what is the final gauge pressure if you add 1.70 kgkg of air to an ""empty"" tank? assume the air still comes out of the compressor at a temperature of 42 ∘c∘c .

The focal length of a mirror is the distance between the mirror and the point where the reflected light rays converge. The focal length of a makeup mirror with a power of 1.25 d is 0.80 m.

The focal length of a mirror depends on the curvature of the mirror surface and is a fundamental property of the mirror. The power of a lens is given by the formula
P = 1/f,
where P is the power of the lens in diopters and f is the focal length of the lens in meters.
Rearranging this formula, we get,
f = 1/P
Substituting the given value of power, we get:
f = 1/1.25 d = 0.80 m
Therefore, the focal length of the makeup mirror is 0.80 m.

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4.7m is the maximum extension of the spring if the ratio of the mass to the spring constant is 0.023 kg-m/n, and the maximum speed of the mass was measured to be 24.90 m/s

What is the spring constant, k?

The spring constant, or k, is the proportional constant. It is a gauge of the spring's rigidity. A spring exerts a force F = -kx in the direction of its equilibrium position when it is stretched or compressed to a length that deviates by an amount x from its equilibrium length.

A metal spring is displaced from its equilibrium position when it is stretched or compressed. It consequently encounters a restoring force that tends to retract the spring back to its initial position. The spring force is the name given to this force.

We know,

1/2kx2 =1/2 mv²

x=v(m/k)^1/2

 =24.9(0.037)^1/2

 = 4.7m

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The strain in the elongated steel bar is 0.02 (unitless, as strain is a ratio of lengths)

To determine the strain in the elongated steel bar, you need to follow these steps:
Step 1: Identify the initial length and elongation of the steel bar.
The initial length (L1) of the steel bar is given as 10 mm, and the elongation (ΔL) is 0.2 mm.
Step 2: Calculate the final length of the steel bar.
The final length (L2) is equal to the initial length plus the elongation: L2 = L1 + ΔL.
Step 3: Calculate the strain in the steel bar.
Strain (ε) is defined as the change in length divided by the original length: ε = (L2 - L1) / L1.
Now, apply the values given in the problem:
L2 = 10 mm + 0.2 mm = 10.2 mm
ε = (10.2 mm - 10 mm) / 10 mm = 0.2 mm / 10 mm = 0.02
The strain in the elongated steel bar is 0.02 (unitless, as strain is a ratio of lengths).

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When doing somersaults, you'll more easily rotate when your body is (c) curled into a ball shape. This is because of the conservation of angular momentum. Angular momentum depends on two factors: the moment of inertia and the angular velocity.

By curling your body into a ball shape, you decrease the moment of inertia, which is a measure of how spread out the mass is in an object. When the moment of inertia is reduced, the angular momentum remains constant.

By decreasing the moment of inertia, you effectively concentrate the mass closer to the axis of rotation, making it easier to rotate. In contrast, when your body is straight with both arms above your head or at your sides, the moment of inertia is larger, requiring more effort to initiate and maintain the rotation. Curling into a ball shape reduces the moment of inertia, facilitating faster and easier rotation during somersaults.

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The magnitude of the electric field required for the particle of charge 0.640 nC to pass through undeflected is 6.125 x 10^3 N/C.

To calculate the magnitude of the electric field in the region so that the particle of charge 0.640 nC passes through undeflected, we need to use the equation E = F/q, where E is the electric field strength, F is the net force acting on the particle, and q is the charge of the particle.
Since the particle is passing through undeflected, the net force acting on it must be zero. This means that the electric force acting on the particle must be balanced by some other force, such as the gravitational force. Therefore, we can use the equation Felec = Fgrav to find the magnitude of the electric field required for the particle to pass through undeflected.
The gravitational force acting on the particle can be calculated using the equation Fgrav = mg, where m is the mass of the particle and g is the acceleration due to gravity. The mass of the particle can be found using the formula m = q/e, where e is the elementary charge.
Substituting these values into the equations, we get:
m = (0.640 nC)/(1.602 x 10^-19 C) = 4.0 x 10^-16 kg
Fgrav = (4.0 x 10^-16 kg) x (9.81 m/s^2) = 3.92 x 10^-15 N
Felec = Fgrav = 3.92 x 10^-15 N
E = Felec/q = (3.92 x 10^-15 N)/(0.640 x 10^-9 C) = 6.125 x 10^3 N/C
Therefore, the magnitude of the electric field required for the particle of charge 0.640 nC to pass through undeflected is 6.125 x 10^3 N/C.

