a 0.520 kg mass suspended from a spring oscillates with a period of 1.50 s. how much mass must be added to the object to change the period to 2.10 s?

Answers

Answer 1

To change the period from 1.50 s to 2.10 s, you need to add 0.741 kg to the 0.520 kg mass, making the total mass 1.261 kg.

The period of oscillation for a mass-spring system is given by the formula T = 2π√(m/k), where T is the period, m is the mass, and k is the spring constant. Since the spring constant remains the same, we can write the equation for both cases:
T1 = 2π√(m1/k) and T2 = 2π√((m1+m2)/k)
Dividing the second equation by the first one, we get:
T2/T1 = √((m1+m2)/m1)
Solving for m2, we get:
m2 = m1((T2/T1)^2 - 1)
Plugging in the values: m1 = 0.520 kg, T1 = 1.50 s, and T2 = 2.10 s, we find:
m2 = 0.520((2.10/1.50)^2 - 1) = 0.741 kg
So, 0.741 kg must be added to the 0.520 kg mass to change the period to 2.10 s.

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Related Questions

in the photoelectric effect, electrons are never emitted from a metal if the frequency of the incoming light is below a certain threshold value. part a why is this true?

Answers

The photoelectric effect refers to the emission of electrons from a metal surface when it is exposed to electromagnetic radiation, such as light. However, electrons are only emitted from the metal surface if the frequency of the incoming light is above a certain threshold value.

This is because the energy of a photon is directly proportional to its frequency, and only photons with sufficient energy can overcome the binding energy of the metal atoms and liberate electrons. If the frequency of the incoming light is below the threshold value, the energy of the photons is not enough to cause electron emission. Therefore, the electrons are never emitted from the metal if the frequency of the incoming light is below this threshold value.
In the photoelectric effect, electrons are emitted from a metal surface when it is exposed to light with a sufficient frequency. This is because the energy of the incoming light is directly proportional to its frequency. When the frequency of light is below a certain threshold value, its energy is not enough to overcome the binding energy of the electrons within the metal. As a result, the electrons cannot gain enough energy to be ejected from the metal surface. Therefore, it is essential for the light to have a frequency above the threshold value to initiate the photoelectric effect.

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A deuterium atom is a hydrogen atom with a neutron added to its nucleus.Approximate the binding energy of this nucleus, given that the mass of the deuterium atom is 2.014102 u and the masses of a hydrogen atom and a neutron are 1.007825 u and 1.008665 u, respectively.
A)2 ke V
B)2 Me V
C)2 Ge V
D)2 e V

Answers

The mass of a deuterium atom. In this case, the equation would be E = 1.007825 + 1.008665 - 2.014102, which equals 2 MeV.

What is deuterium atom?

Deuterium is an isotope of hydrogen. It consists of one proton and one neutron in its nucleus, making it an atom with twice the atomic mass of ordinary hydrogen. Deuterium is naturally abundant in the environment, and can be found in seawater, where it accounts for approximately 0.01% of all hydrogen atoms. It is also used in nuclear reactors as a fuel. Deuterium has unique properties compared to ordinary hydrogen, including higher boiling and melting points and different chemical properties. It has been used in research to study chemical reactions, and has potential applications in medicine, such as detecting cancerous cells. In addition, it is being explored as a potential fuel source for future space missions.

The binding energy of a deuterium atom is approximately 2 MeV. This can be calculated using the equation E = m(H) + m(n) - m(D), where m(H) is the mass of a hydrogen atom, m(n) is the mass of a neutron, and m(D) is the mass of a deuterium atom. In this case, the equation would be E = 1.007825 + 1.008665 - 2.014102, which equals 2 MeV.


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a negatively charged rubber rod is brought close to but does not make contact with sphere x. sphere y is then brought close to x on the side opposite to the rubber rod. y is allowed to touch x and then is removed some distance away. the rubber rod is then moved far away from x and y. what are the final charges on the spheres?

Answers

The final charges on the spheres: Sphere x will have a positive charge and sphere y will have a negative charge.

When the negatively charged rubber rod is brought close to sphere x, the electrons in x are repelled and move away, leaving it with a positive charge. When sphere y is brought close to x on the opposite side of the rubber rod, it gets induced with a positive charge due to the presence of the positively charged x.

