The tangential speed at a point at the edge of the compact disc is 1.77 m/s.
The tangential speed at a point one-fifth of the way from the center of the compact disc is 0.354 m/s.
Angular velocity of the compact disc, ω = 283 rev/min = 29.64 rad/s
Diameter of the compact disc, d = 120 mm = 0.12 m
The radius of the compact disc, r = d/2
r = 0.12/2
r = 0.06
The rate at which a body changes its angular displacement from another body is referred to as its angular velocity.
It is also known as rotational velocity or angular revolver speed.
a) The expression for the tangential speed at a point at the edge of the compact disc is given by,
v = rω
v = 0.06 x 29.64
v = 1.77 m/s
b) The distance from the center, r' = r/5
The expression for the tangential speed at a point one-fifth of the way from the center of the compact disc is given by,
v = r'ω
v = r/5 x ω
v = rω/5
v = 1.77/5
v = 0.354 m/s
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Which refers to the pressure found in a water distribution system during normal consumption demands?
The term that refers to the pressure found in a water distribution system during normal consumption demands is called the normal operating pressure. The normal operating pressure of a water distribution system refers to the range of pressures that occur in the system during average consumption demands.
It is measured in pounds per square inch (psi).The normal operating pressure for a water distribution system is usually between 30 and 80 psi. The exact pressure range will depend on the specific system and the location. The normal operating pressure is important to maintain in order to ensure that the system operates effectively and efficiently. If the pressure is too high, it can cause damage to the pipes and fixtures, and if it is too low, it can result in poor water flow and inadequate supply to consumers. Therefore, it is important to regularly monitor and maintain the normal operating pressure of a water distribution system to ensure the system functions properly.
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a very long, thin wire has a uniform linear charge density of 91 µc/m. what is the electric field (in n/c) at a distance 8.0 cm from the wire? (enter the magnitude.)
Therefore, the electric field (magnitude only) at a distance of 8.0 cm from the wire is approximately 3.24 x 10^4 N/C.
The electric field of a long, thin wire can be determined by Coulomb's law. Coulomb's Law states that the electric force between two charges is directly proportional to the product of their charges and inversely proportional to the square of the distance between them.
For a long, thin wire, the electric field is given by;
E = λ/2πε₀r
Where;
λ = linear charge density = 91 µC/m,
ε₀ = permittivity of free space = 8.85 x 10^-12 C^2/Nm^2
r = distance from the wire = 8.0 cm = 0.08 m.
Substitute the given values into the formula to find the electric field;
E = (91 x 10^-6)/(2 x π x 8.85 x 10^-12 x 0.08)
E≈ 32433.8 N/C
E≈ 3.24 x 10^4 N/C.
Electric field refers to the force per unit charge that one object exerts on another object due to the electric charge present in the objects. It is a vector quantity and is measured in newtons per coulomb (N/C).
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a nucleus emits a gamma ray of energy 0.511 mev from a state that has a lifetime of 1.0 ns. (a) What is the uncertainty in the energy of the gamma ray? (b) The best gamma-ray detectors can measure gamma-ray energies to a precision of no better than a few eV. Will this uncertainty be directly measurable?
The uncertainty of energy of the gamma ray is 3.34 x 10⁻²⁵MeV.
Energy of the gamma ray emitted by the nucleus, E = 0.511 MeV
Lifetime of the nucleus, Δt = 1 ns = 10⁻⁹s
a) The expression for the uncertainty of energy of the gamma ray is given by,
ΔE = h/(2Δt)
ΔE = 6.67 x 10⁻³⁴/(2 x 10⁻⁹)
ΔE = 3.34 x 10⁻²⁵MeV
b) Detection of gamma rays is carried out photon by photon. By studying the impact they have on materials, gamma rays can be found.
Gamma rays can either drive an electron to a higher energy level (photoelectric ionization) or crash with it and scatter off of it like a pool ball.
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PLS ANWSER FAST WILL GIVE BRAINL!!!!
Explain to me in YOUR own words, how convection currents create a cycle? In other words, tell me how heat and cooling create a cycle.
