈ 1.48 × [tex]10^7[/tex] N/C

Therefore, the magnitude of the electric field created by the spherical shell at a point 6 cm from its center is approximately 1.48 × [tex]10^7[/tex] N/C (kilonewtons per coulomb).

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The horizontal distance to the hole is \(16.31\) \(m\).

When a golfer hits a shot to a green that is elevated \(3.20\) \(m\) above the point where the ball is struck, the ball leaves the club at a speed of \(18.8\) \(m/s\) at an angle of \(60^\circ\) above the horizontal. Calculate the horizontal distance to the hole (center of the green).

A projectile shot with an initial velocity \(v_0\), at an angle \(\theta\) above the horizontal will have the following equations for its motion:

[tex]$$x = v_0\cos \theta t$$[/tex]

[tex]$$y = v_0\sin \theta t - \frac{1}{2}gt^2$$[/tex]

where \(g = 9.8\) \(m/s^2\) is the acceleration due to gravity, \(x\) is the horizontal displacement, and \(y\) is the vertical displacement.

In this case, the initial velocity is \(v_0 = 18.8\) \(m/s\) and the angle of projection is \(\theta = 60^\circ\). Let's find the time of flight of the projectile, that is, the time it takes to reach the maximum height of the projectile. At this point, the vertical component of the velocity becomes zero.

Thus, the vertical displacement becomes maximum.

[tex]$$v_{y} = v_0 \sin\theta - gt$$[/tex]

[tex]$$0 = 18.8\sin60^\circ - 9.8t$$[/tex]

[tex]$$t = \frac{18.8\sin60^\circ}{9.8}$$[/tex]

t = 1.92s

So, the time it takes to reach maximum height is \(t = 1.92s\).

The horizontal distance to the hole is given by:[tex]$$x = v_0\cos \theta t$$[/tex]

[tex]$$x = 18.8\cos60^\circ \cdot 1.92$$[/tex]

[tex]$$x = 16.31m$$[/tex]

Therefore, the horizontal distance to the hole is \(16.31\) \(m\).

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Combining the horizontal and vertical components, we get the initial velocity vector of (15.5 m/s, 0.207 m/s).

The initial velocity vector of the quarterback's throw, which enabled the ball to reach the receiver 15 m downfield and at a height of 1.9 m, was (15.5 m/s, 4.97 m/s).

To determine the initial velocity vector, we can break down the motion into horizontal and vertical components. The horizontal component remains constant, as there is no acceleration in that direction. Using the given distance and time, we can calculate the horizontal component of velocity as follows:

Horizontal velocity (Vx) = Distance / Time = 15 m / 0.964 s = 15.5 m/s

For the vertical component, we consider the change in height. The initial height is 1.7 m, and the final height is 1.9 m. Using the time of flight, we can calculate the vertical component of velocity as follows:

Vertical velocity (Vy) = (Final height - Initial height) / Time = (1.9 m - 1.7 m) / 0.964 s = 0.2 m / 0.964 s = 0.207 m/s

Combining the horizontal and vertical components, we get the initial velocity vector of (15.5 m/s, 0.207 m/s).

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(a) The magnitude of the  acceleration is 2.7 x 10³ cm/s² in the direction towards the centre of the disk.  (b) The magnitude of the centripetal acceleration after 3 seconds is 5.06 x 10³ cm/s².

a) The point on the edge of the disk does experience an acceleration. It is a centripetal acceleration, which is given by the following formula:

Centripetal acceleration = (angular velocity)² x radius = ω²r

Here, ω is the angular velocity, and r is the radius of the disk.

Substituting the given values, we get:

Centripetal acceleration = (30 rad/s)² x (3.0 cm) = 2.7 x 10³ cm/s²

The magnitude of the centripetal acceleration is 2.7 x 10³ cm/s².