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The water column that would experience the greatest temperature differences with depth is the thermocline. The thermocline is the layer in the water column that separates the warm surface layer from the cold deep water layer. This layer is characterized by a rapid decrease in temperature with increasing depth.

The surface layer of water is heated by the sun and is often mixed by wind and waves, resulting in a relatively consistent temperature. However, as the water gets deeper, it becomes colder due to a lack of sunlight and mixing. The thermocline acts as a barrier, preventing the mixing of the warmer surface water with the colder deep water.

As a result, there can be a significant temperature difference between the surface layer and the deep water layer. In some cases, the temperature difference can be as much as 20 degrees Celsius or more. Understanding the thermocline is important for marine life and oceanographers studying ocean currents, as it affects the distribution of nutrients and the migration patterns of animals.

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The magnetic field must be directed into the page and perpendicular to the plane of the wire.

The magnetic force on a current-carrying wire in a uniform magnetic field is given by the equation:

F = I L x B

where F = magnetic force, I = current, L = length of the wire in the magnetic field, and B = magnetic field strength.

In this case, the wire is a rectangular loop of length L and width w, and the current flows through the loop in a clockwise direction.

The gravitational force on the mass m is given by:

Fg = mg

where g = acceleration due to gravity.

For the magnetic force to balance the gravitational force:

I L B = mg

Solving for I:

I = mg / (L B)

So the current required to balance the gravitational force is proportional to the mass and inversely proportional to the product of the length of the wire and the magnetic field strength.

The direction of the magnetic field must be perpendicular to the plane of the wire and pointing into the page.

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It is important to note that albedo is the measure of how much solar radiation is reflected back into space. In this case, grasslands have a higher albedo than asphalt because grass reflects more solar radiation back into space than asphalt does.

Therefore, if UCSC paves over the Great Meadow on campus, the albedo of the area will decrease, meaning that more solar radiation will be absorbed by the ground. Secondly, the thermal properties of grass and asphalt are different. Asphalt is a good conductor of heat, which means that it absorbs and retains heat well. Grass, on the other hand, has a lower thermal conductivity, which means that it does not absorb and retain heat as well as asphalt. T

In conclusion, the answer to the question of what will happen if UCSC paves over the Great Meadow on campus is that it depends on several factors, including the albedo of the surface, the thermal properties of the surface, and the presence of trees and green spaces around the paved area. However, it is likely that the area will experience an increase in temperature due to the lower albedo of asphalt and its ability to absorb and retain heat.

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The value of the capacitance is 0.51 µF.

We can use the following formula to calculate the capacitance:

I = C * dV/dt

Where I is the peak current, C is the capacitance, and dV/dt is the rate of change of voltage with respect to time.

Since the oscillator frequency is 15 kHz, the period T is:

T = 1/f = 1/15000 = 6.67 × 10^-5 s

The voltage across the capacitor is given by:

V = Vrms * sqrt(2) = 6.0 * sqrt(2) = 8.49 V

The rate of change of voltage with respect to time is:

dV/dt = V / T = 8.49 / 6.67 × 10^-5 = 1.27 × 10^5 V/s

Substituting the given values into the formula, we get:

65 × 10^-3 = C * 1.27 × 10^5

Solving for C, we get:

C = 65 × 10^-3 / 1.27 × 10^5 = 0.51 × 10^-6 F = 0.51 µF

Therefore, the value of the capacitance is 0.51 µF.

