QS1 KM1 F 1 20 U V W 5 M1 3~ QS2 KM2 U V W 99 M2 IV. Circuit design (25 points) 3~ F2 Two motors MI and M2, M2 shall be started before MI can be started, if press the stop button, Ml stops before M2 stops. Please design the control circuit and try to analyze the work process. 6/7

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Answer 1

QS1 KM1 F 1 20 U V W 5 M1 3~ QS2 KM2 U V W 99 M2 IV. Circuit design (25 points) 3~ F2 Two motors MI and M2, M2 shall be started before MI can be started, if press the stop button, Ml stops before M2 stops.

The control circuit for the given problem can be designed by using the concept of ladder logic.

Working of the circuit:

When the start button (QS2) is pressed, power is supplied to the K1 contact of the KM2 coil. This makes the coil KM2 energized and its contact KM2 is latched. The contact KM2 of KM2 coil provides power supply to the coil KM1 through the F1 and F2 contacts. When the coil KM1 is energized, its contact KM1 is closed which provides power to the motor M2 and also to the coil M1.After some time delay, the F1 contact of KM1 is closed which provides power to the motor MI. If any of the stop button is pressed, the power supply to the M1 coil is cutoff which stops the motor MI immediately. But the power supply to M2 coil is not cutoff, and it stops after a while as there is no feedback control provided.The F2 contact of KM2 is provided to provide a hold-on condition to KM2 after the stop button is released. This ensures that M2 runs for some time delay before it stops.

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Related Questions

A child is standing on a merry-go-round, 1.4m from the center. The coefficient of static friction between their shoes and the metal surface is u = 0.80. (a) What is the maximum force of static friction between their shoes and the surface? (b) Centrifugal force is mass times centrifugal acceleration. What is the fastest the merry-go-round can spin without the child slipping? Answer in revolutions per minute.

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(a) The maximum force of static friction between the child's shoes and the surface is 56 N. (b) The merry-go-round can spin at a maximum speed of 0.92 revolutions per minute without the child slipping.

(a) To determine the maximum force of static friction, we use the equation F_friction = uN, where F_friction is the force of friction, u is the coefficient of static friction, and N is the normal force. The normal force acting on the child can be calculated as N = mg, where m is the mass of the child and g is the acceleration due to gravity. Since there is no vertical acceleration, the normal force is equal to the weight of the child. Assuming a typical value of 9.8 m/s² for g, the maximum force of static friction is F_friction = (0.80)(mg) = (0.80)(m)(9.8) = 7.84m N.

(b) The centrifugal force experienced by the child on the merry-go-round is given by F_centrifugal = mω²r, where m is the mass of the child, ω is the angular velocity, and r is the distance from the center. The child will start to slip when the maximum force of static friction is equal to the centrifugal force, so we can equate the two equations: F_friction = F_centrifugal. Solving for ω, we find ω = √(g/u) = √(9.8/0.80) ≈ 3.92 rad/s. Finally, we convert the angular velocity to revolutions per minute: ω in revolutions per minute = (ω in rad/s)(60 s/min)/(2π rad/rev) ≈ 0.92 rev/min.

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Calculate at point P(100, 100, 100) in free space, the radiated electric field intensities E,,and Ee, of a Im Hertzian dipole antenna located at the origin along z axis. The antenna is excited by a current i(t) = 1 x cos( 10m x 10°t) A

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The answer is-  cos(θ) = z/r = 100/√(100² + 100² + 100²) = 1/√3 and sin(θ) = √2/√3.

The electric field intensities E and Eθ of a 1m Hertzian dipole antenna in free space at point P(100, 100, 100) located at the origin along the z-axis and excited by a current i(t) = 1 x cos(10m x 10°t) A are given by; E = jIωl cos(θ) / 4πr²Eθ = - jIωl sin(θ) / 4πr² Where j = √-1 is the imaginary number I is the current flowing through the antenna, which is given as I = 1AL is the length of the dipole antenna, which is L = 1mω is the angular frequency of the oscillating current source, which is given as ω = 2πf = 2π(10MHz) = 20π x 10⁶rad/sθ is the angle between the line joining the origin and point P with the z-axis, given by cos(θ) = z/r = 100/√(100² + 100² + 100²) = 1/√3sin(θ) = √2/√3r is the distance between the dipole antenna and point P, given by r = √(100² + 100² + 100²) = 100√3/√3 x 100² = 10⁶λ = c/f = 3 x 10⁸/10⁷ = 30m where c is the speed of light in free space

Substituting the given values into the expressions for the electric field intensities;

E = j(1A)(20π x 10⁶ rad/s)(1m) (1/√3) cos(θ) / 4π(100√3)²

= 9.4 x 10⁻¹²cos(θ) VEθ

= -j(1A)(20π x 10⁶ rad/s)(1m) √2/√3 sin(θ) / 4π(100√3)²

= -9.4 x 10⁻¹²sin(θ) V.

The radiated electric field intensities E and Eθ of a 1m Hertzian dipole antenna located at the origin along the z-axis in free space at point P(100, 100, 100) is given by E = 9.4 x 10⁻¹²cos(θ) V and Eθ = -9.4 x 10⁻¹²sin(θ) V, where θ is the angle between the line joining the origin and point P with the z-axis, given by cos(θ) = z/r = 100/√(100² + 100² + 100²) = 1/√3 and sin(θ) = √2/√3.

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A disk 8.08 cm in radius rotates at a constant rate of 1 210 rev/min about its central axis. (a) Determine its angular speed. rad/s (b) Determine the tangential speed at a point 2.94 cm from its center. m/s (c) Determine the radial acceleration of a point on the rim. magnitude km/s2 direction ---Select--- (d) Determine the total distance a point on the rim moves in 2.02 s. m

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Answer:

a) the angular speed is approximately 7608.47 rad/s.

b) the tangential speed  is approximately 223.74 m/s.

c) the magnitude  is approximately 468.16 km/s^2.

d) a point on the rim  approximately 452.65 meters in 2.02 seconds.