The direction of the acceleration is towards the center of the disk (since it is a centripetal acceleration).

b) Radius of the disk, r = 3.0 cm

Angular acceleration, α = 3.5 rad/s²

Time is taken, t = 3 s

First, let's calculate the final angular velocity of the disk using the following formula:

Angular velocity, ω = initial angular velocity + angular acceleration x time

ω = 30 rad/s + (3.5 rad/s²)(3 s) = 41.5 rad/s

Now, let's calculate the magnitude of the centripetal acceleration using the formula we used in part a :

Centripetal acceleration = (angular velocity)² x radius = ω²r

Substituting the given values, we get:

Centripetal acceleration = (41.5 rad/s)² x (3.0 cm) = 5.06 x 10³ cm/s²

The magnitude of the centripetal acceleration after 3 seconds is 5.06 x 10³ cm/s².

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the diop in blood pressure along a 25−cm length of artery of radius 4 thmm is approximately 37.8 kPa.

Diop in blood pressure along a 25−cm length of artery of radius 4 thmm can be computed as follows.Diop in blood pressure along a length of an artery is the change in the pressure of the blood as it moves from one end to another end of the artery. It is denoted by ΔP.

The formula to calculate ΔP is given by:ΔP = 4 × Q × L × η / π × r⁴WhereQ = flow rate of the bloodL = length of the arteryr = radius of the arteryη = viscosity of the bloodWe know that the length of the artery, L = 25 cm = 0.25 m

Radius of the artery, r = 4 µm = 4 × 10⁻⁶ m

Flow rate of the blood, Q = 7 L/min = 7 × 10⁻³ m³/sViscosity of the blood, η = 0.04 poise = 0.04 × 10⁻² Pa.s

Therefore,ΔP = 4 × Q × L × η / π × r⁴= 4 × 7 × 10⁻³ × 0.25 × 0.04 × 10⁻² / π × (4 × 10⁻⁶)⁴= 3.78 × 10⁴ Pa≈ 37.8 kPa,

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The velocity of the ball 1.8 seconds after it is released is 5.6 m/s.ExplanationA ball is thrown downward with an initial velocity of 13 m/s. Given,Initial velocity u = 13 m/sThe ball is thrown downward which means it is thrown in the downward direction.

Hence, acceleration will be acting in the downward direction and acceleration due to gravity g = 10 m/s²Time taken t = 1.8 secondsWe have to find the velocity of the ball after 1.8 seconds.Solution:Using the third equation of motion, we have, v = u + atwherev is the final velocity of the ballu is the initial velocity of the balla is the acceleration of the ballt is the time taken by the ballFrom the given values, we can substitute,u = 13 m/sa = 10 m/s²t = 1.8 secondsSubstituting these values in the equation above,

we get:v = u + atv = 13 m/s + 10 m/s² × 1.8 secondsv = 13 m/s + 18 m/sv = 31 m/sTherefore, the velocity of the ball 1.8 seconds after it is released is 31 m/s.Approximately, g = 10 m/s²Using the approximate value of g=10 m/s², we can also use the below formula,v = u + gtwherev is the final velocity of the ballu is the initial velocity of the ballg is the acceleration of the ballt is the time taken by the ballFrom the given values, we can substitute,u = 13 m/sg = 10 m/s²t = 1.8 secondsSubstituting these values in the equation above, we get:v = u + gtv = 13 m/s + 10 m/s² × 1.8 secondsv = 13 m/s + 18 m/sv = 31 m/sTherefore, the velocity of the ball 1.8 seconds after it is released is 31 m/s.

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The distance of the m=2 bright fringe from the center of the pattern is approximately 0.1488 meters.

To find the angle of the m=2 bright fringe in a double-slit interference pattern, we can use the formula:

sin(theta) = m * (lambda) / d

where theta is the angle of the fringe, m is the order of the fringe, lambda is the wavelength of the light, and d is the distance between the slits.

Given that the distance between the slits is 50 μm (50 x 10^(-6) m) and the wavelength of the light is 620 nm (620 x 10^(-9) m), and we want to find the angle of the m=2 bright fringe.

