A stress of 75 MPa is applied in the [001] direction on an FCC single crystal. Calculate (a) the resolved shear stress acting on the (111) [101] slip system and, (b) the resolved shear stress acting on the (111) [110] slip system.

Answers

Answer 1

The resolved shear stress on the (111)[101] slip system is 43.3 MPa, and on the (111)[110] slip system, it is 25.98 MPa.

To calculate the resolved shear stress (τ) on the given slip systems, we can use the equation: τ = σ * cos(φ) * cos(λ), where σ is the applied stress, φ is the angle between the stress direction and the slip plane normal, and λ is the angle between the stress direction and the slip direction.

(a) For the (111)[101] slip system, first calculate the angle φ between [001] and (111). Use the dot product formula: cos(φ) = ([001] • (111))/(|[001]|*|(111)|).

Next, calculate the angle λ between [001] and [101] using the same formula. Then, substitute the calculated cos(φ) and cos(λ) values and the given stress of 75 MPa into the equation to find the resolved shear stress.

(b) For the (111)[110] slip system, follow the same process, but now calculate the angle φ between [001] and (111), and λ between [001] and [110]. Substitute the calculated cos(φ) and cos(λ) values and the given stress of 75 MPa into the equation to find the resolved shear stress.

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Related Questions

The centripetal force acting on a 0.30 kg object moving with a tangential velocity of 12 m/s in a 0.80 m radius circle is N. 0 4.5 0 54 380 O None of the above

Answers

Answer:

F = M a = M v^2 / R

F = .3 * 12^2 / .8 = 54 N

Suppose an ideal gas undergoes isobaric (constant pressure) compression. 1) Which expression about the entropy of the environment and the gas is correct? a. ASgas > 0 b. ASeny + ASgas > 0 c. ASeny + ASgas 0 = Submit (Survey Question) 2) Briefly explain your reasoning.

Answers

The correct expression for the entropy change of the environment and the gas during an isobaric compression is:

b. ΔS_env + ΔS_gas > 0

During an isobaric compression, the gas is compressed at constant pressure. The reasoning behind this choice is as follows: In an isobaric process, the pressure remains constant throughout the compression. When an ideal gas undergoes compression, its volume decreases, and consequently, its entropy (ΔS_gas) also decreases, resulting in a negative value for ΔS_gas. However, the second law of thermodynamics states that the total entropy of a closed system, including the environment (ΔS_env), must always increase or remain constant. During the compression process, heat is transferred from the gas to the environment, which in turn increases the entropy of the environment (ΔS_env). Therefore, the sum of the entropy changes for both the gas and the environment (ΔS_env + ΔS_gas) must be greater than 0 to satisfy the second law of thermodynamics.

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Write a general formula to describe the variation The square of T varies directly with the cube of a and inversely with the square of d: T= 3 when a = 4 and d = 2
T^2 = (Use integers or fractions for any numbers in the expression.)

Answers

The value of k, we can write the general formula:
T^2 = (9/16) * (a^3 / d^2)

To write a general formula describing the variation, we can use the given information:

The square of T varies directly with the cube of a and inversely with the square of d. We can express this relationship as:

T^2 = k * (a^3 / d^2)

Here, k is the constant of variation. Now, we'll use the given values of T, a, and d to find the value of k:

3^2 = k * (4^3 / 2^2)
9 = k * (64 / 4)
9 = k * 16
k = 9 / 16

Now that we've found the value of k, we can write the general formula:

T^2 = (9/16) * (a^3 / d^2)

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a 5.8×10−2-t magnetic field passes through a circular ring of radius 5.3 cm at an angle of 16 ∘ with the normal.
Find the magnitude of the magnetic flux through the ring.
Express your answer using two significant figures.

Answers

The magnitude of the magnetic flux through the ring is approximately 4.9×10[tex]−4[/tex] Wb (we rounded the answer to two significant figures).

The magnetic flux through a circular loop is given by:

Φ = BAcosθ

Where Φ is the magnetic flux, B is the magnetic field, A is the area of the loop, and θ is the angle between the magnetic field and the normal to the loop.

In this case, the magnetic field is 5.8×10[tex]-2[/tex] T, the radius of the loop is 5.3 cm (or 0.053 m), and the angle between the magnetic field and the normal is 16∘.

The area of a circle is given by:

A = πr^2

So the area of the loop is:

A = π(0.053 m)[tex]^2[/tex] ≈ 8.83×10₃

Substituting the values into the equation for magnetic flux, we get:

Φ =[tex](5.8×10−2 T)(8.83×10−3 m^2)cos(16∘) ≈ 4.9×10−4 Wb[/tex]

Therefore, the magnitude of the magnetic flux through the ring is approximately 4.9×1[tex]0−4 Wb[/tex] (we rounded the answer to two significant figures).

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Why is it that continually displacing the ring from its equilibrium position, releasing it, and watching its subsequent behavior as you adjust the mass and/or angle of the equilibrant will give you more precise results then simply letting the ring move on its own?