However, when y touches x, some electrons from x transfer to y, leaving x with a net positive charge and y with a net negative charge. When y is removed, it retains the negative charge. When the rubber rod is moved far away from x and y, there is no further effect on their charges, so x remains positive and y remains negative. Therefore, the final charges on the spheres are: x with a positive charge and y with a negative charge.

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A negatively charged rod is held near a metal can that rests on a dry wood table. If you touch the opposite side of the can momentarily with your finger, the can is then.

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The can will be charged with the same polarity as the rod. This is because electric charges move from areas of higher potential (the negatively charged rod) to areas of lower potential (the can).

What is polarity?

Polarity is the way in which certain molecules or ions are arranged due to the direction of their electrical charge. A molecule's polarity is determined by the arrangement of its atoms and the electronegativity of the atoms within the molecule. Molecules with an equal distribution of charge are non-polar, while molecules that have a slightly positive charge on one end and a slightly negative charge on the other are polar.

When you touch the opposite side of the can, you provide a path for the charge to flow from the rod to the can, thus transferring the charge and causing the can to become charged with the same polarity as the rod.

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how many moles of gas(air) are in the lungs of the average adult with the lung capacity of 3.8 L. Assume the person is at 1.00 atm pressure and has a normal body temperature of 37 degrees celsius.

Answers

The number of moles of gas (air) in the lungs of the average adult with a lung capacity of 3.8 L is 0.15moles.

Given:

Pressure, P = 1 atm

Temperature, T = 37°

Volume, V = 3.8 L

From the ideal gas equation:

PV = nRT

Here,

V = Volume

n = Number of moles

R = Ideal gas constant

T = Temperature in Kelvin

V = 3.8 L

Convert temperature into kelvin:

T(K) = T(°C) + 273.15

T = 37 °C + 273.15 = 310.15 K

The number of moles (n) is:

PV = nRT

n = (PV) / (RT)

n = (1.00 atm × 3.8 m³) / (8.314 J/(mol·K) × 310.15 K)

n = 0.15 mol

Hence, the number of moles of gas (air) in the lungs of the average adult with a lung capacity of 3.8 L is  0.15  moles.

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For the road test, an applicant must have a vehicle with a valid registration, a valid inspection sticker and what other document?

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For the road test, an applicant must have a vehicle with a valid registration, a valid inspection sticker and a valid proof of insurance.

Proof of insurance is an important document that demonstrates that the vehicle being used for the test is covered by an insurance policy. This document confirms that the vehicle is insured against liability and damage. The insurance policy should be valid and in the name of the applicant or their parent or guardian. The applicant must present the proof of insurance to the examiner before the road test begins.

The insurance policy must also meet the minimum requirements of the state in which the test is being taken. It is important for the applicant to ensure that the vehicle they are using for the road test is in good working condition, registered, inspected, and insured, as failure to provide any of these documents may result in disqualification from the test.

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Choose all of the following that can be used as basis vectors for the polarization state of a photon: (I) vertical and horizontal polarization states (II) 450 and – 45° polarization states (III) 30º and —60° polarization states (a) (I) and (II) only (b) (I) and (III) only (c) (II) and (III) only (d) (I), (II) and (III) 11. Choose all of the following pairs of basis vectors that are orthogonal to each other: (I) vertical and horizontal polarization states (II) 450 and – 450 polarization states (III) 30° and -60° polarization states (a) (I) and (II) only (b) (I) and (III) only (c) (II) and (III) only (d) (I), (II) and (III) 12. Choose all of the following statements that are correct: (I) 0° polarization is the same as 180° polarization. (II) 120° polarization is the same as -60° polarization. (III) 45° polarization is the same as – 45° polarization. (a) (I) and (II) only (b) (I) and (III) only (c) (I), (II) and (III)

Answers

The correct option is (c) (I), (II) and (III). 0° polarization is the same as 180° polarization, 120° polarization is the same as -60° polarization, and 45° polarization is the same as – 45° polarization.

What is polarization?

Polarization is a phenomenon in which certain physical and/or electromagnetic properties of a system become restricted to only one direction or orientation. It is a result of the interaction of waves of the same frequency, and is often observed in light, sound, and radio waves. Polarization is an important factor in many optical and communication systems, as it can be used to filter out unwanted signals and improve the efficiency of transmission. Polarization can also be relevant to the fields of electromagnetism, acoustics, and seismology.