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In an l-r-c series circuit, r = 295 ω, l = 0.401 h, and c = 6.03×[tex]10^{-8}[/tex] f. At the resonance frequency of 10514.8 rad/s, the current amplitude is 0.492 A and the voltage amplitude is 145.14 V.

We can use the resonance condition for an LRC series circuit, which occurs when the inductive and capacitive reactances are equal, to solve for the resonance frequency

ω₀ = 1 / [tex]\sqrt{LC}[/tex]

Where ω₀ is the resonance frequency, L is the inductance, and C is the capacitance. Plugging in the given values, we get

ω₀ = 1 / [tex]\sqrt{0.401H*6.03*10^{-8}F }[/tex] ≈ 10514.8 rad/s

At resonance, the impedance of the circuit is purely resistive, so we can use Ohm's law to solve for the resistance

R = V / I

Where R is the resistance, V is the voltage, and I is the current. Since the current amplitude is given as 0.492 A, we can solve for the voltage amplitude

V = IR = (0.492 A)(295 Ω) ≈ 145.14 V

Therefore, at the resonance frequency of 10514.8 rad/s, the current amplitude is 0.492 A and the voltage amplitude is 145.14 V.

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The order to answer this question, we need to use the formula for resolving power, which is given by d = 1.22 λ / NA
the diameter of the objective lens needed to resolve two objects only 400 nm apart using a microscope in air with light of wavelength 550 nm is approximately 5.38 mm.

where d is the smallest resolvable distance between two objects, λ is the wavelength of light, and NA is the numerical aperture of the objective lens. In this case, we are given that the smallest resolvable distance between two objects is 400 nm, the wavelength of light is 550 nm, and the focal length of the objective lens is 1.6 mm. We can solve for NA by rearranging the formula as follows: NA = 1.22 λ / d = 1.22 x 550 nm / 400 nm = 1.68 Now that we know the numerical aperture, we can use the formula for the diameter of the objective lens diameter = 2 x focal length x NA Substituting the given values, we get diameter = 2 x 1.6 mm x 1.68 = 5.38 mm Therefore, the diameter of the objective lens needed to resolve two objects only 400 nm apart using a microscope in air with light of wavelength 550 nm is approximately 5.38 mm.

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The stopping potential when light of 400 nm is incident on potassium is 2.93 V.

The work function, Φ, is the minimum energy required to remove an electron from the surface of a metal.

To find the work function for potassium, we use the equation:

λ = hc/E + Φ

where λ is the threshold wavelength, h is Planck's constant, c is the speed of light, E is the energy of a photon, and Φ is the work function.

Rearranging the equation, we get:

Φ = hc/λ - E

We know λ = 558 nm, h = 6.626 x[tex]10^-34 J[/tex]s, and c = 3.00 x 10^8 m/s.

To find E, we use the equation:

E = hf

where f is the frequency of the photon.

We can find the frequency of the photon with a wavelength of 558 nm using:

c = λf

f = c/λ

f = (3.00 x [tex]10^8 m/s[/tex])/(558 x[tex]10^-9 m[/tex])

f = 5.38 x[tex]10^14[/tex]Hz

Using the equation E = hf, we get:

E = (6.626 x [tex]10^-34[/tex] J s)(5.38 x [tex]10^14 Hz[/tex])

[tex]E = 3.56 x 10^-19 J[/tex]

Substituting the values into the equation for Φ, we get:

Φ = (6.626 x [tex]10^-34 J s[/tex])(3.00 x [tex]10^8 m/s[/tex])/(558 x [tex]10^-9 m[/tex]) - 3.56 x [tex]10^-19 J[/tex]

Φ = [tex]2.24 x 10^-19 J[/tex]

Therefore, the work function for potassium is 2.24 x [tex]10^-19 J.[/tex]

To find the stopping potential when light of 400 nm is incident on potassium, we use the equation:

KEmax = hf - Φ

where KEmax is the maximum kinetic energy of the emitted electron.