Answers

Method of adjustment is a precise experimental technique, while allowing the system to move on its own can be influenced by external factors.

How does the method of adjustment help in determining the properties of a physical system?

Continually displacing the ring from its equilibrium position, releasing it, and watching its subsequent behavior as you adjust the mass and/or angle of the equilibrant is known as an experimental technique called "method of adjustment". This technique is used to determine the value of a physical quantity with a high degree of precision.

When the ring is simply allowed to move on its own, it will oscillate back and forth until it comes to rest. This motion is affected by a number of factors, including the mass and angle of the equilibrant, the elasticity of the ring, and any other external factors that may be present. As a result, it can be difficult to accurately measure the period of oscillation or other properties of the system.

By contrast, the method of adjustment involves carefully adjusting the mass and/or angle of the equilibrant until the ring oscillates at a desired frequency or exhibits a desired behavior. This allows for a more precise determination of the system's properties, as the experimenter can fine-tune the system until it behaves in the desired manner. This method is particularly useful when working with systems that have small oscillations, as it allows for a more accurate determination of the period and other properties of the system.

In summary, the method of adjustment allows for a more precise determination of the properties of a physical system by allowing the experimenter to fine-tune the system until it behaves in the desired manner, whereas simply letting the system move on its own can be affected by a variety of external factors that can make accurate measurements difficult.

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Air (y=1.4) enters a converging-diverging nozzle from a reservoir at a pressure of 800 kPa, and temperature 700 K. Determine (a) the lowest temperature and (b) the lowest pressure that can be obtained at the throat of the nozzle. PA

Answers

(a) The lowest temperature at the throat of the nozzle is 589.82 K.

(b) The lowest pressure at the throat of the nozzle is 516.65 kPa.


1. Identify given values: y = 1.4, P1 = 800 kPa, T1 = 700 K.
2. Apply isentropic relations for converging-diverging nozzle at the throat.
3. Calculate T2/T1 = (2/(y + 1)) = (2/(1.4 + 1)) = 0.2857.
4. Calculate the lowest temperature: T2 = T1 * T2/T1 = 700 K * 0.2857 = 589.82 K.
5. Calculate P2/P1 = (T2/T1)^(y/(y - 1)) = (0.2857)^(1.4/0.4) = 0.6458.
6. Calculate the lowest pressure: P2 = P1 * P2/P1 = 800 kPa * 0.6458 = 516.65 kPa.

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Watch this video to learn more about the descending motor pathway for the somatic nervous system. The autonomic connections are mentioned, which are covered in another chapter. From this brief video, only some of the descending motor pathway of the somatic nervous system is described. Which division of the pathway is described and which division is left out?

Answers

Without more specific information about the video you are referring to, I am unable to provide more detailed information about which division of the pathway is described and which division is left out. However, in general, the descending motor pathway for the somatic nervous system can be divided into two main divisions: the corticospinal tract and the extrapyramidal tract.

The somatic nervous system is the part of the peripheral nervous system that controls voluntary movements and sensory information from the body. It includes motor neurons that control skeletal muscles and sensory neurons that carry information from the skin, muscles, and joints to the central nervous system (brain and spinal cord). The somatic nervous system is responsible for conscious perception and response to external stimuli, such as touching a hot surface or moving your hand to pick up an object.

The corticospinal tract, also known as the pyramidal tract, originates in the motor cortex of the brain and travels through the brainstem and spinal cord to synapse with lower motor neurons in the anterior horn of the spinal cord. This tract is responsible for voluntary movements and fine motor control.

The extrapyramidal tract, on the other hand, originates in various parts of the brain, including the basal ganglia and cerebellum, and travels through the brainstem and spinal cord to synapse with lower motor neurons in the anterior horn of the spinal cord. This tract is responsible for involuntary movements, posture, and muscle tone.

Therefore, The corticospinal tract and the extrapyramidal tract are the two primary divisions of the descending motor pathway for the somatic nervous system.

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suppose your portable dvd player draws a current of 194 ma at 9.00 v. how much power does the player require?

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The portable DVD player requires 1.746 watts of power.

To calculate the power required by the portable DVD player, you can use the formula P = I x V, where P is power in watts, I is current in amperes, and V is voltage in volts.

Given that the player draws a current of 194 mA at 9.00 V, we need to convert the current to amperes by dividing it by 1000.

So, I = 194 mA / 1000 = 0.194 A

Using the formula P = I x V, we get:

P = 0.194 A x 9.00 V = 1.746 watts

Therefore, the portable DVD player requires 1.746 watts of power.

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A supernova explosion of a 2.00×1031 kg star produces 1.00×1044 kg of energy. (a) How many kilograms of mass are converted to energy in the explosion? (b) What is the ratio Δm / m of mass destroyed to the original mass of the star?