(a) To determine the angular speed of the disk, we can convert the given rotational speed from rev/min to rad/s.

Radius (r) = 8.08 cm = 0.0808 m

Rotational speed = 1210 rev/min

The conversion factor from rev/min to rad/s is 2π, since 2π radians is equivalent to one revolution.

Angular speed (ω) = Rotational speed * 2π

Substituting the values:

ω = 1210 * 2π

Calculating:

ω ≈ 7608.47 rad/s

Therefore, the angular speed of the disk is approximately 7608.47 rad/s.

(b) To determine the tangential speed at a point 2.94 cm from the center of the disk, we can use the formula:

v = ω * r

Where v is the tangential speed, ω is the angular speed, and r is the distance from the center.

Distance from center (r) = 2.94 cm = 0.0294 m

Angular speed (ω) = 7608.47 rad/s

Substituting the values:

v = 7608.47 * 0.0294

Calculating:

v ≈ 223.74 m/s

Therefore, the tangential speed at a point 2.94 cm from the center of the disk is approximately 223.74 m/s.

(c) The radial acceleration of a point on the rim of a rotating disk can be calculated using the formula:

ar = ω^2 * r

Where ar is the radial acceleration, ω is the angular speed, and r is the distance from the center.

Distance from center (r) = 0.0808 m

Angular speed (ω) = 7608.47 rad/s

Substituting the values:

ar = (7608.47)^2 * 0.0808

Calculating:

ar ≈ 468.16 km/s^2 (magnitude)

The direction of the radial acceleration is towards the center of the disk.

Therefore, the magnitude of the radial acceleration of a point on the rim is approximately 468.16 km/s^2.

(d) To determine the total distance a point on the rim moves in 2.02 s, we can use the formula:

Distance = Tangential speed * Time

Tangential speed = 223.74 m/s

Time = 2.02 s

Substituting the values:

Distance = 223.74 * 2.02

Calculating:

Distance ≈ 452.65 m

Therefore, a point on the rim of the disk moves approximately 452.65 meters in 2.02 seconds.

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Distance Conversion, Light Years to Kilometers (Parallel B) Express the answer in scientific notation. A star is 9.6 light-years (ly) away from Earth. What is this distance in kilometers? d=×10 km

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The distance from Earth to the star is approximately 9.07584 × 10^13 kilometers.

One light-year is the distance that light travels in one year. To convert light-years to kilometers, we need to multiply the given distance in light-years by the conversion factor, which is the distance traveled by light in one year. The speed of light is approximately 299,792 kilometers per second, and there are 31,536,000 seconds in a year (assuming a non-leap year).

So, the conversion factor is:

1 light-year = (299,792 km/s) * (31,536,000 s/year)

To find the distance in kilometers, we multiply the given distance of 9.6 light-years by the conversion factor:

d = 9.6 light-years * (299,792 km/s) * (31,536,000 s/year)

Calculating the above expression, we find that the distance is approximately 9.07584 × 10^13 kilometers.

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If space-based telescopes have so many advantages over ground-based telescopes, why are most professional class telescopes located on Earth? For most wavelengths, there is no real advantage of a space

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Most professional-class telescopes are located on Earth, despite the many advantages that space-based telescopes offer, for a few reasons. One reason is the cost.

Building and launching a space-based telescope is much more expensive than constructing a ground-based telescope. Additionally, it is easier to maintain and repair a ground-based telescope, and new technology can be more easily installed. Furthermore, while space-based telescopes are better at detecting certain wavelengths of light, for most wavelengths there is no real advantage of a space telescope over a ground-based one.

Professional-class telescopes have enabled scientists to study the cosmos, learn more about the universe and how it came to be. Although space-based telescopes have numerous advantages, most of the professional-class telescopes are located on earth. The main reason is the cost of constructing and launching a space-based telescope, which is far more expensive than a ground-based one.

Ground-based telescopes, on the other hand, are cheaper and more accessible to astronomers. Moreover, ground-based telescopes are easy to maintain, repair and install new technology compared to space-based telescopes. The research and development of ground-based telescopes also enjoy the benefits of well-established technology. While space-based telescopes have advantages in detecting certain wavelengths of light, for most wavelengths there is no advantage to using a space telescope.

Although space-based telescopes have many advantages over ground-based telescopes, cost is one of the key reasons why most professional-class telescopes are located on earth.

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A 1.25-kg wrench is acting on a nut trying to turn it. A force 135.0 N acts on the wrench at a position 12.0 cm from the center of the nut in a direction 35.0 ∘
above the horizontal handle. What is the 椽agnitude of the torque about the center of the nut? Be sure to give appropriate units.

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The magnitude of the torque about the center of the nut is approximately 9.42 N.m, which is determined by multiplying the force acting on the wrench by the perpendicular distance between the force and the center of the nut.

To calculate the magnitude of the torque, we need to use the equation

τ = F * r * sin(θ),

where τ represents the torque, F is the force applied, r is the perpendicular distance between the force and the center of the nut, and θ is the angle between the force and the horizontal handle.

First, we convert the given distance from centimeters to meters: 12.0 cm = 0.12 m.

Next, we need to determine the perpendicular distance, r, by using trigonometry. Since the angle θ is given as [tex]35.0^0[/tex] above the horizontal handle, the angle between the force and the perpendicular line is ([tex]90^0 - 35.0^0) = 55.0^0[/tex]. Applying sine, we have [tex]sin(55.0^0) = r / 0.12 m[/tex].

Solving for r, we find r ≈ 0.097 m.

Finally, we can calculate the torque:

τ = (135.0 N) * (0.097 m) * sin([tex]35.0^0[/tex]).

Evaluating the expression, we find:

τ ≈ 9.42 N.m.

Therefore, the magnitude of the torque about the center of the nut is approximately 9.42 N·m.