Therefore, the correct option is C.
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a copper cylinder has a mass of 76.8 g and a specific heat of 0.092 cal/g degree celsius. it is heated to 86.5 degrees celsius and then put in 68.7 g of turpentine whose temperature is 19.5 degrees celsius. the final temperature of the mixture is 31,9 degrees celsius. what is the total heat change for the copper, in calories?

Answers

Therefore, the total heat change for the copper cylinder is 426.03 calories.

To calculate the total heat change for the copper cylinder, we can use the formula:

Q = m * c * deltaT

where Q is the heat change, m is the mass of the object, c is the specific heat, and deltaT is the change in temperature.

First, we can calculate the heat change for the copper cylinder when it is heated from an initial temperature of T1 = 25 degrees Celsius to a final temperature of T2 = 86.5 degrees Celsius.

Q1 = m1 * c1 * deltaT1

where m1 is the mass of copper cylinder, c1 is the specific heat of copper, and deltaT1 is the temperature change of copper.

m1 = 76.8 g

c1 = 0.092 cal/g degree Celsius

deltaT1 = (86.5 - 25) degrees Celsius = 61.5 degrees Celsius

Substituting the values in the above formula, we get:

Q1 = (76.8 g) * (0.092 cal/g degree Celsius) * (61.5 degrees Celsius) = 426.03 cal

Next, we can calculate the heat change for the turpentine when it is heated from an initial temperature of T3 = 19.5 degrees Celsius to a final temperature of T2 = 31.9 degrees Celsius.

Q2 = m2 * c2 * deltaT2

where m2 is the mass of turpentine, c2 is the specific heat of turpentine, and deltaT2 is the temperature change of turpentine.

m2 = 68.7 g

c2 = 0.49 cal/g degree Celsius (specific heat of turpentine)

deltaT2 = (31.9 - 19.5) degrees Celsius = 12.4 degrees Celsius

Substituting the values in the above formula, we get:

Q2 = (68.7 g) * (0.49 cal/g degree Celsius) * (12.4 degrees Celsius) = 406.92 cal

Since heat lost by the copper is equal to heat gained by the turpentine,

Q1 = - Q2

Total heat change for the copper = Q1 = 426.03 cal (rounded to 3 significant figures)

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A 100 kg cart accelerates from 5 m/s to 10 m/s. Compare the cart's final kinetic energy to its initial kinetic energy.A. the same B. two times as great C. four times as great D. one-half as great

Answers

The cart's final kinetic energy is four times as great as its initial kinetic energy in joules.

The kinetic energy of an object is given by the formula KE = 1/2 mv^2, where m is the mass of the object and v is its velocity. The unit of kinetic energy is   (J). The initial kinetic energy of the cart is KE1 = 1/2 (100 kg), where velocity is (5 m/s)^2 = 1250 J. The final kinetic energy of the cart is KE2 = 1/2 (100 kg)(10 m/s)^2 = 5000 J. Therefore, the final kinetic energy is four times as great as the initial kinetic energy.

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A toy car and a toy truck at rest have a compressed spring in between them. The truck has more mass than the car. The spring is released and the two toy vehicles move in opposite directions. Which of the following is true if friction is ignored? OA. The magnitude of the truck's momentum is smaller than the car's. OB The magnitude of the truck's momentum is larger than the car's. ос. It is not possible to tell which has more momentum without knowing the speeds. OD. The magnitude of the truck's momentum is the same as the car's.

Answers

Option B, which states that the magnitude of the truck's momentum is larger than the car's.



The total momentum of the system is conserved in the absence of external forces.

The spring, which was compressed initially, stores potential energy that is released as kinetic energy when the spring is released.

As the truck has more mass than the car, it will experience a smaller acceleration due to the same force from the spring.

Therefore, the car will move faster than the truck, but the truck will have a larger momentum due to its larger mass.



Summary: When a toy car and a toy truck at rest have a compressed spring in between them and the spring is released, the magnitude of the truck's momentum is larger than the car's, given that there is no friction.

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A 38.1g sample of copper at 99.8C is dropped into a beaker containing 205g of water at 18.5C. Assume no heat is lost to the environment. If the heat capacity of water and copper are 4.184j/g*C, respectively. What is the final temperature of the water and copper when thermal equilibrium is reached?

Answers

The final temperature can be calculated using the conservation of energy formula. Solving the equation yields a final temperature of approximately 21.9°C.

After simplification, the equation becomes:

14.6763T_final - 1414.0294 = -864.22T_final + 16106.54

Combining like terms, we get:

878.8963T_final = 17520.5694

Dividing both sides by 878.8963, we get:

T_final = 19.925°C

Therefore, the final temperature of the water and copper when thermal equilibrium is reached is approximately 19.925°C.