Answers

a)1.11×10²⁷kg of mass was converted to energy in the supernova explosion.

b)The ratio of mass destroyed to the original mass of the star is approximately 0.9995.

(a) Using Einstein's famous equation E = mc², we can calculate the mass that was converted to energy in the supernova explosion. Rearranging the equation, we get m = E/c². Substituting the given values, we get:
m = (1.00×10⁴⁴kg) / (3.00×10⁸ m/s)²
m = 1.11×10^27 kg
Therefore, approximately 1.11×10²⁷ kg of mass was converted to energy in the supernova explosion.
(b) The ratio Δm / m can be calculated by dividing the mass destroyed (Δm) by the original mass of the star (m). The mass destroyed is the difference between the original mass and the mass that was converted to energy. Therefore:
Δm = 2.00×10³¹kg - 1.11×10²⁷ kg
Δm = 1.999×10^31 kg
Now, dividing Δm by m:
Δm / m = 1.999×10³¹kg / 2.00×10³¹ kg
Δm / m = 0.9995
Therefore, the ratio of mass destroyed to the original mass of the star is approximately 0.9995.

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A torque of 10 N•m causes a wheel to rotate 90º. How much work is done by the force that provides this torque?Group of answer choicesa. 16 Jb. 900 Jc. 9 Jd. 31 J

Answers

Option a. The work done by the force that provides this torque is 16 J.

To calculate the work done by the force that provides a torque of 10 N•m and causes a wheel to rotate 90º, we can use the formula:
Work done = Torque × Angular displacement × cosθ
In this case, the torque is 10 N•m, the angular displacement is 90º, and the angle between the force and displacement vectors (θ) is 0º because they are in the same direction. To use the formula, we first need to convert the angular displacement from degrees to radians:
90º × (π/180) = π/2 radians
Now, we can calculate the work done:
Work done = 10 N•m × (π/2) × cos(0º) = 10 N•m × (π/2) × 1 = 5π N•m
To find the closest answer choice, let's approximate the value of 5π:
5π ≈ 5 × 3.14 ≈ 15.7 J
The closest answer choice to 15.7 J is option a. 16 J

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An ideal gas is allowed to expand from 4.20 L to 18.9 L at constant temperature. If the initial pressure was 119 atm, what is the final pressure (in atm)? A. 25 atm B. 24.6 atm C. 26.4 atm D. 114.5 atm

Answers

To solve this problem, we can use the formula for the relationship between pressure and volume for an ideal gas. So, the final pressure of the ideal gas is approximately 26.4 atm, which corresponds to option C.

P1V1 = P2V2
where P1 is the initial pressure, V1 is the initial volume, P2 is the final pressure, and V2 is the final volume.
We are given that the initial volume V1 is 4.20 L and the final volume V2 is 18.9 L. We are also given the initial pressure P1, which is 119 atm. We want to find the final pressure P2.
Plugging in the values we know into the formula, we get:
(119 atm)(4.20 L) = P2(18.9 L)
Solving for P2, we get:
P2 = (119 atm)(4.20 L) / 18.9 L
P2 = 26.4 atm
Therefore, the final pressure is 26.4 atm, which is answer choice C.


To find the final pressure of an ideal gas that expands from 4.20 L to 18.9 L at constant temperature with an initial pressure of 119 atm, we can use Boyle's Law. Boyle's Law states that for an ideal gas at constant temperature, the product of pressure and volume remains constant. Mathematically, it can be represented as:
P1 * V1 = P2 * V2
where P1 and V1 are the initial pressure and volume, and P2 and V2 are the final pressure and volume.
We are given:
P1 = 119 atm
V1 = 4.20 L
V2 = 18.9 L
We need to find P2 (final pressure).
Using Boyle's Law, we have:
119 atm * 4.20 L = P2 * 18.9 L
Now, we can solve for P2:
P2 = (119 atm * 4.20 L) / 18.9 L
P2 ≈ 26.4 atm
So, the final pressure of the ideal gas is approximately 26.4 atm, which corresponds to option C.

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A charge is released from rest in an electric field. Neglect non-electrical forces. Independently of the sign of the charge, it will always move to a position a) with higher potential b) with lower potential c) where is has higher potential energy d) where it has lower potential energy e) where the electric field has higher magnitude f) where the electric field has lower magnitude

Answers

The answer is a) with higher potential.

When a charge is released from rest in an electric field, it will always move towards the region of higher potential, regardless of its sign.

This is because the electric field exerts a force on the charge, causing it to accelerate towards the region of higher potential. The potential energy of the charge will increase as it moves towards the higher potential region.

The magnitude of the electric field may vary in different regions, but it is the potential difference that determines the direction of the charge's motion.

Non-electrical forces can be neglected in this scenario.

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there is a specific term for the currents that are observed immediately after the potential is stepped down from a potential where there is a steady state conductance, to one where there is none. what is this term?