Plugging the values into the formula:

sin(theta) = 2 * (620 x 10^(-9) m) / (50 x 10^(-6) m)

Now we can solve for theta by taking the inverse sine (sin^(-1)) of both sides:

theta = sin^(-1)[2 * (620 x 10^(-9) m) / (50 x 10^(-6) m)]

Calculating the value using a calculator:

theta ≈ 0.248 radians

So the angle of the m=2 bright fringe is approximately 0.248 radians.

For Part B, to find the distance of this fringe from the center of the pattern, we can use the formula:

y = m * (lambda) * L / d

where y is the distance from the center, m is the order of the fringe, lambda is the wavelength of the light, L is the distance from the slits to the screen, and d is the distance between the slits.

Given that the distance from the slits to the screen is 1.2 m, and we want to find the distance of the m=2 bright fringe.

Plugging the values into the formula:

y = 2 * (620 x 10^(-9) m) * (1.2 m) / (50 x 10^(-6) m)

Calculating the value:

y ≈ 0.1488 m

So the distance of the m=2 bright fringe from the center of the pattern is approximately 0.1488 meters.

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In order to determine whether the material is zircon or diamond, we need to calculate the index of refraction of the material.

The index of refraction can be calculated using the following formula:

[tex]n = c/v[/tex]

where n is the index of refraction, c is the speed of light in a vacuum, and v is the speed of light in the material.

We can calculate v using the following formula:

[tex]v = c/n[/tex]

where v is the speed of light in the material, c is the speed of light in a vacuum, and n is the index of refraction.

We are given that the wavelength of the helium-laser in air is 6.33 x 10^-7 m and that it has a wavelength of 3.30 x 10^-7 m in the material.

We can use these wavelengths to calculate the index of refraction as follows:

[tex]n = λair/λ[/tex]

[tex]material = (6.33 x 10^-7 m)/(3.30 x 10^-7 m) = 1.92[/tex]

Using this value of n, we can calculate the speed of light in the material as follows:

[tex]v = c/n = (3.00 x 10^8 m/s)/1.92 = 1.56 x 10^8 m/s[/tex]

We are given that the material is either zircon or diamond and we are given the values of their indices of refraction.

The index of refraction of zircon (n z) is 1.92 and the index of refraction of diamond (n d) is 2.42.

Since the calculated value of n (1.92) is equal to n z,

we can conclude that the material is zircon.

the material is zircon and not diamond.

The answer is given in more than 100 words.

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The final velocity of the chandelier when it hits the ground would be approximately 9.8 m/s.

To calculate the final velocity of the chandelier, we can use the principle of conservation of energy. The potential energy of the chandelier at its initial height can be calculated using the formula PE = mgh,

where m is the mass (18 kg), g is the acceleration due to gravity (9.8 m/s^2), and h is the height (6 ft = 1.83 m). The potential energy at the initial height is converted entirely into kinetic energy at ground level, given by KE = 0.5mv^2.

By equating the potential energy and kinetic energy and solving for v, we find that the final velocity of the chandelier is approximately 9.8 m/s.

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The magnitude of the acceleration of the toy block is 0.015 m/s2.  the coefficient of kinetic friction between the block and the table is `0.001792`. The direction of the frictional force is towards the rest of the block.The speed of the block when it is at the end of the table is 0.25 m/s.

a) The formula for acceleration is given by the formula,`a = (vf - vi)/t`Where `vf` is the final velocity, `vi` is the initial velocity, and `t` is the time taken. In this case, `vf = d/t`.

Here, `d` is the distance travelled by the block and `t` is the time taken.

The initial velocity of the block is zero.

Therefore, the formula for acceleration can be rewritten as `a = 2d/t^2`.

The block has moved a distance equal to the length of the table, which is 1.80 m.

Therefore, the distance travelled by the block is d = 1.80 m.

The time taken by the block to travel the length of the table is t = 2.10 s.

Substituting the values, we get: `a = 2(1.80)/2.10^2 = 0.015 m/s^2`.