We know h = 6.626 x [tex]10^-34 J s[/tex], f = c/λ = (3.00 x [tex]10^8 m/s[/tex])/(400 x [tex]10^-9 m[/tex]) = 7.50 x[tex]10^14 Hz[/tex], and Φ = 2.24 x [tex]10^-19 J.[/tex]

Substituting the values, we get:

KEmax = (6.626 x[tex]10^-34 J s[/tex])(7.50 x [tex]10^14 Hz[/tex]) - 2.24 x [tex]10^-19 J[/tex]

KEmax = 4.68 x [tex]10^-19 J[/tex]

To find the stopping potential, we use the equation:

KEmax = eVstop

where e is the elementary charge and Vstop is the stopping potential.

We know e = 1.60 x[tex]10^-19 C.[/tex]

Substituting the values, we get:

Vstop = KEmax/e

Vstop = (4.68 x [tex]10^-19 J[/tex])/(1.60 x [tex]10^-19 C[/tex])

Vstop = 2.93 V

Therefore, the stopping potential when light of 400 nm is incident on potassium is 2.93 V.

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The ingredients of the solar nebula are often listed in order of decreasing percentage of mass as follows: hydrogen, helium, oxygen, carbon, nitrogen, and all other elements.

However, this is a long answer because it is important to note that the exact composition of the solar nebula is not known with certainty and may vary depending on factors such as location within the nebula and the time at which the measurements were taken.

Additionally, the relative percentages of these elements may have varied throughout the formation of the solar system due to processes such as nuclear fusion, gravitational accretion, and chemical differentiation. Nonetheless, hydrogen and helium are believed to have made up the majority of the solar nebula's mass, with hydrogen accounting for around 73% and helium around 25%. The other elements, including oxygen, carbon, and nitrogen, would have made up only a small fraction of the nebula's mass.

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a) The maximum electric field in the beam is 184 kN/C.

b) Total energy is contained in a 1.00-m length of the beam is 18.0x10⁻³ J

c) The momentum carried by a 1.00-m length of the beam is 6.00x10⁻¹¹ kg m/s

a) The maximum electric field in the beam can be found using the formula for power density:

P/A = (1/2)ε₀cE²

where P is the power, A is the area of the circular cross section, ε₀ is the permittivity of free space, c is the speed of light, and E is the electric field.

Rearranging for E, we get:

E = √(2P/ε₀cA)

Plugging in the given values, we get:

E = √(2(18.0x10⁻³ W)/(8.85x10⁻¹² F/m)(3.00x10⁸ m/s)(pi(1.30x10⁻³ m)²))

E ≈ 1.84x10⁶ N/C

E = 184 kN/C

b) The total energy contained in a 1.00-m length of the beam can be found by multiplying the power by the length of the beam:

E = P x L

E = 18.0x10⁻³ W x 1.00 m

E = 18.0x10⁻³ J

c) The momentum carried by a 1.00-m length of the beam can be found using the formula:

p = E/c

where p is the momentum and c is the speed of light.

Plugging in the given values, we get:

p = (18.0x10⁻³ J)/(3.00x10⁸ m/s)

p ≈ 6.00x10⁻¹¹ kg m/s

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The final velocity of the handcar in case A is 7.80 m/s to the east, and in case B is 6.02 m/s to the east.

The total mass of the passengers is 65.0 kg x 3 = 195.0 kg. When they jump off the car to the west, the total momentum of the system is conserved. Let the final velocity of the car be v. Then:

(mass of car + contents) x initial velocity of car = mass of car x final velocity of car + mass of passengers x velocity of passengers

(150 kg) x (5.50 m/s) = (150 kg) x v + (195.0 kg) x (-5.50 m/s)

825 = 150v - 1072.5

v = 12.5 m/s to the east

Therefore, the final velocity of the car is 12.5 m/s to the east.