Answer:
because it get the energy from the heat and the cold mixed together
Explanation:
At a certain instant, the earth, the moon, and a stationary 1470 kg spacecraft lie at the vertices of an equilateral triangle whose sides are km in length.
A. Find the magnitude of the net gravitational force exerted on the spacecraft by the earth and moon.
B. Find the direction of the net gravitational force exerted on the spacecraft by the earth and moon.
C. State the direction as an angle measured from a line connecting the earth and the spacecraft.
D. What is the minimum amount of work that you would have to do to move the spacecraft to a point far from the earth and moon? You can ignore any gravitational effects due to the other planets or the sun.
The magnitude of the net gravitational force exerted on the spacecraft by the Earth and Moon is approximately 4.60 x 10^12 N, and the direction of the net gravitational force is towards the center of the equilateral triangle, forming an angle of 60 degrees with the line connecting the Earth and the spacecraft.
A. The magnitude of the net gravitational force exerted on the spacecraft by the Earth and Moon can be calculated using the formula for gravitational force:
Gravitational force (F) = G * ((m1 * m2) / r^2)
Where G is the gravitational constant (6.67430 x 10^-11 N*m^2/kg^2), m1 and m2 are the masses of the objects (Earth, Moon, or spacecraft), and r is the distance between the objects.
Given:
Mass of Earth (mE) = 5.972 × 10^24 kg
Mass of Moon (mM) = 7.348 × 10^22 kg
Mass of spacecraft (mS) = 1470 kg
Length of the sides of the equilateral triangle (s) = km = 1,000 m
To find the magnitude of the net gravitational force on the spacecraft, we need to consider the gravitational forces between the spacecraft and both the Earth and the Moon. Since the triangle is equilateral, the distance between the spacecraft and each of the celestial bodies is equal to s.
F_Earth = G * ((mE * mS) / s^2)
F_Moon = G * ((mM * mS) / s^2)
Net gravitational force (F_net) = F_Earth + F_Moon
B. The direction of the net gravitational force on the spacecraft is toward the center of the equilateral triangle formed by the Earth, Moon, and spacecraft. This direction can be considered as the direction of the resultant force vector acting on the spacecraft.
C. To determine the direction as an angle measured from a line connecting the Earth and the spacecraft, we need to visualize the equilateral triangle. One way to define the angle is to measure it from the line connecting the Earth and the spacecraft to the line connecting the Earth and the Moon. This angle will be 60 degrees since the equilateral triangle has three equal angles of 60 degrees.
D. The minimum amount of work required to move the spacecraft to a point far from the Earth and Moon would be equal to the change in potential energy. As the spacecraft moves far away, the potential energy decreases. The work done is given by the formula:
Work (W) = ΔPE = PE_final - PE_initial
Since the potential energy depends on the distance from the Earth and Moon, moving the spacecraft to a point far away where the gravitational influence is negligible would result in a significant decrease in potential energy. The exact value of the work required would depend on the final location and the reference point for potential energy calculations.
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1. how many lines of symmetry does a square have?
2. how many lines of symmetry does a triangle have?
3. how many lines of symmetry does a pentagon have?
4. how many lines of symmetry does a hexagon?
Answer:
1) four lines
2) three lines
3) fives lines
4) six lines
Answer:
4
Explanation:
The plates on a vacuum capacitor have a radius of 3.0 mm and are separated by a distance of 1.5 mm. What is the capacitance of this capacitor?
A 70 cm diameter wheel accelerates uniformly about its center from 130 rpm to 280 rpm in 4 s. Determine (a) its angular acceleration, and (b) the radial and tangential components of the linear acceleration of a point on the edge of the wheel 2 s after it has started accelerating. Show all work and formulas for best rating.
A 70 cm diameter wheel accelerates uniformly about its center from 130 rpm to 280 rpm in 4 s, the angular acceleration of the wheel is 3.93 rad/s², and the radial component of linear acceleration is approximately 1.375 m/s², and the tangential component is approximately 165.86 m/s².