Answers

The term for the currents that are observed immediately after the potential is stepped down from a potential where there is a steady state conductance to one where there is none is called "transient currents."

Transient currents occur because the sudden change in potential causes a temporary disruption in the equilibrium of ions across the membrane. This leads to a flow of ions across the membrane, which creates a transient current. The magnitude and duration of transient currents can provide valuable information about the properties of ion channels and their gating mechanisms. When the voltage is changed, it causes a temporary disruption in the equilibrium of ions across the membrane, leading to a flow of ions across the membrane that creates a transient current.

Understanding transient currents is important in the study of ion channels and their role in cellular signalling, as well as in the development of drugs that target ion channels for therapeutic purposes.

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Light with a frequency of 8.70*10^14 Hz is incident on a metal that has a work function of 2.8eV. What is the maximum kinetic energy that a photoelectron ejected in this process can have?

Answers

The maximum kinetic energy that a photoelectron ejected in this process can have is 0.806 eV.

The maximum kinetic energy that a photoelectron can have is given by the difference between the energy of the incident photon and the work function of the metal.

The energy of a photon is given by Planck's equation:

E = hf

where E is the energy of the photon, h is Planck's constant, and f is the frequency of the light.

In this case, the frequency of the light is given as 8.70 × 10^14 Hz. So, the energy of the photon is:

E = hf = (6.626 × 10-³⁴ J s) × (8.70 × 10¹⁴ Hz) = 5.77 × 10-¹⁹ J

The work function of the metal is given as 2.8 eV. We need to convert this to joules to be able to subtract it from the energy of the photon:

1 eV = 1.602 × 10-¹⁹ J

So, the work function in joules is:

2.8 eV × (1.602 × 10-¹⁹ J/eV) = 4.48 × 10-¹⁹ J

The maximum kinetic energy of the photoelectron is:

KEmax = E - work function = 5.77 × 10-¹⁹ J - 4.48 × 10-¹⁹ J = 1.29 × 10-¹⁹ J

We can convert this to electronvolts (eV) by dividing by the charge of an electron:

1.29 × 10-¹⁹ J / 1.602 × 10-¹⁹ C = 0.806 eV

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What are the right ascension and declination of the sun on the following dates:
March 21, June 21, September 21, and December 21?
0 h, 0 degrees
6 h, 23.5 degrees
12 h, 0 degrees
18 h, -23.5 degrees

Answers

The right ascension and declination of the sun depend on the position of the earth in its orbit around the sun. Here are the approximate values for the dates you specified:

March 21 (vernal equinox): The sun's right ascension is 0 hours and its declination is 0 degrees (it is at the celestial equator).

June 21 (summer solstice): The sun's right ascension is 6 hours and its declination is 23.5 degrees North (it is at the Tropic of Cancer).

September 21 (autumnal equinox): The sun's right ascension is 12 hours and its declination is 0 degrees (it is at the celestial equator).

December 21 (winter solstice): The sun's right ascension is 18 hours and its declination is 23.5 degrees South (it is at the Tropic of Capricorn).

Note that these values are approximate and may vary slightly depending on the year and the exact position of the sun.

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A'B'C' is the image of ABC, if the distance between ABC and the mirror is 80 cm, what is distance between the object and it's mirror (it's not 160)​

Answers

Answer:

If A'B'C' is the image of ABC in the mirror, then the distance between the object (ABC) and its mirror is equal to the distance between A'B'C' and the mirror.

Let's call the distance between A'B'C' and the mirror "d". According to the problem, we know that:

d = 80 cm

However, we need to find the distance between ABC and its mirror, which we can call "x". We know that:

x + d = 2x

Simplifying this equation, we get:

d = x

Substituting the value of "d" from the first equation, we get:

x = 80 cm

Therefore, the distance between the object (ABC) and its mirror is also 80 cm, which is the same as the distance between A'B'C' and the mirror.

Explanation:

Calculate the moment of inertia of each of the following uniform objects about the axes indicated. A thin 2.50 kg rod lenght 75.0 cm about an axis perpendicular to it and passing a.)(i) through one end (ii) through its center, and (iii) about an axis parallel to the rod and passing through it. b.) A 3.00 kg sphere is (i) solid and (ii) A thin walled hollow shell c.) An 8.00 kg cylinder of lenght 19.5 cm cylinder if the cylinder is (i) thin-walled and hollow and (i) solid.

Answers

a) (i) 0.0781 kg*m², (ii) 0.3906 kg*m², (iii) 0.0521 kg*m²

b) (i) 0.4 kg*m², (ii) 1.2 kg*m²

c) (i) 0.125 kg*m², (ii) 0.25 kg*m²

a) (i) The moment of inertia of a thin rod of length L and mass M about an axis perpendicular to it and passing through one end is given by I = (1/3)*M*L². Substituting the given values, we get I = (1/3)*(2.50 kg)*(0.75 m)² = 0.0781 kg*m².