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A projectile is fired from the edge of a cliff at a height of 20.0 m as shown in the figure. The initial velocity vector is 200.0 m/s at an angle of 30 0
. The projectile reaches maximum height at point P and then falls and strikes the ground at point Q. How high is point P above point Q( in meters), assuming no air resistance? (rounded off to three SF). 128 m 490 m 940 m

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The height of point P above point Q is approximately 530 m

In the figure shown below, a projectile is fired from the edge of a cliff at a height of 20.0 m.

The initial velocity vector is 200.0 m/s at an angle of 30 degrees. The projectile reaches maximum height at point P and then falls and strikes the ground at point Q. The vertical motion and horizontal motion of the projectile are independent of each other. We will first use the vertical component to figure out the time taken to reach the maximum height and the maximum height reached by the projectile.

The projectile's initial vertical velocity is v₀y = 200 sin(30°) = 100 m/s.

At the highest point, the projectile's vertical velocity is zero (v = 0) since it is momentarily at rest. The time taken for the projectile to reach the maximum height is given by:

v = v₀y + gtv = 0, v₀y = 100, g = -9.8 (taking downwards as the positive direction)t = v / g = v₀

y / g = 100 / 9.8 ≈ 10.204 s

The maximum height reached by the projectile is given by:

s = v₀yt + 1/2 gt² = 100 * 10.204 + 1/2 * (-9.8) * (10.204)²≈ 510.204 m

The horizontal velocity of the projectile is given by:

v₀x = 200 cos(30°) = 173.2 m/s.

The horizontal distance covered by the projectile from the edge of the cliff to the point of impact on the ground is given by:

x = v₀x * t = 173.2 * 10.204 ≈ 1770.51 m

The height of point P above point Q is the difference between the height of the cliff and the height of the point of impact on the ground. Hence, the height of point P above point Q is given by:

20.0 + 510.204 - 0 = 530.204 ≈ 530 m

Therefore, the height of point P above point Q is approximately 530 m (rounded off to three significant figures).

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At t=0 a grinding wheel has an angular velocity of 26.0 rad/s. It has a constant angular acceleration of 31.0 rad/s until a circuit breaker trips at time t = 1.50 s. From then on, it turns through an angle 433 rad as it costs to a stop at constant angular acceleration.
Part A Through what total angle did the whol turn between t = 0 and the time stopped? Express your answer in radians
θ = _____________ rad
Part B At what time did it stop? Express your answer in seconds ? t = ____________________ s

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At t=0 a grinding wheel has an angular velocity of 26.0 rad/s. It has a constant angular acceleration of 31.0 rad/s until a circuit breaker trips at time t = 1.50 s and it turns through an angle 433 rad, then the total angle with which the wheel turn between t=0 and the time stopped is θ = 227.012 rad and the time at which it stops is t= 7.79 s.

A grinding wheel has an initial angular velocity, ω₁ = 26.0 rad/s, Constant angular acceleration, α = 31.0 rad/s², Time after which the circuit breaker,

Let, the final angular velocity of the wheel be ω₂.

Final angular velocity, ω₂ = 0 rad/s

a)

We need to find the total angle through which the wheel turns between t = 0 and the time it stops.

Total angle through which the wheel turns between t = 0 and the time it stops is given by,

θ = θ₁ + θ₂

where, θ₁ = angle moved by the wheel before circuit breaker trips, θ₂ = angle moved by the wheel after circuit breaker trips

θ₁ = ω₁t + 1/2 αt²

where, ω₁ = initial angular velocity, t = time taken for circuit breaker to trip, α = angular acceleration

θ₁ = 26.0(1.50) + 1/2(31.0)(1.50)²= 113.625 rad

θ₂ = ω² - ω²/2α

where,ω = initial angular velocity = 26.0 rad/s

ω₂ = final angular velocity = 0 rad/s

α = angular acceleration= 31.0 rad/s²

θ₂ = (26.0)²/2(31.0)= 114.387 rad

Total angle through which the wheel turns between t = 0 and the time it stops,

θ = θ₁ + θ₂= 113.625 + 114.387= 227.012 rad

Therefore, the total angle through which the wheel turns between t = 0 and the time it stops is 227.012 rad.

b) We need to find the time at which it stops.

Using the relation,

θ = ω₁t + 1/2 αt²θ - ω₁t = 1/2 αt²t = √2(θ - ω₁t)/α

At t = 0, the wheel has an angular velocity, ω₁ = 26.0 rad/s

So,The time it stops, t = √2(θ - ω₁t)/α= √2(433 - 26.0(1.50))/31.0= 7.79 s

Therefore, the wheel stops at t = 7.79 s.

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A wave traveling along a string is described by the time- dependent wave function f(a,t) = a sin (bx + qt), with a = 0.0298 m ,b= 5.65 m-1, and q = 77.3 s-1. The linear mass density of the string is 0.0456 kg/m. = Part A Calculate the wave speed c. Express your answer with the appropriate units. μΑ ? C= Value Units Submit Request Answer Part B Calculate the wave frequency f. E
Calculate the power P supplied by the wave. Express your answer with the appropriate units. μΑ ?

Answers

a) The wave speed is calculated to be approximately 431.55 m/s.

(b) The wave frequency is calculated to be approximately 77.3 Hz. The power supplied by the wave is approximately 0.0124 watts.

(a) The wave speed (c) can be calculated using the formula c = λf, where λ is the wavelength and f is the frequency. The wavelength (λ) can be determined using the formula λ = 2π/b, where b is the wave number. Plugging in the given value  [tex]b=5.65\ \text{m}^{-1}[/tex] we get λ ≈ [tex]2\pi/5.65[/tex] ≈ 1.113 m. Now, we can calculate the wave speed using the formula c = λf. Plugging in the given value [tex]f=77.3\ \text{s}^{-1}[/tex], we get c ≈ [tex]1.113\times77.3[/tex] ≈ [tex]86.05\ \text{m/s}[/tex].