Let the final velocity of the car be v. Then:

(mass of car + contents) x initial velocity of car = mass of car x final velocity of car + mass of package x velocity of package

(150 kg) x (5.50 m/s) = (150 kg) x v + (45.0 kg) x (-15.0 m/s)

825 = 150v - 675

v = 9.0 m/s to the east

Therefore, the final velocity of the car is 9.0 m/s to the east.

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--The complete question is, A railroad handcar is moving along straight, frictionless tracks with negligible air resistance. In the following cases, the car initially has a total mass (car and contents) of 150 kg and is traveling east with a velocity of magnitude 5.50 m/s. Find the final velocity of the car in each case, assuming that the handcar does not leave the tracks.

A) Three passengers, each with a mass of 65.0 kg, jump off the back of the car to the west.

B) A 45.0 kg package is thrown off the back of the car to the west with a speed of 15.0 m/s.--

Let's consider the forces acting on the rod. The gravitational force acting on the center of mass of the rod is mg, where g is the acceleration due to gravity. The force due to air resistance is bv, where b is the air resistance coefficient and v is the velocity of the rod. The force acting on the rod is given by F = ma, where a is the acceleration of the rod.

Since the rod is rotating about its pivot, there is also a torque acting on the rod. The torque τ is given by τ = Iα, where I is the moment of inertia of the rod about its pivot and α is the angular acceleration of the rod. For a thin rod rotating about its center of mass, I = (1/12)ml^2, where m is the mass of the rod and l is its length.

The torque τ is also given by τ = r × F, where r is the distance from the pivot to the point where the force is applied. Since the force F is acting at the center of mass of the rod, r = (1/2)l.

Equating the two expressions for τ, we get:

Iα = r × F

Substituting the values of I and r, we get:

(1/12)ml^2α = (1/2)(l/2) × F

Simplifying, we get:

α = (6F)/(ml)

The angular acceleration α is related to the linear acceleration a by a = rα, where r is the distance from the pivot to the point where the force is applied. Since the force is acting at the center of mass of the rod, r = (1/2)l.

Therefore, we have:

a = (1/2)lα

Substituting the value of α, we get:

a = (3F)/(ml)

The net force acting on the rod is given by:

Fnet = F - bv - mg

Substituting the value of F from the expression for τ, we get:

Fnet = (τ/(l/2)) - bv - mg

Substituting the value of α, we get:

Fnet = (6mla/(l^2)) - bv - mg

Simplifying, we get:

Fnet = (6a/l) - bv - mg

Therefore, the acceleration of the rod is given by:

a = (1/m)((6/l)Fnet + bv + mg)

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A.  The normal force acting on the box is 42.4 N.

B. The box will slide 10 m to get to the bottom of the ramp

C. The force of kinetic friction acting on the box is 0.424 N.

D. At the beginning, the box has gravitational potential energy looking at the height above ground

E. When the box reaches the bottom of the ramp, it has kinetic energy and thermal energy which is due to motion and friction.

F. The Potential energy is 245 J

G. The work done by friction is 4.24J

H. The energy represented by the work done by friction will change to thermal energy

I The speed of the box at the bottom of the ramp is approximately 9.81 m/s.

A. The normal force acting on the box is equal to the component of the box's weight that is perpendicular to the ramp.

Normal Force = mass× g × cos(θ)

Normal Force = 5 kg×9.8 m/s² × cos(30 degrees)

Normal Force = 42.44 N

B sin(θ) = opposite/hypotenuse

hypotenuse = opposite / sin(θ) ⇒ 5 / sin(30 degrees) = 10 m

C. Force = µk × Normal Force

µk = 0.01 which is the coefficient of kinetic friction

So, Force = 0.01 × 42.44 N = 0.4244 N

F. Potential energy is PEg = m×g × h

PEg = 5 kg×9.8 m/s² ×5 m = 245 J

G. Work done is Work = force × distance

Work = 0.4244 N × 10 m = 4.244 J

I The speed of the box at the bottom PEg - Work = KE

m× g× h - force × distance ⇒ 0.5 × m × v²

245 J - 4.244 J = 0.5×5 kg × v²

= 9.81 m/s

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The induced electromagneticforce in the shrinking circular loop perpendicular to a uniform magnetic field B is E = πr_0^2Bβe^(-βt).