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a 5-kg block moving to the right has a completely inelastic collision with a 10-kg block that is initially at rest. after the collision the stuck-together blocks are moving to the right at 4 m/s

Answers

When two objects collide, momentum is conserved. In this case, the momentum of the 5-kg block before the collision is: P1 = m1v1 = 5 kg x (some velocity to the right)

The momentum of the 10-kg block before the collision is:

P2 = m2v2 = 0 kg x 0 m/s = 0

After the collision, the two blocks stick together and move to the right at a velocity of 4 m/s. Therefore, the momentum of the combined blocks after the collision is:

Pf = (m1 + m2)vf = 15 kg x 4 m/s = 60 kg m/s

Since momentum is conserved, we can set the initial momentum equal to the final momentum:

P1 + P2 = Pf

5 kg x (some velocity to the right) + 0 = 60 kg m/s

Solving for the initial velocity of the 5-kg block, we get:

(some velocity to the right) = 12 m/s

Therefore, the initial velocity of the 5-kg block before the collision was 12 m/s to the right.

we have a completely inelastic collision between a 5-kg block moving to the right and a 10-kg block initially at rest. After the collision, the stuck-together blocks have a combined mass of 15 kg and are moving to the right at 4 m/s.

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A piece of metal with a mass of 25.4g is heated in boiling water to 100.0C and then dropped into a beaker contains 65.0g of water at 20.00C. When thermal equilibrium is reached the final temperature is 21.66C. Assume that no heat is lost to the environment. Calculate the heat capacity of the metal

Answers

The heat capacity of the metal is 0.23 J/g°C.

The heat lost by the metal is equal to the heat gained by the water. We can calculate the heat gained by the water using the formula Q = m * C * ΔT, where Q is the heat gained by the water, m is the mass of the water, C is the specific heat capacity of water, and ΔT is the change in temperature. We know the mass and temperature change of the water, and the specific heat capacity of water is a constant value of 4.184 J/g°C. Solving for Q, we get 1397.768 J. This is equal to the heat lost by the metal. Dividing this value by the mass of the metal and its temperature change, we get a heat capacity of 0.23 J/g°C for the metal.

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which of the following is not part of the growing chain of evidence that makes many astronomers suspect there is a black hole at the very center of the milky way galaxy?

Answers

A white dwarf star orbiting the center of the galaxy: While a white dwarf star orbiting the center of the galaxy could indicate the presence of a black hole, there is no direct evidence that suggests this is the case.

What is galaxy?

Galaxy is a term used to describe a large group of stars, dust, gas, and other objects in space held together by their mutual gravitational attraction. Galaxies are among the largest structures in the universe and can range in size from a few thousand light-years to hundreds of thousands of light-years across. There are several types of galaxies, including spiral, elliptical, and irregular, with each type having its own distinct properties.

Other evidence such as X-ray emissions, a large concentration of dust and gas, and a large gravitational pull from the center of the galaxy are all indicators that a black hole may exist at the center of the Milky Way.

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Complete Question:

Which of the following is not part of the growing chain of evidence that makes many astronomers suspect there is a black hole at the very center of the milky way galaxy?

A. X-ray emissions from the center of the galaxy.

B. A large concentration of dust and gas near the center of the galaxy.

C. A white dwarf star orbiting the center of the galaxy.

D. A large gravitational pull from the center of the galaxy.

Find the resultant of these two vectors 2.00 x 10^2 units due east and 4.00x10^2 units 30.0 north of west

Answers

The resultant vector is [tex]-2.00 \times 10^2[/tex] units due west and [tex]4.00 \times 10^2[/tex] units 30.0 degrees north of east.

What is vector?

A vector is a mathematical object that is used to represent a quantity with both magnitude and direction. Vectors are typically denoted by a set of ordered numbers known as components. These components represent the magnitude and direction of the vector in a given coordinate system, such as the Cartesian coordinate system. Vectors can be used to represent physical phenomena, such as velocity, force, and acceleration, and can be used to model the behavior of complex systems.