(a) The angular acceleration of the wheel can be determined using the formula:
Angular acceleration (α) = (Final angular velocity - Initial angular velocity) / Time
Given:
Initial angular velocity (ω₁) = 130 rpm
Final angular velocity (ω₂) = 280 rpm
Time (t) = 4 s
First, we need to convert the angular velocities from rpm to radians per second (rad/s):
ω₁ = 130 rpm * (2π rad/1 min) * (1 min/60 s) = 13.61 rad/s
ω₂ = 280 rpm * (2π rad/1 min) * (1 min/60 s) = 29.33 rad/s
Substituting the values into the formula for angular acceleration:
α = (29.33 rad/s - 13.61 rad/s) / 4 s = 3.93 rad/s²
Therefore, the angular acceleration of the wheel is 3.93 rad/s².
(b) To determine the radial and tangential components of the linear acceleration of a point on the edge of the wheel after 2 s, we can use the following formulas:
Radial acceleration (ar) = r * α
Tangential acceleration (at) = r * ω²
Given:
Radius of the wheel (r) = 70 cm / 2 = 35 cm = 0.35 m
Angular acceleration (α) = 3.93 rad/s²
Angular velocity (ω) at t = 2 s can be found using the formula:
ω = ω₁ + α * t
Substituting the values:
ω = 13.61 rad/s + 3.93 rad/s² * 2 s = 21.47 rad/s
Now we can calculate the radial and tangential components of linear acceleration:
ar = r * α = 0.35 m * 3.93 rad/s² ≈ 1.375 m/s²
at = r * ω² = 0.35 m * (21.47 rad/s)² ≈ 165.86 m/s²
Therefore, 2 seconds after starting acceleration, the radial component of the linear acceleration is approximately 1.375 m/s², and the tangential component is approximately 165.86 m/s².
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Three resistors R1= 3 Ω, R2= 5 Ω, and R3 = 2 Ω are connected with 150 V power supply. What is the voltage across R2 ?
a.75 V
b.15 V
c.10 V
d.32 V
If the resistors are in series, it's 75 volts.
If they're in parallel, it's 150 volts.
You never told us series or parallel.
to take up and store energy without reflecting or transmitting that energy
Answer:
Absorbed
Explanation:
Hope this helped!!!
A clerk moves a box of cans down an aisle by pulling on a strap attached to the box. The clerk pulls with a force of 185. 0 N at an angle of 25. 0 degrees with the horizontal. The box has a mass of 35. 0 kg, and the coefficient of kinetic friction between the box and the floor is 0. 450. Find the acceleration of the box
The force of friction is parallel to the ground surface and opposes the motion of the object. The force of friction acting on the object is determined by the equation:
f=f(k)FN
where FN is the normal force, f(k) is the coefficient of kinetic friction, and f is the force of friction acting on the object.
The formula for acceleration is:a = Fnet / mWhere Fnet is the net force acting on the object and m is the mass of the object.The forces acting on the object in this example are the force of gravity and the force applied by the clerk.
[tex]F_gravity = mg = (35.0 kg) (9.81 m/s^2) = 343.5 N[/tex]
The force applied by the clerk can be resolved into horizontal and vertical components:
[tex]F_applied_horiz = F_applied * cos(25.0) = (185.0 N) cos(25.0) = 166.8 NF_applied_vert = F_applied * sin(25.0) = (185.0 N) sin(25.0) = 78.9 N[/tex].
The normal force is equal and opposite to the force of gravity acting on the object:
[tex]FN = F_gravity = 343.5 N[/tex]
The force of friction acting on the object is:
[tex]f = f(k) * FN = (0.450) (343.5 N) = 154.6 N[/tex]
The net force acting on the object is:
[tex]Fnet = F_applied_horiz - f = 166.8 N - 154.6 N = 12.2 N[/tex]
The acceleration of the object is:
[tex]a = Fnet / m = 12.2 N / 35.0 kg = 0.349 m/s^2[/tex]
Therefore, the acceleration of the box is 0.349 m/s².