Therefore, the magnitude of the acceleration of the toy block is 0.015 m/s2

.b) The formula for kinetic friction is given by the formula `f = µkN`. Where `f` is the force of friction, `µk` is the coefficient of kinetic friction, and `N` is the normal force.

The normal force acting on the block is given by `N = mg cosθ`.

Here, `m` is the mass of the block, `g` is the acceleration due to gravity, and `θ` is the angle of inclination of the table.

Substituting the values, we get: `N = 275.9 × 9.81 × cos 32.5∘ = 2309.7 N`.

The force of friction acting on the block is given by `f = ma`.

Substituting the values, we get: `f = 275.9 × 0.015 = 4.14 N`.

Therefore, the coefficient of kinetic friction between the block and the table is `µk = f/N = 4.14/2309.7 = 0.001792`.

c) The frictional force acting on the block is given by `f = µkN = 0.001792 × 2309.7 = 4.14 N`.

The frictional force acts in a direction opposite to the direction of motion of the block.

Therefore, the direction of the frictional force is towards the rest of the block.

d) The final velocity of the block can be calculated using the formula `v^2 = u^2 + 2as`.

Here, `u` is the initial velocity, `v` is the final velocity, `a` is the acceleration of the block, and `s` is the distance travelled by the block.

The initial velocity of the block is zero.

Therefore, the formula can be simplified as `v = √(2as)`.

Substituting the values, we get: `v = √(2 × 0.015 × 1.80) = 0.25 m/s`.

Therefore, the speed of the block when it is at the end of the table is 0.25 m/s.

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The maximum height reached by the rock is 309.6 m, and the time of travel before it hits the ground is 12.8 s.

Initial Velocity (u) = 97.1 m/s

Angle (θ) = 44.5°

Maximum height reached by the rock (H) = ?

Distance (d) = ?

To calculate the maximum height reached by the rock:

Using the formula H = u²sin²θ/2g, where g is the acceleration due to gravity (9.8 m/s²), we can substitute the given values and calculate:

H = (97.1 m/s)²(sin²44.5°)/(2 x 9.8 m/s²) = 309.6 m

To calculate the time of travel before the rock hits the ground:

Using the formula t = 2usinθ/g, we can substitute the given values and calculate:

t = 2 x 97.1 m/s(sin 44.5°)/9.8 m/s² = 12.8 s

Therefore, the maximum height reached by the rock is 309.6 m, and the time of travel before it hits the ground is 12.8 s.

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The small plastic bead, with a mass of 3.82 g and a charge of −18.2 μC, remains motionless in a uniform electric field perpendicular to the ground. The magnitude of the electric field is determined to be 2054 N/C. The direction of the electric field is upward, as indicated by the negative charge on the bead and the attraction between opposite charges.

A small plastic bead, with a mass of 3.82 g and a charge of −18.2 μC, remains motionless in a uniform electric field perpendicular to the ground. The magnitude of the electric field (in N/C) can be determined using the formula E = F/q, where F represents the force of gravity and q represents the charge on the bead.

The force of gravity, F, can be calculated as [tex]F = mg[/tex], where m is the mass of the bead and g is the acceleration due to gravity. Substituting the values, we find [tex]F = 3.82 \times 10^{-3} kg \times 9.8 m/s^2 = 3.74 \times 10^{-2} N.[/tex]

Given that q is[tex]-18.2 \times 10^{-6} C[/tex], we can now calculate the electric field, E, as [tex]E = \frac{F}{q} = \frac{(3.74 \times 10^{-2} N)}{(18.2 \times 10^{-6} C)} = 2054 N/C.[/tex]

It is important to note that the direction of the electric field is upward due to the negative charge on the bead. In electric fields, opposite charges attract each other, so the electric field lines of force emanate from positive charges and terminate on negative charges. The direction of the electric field is taken as the direction in which a positive charge would experience a force.

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(a) The frequency of forced oscillation caused by the corrugations is 10 Hz.

(b) The equivalent spring constant k is 2470 N/m.

(c) When the car stops, and the people get out, the car body rises on its suspension by 3.5 cm.