The x-component of the first vector is [tex]2.00 \times 10^2[/tex] units due east, which is simply [tex]2.00 \times 10^2[/tex] units.
The y-component of the first vector is 0 units.
The x-component of the second vector is [tex]4.00 \times 10^2[/tex] units north of west, which is [tex]-4.00 \times 10^2[/tex] units.
The y-component of the second vector is [tex]4.00 \times 10^2[/tex] units, which is 30.0 degrees north of east.
Adding the x-components together we get: [tex]2.00 \times 10^2 - 4.00 \times 10^2 = -2.00 \times 10^2[/tex]
Adding the y-components together we get: [tex]0 + 4.00 \times 10^2 = 4.00 \times 10^2[/tex]
Therefore, the resultant vector is [tex]-2.00 \times 10^2[/tex] units due west and [tex]4.00 \times 10^2[/tex] units 30.0 degrees north of east.

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An airplane prop has a radius of 1. 5 m. If it starts from rest and accelerates uniformly to an angular speed of 55 rad/s in a time of 3. 0 s, what is the tangential acceleration of the tip of the prop?.

Answers

To answer this question, we need to use some basic principles of rotational motion. Firstly, we know that the tangential acceleration of the tip of the prop is the rate of change of its tangential velocity.

Tangential velocity is given by the product of the radius and the angular velocity of the prop.



We are given that the prop starts from rest and accelerates uniformly to an angular speed of 55 rad/s in 3.0 seconds. Therefore, we can calculate the angular acceleration using the equation:



Angular acceleration (α) = (final angular velocity - initial angular velocity) / time

Substituting the values, we get:

α = (55 rad/s - 0 rad/s) / 3.0 s = 18.3 rad/s^2

Now, we can use the formula for tangential acceleration:

Tangential acceleration (at) = radius x angular acceleration

Substituting the values, we get:

at = 1.5 m x 18.3 rad/s^2 = 27.5 m/s^2

Therefore, the tangential acceleration of the tip of the prop is 27.5 m/s^2.

In summary, we have used basic principles of rotational motion to calculate the tangential acceleration of the tip of an airplane prop given its radius, initial and final angular velocities and the time taken for acceleration.

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Derive an equation for the initial horizontal velocity v0, in terms of the spring constant k, the compression of the spring, x, the mass m of the object, and any fundamental constants

Answers

The initial horizontal velocity v0 of the object can be expressed in terms of the spring constant k, the compression of the spring x, and the mass m of the object as:

v0 = √(k[tex]x^{2}[/tex]/m)

Let's assume an object of mass m is placed on a spring with spring constant k and compressed by a distance x. When the spring is released, it will exert a force on the object in the upward direction, and the object will begin to move upward.

At the moment the object loses contact with the spring, the spring potential energy stored in the spring will be converted into kinetic energy of the object. This means that the spring potential energy must be equal to the kinetic energy of the object.

The spring potential energy can be expressed as

U = 1/2 k[tex]x^{2}[/tex]

The kinetic energy of the object can be expressed as

K = 1/2 m[tex]v_{0} ^{2}[/tex]

Where v0 is the initial horizontal velocity of the object.

Setting U equal to K, we get

1/2 k[tex]x^{2}[/tex] =  1/2 m[tex]v_{0} ^{2}[/tex]

Solving for v0, we get:

v0 = √(k[tex]x^{2}[/tex]/m)

Therefore, the initial horizontal velocity v0 of the object can be expressed in terms of the spring constant k, the compression of the spring x, and the mass m of the object as:

v0 = √(k[tex]x^{2}[/tex]/m)

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What is the volume in liters of 1. 50 mol cl2 at stp.

Answers

At STP (Standard Temperature and Pressure), one mole of any ideal gas occupies a volume of 22.4 liters.

At STP (Standard Temperature and Pressure), one mole of any ideal gas occupies a volume of 22.4 liters. So, we can use this information to find out the volume of 50 moles of Cl2 gas.
50 moles of Cl2 gas will occupy:
50 x 22.4 = 1120 liters of volume at STP
However, the question is asking for the volume of only 1.50 moles of Cl2 gas at STP. So, we need to calculate the volume of 1.50 moles of Cl2 gas using the molar volume of 22.4 liters/mole.
The volume of 1.50 mol Cl2 gas at STP is:
1.50 x 22.4 = 33.6 liters
Therefore, the volume in liters of 1.50 mol Cl2 gas at STP is 33.6 liters.

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Suppose the longitudinal component of a wave created by an earthquake is travelling from east to west. As it passes through your position, how would you expect to move?.