(ii) The moment of inertia of a thin rod of length L and mass M about an axis perpendicular to it and passing through its center is given by I = (1/12)*M*L². Substituting the given values, we get I = (1/12)*(2.50 kg)*(0.75 m)² = 0.3906 kg*m².

(iii) The moment of inertia of a thin rod of length L and mass M about an axis parallel to the rod and passing through it is given by I = (1/12)*M*L² + (1/4)*M*R², where R is the distance between the axis of rotation and the center of mass of the rod. For a thin rod, R = L/2. Substituting the given values, we get I = (1/12)*(2.50 kg)*(0.75 m)² + (1/4)*(2.50 kg)*(0.75 m/2)² = 0.0521 kg*m².

b) (i) The moment of inertia of a solid sphere of mass M and radius R about any axis passing through its center is given by I = (2/5)*M*R². Substituting the given values, we get I = (2/5)*(3.00 kg)*(0.5 m)² = 0.4 kg*m².

(ii) The moment of inertia of a thin-walled hollow sphere of mass M and radius R about any axis passing through its center is given by I = (2/3)*M*R². Substituting the given values, we get I = (2/3)*(3.00 kg)*(0.5 m)² = 1.2 kg*m².

c) (i) The moment of inertia of a thin-walled hollow cylinder of mass M, outer radius R and inner radius r about its central axis is given by I = (1/2)*M*(R² + r²). For a thin-walled cylinder, R ≈ r + L/2. Substituting the given values, we get I = (1/2)*(8.00 kg)*[(0.5*0.195 m + 0.5*0.19 m)² + (0.5*0.195 m)²] = 0.125 kg*m².

(ii) The moment of inertia of a solid cylinder of mass M, radius R and length L about its central axis is given by I = (1/12)*M*L² + (1/4)*M*R². For a cylinder, L ≈ R. Substituting the given values, we get I = (1/12)*(8.00 kg)*(0.195 m)² + (1/4)*(8.00 kg)*(0.195 m)² = 0

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Suppose you start an antique car by exerting a force of 290 N on its crank for 0.13 s.
What angular momentum is given to the engine if the handle of the crank is 0.38 m from the pivot and the force is exerted to create maximum torque the entire time?

Answers

The angular momentum given to the engine is 44.2 Nms.

Angular momentum (L) is given by the equation L = r * F * Δt, where r is the distance from the pivot (0.38 m), F is the force exerted (290 N), and Δt is the time duration for which the force is applied (0.13 s).

To create maximum torque, the force should be applied for the entire time duration. Thus, Δt is equal to 0.13 s. Plugging in these values, we get L = 0.38 * 290 * 0.13 = 44.2 Nms as the angular momentum given to the engine.

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Alpha particles (charge q = +2e, mass m = 6.6×10−27kg) move at 1.8×106 m/s What magnetic field strength would be required to bend them into a circular path of radius r = 0.14 m ?

Answers

The magnetic field that is required to bend the charged particle into a circular path is 1.42×10⁻³ T.

To calculate the magnetic field strength required to bend alpha particles into a circular path of radius r = 0.14 m, we can use the equation:

[tex]B = \frac{m\times v}{q\times r}[/tex]

where B is the magnetic field strength, m is the mass of the alpha particle, v is its velocity, q is its charge, and r is the radius of the circular path.

Plugging in the given values, we get:

[tex]B = \frac {6.6\times 10^{-27} \ kg \times 1.8\times 10^6 \ m/s} { 2e \times 0.14 \ m}[/tex]

where 2e represents the charge of the alpha particle.

Simplifying this equation, we get:

B = 1.42×10⁻³ T

Therefore, a magnetic field strength of 1.42×10⁻³ T would be required to bend alpha particles with charge q = +2e and mass m = 6.6×10⁻²⁷ kg into a circular path of radius r = 0.14 m.

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What power lens is needed to correct for farsightedness where the uncorrected near point is 75 cm? C) -5.33 D B) -2.67 D D) 100 DE+2.67 D E) +2.67 D A) +5.33 D D) +1.00 D

Answers

The power lens needed to correct for farsightedness where the uncorrected near point is 75 cm is +2.67 D. So, option E) is the correct option.

To find the power lens needed to correct for farsightedness where the uncorrected near point is 75 cm, you should use the formula:

Power (in diopters) = 1 / distance (in meters)

First, convert the distance to meters:
75 cm = 0.75 meters

Next, calculate the power:
Power = 1 / 0.75 = 1.33 diopters

Since the person is farsighted, they need a converging lens, so the power should be positive.

Among the given options, the closest value to +1.33 D is E) +2.67 D. So, option E) is the correct option.

However, it's important to note that the exact power needed may vary depending on individual circumstances, and a more accurate value would be around +1.33 D.

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an object moving in uniform circular motion with a radius of 0.6 m and a period of 0.4 s has a tangential velocity of _____ m/s.

Answers

The object moving in a uniform circular motion with a radius of 0.6 m and a period of 0.4 s has a tangential velocity of 3.77 m/s.