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1) Si un mango cae a una velocidad de 75m/s y tarda 26 seg. en caer. ¿ Cuál habrá sido la velocidad con qué el mango llegó al suelo?
Answer:
El mango llega al suelo a una velocidad de 329.982 metros por segundo.
Explanation:
El mango experimenta un movimiento de caída libre, es decir, un movimiento uniformemente acelerado debido a la gravedad terrestre, despreciando los efectos de la viscosidad del aire y la rotación planetaria. Entonces, la velocidad final del mango, es decir, la velocidad con la que llega al suelo, se puede determinar mediante la siguiente fórmula cinemática:
[tex]v = v_{o}+g\cdot t[/tex] (1)
Donde:
[tex]v_{o}[/tex] - Velocidad inicial, en metros por segundo.
[tex]v[/tex] - Velocidad final, en metros por segundo.
[tex]g[/tex] - Aceleración gravitacional, en metros por segundo al cuadrado.
[tex]t[/tex] - Tiempo, en segundos.
Si sabemos que [tex]v_{o} = -75\,\frac{m}{s}[/tex], [tex]g = -9.807\,\frac{m}{s^{2}}[/tex] y [tex]t = 26\,s[/tex], entonces la velocidad final del mango es:
[tex]v = v_{o}+g\cdot t[/tex]
[tex]v = -75\,\frac{m}{s}+\left(-9.807\,\frac{m}{s} \right)\cdot (26\,s)[/tex]
[tex]v = -329.982\,\frac{m}{s}[/tex]
El mango llega al suelo a una velocidad de 329.982 metros por segundo.
When you think of the word "respiration," you might think about the process of breathing, which is actually called ventilation. (The respiratory system consists of the windpipe, lungs, etc.) How is breathing related to cellular respiration?
Answer:
Breathing and cellular respiration are complementary processes that enable the body to produce energy by taken in oxygen which is required for the chemicals contained in food to be broken down there by producing, energy, water and carbon dioxide. The breathing and cellular respiration process also enables the removal of the produced carbon dioxide finally through nose and/or mouth
Explanation:
In cellular respiration, glucose molecules in the presence of oxygen gas are broken down into carbon dioxide and water aerobically in living cells, to release energy and produce ATP as follows;
C₆H₁₂O₆ + 6O₂ → 6CO₂ + 6H₂O
During breathing, oxygen is inhaled into the lungs from the atmosphere and carbon dioxide is exhaled from the longs into the atmosphere, such that the carbon dioxide produced during cellular respiration is transported out of the body through the veins respiratory system, from where is passes out through the nose, while oxygen used in cellular respiration comes from breathing in oxygen into the respiratory system
The oxygen is then transported to the cells through by blood in the blood vessels of the circulatory system to the cells, where the cells use the oxygen for cellular respiration to release energy.
A 1.80 kg monkey wrench is pivoted 0.250 m from its center of mass and allowed to swing as a physical pendulum. The period for small-angle oscillations is 0.940 s. Correct Correct answer is shown. Your answer 0.099 kg⋅m 2
was either rounded differently or used a different number of significant figures than required for this part. Part B If the wrench is initially displaced 0.400rad from its equilibrium position, what is the angular speed of the wrench as it passes through the equilibrium position? Express your answer in radians per second.
The angular speed of the wrench as it passes through the equilibrium position is approximately 3.17 radians per second.
To calculate the angular speed of the wrench as it passes through the equilibrium position, we can use the formula for the period of a physical pendulum, which is T = 2π√(I/mgd), where T is the period, I is the moment of inertia, m is the mass, g is the acceleration due to gravity, and d is the distance from the pivot to the center of mass.
Given:
Mass of the wrench (m): 1.80 kg
Period of small-angle oscillations (T): 0.940 s
Displacement from equilibrium (θ): 0.400 rad
First, we need to find the moment of inertia (I) of the wrench. The correct answer provided is 0.099 kg·m^2.
Now, we can use the formula T = 2π√(I/mgd) to solve for the angular speed (ω).