Answers

Suppose the longitudinal component of a wave created by an earthquake is travelling from east to west. As it passes through your position, you would expect to move back and forth along the same east-west direction as the wave travels.



Longitudinal waves are waves in which the motion of the particles is parallel to the direction of wave propagation. In this case, as the wave moves from east to west,

the particles (including you) would oscillate in a to-and-fro motion along the same line.

To understand the movement better, follow these steps:

1. The earthquake generates a longitudinal wave that travels from east to west.


2. As the wave approaches your position, particles around you start to move in the same east-west direction.


3. When the wave reaches your position, you will experience a push or pull effect, causing you to move in the same

direction as the wave (either eastward or westward).


4. As the wave passes through, you will continue to oscillate back and forth along the east-west line, gradually returning to your original position as the energy from the wave dissipates.



In summary, when a longitudinal wave from an earthquake passes through your position, you can expect to move back and forth along the same east-west direction as the wave travels.

This motion will occur as the wave causes the particles in its path to oscillate in the direction of the wave propagation.

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72) At what temperature would the root mean square speed of oxygen molecules, O2, be if oxygen behaves like an ideal gas? The mass of one O2 molecule is 5.312 × 10-26 kg, and the Boltzmann constant is 1.38 × 10-23 J/K.
A) 0.251 K
B) 2090 K
C) 6270 K
D) 1.52 × 1023 K

Answers

at a temperature of 2.41 K, the rms speed of oxygen molecules would be approximately 1000 m/s.

What is Temperature?

Temperature is a measure of the average kinetic energy of the particles in a system. It is commonly measured in degrees Celsius (°C) or Fahrenheit (°F), or in the Kelvin (K) scale, which is based on the theoretical lowest possible temperature, known as absolute zero. Temperature is a fundamental concept in thermodynamics.

For oxygen molecules, m = 5.312 × [tex]10^{-26}[/tex] kg, and k = 1.38 × [tex]10^{-23[/tex] J/K. We need to find the temperature T at which the rms speed of oxygen molecules is given.

Rearranging the above equation, we have:

T = ([tex]m * v_rms^{2}[/tex]) / (3k)

Substituting the given values, we get:

T = (5.312 × [tex]10^{-26}[/tex]) [tex]kg * v_rms^{2}[/tex]) / (3 * 1.38 × [tex]10^{-23[/tex] J/K)

We need to solve for T when v_rms = ?

Since the temperature at which the rms speed is required is not given, we can assume any value of v_rms and find the corresponding temperature. For example, if we assume v_rms = 1000 m/s, we get:

T = (5.312 × [tex]10^{-26}[/tex]) kg *[tex](1000 m/s)^{2}[/tex] / (3 * 1.38 × [tex]10^{-23[/tex]) J/K) = 2.41 K

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two cylindrical resistors are made from the same material and have the same length. when connected across the same battery, one(a) dissipates twice as much power as the other(b). part a how do their diameters compare? express your answer using three significant figures.

Answers

The rate at which a resistor dissipates power is proportional to its resistance and the square of its temperature. The diameters of the two resistors are the same.  

Therefore, if resistor A has twice the power dissipation of resistor B, its resistance must be 1/2 the value of resistor B, and its temperature must be 2 times higher.

We can use Ohm's law to solve for the resistance of each resistor:

V = IR

P = IV

For resistor A, we know that its power dissipation is twice that of resistor B, so P_A = 2P_B. We can also assume that the current through both resistors is the same, since they are connected in series. Therefore, we can equate the two expressions for P:

2P_B = P_A

P_A = P_B/2

Expression for P_B and solving for R_A, we get:

R_A = R_B/2

Since the resistors are made from the same material and have the same length, they have the same resistance. Therefore, we can express the ratio of their resistances as a fraction with the same denominator, which simplifies to:

R_A/R_B = 1/2

We can express the ratio of their resistances in terms of significant figures as:

1/2 = 0.5

Since we want to express the ratio to three significant figures, we can truncate the decimal expansion of 0.5 to 0.500, which is the nearest whole number. Therefore, the diameters of the two resistors are:

R_A = R_B/2 = 0.500 R_B

= 2R_A = 2(0.500) = 1.000 R_A

= 1.000 R_B = 2R_A

= 2(0.500)

= 1.000

Therefore, the diameters of the two resistors are the same.  

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On a distant asteroid, a large catapult is used to throw chunks of stone into space. Could such a device be used as a propulsion system to move the asteroid closer to the earth?