(a) Mass of car, m1 = 1000 kg

    Mass of 4 people, m2 = 4 × 82 kg

                                         = 328 kg

    Distance between corrugations, l = 4.0 m

    The speed of the car, v = 16 km/h = 4.44 m/s

    The maximum amplitude of bounce, A = ?

(b)Using the formula for frequency of forced oscillation, we get

                                    f = v/l

                                    f = (4.44 m/s) / (4.0 m)

                                    f = 1.11 Hz Or, f = v/2l × 1/√(m1 + m2)k

                                                             = (2πf)²(m1 + m2)k

                                                             = (2π × 1.11)²(1000 + 328)k

                                                             = 2470 N/m

Therefore, the equivalent spring constant k is 2470 N/m.

(c) When the people get out of the car, the mass of the car reduces to m1’ = 1000 – 328

                                                                                                                           = 672 kg.

Using the formula for spring constant, we get

                                       k = (2πf)²m1’A’ = (mg) / kA’

                                           = (672 × 9.8 N) / (2470 N/m)A’

                                           = 0.035 m

                                          = 3.5 cm

Therefore, when the car stops, and the people get out, the car body rises on its suspension by 3.5 cm.

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the vector gravitational force acting on block 2 due to block 1 is approximately 1.2674 x 10^(-7) N in magnitude.

To determine the vector gravitational force acting on block 2 due to block 1, we can use Newton's law of universal gravitation:

F = G * (m1 * m2) / r^2

where F is the gravitational force, G is the gravitational constant (approximately 6.67430 x 10^(-11) N m^2/kg^2), m1 and m2 are the masses of the two blocks, and r is the distance between their centers of mass.

Given that the mass of block 1 is 37 kg and its position is (4, 11, 0) m, and the mass of block 2 is 1140 kg and its position is (22, 11, 0) m, we can calculate the distance between their centers of mass:

r = √((x2 - x1)^2 + (y2 - y1)^2 + (z2 - z1)^2)

r = √((22 - 4)^2 + (11 - 11)^2 + (0 - 0)^2)

r = √(18^2 + 0^2 + 0^2)

r = 18 m

Now we can calculate the gravitational force:

F = (6.67430 x 10^(-11) N m^2/kg^2) * (37 kg * 1140 kg) / (18 m)^2

F ≈ 1.2674 x 10^(-7) N

Therefore, the vector gravitational force acting on block 2 due to block 1 is approximately 1.2674 x 10^(-7) N in magnitude.

For the second part of the question, to determine the momentum of block 2 at 4.55 seconds after noon, we need to know its velocity. Without that information, we cannot calculate the momentum. Please provide the velocity of block 2 at that time so that we can assist you further.

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The gravitational force acting on block 2 from block 1 depends on the distances between them but can't be calculated with the given information. The momentum of block 2 at any given time would be zero due to no external forces. The comparison of speed of block 1 and block 2 can't be made without information about their velocities.

The gravitational force acting on block 2 due to block 1 can be calculated using Newton's law of gravitation. This law states that every particle of matter in the universe attracts every other particle with a force that is directly proportional to the product of their masses and inversely proportional to the square of the distance between their centers.

To calculate the vector force, we would need to know the exact position of these two blocks in three dimensional space. This would involve calculating the distance vector from block 1 to block 2, then use this to calculate the force vector by multiplying the magnitude of the gravitational force (calculated using Newton's law) by the unit vector in the direction of the distance vector. However, given the current details, a precise calculation can't be performed.

As for the momentum of block 2 at 4.55 seconds after noon, it can be calculated using the equation p = mv , where p is momentum, m is mass and v is velocity. Since no external forces are mentioned, block 2 would remain at rest, meaning its velocity is 0 and thus its momentum is also 0.

The question about whether block 1 is moving faster than block 2, or vice versa or both have the same speed, cannot be answered without knowing details about their velocities.

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Distance to Star 1 in light-years = 0 light-years.