Rearranging the formula:
T = 2π√(I/mgd)
√(I/mgd) = T / (2π)
I/mgd = (T / (2π))^2
ω = √(gd/I)
Substituting the given values:
g = 9.8 m/s^2 (acceleration due to gravity)
d = 0.250 m (distance from pivot to center of mass)
I = 0.099 kg·m^2 (moment of inertia)
ω = √(9.8 * 0.250 / 0.099) ≈ 3.17 rad/s
Therefore, the angular speed of the wrench as it passes through the equilibrium position is approximately 3.17 radians per second.
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Which situation has the greatest magnitude of net force along incline? (By magnitude we mean |F|.)
1. the net force is always the same for an incline, f = mgsinθ
2. when the cart is going uphill
3. the net force is always the same for an incline, f = mgcosθ
4. when the cart is going downhill
The situation with the greatest magnitude of net force along the incline is when the cart is going uphill (Option 2).
When an object is on an inclined plane, the net force acting along the incline can be determined by resolving the force of gravity into components parallel and perpendicular to the incline.
For Option 2 (cart going uphill), the force of gravity component acting parallel to the incline helps to counteract the force required to move the cart upwards.
In this case, the net force is the sum of the force of gravity component parallel to the incline and the applied force (if any) in the same direction.
The magnitude of the net force (|F|) in this case can be calculated using the formula:
|F| = |mgsinθ + F_applied|
where m is the mass of the cart, g is the acceleration due to gravity, θ is the angle of the incline, and F_applied is any additional applied force.
In this situation, the force of gravity component parallel to the incline is working against the motion of the cart, resulting in a greater net force compared to the other options.
The cart going uphill (Option 2) experiences the greatest magnitude of net force along the incline.
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1. boiling point of water
water vapor
2. formed by condensation
sun
3. freezing point of water
clouds
4. gas form of water
precipitation
5. main cause of evaporation
32° F
6. rain, sleet, snow, or hail
100° C
Answer:
what is the question. . .
Answer:
see the answer above
Explanation:
PLEASE HELP WILL MARK BRAINLIEST PLS
Answer: 2
Explanation:
A guitar string 61 cm long vibrates with a standing wave that has three antinodes.
1-Which harmonic is this? Express your answer using one significant figure.
2-What is the wavelength of this wave? Express your answer using two significant figures.
1. The length of the guitar string can be related to the wavelength by the following equation: L = (nλ) / 2, where n is the harmonic number, and λ is the wavelength of the wave.
According to the problem, the length of the guitar string is 61 cm, and the wave has three antinodes.
We can therefore substitute these values into the equation and solve for n:61 cm = (3λ) / 2λ = (2 × 61 cm) / 3λ = 40.7 cm (rounded to one significant figure)
Therefore, the wavelength is 40.7 cm (rounded to two significant figures).
2. The wavelength: We can now use the above value of λ and the formula
v = fλ to calculate the frequency of the wave.
However, the velocity of a wave in a string is given by the formula
v = √(T/μ), where T is the tension in the string and μ is its linear mass density (mass per unit length).
These values are not given in the problem, so we cannot solve for frequency.
Instead, we can use another equation that relates the wavelength to the length of a string:λ = 2L / n,
where L is the length of the string and n is the harmonic number. Substituting the given values: L = 61 cm, n = 3λ = 40.7 cm (from part a).
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True or False: Opaque materials allow no visible light through them.
PLEASE ANSWER QUICKLY.
Answer:
This is true.
A sled weighing 200 N is held in place by static friction on a 15? incline.
(a) What is the coefficient of static friction between the sled and the incline?
(b) The sled is now pulled up the incline at constant speed by a child weighing 500 N, pulling with a force of 100 N. The rope makes an angle of 30? with respect to the incline and has negligible mass. What is the coefficient of kinetic friction between the sled and the incline?
Static friction keeps a sled weighing 200 N in place on a 15.
(a) The coefficient of static friction between the sled and the incline is approximately 0.27.
(b) The coefficient of kinetic friction between the sled and the incline is approximately 0.443.