(b) The wave frequency (f) is given as [tex]f=77.3\ \text{s}^{-1}[/tex]. To calculate the power supplied by the wave (P), we can use the formula [tex]\text{P}=\frac{1}{2} \mu cA^2[/tex], where μ is the linear mass density of the string, c is the wave speed, and A is the amplitude of the wave. Plugging in the given values of μ = 0.0456 kg/m, c ≈ 431.55 m/s (approximated from part (a)), and A = 0.0298 m, we get P = [tex]\frac{1}{2} (0.0456 )(431.55 )(0.0298 )^{2 }[/tex]≈ 0.0124 W.

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You drop something from rest at a height of 1 meter, and it hits the ground after 1
second. What do you know about the object’s vertical motion? Circle all known quantities. Do not assume you are on Earth. Solve for the missing quantity or quantities using the appropriate big four kinematic formulas.
xi, Initial position
xf, Final position
vi, Initial velocity
vf, Final velocity
a, Acceleration
∆t, Change in time

Answers

The missing quantity is the acceleration (a) of the object's vertical motion. The negative sign indicates that the object is undergoing downward acceleration, which is expected for an object in free fall under the influence of gravity.

From the given information, we can identify the following known quantities:

xi = 1 meter (initial position)

xf = 0 meter (final position)

vi = 0 m/s (initial velocity)

∆t = 1 second (change in time)

Using the kinematic equation:

xf = xi + vit + (1/2)at^2

Substituting the known values:

0 = 1 + 0 + (1/2)a(1)^2

Simplifying the equation:

0 = 1 + (1/2)a

Solving for 'a':

a = -2 m/s^2

Note: The final velocity (vf) is not necessary to solve this problem since we are only interested in the object's motion while falling, not at the moment it hits the ground.

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The resistance of a wire, made of a homogenous material with a uniform diameter, is proportional to its length. Select one: True False

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False. The resistance of a wire made of a homogeneous material with a uniform diameter is not proportional to its length.

According to Ohm's law, the resistance (R) of a wire is determined by its resistivity (ρ), length (L), and cross-sectional area (A). The relationship is given by the equation R = ρ * (L/A). From this equation, we can see that the resistance depends on both the length and the cross-sectional area of the wire.

When the length of the wire increases, the resistance also increases. This is because the longer wire provides more obstacles for the flow of electric current, resulting in higher resistance. However, the relationship between resistance and length is not directly proportional but rather linear.

In a wire with a uniform diameter, the cross-sectional area remains constant throughout its length. Therefore, the resistance is directly proportional to the length of the wire, assuming the resistivity of the material remains constant.

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A block of m is hanging to a vertical spring of spring constant k. If the spring is stretched additionally from the new equilibrium, find the time period of oscillations.

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The time period of oscillations of a block hanging from a vertical spring can be found using the equation:

T = 2π√(m/k)

where T is the time period, m is the mass of the block, and k is the spring constant.

When the spring is stretched additionally from the new equilibrium, the displacement of the block increases. Let's denote this additional displacement as Δx.

The new effective spring constant, taking into account the additional displacement, can be calculated using Hooke's Law:

k' = k/Δx

Substituting this new effective spring constant into the equation for the time period, we have:

T = 2π√(m/k')

T = 2π√(m/(k/Δx))

T = 2π√(mΔx/k)

Therefore, the time period of oscillations when the spring is stretched additionally from the new equilibrium is given by 2π√(mΔx/k).

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both or dont answer
A uniform electric field is directed in the +x-direction and has a magnitude E. A mass 0.072 kg and charge +2.90 mC is suspended by a thread between the plates. The tension in the thread is 0.84 N.
What angle does the thread make with the vertical axis? In degrees
Find the magnitude of the electric force. Answer to 3 sig figs

Answers

The angle the thread makes with the vertical axis is 77.7°. Hence, the magnitude of the electric force is 2.9E-3 x E N and the angle the thread makes with the vertical axis is 77.7°.

Mass of the particle, m = 0.072 kg

Charge on the particle, q = +2.90 mC

Electric field, E = directed in the +x-direction.

The tension in the thread, T = 0.84 N. The force of gravity, Fg = mg = 0.072 kg x 9.8 m/s^2 = 0.7056 N.

First we will find the magnitude of the electric force. Force due to electric field, Fe = q x E= 2.9 x 10^-3 C x E = 2.9E-3 x E N.

The magnitude of the electric force is 2.9E-3 x E N. Now we will find the angle the thread makes with the vertical axis. Let's denote the angle by θ.Fe and T are the horizontal and vertical components of the tension respectively.

Fe = T sin θ T = Fg + T cos θ ⇒ T = Fg/ (1 - cos θ) ⇒ 0.84 = 0.7056/ (1 - cos θ) ⇒ cos θ = (0.7056/0.1344) - 1 = 4.2222 θ = cos-1 (4.2222) = 77.7°.

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A helicopter lifts a 82 kg astronaut 19 m vertically from the ocean by means of a cable. The acceleration of the astronaut is g/10. How much work is done on the astronaut by (a) the force from the helicopter and (b) the gravitational force on her? Just before she reaches the helicopter, what are her (c) kinetic energy and (d) speed? (a) Number ______________ Units _____________
(b) Number ______________ Units _____________
(c) Number ______________ Units _____________
(d) Number ______________ Units _____________

Answers

Answer: (a) The work done on the astronaut by the force from the helicopter is 1528.998 J. The units of work are   Joules.

(b)  The work done on the astronaut by the gravitational force on her is 15284.98 J. The units of work are Joules.

(c) The kinetic energy of the astronaut just before she reaches the helicopter is 15224.22 J. The units of work are Joules.

(d) Therefore, her speed just before she reaches the helicopter is 7.26 m/s. The units of speed are m/s.

Mass of the astronaut, m = 82 kg

Height to which the astronaut is lifted, h = 19 m

Acceleration of the astronaut, a = g/10 = 9.81/10 m/s² = 0.981 m/s²

(a) Work done  

W = Fd

Here, d = h = 19 m,

The force applied, F = ma

F = 82 x 0.981

= 80.442 N.

Work done on the astronaut by the force from the helicopter, W₁ = FdW₁ = 80.442 x 19 = 1528.998 J.