Given Data:

Angular Separation = 150

Parallax angle is half the angular separation between the two stars

Calculation:

Parallax angle for Star 1 = (1/2) × 150 = 75 arcsecs

Distance to Star 1 in Parsecs (p) = 1/Parallax angle = 1/75 parsecs = 0.01333 parsecs

Distance to Star 1 in light-years = 0.01333 × 3.26 light-years = 0.0434 light-years ≈ 0 light-years

So, the answer is:

Parallax angle for Star 1 = 75 arcsecs

Distance to Star 1 in Parsecs (p) = 0.01333 parsecs

Distance to Star 1 in light-years = 0 light-years.

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The mass of the car is 925 kg.

Kinetic energy (K) of an object is given by the formula, K = 1/2mv², where m is the mass of the object and v is its velocity. The difference between initial kinetic energy and final kinetic energy gives the kinetic energy required to increase the speed of the object.

So we can say that, K2 - K1 = 170 kJ

Here, the initial speed of the car is 14 m/s and the final speed of the car is 26 m/s.

Substituting these values in the formula, we get,1/2m(26² - 14²) = 170 kJ

On solving, we get,

m = 925 kg

Therefore, the mass of the car is 925 kg.

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The object has traveled 0.9 meters in the x-direction after 0.5 seconds because the horizontal component of the initial velocity is 1.8 meters per second.

The horizontal component of the initial velocity is the part of the velocity that is parallel to the x-axis. The vertical component of the initial velocity is the part of the velocity that is parallel to the y-axis.

The distance traveled in the x-direction after 0.5 seconds is simply the horizontal component of the initial velocity multiplied by the time.

The horizontal component of the initial velocity is:

v_x = v_0 * cos(theta) = 3.5 m/s * cos(52°)

v_x  = 1.8 m/s

The distance traveled in the x-direction after 0.5 seconds is:

x = v_x * t = 1.8 m/s * 0.5 s

x = 0.9 m

Therefore, the object has traveled 0.9 m in the x-direction after 0.5 seconds.

The other answer choices are incorrect. 3.5 m is the total initial velocity, not the horizontal component. 1.1 m and 7.0 m are the horizontal distances traveled after 1.0 and 2.0 seconds, respectively. 2.2 m is the horizontal distance traveled after 1.0 second.

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vT = 2mg/ρACdwhere; vT is the terminal velocity m is the mass of the object g is the acceleration due to gravityρ is the density of the fluid A is the cross-sectional area Cd is the drag coefficient. Substituting the given values in the formula, we get: vT = 2 × 0.0128 g / (1.3 kg/m³ × π × (0.00145 m/2)² × 0.60)

Using appropriate unit conversions, we get: vT = 5.8 m/s Thus, the raindrop's terminal speed is 5.8 m/s. Solution for part B:Using the formula for the final velocity of a falling object, we have: vf = sqrt(2gh)where; vf is the final velocity g is the acceleration due to gravity h is the height from which the object is falling Substituting the given values in the formula, we get: vf = sqrt(2 × 9.8 m/s² × 1167 m)

Using appropriate unit conversions, we get: vf = 49.1 m/s Thus, the raindrop's speed just before landing on the ground if there were no drag force (no air resistance) would be 49.1 m/s.

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a) The total distance traveled along path D is 1,080 m. b) The magnitude of displacement is calculated using the Pythagorean theorem is 648.07 m and the direction is approximately 68.2° above the positive x-axis.

To find the total distance traveled along path D in Figure 3.56, we need to determine the length of each segment and sum them up. According to the given information, all blocks are 120 m on a side. By carefully following the path, we can determine the lengths of each segment:

Segment AB: The path moves right, covering 3 blocks, so the distance traveled is 3 * 120 m = 360 m.

Segment BC: The path moves up, covering 2 blocks, so the distance traveled is 2 * 120 m = 240 m.

Segment CD: The path moves left, covering 1 block, so the distance traveled is 1 * 120 m = 120 m.

Segment DE: The path moves up, covering 3 blocks, so the distance traveled is 3 * 120 m = 360 m.