To solve this problem, we'll use the following formulas:
For static friction:
[tex]\[F_\text{static friction} = \mu_s \cdot N\][/tex] = μ_s * N
For kinetic friction:
[tex]\[F_\text{kinetic friction} = \mu_k \cdot N\][/tex]
Where:
[tex]\[F_\text{static friction}[/tex] is the force of static friction,
[tex]\[F_{\text{kinetic friction}}[/tex] is the force of kinetic friction,
[tex]\[\mu_s\][/tex] is the coefficient of static friction,
[tex]\[\mu_k\][/tex] is the coefficient of kinetic friction, and
N is the normal force.
(a) To find the coefficient of static friction between the sled and the incline when it is held in place, we need to determine the normal force acting on the sled.
The normal force (N) is equal to the component of the weight of the sled perpendicular to the incline. In this case, the incline is at an angle of 15 degrees, so the normal force can be calculated as:
N = mg * cos(theta)
where m is the mass of the sled and g is the acceleration due to gravity (approximately 9.8 m/s²).
Given that the weight of the sled is 200 N, we can find its mass (m) using the formula:
weight = mass * gravity
200 N = m * 9.8 m/s²
Solving for m:
[tex]m = \frac{200 N}{9.8 m/s^2} \approx 20.41 kg[/tex]
Now, we can calculate the normal force:
N = 20.41 kg * 9.8 m/s² * cos(15 degrees)
N ≈ 195.43 N
Next, we can use the formula for static friction to find the coefficient of static friction ([tex]\ensuremath{\mu s}[/tex]):
[tex]F_\text{static friction} = \mu_s \cdot N[/tex]
The force of static friction is equal to the component of the weight of the sled parallel to the incline, which is given by:
[tex]F_\text{parallel} = mg \cdot \sin(\theta)[/tex]
[tex]F_parallel = 20.41 kg * 9.8 m/s² * sin(15 degrees)[/tex]
[tex]F_parallel[/tex] ≈ 52.87 N
Since the sled is held in place, the force of static friction is equal to the force parallel to the incline:
[tex]F_static_friction[/tex] = 52.87 N
Plugging this into the formula:
52.87 N = [tex]\ensuremath{\mu s}[/tex] * 195.43 N
Solving for [tex]\ensuremath{\mu s}[/tex]:
[tex]\begin{equation}\mu_s = \frac{52.87\text{ N}}{195.43\text{ N}} \approx 0.27\end{equation}[/tex]
Therefore, the coefficient of static friction between the sled and the incline is approximately 0.27.
(b) When the sled is pulled up the incline at a constant speed, the force of static friction changes to the force of kinetic friction. The force of kinetic friction is given by:
[tex]\begin{equation}F_\text{kinetic friction} = \mu_k N\end{equation}[/tex]
In this case, the force pulling the sled up the incline is 100 N, and the angle between the rope and the incline is 30 degrees. We can calculate the force parallel to the incline:
[tex]F_parallel = 100 N * cos(30 degrees) = 86.60 N[/tex]
To find the coefficient of kinetic friction ([tex]$\mu_k$[/tex]), we need to determine the normal force (N) acting on the sled.
The normal force can be calculated as before:
[tex]$N = mg \cos(\theta)$[/tex]
[tex]$N = 20.41\ \text{kg} \times 9.8\ \text{m/s}^2 \times \cos(15^\circ)$[/tex]
N ≈ 195.43 N
Now, we can plug in the values into the formula for kinetic friction:
86.60 N = [tex]$\mu_k$[/tex] * 195.43 N
[tex]\[\mu_k = \frac{86.60 \text{ N}}{195.43 \text{ N}} \approx 0.443\][/tex]
Therefore, the coefficient of kinetic friction between the sled and the incline is approximately 0.443.
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A measuring station detects an earthquake has occurred. The P-waves arrive at 15 km/s and the S-waves arrive at 10 km/s, with a time delay between them of 10 seconds. How far is the epicenter of the earthquake from the measuring station?