When a conducting wire moves across a magnetic field, an induced electromagneticforce is generated. In this case, the shrinking loop with radius r = r_0e^(-βt) is moving across the uniform magnetic field B, perpendicular to it. The induced emf in the loop is given by Faraday's law of electromagnetic induction as E = -dΦ/dt, where Φ is the magnetic flux through the loop. The magnetic flux Φ can be calculated as the product of the magnetic field B, the area of the loop, and the cosine of the angle between the magnetic field and the area vector of the loop. Since the loop is perpendicular to the magnetic field, the cosine is 1, and Φ = Bπr^2. Differentiating with respect to time, we get dΦ/dt = Bπd/dt(r^2) = 2πr_0^2Bβe^(-βt), and substituting this in the expression for the induced emf, we get E = πr_0^2Bβe^(-βt).

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The total translational kinetic energy of 2.5 L of oxygen gas held at a temperature of 0°C and a pressure of 0.5 atm is approximately 1.26 J.

The total translational kinetic energy of a gas can be calculated using the following formula:

K = (3/2)NkT

where K is the total translational kinetic energy of the gas, N is the number of molecules of the gas, k is Boltzmann's constant, and T is the temperature of the gas in kelvin.

To use this formula, we need to find the number of molecules of oxygen gas in 2.5 L of the gas at 0°C and 0.5 atm.

We can start by using the ideal gas law, which relates the pressure, volume, temperature, and number of molecules of a gas:

PV = nRT

where P is the pressure, V is the volume, n is the number of moles of the gas, R is the gas constant, and T is the temperature in kelvin.

To find n, we can rearrange the above equation as:

n = PV/RT

Substituting the given values, we get:

n = (0.5 atm)(2.5 L)/(0.08206 L·atm/mol·K)(273.15 K) ≈ 0.0577 mol

Next, we can find the number of molecules of oxygen gas using Avogadro's number, which relates the number of molecules in a mole of a substance:

N = nN_A

where N_A is Avogadro's number.

Substituting the given values, we get:

N = (0.0577 mol)(6.022 x 10^23 molecules/mol) ≈ 3.47 x 10^22 molecules

Now we can use the formula for the total translational kinetic energy to find K. We first need to convert the temperature from Celsius to Kelvin:

T = 0°C + 273.15 = 273.15 K

Substituting the given values, we get:

K = (3/2)(3.47 x 10^22)(1.38 x 10^-23)(273.15) ≈ 1.26 J

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a.) The source of the centripetal force acting on the riders is the normal force exerted by the wall on the riders. b.)The centripetal force acting on a 55.0 kg rider is 1665 N.(c.)The minimum coefficient of static friction required for the rider  is greater than 1.

a) The source of the centripetal force acting on the riders is the normal force exerted by the wall on the riders. As the floor falls away, the riders continue to move in a circular path due to this centripetal force.

b) The centripetal force acting on a 55.0 kg rider can be calculated using the formula Fc = m * ac, where ac is the centripetal acceleration of the rider, and is given by [tex]ac = v^2 / r,[/tex] where v is the speed of the wall and r is the radius of the cylindrical room.

The calculated centripetal force acting on the rider is 1665 N.

c) The minimum coefficient of static friction required for the rider to remain in place when the floor drops away can be determined by equating the force of static friction between the rider's back and the wall to the centripetal force acting on the rider.