The work done on the astronaut by the force from the helicopter is 1528.998 J. The units of work are Joules.

(b) The work done on the astronaut by the gravitational force on her is given by the product of the force of gravity and the displacement of the astronaut.

W = mgd

Here, d = h = 19 m

The gravitational force acting on the astronaut, mg = 82 x 9.81 = 804.42 N.

Work done on the astronaut by the gravitational force on her, W₂ = mgdW₂ = 804.42 x 19 = 15284.98 J.

The work done on the astronaut by the gravitational force on her is 15284.98 J. The units of work are Joules.

(c) Before the astronaut reaches the helicopter, her potential energy is converted into kinetic energy.

Therefore, the kinetic energy of the astronaut just before she reaches the helicopter is equal to the potential energy she has at the height of 19 m.

Kinetic energy of the astronaut, KE = Potential energy at 19 m.

KE = mgh

KE = 82 x 9.81 x 19

KE = 15224.22 J.

The kinetic energy of the astronaut just before she reaches the helicopter is 15224.22 J. The units of work are Joules.

(d) The kinetic energy of the astronaut just before she reaches the helicopter is equal to the work done on her by the force from the helicopter just before she reaches the helicopter. So,

KE = W₁

Therefore, her speed just before she reaches the helicopter can be found by equating the kinetic energy to the work done on her by the force from the helicopter and solving for velocity.

KE = 1/2 mv²

v = √(2KE/m)

v = √(2 x 1528.998/82)

v = 7.26 m/s.

Therefore, her speed just before she reaches the helicopter is 7.26 m/s. The units of speed are m/s.

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A conducting rod slides down between two frictionless vertical copper tracks at a constant speed of 4.0 m/5 perpendicular to a 0.57-T magnetic freld. The resistance of the rod and tracks is negligible. The rod maintains electrical contact with the tracks at all times and has a length of 1.8 m. A 0.74−Ω resistor is attached between the tops of the tracks. (a) What is the mass of the rod? (b) Find the change in the gravitational potential energy that occurs in a time of 0.205. (c) Find the electrical energy dissipated in the resistor in 0.20 s.

Answers

(a) the mass of the rod is [tex]$7.0 * 10^{-8}kg$[/tex].

(b) the potential energy change that occurs in [tex]$0.205s$[/tex] is [tex]$8.8 * 10^{-21}J$[/tex].

(c) the electrical energy dissipated in the resistor in [tex]$0.20s$[/tex] is [tex]$4.6 * 10^{-21}J$[/tex].

(a) Mass of the rod

The magnetic force acting on the rod causes a component of the gravitational force to be balanced. The component is that which pulls the rod downwards along the track. Therefore, the magnetic force acting on the rod is equal in magnitude but opposite in direction to the component of the gravitational force. Since the force is perpendicular to the velocity of the rod, it does not do any work. This implies that the kinetic energy of the rod is constant. This gives us the equation of motion of the rod as,

[tex]$mg\sinθ = BIl$[/tex]

[tex]$mg\sinθ = Bvq$[/tex]

Where the [tex]$v$[/tex] is the speed of the rod. Since the resistance of the rod and tracks is negligible, the potential difference between the points A and B is zero. This means that the electrical potential energy lost by the rod is equal to the gravitational potential energy gained by the rod. Therefore, [tex]$mgΔh = qvB$l[/tex]

where [tex]$\Delta h$[/tex] is the vertical distance through which the rod falls. Since [tex]$l=1.8m$, $\sinθ = \frac{1}{\sqrt{1+4/9}} ≈ 0.74$[/tex]. Thus,

[tex]$m = \frac{qBvl}{g\sin\theta}$[/tex]

Substituting the given values, we get,

[tex]$m = \frac{(1.6 * 10^{-19})(0.57)(4)(1.8)}{(9.8)(0.74)}$[/tex]

Therefore, the answer is [tex]$7.0 * 10^{-8}kg$[/tex].

Part (b)The potential energy lost by the rod when it drops a distance $\Delta h$ is given by,

[tex]$mg\delta h = qvB$l[/tex]

Thus, the potential energy change in a time of [tex]$0.205s$[/tex] is,

[tex]$\Delta U = mg\Deltah\frac{\Delta t}{v} = \frac{qB\Delta h}{v}$[/tex]

Substituting the given values, we get,

[tex]$\Delta U = \frac{(1.6 * 10^{-19})(0.57)(0.205)}{4}$[/tex]

Therefore, the answer is [tex]$8.8 * 10^{-21}J$[/tex].

Part (c)The electrical energy dissipated in the resistor is equal to the change in the potential energy of the rod, i.e. the gravitational potential energy lost by the rod. This is given by,

[tex]$\Delta U = mg\Delta h = qvB$l[/tex]

where [tex]$\Delta h[/tex]$ is the vertical distance through which the rod falls. Substituting the given values, we get,

[tex]$\Delta U = \frac{(1.6 * 10^{-19})(0.57)(0.20)}{4}$[/tex]

Therefore, the answer is [tex]$4.6 * 10^{-21}J$[/tex].

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A student wears eyeglasses that are positioned 120 cm from his eyes. The prescription for the eyeglasses should be open Wut the case he can see clearly without vision correction State answer in centers with 1 digit right of decimal Do not include

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A student wears eyeglasses that are positioned 120 cm from his eyes..The answer is 0 diopters (D) because the student can see clearly without any vision correction at a distance of 120 cm.

In terms of vision, 0 diopters means that there is no refractive error present. A refractive error occurs when the eye's shape or lens prevents incoming light from focusing directly on the retina, resulting in blurry vision. When the student can see clearly without any corrective lenses at 120 cm, it suggests that their eyes can properly focus light on the retina at that distance. This indicates that their eyes have no refractive error and do not require any additional optical power to achieve clear vision. Prescription values for eyeglasses indicate the additional refractive power needed to correct vision. A prescription of 0 diopters signifies that no correction is needed, and the student's natural vision is sufficient for clear viewing at the specified distance of 120 cm.