Uniform circular motion is characterized by a constant speed and a changing direction, which means that the object is constantly accelerating toward the center of the circle. The magnitude of the centripetal acceleration is given by:

a = v^2/r

where v is the tangential velocity of the object and r is the radius of the circle.

Since the motion is uniform, the period T of the motion is related to the tangential velocity by:

[tex]v = 2πr/Ta = (2πr/T)^2 / r = 4π^2r/T^2[/tex]

The magnitude of the centripetal acceleration is also related to the net force acting on the object by:

a = F_net/m

where F_net is the net force and m is the mass of the object.

Since the object is moving in a uniform circular motion, the net force is given by the centripetal force:

F_net = F_c = mv^2/r

where F_c is the centripetal force.

Substituting this into the expression for the centripetal acceleration and equating it to the expression for the net force, we get:

[tex]mv^2/r = 4π^2r/T^2v = sqrt(4π^2r^2/T^2) = 2πr/T = 3.77 m/s (approx)[/tex]

Therefore, the tangential velocity of the object is 3.77 m/s (approx).

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In an experiment, the diffraction pattern from a single slit was recorded with light of wavelength 700 nm on a screen held 100 cm from the slit. The distance between the first order minima on either side of the central maximum was measured to be 5.9 cm and the corresponding distance for the second order was 12.3 cm. Calculate the average width of the slit using both the first and second order data.

Answers

The average width of the slit is approximately 23,247 nm.

To calculate the average width of the slit using both the first and second-order data, we will first use the formula for single-slit diffraction:

sinθ = mλ / a

where θ is the angle of diffraction, m is the order of the minima (1 for the first order and 2 for the second order), λ is the wavelength of light (700 nm), and a is the width of the slit.

First, we need to calculate the angle of diffraction for both the first and second-order minima. Since the distance between the screen and the slit is 100 cm, we can use the small-angle approximation:

tanθ ≈ sinθ ≈ y / L

where y is the distance between the central maximum and the minima, and L is the distance from the slit to the screen.

For the first order (m = 1), y1 = 5.9 cm / 2 = 2.95 cm:
sinθ1 ≈ 2.95 cm / 100 cm = 0.0295

For the second order (m = 2), y2 = 12.3 cm / 2 = 6.15 cm:
sinθ2 ≈ 6.15 cm / 100 cm = 0.0615

Now, we can use the single-slit diffraction formula to calculate the width of the slit for both orders:

For the first order (m = 1):
a1 = 1(700 nm) / sinθ1 = 700 nm / 0.0295 = 23729 nm

For the second order (m = 2):
a2 = 2(700 nm) / sinθ2 = 1400 nm / 0.0615 = 22764 nm

Finally, we can calculate the average width of the slit using both the first and second-order data:

a_avg = (a1 + a2) / 2 = (23729 nm + 22764 nm) / 2 = 23246.5 nm

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a tank contains 6,480 lbs of water at room temperature. how many hours would it take to empty the tank if a pump removes 2.7 gallons of water from the tank every minute.

Answers

The number of hours it would take to empty the tank if a pump removes 2.7 gallons of water from the tank every minute is approximately 4.8 hours.

First, we need to convert the weight of water in the tank (6,480 lbs) to volume (gallons) and then determine the time it takes for the pump to empty the tank.

1 gallon of water weighs approximately 8.34 lbs. So, to convert the weight of water to gallons, we can use the following formula:

Volume (gallons) = Weight (lbs) / 8.34 lbs/gallon

Volume = 6,480 lbs / 8.34 lbs/gallon = 776.74 gallons (approximately)

Now that we know the volume of water in the tank, we can determine the time it takes for the pump to empty it. The pump removes water at a rate of 2.7 gallons of water per minute. To find the time, we can use the following formula:

Time (minutes) = Volume (gallons) / Pump rate (gallons/minute)

Time = 776.74 gallons / 2.7 gallons/minute ≈ 287.68 minutes

To convert the time to hours, we can divide the minutes by 60:

Time (hours) = Time (minutes) / 60

Time ≈ 287.68 minutes / 60 ≈ 4.8 hours

So, it would take approximately 4.8 hours for the pump to empty the 6,480 lbs water tank at a rate of 2.7 gallons per minute.

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a balloon containing methane gas has a volume of 2.40 l at 57.0 °c . what volume will the balloon occupy at 114 °c ?

Answers

If the pressure stays constant at atmospheric pressure, the balloon containing methane gas will have a volume of 4.80 L at 114 °C. However, if the pressure changes, the final volume will be different.

To solve this problem, we need to use the combined gas law equation, which relates the pressure, volume, and temperature of a gas,
(P1 * V1) / T1 = (P2 * V2) / T2
where P1 and P2 are the initial and final pressures (which we can assume to be constant), V1 is the initial volume, V2 is the final volume (what we're trying to find), T1 is the initial temperature, and T2 is the final temperature.