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While a large catapult could potentially launch chunks of stone into space, it would not be an effective propulsion system for moving an asteroid closer to Earth. The force produced by the catapult would not be strong enough to overcome the gravitational pull of the sun and other celestial bodies, making it impossible for the asteroid to change its trajectory significantly.

Additionally, the repeated use of a catapult could damage the asteroid and alter its natural composition. To move an asteroid closer to Earth, a more powerful and sophisticated propulsion system, such as ion engines or gravitational tractor technology, would be necessary. These methods use the natural forces of the universe to gradually alter the asteroid's course and bring it closer to our planet.

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You've recently read about a chemical laser that generates a 20-cm-diameter, 23.0 MW laser beam. One day, after physics class, you start to wonder if you could use the radiation pressure from this laser beam to launch small payloads into orbit. To see if this might be feasible, you do a quick calculation of the acceleration of a20-cm-diameter, 96.0 kg,perfectly absorbing block. What speed would such a
block have if pushed horizontally 100 m along a frictionless track by such a laser?
Does this seem like a promising method for launching satellites?

Answers

This does not seem like a promising method for launching satellites, as the final speed of the block would be too low to escape Earth's gravitational pull.

What is satellites?

A satellite is an artificial object that has been intentionally placed into orbit. Satellites are used for a variety of purposes, including communications, navigation, earth observation, weather forecasting, and scientific research. They come in a variety of shapes and sizes, ranging from small cube satellites to large satellites with solar panels that can span up to 30 meters in diameter. Satellites are powered by a variety of energy sources, including solar, batteries, and nuclear power.

The acceleration of a 20-cm-diameter, 96.0 kg block can be calculated using the equation

[tex]a = P/(π*(d/2)^2*c*ρ)[/tex]

where P is the power of the laser beam (23.0 MW), d is the diameter of the block (20 cm), c is the speed of light[tex](3.0x10^8 m/s)[/tex], and ρ is the density of the block (assumed to be the same as that of water,[tex]1000 kg/m^3[/tex]). This gives a result of a =[tex]0.0098 m/s^2[/tex].

Using this acceleration, the final speed of the block after being pushed horizontally 100 m along a frictionless track by the laser beam can be calculated using the equation v = at, where t is the time taken for the block to travel 100 m. Since the acceleration is constant, the time taken for the block to travel 100 m is equal to t = 100 m/v, where v is the initial velocity of the block (assumed to be 0 m/s). Substituting this into the equation above gives a final speed of the block of v = 0.098 m/s.

This does not seem like a promising method for launching satellites, as the final speed of the block would be too low to escape Earth's gravitational pull.

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What harsh environment does trailing azalea grow in?.

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Trailing azalea grows in harsh environments such as rocky slopes, cliffs, and other areas with poor soil and low moisture.

Trailing azalea, also known as Rhododendron canescens, is a native plant in the southeastern United States. This plant prefers acidic soils, but it can grow in a variety of soil types, including poor soil with low moisture. Trailing azalea is commonly found growing on rocky slopes, cliffs, and other areas with harsh environmental conditions. It is a hardy plant that can withstand drought and extreme temperatures.

In summary, trailing azalea grows in harsh environments such as rocky slopes, cliffs, and areas with poor soil and low moisture. This plant is adapted to survive in these challenging conditions, making it an important part of the ecosystem in the southeastern United States.

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a car is moving with speed 80 m/s and acceleration 6 m/s2 at a given instant. using a second-degree taylor polynomial, estimate how far the car moves in the next second. m would it be reasonable to use this polynomial to estimate the distance traveled during the next minute?

Answers

it would not be reasonable to use this second-degree Taylor polynomial to estimate the distance traveled during the next minute, as the polynomial is only a good approximation for small time intervals

We can use the second-degree Taylor polynomial to estimate the distance traveled by the car in the next second:

The position function of the car can be approximated as:

s(t) ≈ s(0) + v(0) t + (1/2) a t^2

where s(t) is the position of the car at time t, v(0) is the initial velocity of the car, a is the acceleration of the car, and s(0) is the initial position of the car.

At the given instant, the velocity of the car is v(0) = 80 m/s, and the acceleration is a = 6 m/s^2. Therefore, we can estimate the position of the car after 1 second as:

s(1) ≈ s(0) + v(0) t + (1/2) a t^2

s(1) ≈ s(0) + 80(1) + (1/2)(6)(1)^2

s(1) ≈ s(0) + 83 meters

So, we can estimate that the car moves about 83 meters in the next second.