The force of static friction is given by fs = μs * N, where μs is the coefficient of static friction and N is the normal force exerted by the wall on the rider. The minimum coefficient of static friction is not a meaningful value since the result obtained is greater than 1, which is not physically possible.

Various factors such as the shape of the rider's body, the speed of the ride, and air resistance will affect the rider's motion

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To interrupt at 10 kHz with a bus clock of 80 MHz, the value to be written into the reload register of SysTick is 7,999.

To interrupt at 10 kHz with a bus clock of 80 MHz, the value to be written into the reload register of SysTick can be calculated as follows:

Reload Value = (Bus Clock Frequency / Interrupt Frequency) - 1

Substituting the given values, we get:

Reload Value = (80,000,000 Hz / 10,000 Hz) - 1

Reload Value = 7,999

Therefore, the value to be written into the reload register of SysTick is 7,999.

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To find the mass of the barbell weighing 980 N, we can use the formula w=mg where w is the weight, m is the mass, and g is the acceleration due to gravity. In this case, we know that the weight is 980 N and g is 9.8 m/s^2, so we can rearrange the formula to solve for m: m=w/g.

Substituting the values we know, we get m=980 N/9.8 m/s^2, which simplifies to m=100 kg. Therefore, the barbell has a mass of 100 kg.

This formula is useful in many situations where we know the weight and want to find the mass, or vice versa. It is important to remember that weight and mass are not the same thing; weight is the force exerted on an object due to gravity, while mass is a measure of how much matter an object contains.

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The reaction will proceed 8.00 times faster at a temperature of approximately 435 K (162°C) compared to 347 K (74°C).

To find the Kelvin temperature at which the reaction will proceed 8.00 times faster than it did at 347 K, we need to use the Arrhenius equation:
[tex]k = A exp^{\frac{-Ea}{RT} }[/tex]
where k is the rate constant, A is the pre-exponential factor, Ea is the activation energy, R is the gas constant (8.314 J/mol K), and T is the absolute temperature in Kelvin.
Let's call the temperature we are trying to find T2. We can set up a ratio of the rate constants at the two temperatures:
k2/k1 = 8.00
where k1 is the rate constant at 347 K. Plugging in the values from the Arrhenius equation, we get:
(A × exp(-Ea/RT2)) / (A × exp(-Ea/RT1)) = 8.00
Simplifying and solving for T2, we get:
T2 = Ea / (R × ln(8.00 / exp(-Ea/R(1/347))))
Plugging in the values given in the problem, we get:
T2 = (30020 J/mol) / (8.314 J/mol K × ln(8.00 / exp(-30020 J/mol / (8.314 J/mol K × (1/347)))))
T2 = 434.9 K

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False, quasars are not stars in the last stages of their lives.

Quasars are distant celestial objects that emit enormous amounts of energy, making them some of the most luminous entities in the universe. They are powered by supermassive black holes at the centers of galaxies, which accrete matter from their surroundings. As this matter falls into the black hole, it forms an accretion disk, heating up and emitting intense radiation across the electromagnetic spectrum.

On the other hand, stars in their last stages, such as red giants or supernovae, are indeed experiencing their final outpouring of energy before transitioning to a white dwarf, neutron star, or black hole. However, these events are different from quasars both in terms of their energy output and the processes involved. In summary, quasars are not dying stars but instead the energetic phenomena associated with supermassive black holes in the centers of galaxies.

So,the statement is false, quasars are not stars in the last stages of their lives.

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The Divergence Theorem is true for the vector field F(x,y,z)=3xi+xyj+3xzk on the region E, which is the cube bounded by the planes x=0,x=3,y=0,y=3,z=0,z=3.

Explanation: The Divergence Theorem states that the flux of a vector field across a closed surface is equal to the volume integral of the divergence of the vector field over the enclosed volume. In this case, the cube is a closed surface, and the vector field F has a constant divergence of 6. Therefore, by the Divergence Theorem, the flux of F across the cube is equal to 6 times the volume of the cube. The volume of the cube is (3^3)=27, so the flux of F across the cube is 6 times 27, which is equal to 162.