Therefore, the total distance traveled along path D is 360 m + 240 m + 120 m + 360 m = 1,080 m.

To find the displacement from start to finish, we need to calculate the magnitude and direction. We can follow the steps of the analytical method of vector addition:

Break down each segment into its x (horizontal) and y (vertical) components.

AB: x-component = 360 m, y-component = 0 m

BC: x-component = 0 m, y-component = 240 m

CD: x-component = -120 m, y-component = 0 m

DE: x-component = 0 m, y-component = 360 m

Sum up the x-components: 360 m - 120 m = 240 m

Sum up the y-components: 240 m + 360 m = 600 m

The magnitude of displacement is calculated using the Pythagorean theorem: √(240 m^2 + 600 m^2) ≈ 648.07 m.

To find the direction, we can use trigonometry. The angle θ can be found by taking the inverse tangent of the ratio of the y-component to the x-component: θ = tan^(-1)(600 m / 240 m) ≈ 68.2°.

Therefore, the magnitude of displacement is approximately 648.07 m, and the direction is approximately 68.2° above the positive x-axis.

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Fluctuating noise and intermittent noise are two types of sound disturbances that differ in their patterns and durations.

Fluctuating noise refers to a continuous sound with variations in intensity or frequency over time. It may have irregular patterns or fluctuations that occur randomly. An example of fluctuating noise is the sound of waves crashing on a beach, where the intensity of the sound varies as the waves rise and fall. Another example is the sound of rain falling, which can have variations in intensity and frequency as the raindrops hit different surfaces.

On the other hand, intermittent noise refers to a sound that occurs in bursts or episodes with periods of silence in between. It is characterized by distinct on-and-off patterns. An example of intermittent noise is a car alarm, which goes off periodically and then stops. Another example is a ticking clock, where the sound occurs at regular intervals but with pauses in between.

To summarize, fluctuating noise involves continuous variations in intensity or frequency, while intermittent noise consists of sound bursts with breaks of silence.

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The projectile will have a horizontal displacement of approximately 43.56 meters when it hits the ground.

To analyze the motion of the projectile, we can separate its initial velocity into horizontal and vertical components. The horizontal component will remain constant throughout the motion, while the vertical component will be affected by gravity.

Initial angle of projection, θ = 13°

Initial speed, v₀ = 45 m/s

We can find the initial horizontal velocity (v₀x) and initial vertical velocity (v₀y) using trigonometric functions:

v₀x = v₀ * cos(θ)

v₀y = v₀ * sin(θ)

Substituting the given values:

v₀x = 45 m/s * cos(13°)

v₀y = 45 m/s * sin(13°)

Now, let's analyze the horizontal and vertical motion separately.

Horizontal Motion:

Since there is no horizontal acceleration, the horizontal velocity remains constant throughout the motion.

The horizontal displacement (Δx) can be calculated using the formula:

Δx = v₀x * t

Vertical Motion:

The vertical motion is affected by gravity, which causes a constant downward acceleration.

The vertical displacement (Δy) can be calculated using the formula:

Δy = v₀y * t + (1/2) * g * t²

where g is the acceleration due to gravity (approximately 9.8 m/s²).

To find the time of flight (T), we can consider the vertical motion. At the highest point of the projectile's trajectory, the vertical velocity becomes zero. We can use this information to find the time it takes to reach the highest point.

v_y = v₀y - g * t_max

where v_y is the vertical velocity, v₀y is the initial vertical velocity, g is the acceleration due to gravity, and t_max is the time it takes to reach the highest point.

Setting v_y = 0 and solving for t_max:

0 = v₀y - g * t_max

t_max = v₀y / g

Once we have the time of flight, we can find the total horizontal displacement by multiplying the horizontal velocity by the time of flight:

Δx_total = v₀x * T

Now, let's calculate these values.