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We cannot see the milky way galaxy without binocular or telescopes.

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That's correct! The milky way galaxy is a vast collection of stars, dust, and gas that spans across the night sky, but it's difficult to see with the eye due to the light pollution and atmospheric interference.

To get a better view, binoculars or telescopes are often used to help bring out the details and clarity of the milky way.

To answer your question about whether we cannot see the Milky Way galaxy without binoculars or telescopes:

It is actually possible to see the Milky Way galaxy with the eye, but binoculars and telescopes can greatly enhance the viewing experience. The visibility of the Milky Way depends on factors such as the level of light pollution in your area, the time of year, and the phase of the moon. In dark sky locations with minimal light pollution, you can see the Milky Way as a faint, milky band stretching across the sky. Binoculars and telescopes provide a closer view of individual stars, star clusters, and other celestial objects within the galaxy. So, while it is possible to see the Milky Way without binoculars or telescopes, these tools can significantly improve the view.

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A scientist adds different amounts of salt to 5 bottles of water she then measures how long it takes for water to boil what is the responding valuable variable in this experiment

Answers

The responding variable in this experiment (B). The amount of salt added to the water is correct option.

The time it takes for the water to boil is the dependent variable. This variable depends on the salt content, making it a dependent variable.

The boiling point of the water is the variable that responds to the different amounts of salt added, and it is the variable that the scientist is measuring and analyzing.

The responding variable in this experiment is the boiling point of the water. The scientist is measuring how long it takes for the water to boil, which is dependent on the amount of salt added to each bottle.

Therefore, the correct option is (B).

The complete question is,

A scientist adds different amounts of salt to 5 bottles of water. She then measures how long it takes for the water to boil. What is the responding variable in this experiment? A. The time it takes for the water to boil, B. The amount of salt added to the water, C. The kind of bottles used, D. The brand of salt used

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One form of energy that exists in every system but is difficult to quantify is heat. Think about how we formulated our spring resonance model. Did we account for the heat energy in the medium? why do we need to?.

Answers

We did not account for heat energy in the spring resonance model. However, it is important to consider heat energy as it affects the behavior and properties of the medium.

Heat energy is a form of energy that is present in every system, including the medium in the spring resonance model. Heat energy affects the properties and behavior of the medium, and therefore it is important to consider it when formulating the model.

For instance, heat energy can cause the medium to expand or contract, change its density, and affect its viscosity. These changes can affect the resonance frequency and damping behavior of the spring system, which can have significant consequences for its overall performance. In some cases, the heat energy may even be the dominant factor that determines the behavior of the system.

Therefore, it is essential to account for the heat energy in the medium when formulating the spring resonance model or any other system model to obtain an accurate representation of the system's behavior.

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Do you believe that experiments should use animals? Always, sometimes, or never? Based on what you know about ethics, write a 150 word essay defending your opinion about the appropriateness of animal testing.(for psycology)

Answers

Based on what I know about ethics, I don't believe the use of animals in experiments for testing is appropriate.

Experimenting with animals

Since animals can feel pain and suffering, using them in studies creates ethical questions. Some contend that the advantages of using animals for research do not outweigh the harm done to the animals. Concerns exist over the efficacy of animal models as well as the applicability of results to people.

The appropriateness of animal testing in psychology research is a complicated matter that calls for comprehensive analysis of the advantages and disadvantages as well as any prospective substitute techniques. While attempting to advance our understanding of human psychology, researchers should emphasize the welfare of animals used in experiments and strive to reduce their suffering as much as possible.

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What are some advantages of using nuclear energy to produce electricity?.

Answers

Answer:

There are several advantages to using nuclear energy to produce electricity.

Firstly, nuclear power plants do not emit greenhouse gases such as carbon dioxide, making them a low-carbon energy source. This is an advantage in the fight against climate change.

Secondly, nuclear power plants can generate a large amount of electricity using a relatively small amount of fuel, making them an efficient source of energy.

Thirdly, nuclear power plants can operate continuously for long periods of time without interruption, which improves energy reliability.

Finally, nuclear energy is not subject to price fluctuations in the same way that fossil fuels are, as uranium fuel prices are relatively stable.

However, nuclear energy also has several drawbacks, including the risk of accidents, the potential for nuclear proliferation, and the problem of radioactive waste disposal.

Explanation:

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