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The speed of the traveling wave is 35/5 = 7 m/s. To provide an explanation, we can use the wave equation ,v = λf, where v is the speed of the wave, λ is the wavelength, and f is the frequency.

The wavelength is the distance over which the wave completes one cycle, which corresponds to a 2π phase shift. So we can find the wavelength by setting 5x + 35t = 2π ,5x + 35t = 2π ,λ = 2π/5  Next, we can find the frequency from the angular frequency ω ,y(x,t) = 4cos(5x + 35t) ω = 5 ,f = ω/2π = 5/2π ,Now we can use the wave equation ,v = λf ,v = (2π/5) x 5/2π ,v = 1 ,Therefore, the speed of the traveling wave is 1 m/s.

The actual speed of the wave is 35/5 = 7 m/s. Identify the angular frequency (ω) and wavenumber (k) from the equation y(x,t) = 4cos 5x + 35t .In this case, k = 5 from the coefficient of x and ω = 35 from the coefficient of t. Use the relationship between speed (v), angular frequency (ω), and wavenumber (k): v = ω/k, Substitute the values of ω and k: v = 35/5, Calculate the speed: v = 7 m/s ,In summary, the speed of the wave described by the equation y(x,t) = 4cos(5x + 35t) is 7 m/s.

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The frequency at which the peak current through a 480 μH inductor connected to an AC generator producing a peak voltage of 4.50 V is 20.9 kHz.

The reactance of an inductor is given by the equation X_L = 2πfL, where X_L is the inductive reactance, f is the frequency, and L is the inductance of the inductor. The peak current in an inductor connected to an AC generator is given by the equation I_peak = V_peak / X_L, where I_peak is the peak current, and V_peak is the peak voltage of the generator.

To find the frequency at which the peak current is 52.0 mA, we can rearrange these equations as follows:X_L = 2πfL
I_peak = V_peak / X_L

Substituting the given values, we get:480 x 10^(-6) = 2πfL
52.0 x 10^(-3) = 4.50 / X_L
Solving for f, we get:f = X_L / (2πL) = (4.50 / I_peak) / (2π x 480 x 10^(-6))
f ≈ 20.9 kHz

Therefore, the frequency at which the peak current through the inductor is 52.0 mA is approximately 20.9 kHz.

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To determine the airflow required to achieve a 24 m/min velocity in a fume hood with a cross-sectional area of 3 m², you can use the formula:

Airflow (m³/min) = Velocity (m/min) × Cross-sectional area (m²)

In this case, the velocity is given as 24 m/min, and the cross-sectional area is 3 m². Plugging these values into the formula, we have:

Airflow (m³/min) = 24 m/min × 3 m² = 72 m³/min

So, an airflow of 72 m³/min is required to achieve a velocity of 24 m/min in a fume hood with a cross-sectional area of 3 m². This is important for maintaining adequate ventilation and ensuring the safe removal of hazardous fumes and particles from the working environment.

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On a Hertzsprung-Russell (H-R) diagram, stars with the greatest mass are found at the upper-left portion of the main sequence.

The main sequence on the H-R diagram represents the stage of a star's life when it is fusing hydrogen into helium in its core. Stars on the main sequence range in mass from low-mass stars (such as red dwarfs) to high-mass stars (such as blue giants).

As we move along the main sequence from right to left, the mass of the stars increases. The stars located at the upper-left portion of the main sequence have the greatest mass among the main sequence stars. These stars are often referred to as "main sequence giants" or "O-type stars" and are typically much more massive than stars located toward the lower-right portion of the main sequence.

It is important to note that the H-R diagram is a plot of stellar luminosity (brightness) versus surface temperature (or color), with the main sequence representing the majority of stars in the universe.

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