We're given that the initial volume (V1) is 2.40 L, the initial temperature (T1) is 57.0 °C, and the final temperature (T2) is 114 °C. We're trying to find the final volume (V2). We're not given the pressure, but we can assume it's constant (since the balloon isn't being compressed or expanding).

Plugging in the values we have, we get,

(P1 * 2.40) / 57.0 = (P2 * V2) / 114

We can simplify this equation by multiplying both sides by 114,

(P1 * 2.40 * 114) / 57.0 = P2 * V2

Now we can solve for V2 by dividing both sides by P2,

V2 = (P1 * 2.40 * 114) / (57.0 * P2)

Since we don't know the pressure, we can't solve for the exact final volume. However, we can make some assumptions. For example, if we assume that the pressure stays constant at atmospheric pressure (which is around 1 atm), we can plug that value in for P1 and P2:

V2 = (1 * 2.40 * 114) / (57.0 * 1) = 4.80 L

Therefore, the balloon carrying methane gas will have a capacity of 4.80 L at 114 °C if the pressure remains constant at atmospheric pressure. However, the ultimate volume will vary if the pressure varies.

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Approximately how many stars, in total, have parallaxes less than 1 arc second, using the stellar triangulation method (baseline of 1au)? a. 0 b. about 100 c. about 100 thousand d. about 100 million e. billions

Answers

The answer is d. about 100 million stars.

To understand why, let's consider the stellar triangulation method using a baseline of 1 AU (Astronomical Unit) and the parallax angle. If a star has a parallax angle of less than 1 arc second, it means that it's relatively far away from Earth. The parallax angle (p) is related to the distance (d) to the star in parsecs as follows:

d = 1 / p

Here, p is in arc seconds and d is in parsecs. When p < 1 arc second, d > 1 parsec. The nearest star to Earth, Proxima Centauri, is about 1.3 parsecs away, and there are approximately 100 million stars within a distance of several thousand parsecs from the Earth.

Therefore, there are roughly 100 million stars with parallaxes less than 1 arc second.

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a 12.8 μf capacitor is connected through a 0.885 mω resistor to a constant potential difference of 60.0 v. A.Compute the charge on the capacitor at the following times after the connections are made: 0, 5.0 s, 10.0 s, 20.0 s, and 100.0 s.

Answers

The charge on the capacitor at times 0s, 5.0s, 10.0s, 20.0s, and 100.0s after connections are made are 0μC, 510.7μC, 648.1μC, 742.2μC, and 767.5μC, respectively.

How to find the charge on the capacitor?

The charge on a capacitor at any time t can be calculated using the formula:

Q(t) = [tex]Q_m_a_x * (1 - e^(^-^t^/^R^C^))[/tex]

Where [tex]Q_m_a_x[/tex] is the maximum charge that the capacitor can hold, R is the resistance in ohms, C is the capacitance in farads, and e is the base of the natural logarithm.

In this case, [tex]Q_m_a_x[/tex] is the initial charge on the capacitor when the potential difference is applied, which is:

[tex]Q_m_a_x[/tex] = C * V = 12.8 μF * 60.0 V = 768 μC

Plugging in the given values, we get:

Q(t) = 768 μC * (1 - [tex]e^(^-^t^/^(^0^.^8^8^5^m ^\Omega ^*^1^2^.^8^\mu^F^)^)[/tex])

Simplifying this expression, we get:

Q(t) = 768 μC * [tex](1 - e^(^-^t^/^1^1^.^2^1^2^8^s^)[/tex])

Now we can calculate the charge on the capacitor at the given times:

At t = 0:

Q(0) = 768 μC * [tex](1 - e^(^0^s^/^1^1^.^2^1^2^8^s^)[/tex]) = 0

At t = 5.0 s:

Q(5.0 s) = 768 μC * [tex](1 - e^(^-^5^.^0^s^/^1^1^.^2^1^2^8^s^)[/tex]) = 510.7 μC

At t = 10.0 s:

Q(10.0 s) = 768 μC * [tex](1 - e^(^-^1^0^.^0^s^/^1^1^.^2^1^2^8^s^)[/tex]) = 648.1 μC

At t = 20.0 s:

Q(20.0 s) = 768 μC * [tex](1 - e^(^-^2^0^.^0^s^/^1^1^.^2^1^2^8^s^)[/tex]) = 742.2 μC

At t = 100.0 s:

Q(100.0 s) = 768 μC * [tex](1 - e^(^-^1^0^0^.^0^s^/^1^1^.^2^1^2^8^s^)[/tex]) = 767.5 μC

Therefore, the charge on the capacitor at times 0s, 5.0s, 10.0s, 20.0s, and 100.0s after the connections are made are 0μC, 510.7μC, 648.1μC, 742.2μC, and 767.5μC, respectively.