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In a fit, a toddler throws straight down his favorite 2.5 kg toy with an initial velocity of 2.9 m/s.
What is the magnitude of the change in velocity of the toy from t = 0.15 seconds to t = 0.4 seconds?

Answers

The magnitude of the change in velocity of the toy from t = 0.15 seconds to t = 0.4 seconds is 2.9 m/s.

The magnitude of the change in velocity of the toy from t = 0.15 seconds to t = 0.4 seconds can be calculated using the following steps:

Step 1: Calculate the acceleration of the toy using the formula:

v = u + at

Where,

v = final velocity = 0 (because the toy comes to rest when it hits the ground)

u = initial velocity = 2.9 m/s

t = time taken = 0.4 s - 0.15 s = 0.25 s

a = acceleration

Substituting the given values,

0 = 2.9 + a(0.25)

Therefore, a = -11.6 m/s²

Step 2: Calculate the change in velocity using the formula:

∆v = a∆t

Where,

∆v = change in velocity

∆t = time interval = 0.4 s - 0.15 s = 0.25 s

Substituting the given values,

∆v = (-11.6 m/s²) x (0.25 s)

∆v = -2.9 m/s

Therefore, the magnitude of the change in velocity of the toy from t = 0.15 seconds to t = 0.4 seconds is 2.9 m/s.

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The magnetic field of a plane EM wave is given by B = B0 cos(kz − ωt)i. Find the direction of E.

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The direction of electric field E is along the x-axis.The direction of electric field E is along the x-axis (i.e., horizontal).

The given magnetic field of an electromagnetic wave is given by B = B0 cos(kz − ωt)i.The direction of E can be found out by using the following equation: c = E/Bwhere c is the speed of light.So, we know that the speed of light c = 3 × 10^8 m/s.In an electromagnetic wave, E and B are perpendicular to each other and to the direction of wave propagation. Thus, the electric field E of the plane EM wave can be given as:E = cB/B0 = c cos(kz − ωt)i/B0

Since the electric field E is perpendicular to the magnetic field B and to the direction of wave propagation, the direction of E is along the x-axis (i.e., horizontal).Therefore, the direction of electric field E is along the x-axis (i.e., horizontal). This is the final answer.Ans: The direction of electric field E is along the x-axis (i.e., horizontal).

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Water is poured into a U-shaped tube. The right side is much wider than the left side. Once the water comes to rest, the water level on the right side is: Select one: a. the same as the water level on the left side. b. higher than the water level on the left side. c. lower than the water level on the left side.

Answers

The correct answer is the same as the water level on the left side. When water comes to rest in a U-shaped tube, it reaches equilibrium, which means that the pressure at any given level is the same on both sides of the tube.

The pressure exerted by a fluid depends on the depth of the fluid and the density of the fluid. In this case, since the right side of the U-shaped tube is wider than the left side, the water level on the right side will spread out over a larger area compared to the left side. However, the depth of the water is the same on both sides, as they are connected and in equilibrium.

Since the pressure is the same on both sides, and the pressure depends on the depth and density of the fluid, the water level on the right side will be the same as the water level on the left side.

Therefore, option a. "the same as the water level on the left side" is the correct answer.

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A 1.15 kg copper bar rests on two horizontal rails 0.95 cm apart and carries a current of 53.2 A from one rail to the other. The coefficient of static friction is 0.58. Find the minimum magnetic field (not necessarily vertical) that would cause the bar to slide. Draw a free body diagram to describe the system.

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To determine the minimum magnetic field required to cause a copper bar, with a mass 1.15 kg or a current of 53.2 A, to slide on two horizontal rails spaced 0.95 cm apart, we can analyze forces acting on the bar.

A magnetic field is a physical field produced by moving electric charges, magnetic dipoles, or current-carrying conductors. It extends around a magnet or a current-carrying wire and exerts a force on other magnetic materials or moving charges. Magnetic field are responsible for the behavior of magnets and are crucial in various applications such as electric motors, generators, and magnetic resonance imaging (MRI) machines. They are described mathematically by the principles of electromagnetism and are often visualized using magnetic field lines.

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What is the electric potential at a point 0.75 m away from a point charge of 3.5m C?

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The electric potential at a distance of 0.75 m from a point charge of 3.5 mC is estimated to be around 41.79 V.

The expression used to calculate the electric potential caused by a point charge is as follows:

V = k * q / r

where V is the electric potential, k is Coulomb's constant (k = 8.99 × 10^9 Nm^2/C^2), q is the charge, and r is the distance between the point charge.

q = 3.5 × 10^-6 C (charge)

r = 0.75 m (distance)

By substituting the given values into the formula, the resulting calculation is as follows:

V = (8.99 × 10^9 Nm^2/C^2) * (3.5 × 10^-6 C) / 0.75 m

Calculating this expression, we find:

V ≈ 41.79 V

Therefore, the electric potential at a distance of 0.75 m from a point charge of 3.5 mC is estimated to be around 41.79 V.

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Ocean waves with a wavelength of 10 m and a frequency of 0.2 Hz strike an opening (width = 10 m) in a seawall straight on. If a flat beach is parallel to the seawall and 200 m from it, (a) where on the beach will the water flow the farthest inland and (b) where does the water at the beach barely move at all?

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(a) The maximum displacement of the waves from the mean position on the shore is given by

d(max) = 2*a,

where "a" is the amplitude of the wave.

The amplitude is given by the product of the wave's speed (v), frequency (f) and wavelength (λ).

v = λ*f = (10 m)(0.2 Hz) = 2 m/s.a = (1/2)v/f = (1/2)(2 m/s)/(0.2 Hz) = 5 m.d(max) = 2*a = 10 m

Therefore, the maximum displacement of the waves from the mean position on the shore is 10 m. The farthest point of the beach that the waves will reach is therefore 200 m + 10 m = 210 m from the seawall.

(b) The point of the beach at which the waves barely move at all is called the node. At the node, the displacement of the waves from the mean position is zero.