Substituting the values:

v₀x = 45 m/s * cos(13°)

v₀y = 45 m/s * sin(13°)

v₀x ≈ 43.69 m/s

v₀y ≈ 9.77 m/s

To find t_max:

t_max = v₀y / g

t_max = 9.77 m/s / 9.8 m/s²

t_max ≈ 0.997 s

To find Δx_total:

Δx_total = v₀x * T

Δx_total = 43.69 m/s * 0.997 s

Δx_total ≈ 43.56 m

Therefore, the projectile will have a horizontal displacement of approximately 43.56 meters when it hits the ground.

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The thrown rock takes approximately 5.94 s to reach the ground. The correct answer is: 1.88 s.

The time it takes for an object to fall freely from a height h can be calculated using the equation: t = √(2h/g)

For the dropped rock: h = 3.0 × 10^2 m

t_dropped = √(2(3.0 × 10^2)/9.8)

t_dropped ≈ √(600/9.8)

t_dropped ≈ 7.82 s

For the thrown rock: h = 3.0 × 10^2 m

v_initial = 10 m/s

g = 9.8 m/s^2

The time it takes to reach the ground can be calculated using the equation: h = v_initial * t_thrown + (1/2) * g * t_thrown^2

3.0 × 10^2 = 10 * t_thrown + (1/2) * 9.8 * t_thrown^2

Simplifying the equation:4.9 * t_thrown^2 + 10 * t_thrown - 3.0 × 10^2 = 0

Solving this quadratic equation, we find two solutions for t_thrown: t_thrown ≈ -13.18 s and t_thrown ≈ 5.94 s.

Comparing the times, we find that the thrown rock strikes the ground approximately 7.82 s - 5.94 s = 1.88 s earlier than the dropped rock.

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At t = 0 a truck starts from rest at x = 0 and speeds up in the positive z-direction on a straight road with acceleration at. At the same time, t = 0, a car is at r = 0 and traveling in the positive 2-direction with speed vc. the time at which the truck passes the car is (v_C + √(v_C^2 - a_T × a_C)) / (a_T + a_C), and the coordinate at which the truck passes the car is (1/2) × a_T × [(v_C + √(v_C^2 - a_T × a_C))^2 / (a_T + a_C)^2].

To solve this problem, we need to set up equations for the positions of the truck and the car as functions of time.

Let's assume that at time t, the position of the truck is given by x_truck(t) and the position of the car is given by x_car(t).

For the truck:

x_truck(t) = (1/2) × a_T × t^2

For the car:

x_car(t) = v_C × t - (1/2) × a_C × t^2

To find the time at which the truck passes the car, we need to set their positions equal to each other and solve for t:

(1/2) × a_T × t^2 = v_C × t - (1/2) × a_C × t^2

To simplify the equation, let's multiply both sides by 2:

a_T× t^2 = 2 × v_C × t - a_C × t^2

Rearranging the terms:

(a_T + a_C) × t^2 - 2 × v_C × t = 0

This is a quadratic equation in terms of t. We can solve it by applying the quadratic formula:

t = [2 × v_C ± √(4 × v_C^2 - 4 × (a_T + a_C) × 0)] / (2 × (a_T + a_C))

Simplifying further:

t = [2 × v_C ± 2 × √(v_C^2 - a_T × a_C)] / (2 × (a_T + a_C))

t = [v_C ± √(v_C^2 - a_T × a_C)] / (a_T + a_C)

Since time cannot be negative, we take the positive solution:

t = (v_C + √(v_C^2 - a_T × a_C)) / (a_T + a_C)

Now, to find the coordinate at which the truck passes the car, we substitute the value of t into the equation for the truck's position:

x_truck(t) = (1/2) × a_T × [(v_C + √(v_C^2 - a_T × a_C)) / (a_T + a_C)]^2

Simplifying:

x_truck(t) = (1/2) × a_T × [(v_C + √(v_C^2 - a_T × a_C))^2 / (a_T + a_C)^2]

Therefore, the time at which the truck passes the car is (v_C + √(v_C^2 - a_T × a_C)) / (a_T + a_C), and the coordinate at which the truck passes the car is (1/2) × a_T × [(v_C + √(v_C^2 - a_T × a_C))^2 / (a_T + a_C)^2].

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