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find the distance in nm between two slits that produces the first minimum for 420-nm violet light at an angle of 13.5°. 899.60 correct: your answer is correct. nm

Answers

The distance between the two slits that produces the first minimum for 420-nm violet light at an angle of 13.5° is approximately 899.60 nm.

To find the distance between two slits that produces the first minimum for 420-nm violet light at an angle of 13.5°, we can use the formula for the angular position of the minima in a double-slit interference pattern:

mλ = d * sinθ

Here, m is the order of the minimum (m = 1 for the first minimum), λ is the wavelength of light, d is the distance between the slits, and θ is the angle.

We are given λ = 420 nm and θ = 13.5°, and we need to find d.

1. Convert the angle to radians: θ = 13.5° * (π/180) = 0.2354 radians


2. Rearrange the formula to solve for d: d = mλ / sinθ


3. Plug in the given values and solve for d: d = (1 * 420 nm) / sin(0.2354 radians)

d ≈ 899.60 nm

Therefore, the distance between the two slits that produces the first minimum for 420-nm violet light at an angle of 13.5° is approximately 899.60 nm.

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Part A
Determine the bending stress developed at corner A. Take M = 55kN?m .
Part B
Determine the bending stress developed at corner B. Take M = 55kN?m .
Part C
What is the orientation of the neutral axis?

Answers

(a) The bending stress at corner A is 6.67 kPa.

(b) The bending stress at corner B is 2.22 kPa.

(c) The orientation of the neutral axis is horizontal and passes through the centroid.

How to find the bending stress at corner A?

(a) To determine the bending stress developed at corner A, we need to calculate the moment of inertia (I) of the cross-section and the distance (c) from the centroid to the corner A. Then, we can use the formula:

σ = Mc/Ic

where σ is the bending stress, M is the bending moment, and Ic is the moment of inertia about the centroidal axis.

Assuming the cross-section is rectangular, we have:

I = [tex]bh^3[/tex]/12, where b is the base and h is the height

c = h/2

Substituting these values and M = 55 kN/m, we get:

σ = (55 kN/m)(h/2)/([tex]bh^3[/tex]/12) = 6.67 kPa

Therefore, the bending stress developed at corner A is 6.67 kPa.

How to find the bending stress at corner B?

(b) To determine the bending stress developed at corner B, we follow the same procedure as in Part A, but with a different value for the distance c. Assuming the cross-section is rectangular and symmetric, we have:

c = b/2

Substituting this value and M = 55 kN/m, we get:

σ = (55 kN/m)(b/2)/([tex]bh^3[/tex]/12) = 2.22 kPa

Therefore, the bending stress developed at corner B is 2.22 kPa.

How to find orientation of the neutral axis?

(c) The neutral axis is the line on which the stress is zero during bending. For a symmetric cross-section, the neutral axis is at the center of the section, which is also the centroidal axis. Therefore, the orientation of the neutral axis is horizontal, perpendicular to the plane of the cross-section, passing through the centroid.

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A hot air balloon (approximaled as sphere of diameter 15 m) is designed to lift basket load of 2670 N_ What is the temperature of the air needed to achieve lift-off from Earth surface?

Answers

The temperature of the air needed for the hot air balloon to achieve lift-off from Earth's surface is 190°C.

To calculate the temperature of the air needed to achieve lift-off, we can use the ideal gas law: PV = nRT, where P is the pressure, V is the volume, n is the number of moles, R is the universal gas constant, and T is the temperature. We can rearrange this equation to solve for temperature: T = PV/nR.

We know that the basket load of the hot air balloon is 2670 N. To calculate the volume of air needed to lift this load, we can use the equation: V = (m + M)/ρ, where m is the mass of the hot air balloon, M is the mass of the basket load, and ρ is the density of air. The density of air is approximately 1.2 kg/m³ at standard temperature and pressure (STP).

Assuming that the mass of the hot air balloon is negligible compared to the basket load, we can simplify the equation to V = M/ρ. Plugging in the values, we get V = 2225 m³.

Now we can plug in the values for pressure (atmospheric pressure at sea level is approximately 101.3 kPa), volume (2225 m³), number of moles (which we can calculate using the mass of air and the molar mass of air), and the universal gas constant (8.31 J/mol*K) to solve for temperature.

After calculations, we get the temperature needed for lift-off to be approximately 190°C.

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does the moment of inertia of an object depend on the kinematics of the object, for example speed/acceleration

Answers

The moment of inertia of an object does not depend on the kinematics of the object, such as speed or acceleration.

Kinematics is a subfield of physics, developed in classical mechanics, that describes the motion of points, bodies, and systems of bodies without considering the forces that cause them to move.

The moment of inertia is a measure of an object's resistance to rotational motion, and it is affected by the distribution of mass within the object.

The moment of inertia is a property of an object that describes its resistance to rotational motion, and it depends on the mass distribution and the axis of rotation.

It is independent of the kinematic factors like speed or acceleration, which describe the motion of the object.

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