The location of the node is given by the formula:

x = n*(λ/2),where n is an integer. Since the width of the opening in the seawall is 10 m, the waves that will strike the seawall must have a wavelength of 10 m.

Therefore,λ = 10 m.x = n*(λ/2) = n*(10/2) = 5n m

To find the nodes, we need to find the values of n that make x a multiple of 5 m. Therefore, the nodes are located at every 5 m along the shore starting from 200 m, i.e., 200 m, 205 m, 210 m, 215 m, ...The water at the beach will barely move at all at the nodes.

Therefore, the locations of the nodes are where the water on the beach barely moves.

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A spring is initially compressed by 2.5 cm. If it takes 0.523 J of work to compress the spring an additional 3.2 cm, what is the spring constant of the spring?

Answers

The spring constant of the spring is 70.9 N/m.

Here's how to solve this problem step by step:

Let's suppose that k is the spring constant of the spring, x is the displacement of the spring from its equilibrium position, and W is the work done in compressing the spring.

We can use the formula W = (1/2)kx² to solve the problem.Here's how:

Step 1: Determine the work done in compressing the spring from 2.5 cm to (2.5 + 3.2) cm = 5.7 cm. Since the work done is equal to the change in potential energy of the spring, we haveW = (1/2)k(x² - x₁²)where x₁ = 2.5 cm, and x = 5.7 cm.

Substituting these values, we getW = (1/2)k((5.7 cm)² - (2.5 cm)²)W = (1/2)k(32.84 cm²)W = 16.42 k N/cm.Note that we converted centimeters to newtons by multiplying by k.

Step 2: Substitute the given value of W into the above expression and solve for k:k = (2W)/(x² - x₁²) = (2 × 0.523 J)/(5.7² - 2.5²) cm = 70.9 N/m.

Therefore, the spring constant of the spring is 70.9 N/m.

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A long straight wire (diameter =3.2 mm ) carries a current of 19 A. What is the magnitude of the magnetic field 0.8 mm from the axis of the wire? (Note: the point where magnetic field is required is inside the wire). Write your answer in milli- tesla Question 7 A long solenoid (1,156 turns/m) carries a current of 26 mA and has an inside diameter of 4 cm. A long wire carries a current of 2.9 A along the axis of the solenoid. What is the magnitude of the magnetic field at a point that is inside the solenoid and 1 cm from the wire? Write your answer in micro-tesla.

Answers

The magnitude of the magnetic field at a point that is inside the solenoid and 1 cm from the wire is 24.6 micro-tesla.

The magnetic field can be calculated as follows: B = μ₀ I/2 r (for a current carrying long straight wire) where B is the magnetic field, μ0 is the permeability of free space, I is the current, and r is the distance from the wire axis.

Magnetic field due to a current-carrying wire can be expressed using the equation:

B = μ₀ I / 2 r,

Where, μ₀ = 4π x 10⁻⁷ T m/AB = μ₀ I / 2 r = 4 x π x 10⁻⁷ x 19 / 2 x (0.8 x 10⁻³) = 7.536 x 10⁻⁴ T = 753.6 mT (rounded off to 1 decimal place)

The magnitude of the magnetic field at a point 0.8 mm from the axis of the wire is 753.6 milli-Tesla.

The magnitude of the magnetic field at a point inside the solenoid 1 cm from the wire can be calculated using the equation:

B = μ₀ NI / L, Where, μ₀ = 4π x 10⁻⁷ T m/AN is the number of turns per unit length of the solenoid

L is the length of the solenoid

B = μ₀ NI / L = 4π x 10⁻⁷ x 1156 x 26 x 10⁻³ / 0.04m = 24.57 x 10⁻⁶ T = 24.6 µT (rounded off to 1 decimal place)

Hence, the magnitude of the magnetic field at a point that is inside the solenoid and 1 cm from the wire is 24.6 micro-tesla.

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The headlamp of a car take a current of 0.4A from a 12 volt the energy produced in 5 minutes is

Answers

To calculate the energy produced by the headlamp of a car in 5 minutes, we can use the formula: Energy = I^2 * R * T, where I is the current in Amperes, R is the resistance in Ohms, and T is the time in seconds. Since the resistance of the headlamp is not given, we can assume that it is negligible, and therefore, the formula can be simplified to:

Energy = V * I * T, where V is the voltage in Volts, I is the current in Amperes, and T is the time in seconds.

Using this formula, we can calculate the energy produced by the headlamp of a car in 5 minutes as follows:

Voltage (V) = 12V
Current (I) = 0.4A
Time (T) = 5 minutes = 300 seconds
Energy = V * I * T
Energy = 12V * 0.4A * 300s
Energy = 1440 Joules

Therefore, the energy produced by the headlamp of a car in 5 minutes is 1440 Joules.

Answer:

1440 J

Explanation:

Voltage (V) = 12 v

Current (I) = 0.4 A

Time (t) = 5min = 300sec

Power = Voltage x Current;

P = V x I = 12 x 0.4 = 4.8 W

We founded power, so for now we have to find energy. We will use another formula of power:

Power = Energy / Time

For now we will rearange the formula to find energy:

Energy = Power x Time;

E= P x t = 4.8W x 300sec = 1440 J

An object with mass 0.360-kg, attached to a spring with spring constant k = 10.0 N/m, is moving on a horizontal frictionless surface in simple harmonic motion of amplitude A = 0.0820 m. What is the kinetic energy of the object at the instant when its displacement is x = 0.0410 m? a. 0.042 J
b. 2.46 J
c. 0.025 J
d. 9.86 J
e. 0.013 J

Answers

The kinetic energy of the object at the instant when its displacement is x = 0.0410 m is 0.024 J. The option (c) 0.025 J is the closest.

spring constant k = 10.0 N/m,

amplitude A = 0.0820 m.

We are to find the kinetic energy of the object at the instant when its displacement is x = 0.0410 m.

The kinetic energy (KE) of the object can be given as the difference between its potential energy (PE) and its total mechanical energy (E).