The epicenter of the earthquake is approximately 300 kilometers away from the measuring station.
How to solve for the distance
To determine the distance to the epicenter of the earthquake, we can use the formula:
Distance = Velocity × Time
First, let's calculate the time it took for the P-waves to reach the measuring station:
Time (P-wave) = Distance / Velocity (P-wave) = ? / 15 km/s
Next, we'll calculate the time it took for the S-waves to reach the measuring station:
Time (S-wave) = Distance / Velocity (S-wave) = ? / 10 km/s
Given that there is a time delay of 10 seconds between the arrival of the P-waves and S-waves, we can set up the following equation:
Time (S-wave) - Time (P-wave) = 10 seconds
Now, let's substitute the formulas for time and solve for distance:
(Distance / 10 km/s) - (Distance / 15 km/s) = 10 seconds
To simplify the equation, we can find the common denominator, which is 30 km/s:
[(3 * Distance) - (2 * Distance)] / (30 km/s) = 10 seconds
Distance / (30 km/s) = 10 seconds
Multiplying both sides of the equation by 30 km/s:
Distance = 10 seconds * 30 km/s
Distance = 300 kilometers
Therefore, the epicenter of the earthquake is approximately 300 kilometers away from the measuring station.
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In 10 billion years, the peak of the spectrum emitted from the cosmic microwave background radiation (CMB) will ____. A) remain the same. B) shift to shorter wavelengths. C) shift to longer wavelengths. D) continue to redshift until it reaches infinitely long wavelengths
In 10 billion years, the peak of the spectrum emitted from the cosmic microwave background radiation (CMB) will shift to longer wavelengths.
What is cosmic microwave background radiation (CMB)?
The cosmic microwave background radiation (CMB) refers to a pervasive form of electromagnetic radiation that fills the entire universe. It is considered to be the afterglow of the Big Bang, the event that marked the beginning of our universe approximately 13.8 billion years ago.
This phenomenon is known as cosmological redshift. As the universe continues to expand, the wavelengths of the CMB radiation will stretch, causing the peak of the spectrum to shift toward longer wavelengths. This is consistent with the observed expansion of the universe and the redshift of light from distant galaxies. Therefore, the correct answer to In 10 billion years, the peak of the spectrum emitted from the cosmic microwave background radiation (CMB) is option C i.e. shift to longer wavelengths.
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A 3. 00-kilogram mass is thrown vertically upward
with an initial speed of 9. 80 meters per second.
What is the maximum height this object will
reach? [Neglect friction. ]
(1) 1. 00 m (3) 9. 80 m
(2) 4. 90 m (4) 19. 6 m
A 3.00-kilogram mass is thrown vertically upward with an initial speed of 9.80 meters per second. [Neglect friction.]When an object is thrown vertically upward, the initial velocity is positive, and the acceleration due to gravity is negative, directed downward.
We can use the following formula to calculate the maximum height, also known as the maximum displacement, reached by the object:
[tex]v_f^2 = v_i^2 + 2ad[/tex]
where v_f is the final velocity, [tex]v_i[/tex] is the initial velocity, a is the acceleration, and d is the displacement. At the maximum height, the final velocity is zero, so we can simplify the equation to:
[tex]d = (v_f^2 - v_i^2) / (2a)[/tex]
Substituting the given values:
[tex]d = (0 - 9.80^2) / (2 x -9.81)d = 4.90 m[/tex]
Therefore, the maximum height reached by the object is 4.90 m.
Hence, the correct option is (2) 4.90 m.Note: In the above calculations, a negative value is used for the acceleration due to gravity, because it is acting downward, while the upward direction is taken as positive.
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calculate the mass of each of a solid with a volume of 1.68ft^3 and a density of 9.2g/ml
The mass of the solid with a volume of 1.68 ft and density of 9.2g/ml is 14.85 kilograms.
To calculate the mass of the solid, we need to use the formula: Mass = Density × Volume.
First, we need to convert the volume from cubic feet to milliliters, as the density is given in grams per milliliter.
1 cubic foot is equal to 28,316.8466 milliliters (ml). So, the volume of the solid is 1.68 ft^3 × 28,316.8466 ml/ft^3 = 47,594.768 ml.
Now, we can calculate the mass by multiplying the density (9.2 g/ml) by the volume (47,594.768 ml).
Mass = 9.2 g/ml × 47,594.768 ml = 437,186.38 grams.
Finally, we convert grams to kilograms by dividing by 1,000, resulting in a mass of approximately 437.19 kilograms or rounded to 14.85 kilograms.
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when a solid melts into a liquid, do the chemical bonds between molecules expand or break? I thought that the bonds would break when the solid is broken(like when glass breaks). When a solid melts into a liquid, wouldn't the bond between them just grow weaker and stretch out a bit more?
Pls detail.
Answer: The added heat or thermal energy leads to the molecular bonds breaking which leads to a change of state of solid to a liquid, then eventually gas. Solids melt when they absorb enough thermal energy.
Explain how radioactive decay works for measuring the absolute age of ancient objects.
Answer: Radioactive decay is the breakdown of a material into stable isotopes which are used for determining the age of the ancient material.
Explanation:
The radioactive decay is a natural process in which an ancient or old material whether in the form of rock, object or fossil break down into elements. Carbon 14 is an unstable isotope which decays to produce stable elements, the dating procedure uses these stable elements and the rate of decay of the isotopes to determine the age of absolute ancient of the objects but exact age cannot be determined just an approximation can be accepted.
You push on a 30 kg box with a force of 120 N. What is the acceleration of the box2
Answer:
6
Explanation:
120/30=6
a 200 g mass is placed on the meter stick 20 cm from the fulcrum. a 170 g mass is used to balance the system. how far will it have to be located from the fulcrum to keep the system in balance?
The 170 g mass will need to be located 23.53 cm from the fulcrum to keep the system in balance.
To determine the distance at which the 170 g mass needs to be located to balance the system, we can use the principle of moments.
The principle of moments states that the sum of the clockwise moments about a point is equal to the sum of the counterclockwise moments about the same point.
In this case, we have a 200 g mass placed 20 cm from the fulcrum and a 170 g mass whose position we need to find.
Let's call the distance of the 170 g mass from the fulcrum x cm.
The moment of the 200 g mass is given by the product of its mass (0.2 kg) and its distance from the fulcrum (20 cm):
Moment1 = 0.2 kg × 20 cm
Moment1 = 4 kg·cm.
The moment of the 170 g mass will be equal and opposite to the moment of the 200 g mass to keep the system in balance:
Moment2 = -4 kg·cm.
We can express the moment of the 170 g mass in terms of its mass and its distance from the fulcrum:
Moment2 = (0.17 kg) × (x cm).
Setting the moments equal to each other, we have:
-4 kg·cm = (0.17 kg) × (x cm).
Solving for x, we find:
x cm = -4 kg·cm / (0.17 kg)
x cm ≈ -23.53 cm.
Since distance cannot be negative, the 170 g mass needs to be located approximately 23.53 cm from the fulcrum to keep the system in balance.
To keep the system in balance, the 170 g mass needs to be located approximately 23.53 cm from the fulcrum.
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1. meaning of heat and temperature
2. differences between heat and temperature
Answer:
1.heat is a form of 1.temperature is a form
energy that gives of energy that is used to
sensation of measure hotness or
warmth. or coldness of body.
2.its si unit is 2.its si unit is kelvin.
joule.
how many times greater is the size of our galaxy than our solar system
We can deduce here that our galaxy, the Milky Way is about 100 million times larger than the solar system.
What is solar system?The solar system refers to the collection of celestial bodies that are gravitationally bound to the Sun, our star. It includes the Sun, planets, moons, asteroids, comets, and other smaller objects that orbit the Sun.
The solar system formed about 4.6 billion years ago from a rotating cloud of gas and dust called the solar nebula. It represents a complex and diverse system that has been the subject of extensive exploration and study by space probes, telescopes, and missions.
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