The potential energy stored in the spring when it is stretched or compressed is given as;

PE = 1/2 kx²

Where

k = spring constant

x = displacement

Substitute the given values;

PE = 1/2(10.0 N/m)(0.0410 m)² = 0.00846 J

Total mechanical energy (E) is given as:

E = 1/2 kA²

Where

A = amplitude of motion

Substitute the given values;

E = 1/2(10.0 N/m)(0.0820 m)² = 0.033 Joules

Kinetic energy (KE) is given as:

KE = E - PE= 0.033 J - 0.00846 J= 0.024 J

Therefore, the kinetic energy of the object at the instant when its displacement is

x = 0.0410 m is 0.024 J.

The option (c) 0.025 J is the closest.

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. A 15 kg rolling cart moving in the +x direction at 1.3 m/s collides with a second 5.0 kg cart that is initially moving in the -- x direction at 0.35 m/s. After collision they stick together. What is the velocity of the two carts after collision? b. What is the minimum mass that the second cart can have so that the final velocity of the pair is in the negative direction?

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After a collision between a 15 kg cart moving in the +x direction at 1.3 m/s  two carts stick together. The velocity of combined carts after collision can be determined using principles of conservation momentum & mass.

To find the velocity of the carts after the collision, we can apply the principle of conservation of momentum. The momentum of an object is given by its mass multiplied by its velocity.

The initial momentum of 15 kg cart is (15 kg) * (1.3 m/s) = 19.5 kg·m/s in the +x direction. The initial momentum of the 5.0 kg cart is (5.0 kg) * (-0.35 m/s) = -1.75 kg·m/s in the -x direction.

Their total mass is 15 kg + 5.0 kg = 20 kg.  the velocity of the combined carts by dividing the total momentum (19.5 kg·m/s - 1.75 kg·m/s) by the total mass (20 kg).

To determine the minimum mass that the second cart can have so that the final velocity of the pair is in the negative direction, we can assume the final velocity of the combined carts is 0 m/s and solve for the mass using the conservation of momentum equation.

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What is the speed (in m/s ) of a proton that has been accelerated from rest through a potential difference of (6. 0×10



3)V ?

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According to given information,the speed of the proton accelerated through a potential difference of (6.0×10³)V is approximately 1.07×10⁵ m/s.

The speed of a proton that has been accelerated from rest through a potential difference of (6.0×10³)V can be calculated using the formula:

speed = √(2qV / m)

where:
- speed is the velocity of the proton,
- q is the charge of the proton (1.6×10⁻¹⁹ C),
- V is the potential difference (6.0×10³ V),
- m is the mass of the proton (1.67×10⁻²⁷ kg).

Plugging in the given values into the formula, we get:

speed = √(2(1.6×10⁻¹⁹C)(6.0×10³ V) / 1.67×10⁻²⁷ kg)

Simplifying the equation further:

speed = √(1.92×10⁻¹⁹ J / 1.67×10⁻²⁷ kg)

Next, we divide the numerator by the denominator to obtain the final value:

speed = √(1.15×10¹¹ m²/s²)

Therefore, the speed of the proton is approximately 1.07×10⁵ m/s.

Conclusion, The speed of the proton accelerated through a potential difference of (6.0×10³)V is approximately 1.07×10⁵ m/s.

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The circuit shown below uses multi-transistor configurations (S₁). Use ß = 100, and Is=5x10-¹7A for both Q₁ and Q2. Assume C is very large. Bs1 = Ic/la Q₁ EO Transistor pair Calculate VB. S₁ the active mode. Vin C Tvoo R₁ HH R₂ 18₁ R₂ VOD=5V -O Vout l₂ = 2mA S₁ R₁ = 5000 Calculate the maximum allowable value of R3 to operate both Q₁ and Q2 in

Answers

Answer: The maximum allowable value of R3 is 1065.01 Ω.

At saturation of Q1, the collector current (Ic) is:

Ic = βIbQ1 + Is

= 100 x 2.01 x 10^-5 + 5 x 10^-17A

= 2.01 x 10^-3 + 5 x 10^-17A

Where the base current (IbQ1) is obtained as follows:

IbQ1 = (Vin - VBEQ1) / R1

= (20 - 0.7) / 5000

= 2.01 x 10^-5A.

Using similar equations, we get the values of Ic and IbQ2 of Q2 as;

Ic = βIbQ2 + Is

= 100 x 2.02 x 10^-5 + 5 x 10^-17A

= 2.02 x 10^-3 + 5 x 10^-17AIbQ2

= (VOD - VBEQ2) / R2

= (5 - 0.7) / 1800

= 2.15 x 10^-3A

When both transistors are in saturation, the voltage drop across R3 is VCEsat.

Since VOD = 5 V, VCEsat for both transistors is given by VCEsat = VOD - VBEQ2 = 5 - 0.7 = 4.3 V.

We know that the current through R3 is the sum of IcQ1 and IcQ2 and is obtained as follows:

IR3 = IcQ1 + IcQ2

= 2.01 x 10^-3 + 2.02 x 10^-3

= 4.03 x 10^-3A.

Using Ohm's law, we can calculate the maximum allowable value of R3 as follows:

R3(max) = VCEsat / IR3

= 4.3 / 4.03 x 10^-3

= 1065.01 Ω

Hence, the maximum allowable value of R3 is 1065.01 Ω.

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Suppose 435 mL of Ne gas at 21 °C and 1. 09 atm, and 456 mL of SF6 at 25 °C and 0. 89 atm are put into a 325 mL flask at 30. 2 °C (a) What will be the total pressure in the flask? (b) What is the mole fraction of for each of the gases in the flask?

Answers

(a) To determine the total pressure in the flask, we need to consider the partial pressures of each gas present and add them together.

Using the ideal gas law, we can calculate the partial pressure of each gas:

PV = nRT

For Ne gas:

P₁V₁ = n₁RT

P₁ = (n₁/V₁)RT

For SF6 gas:

P₂V₂ = n₂RT

P₂ = (n₂/V₂)RT

To find the total pressure, we add the partial pressures:

P_total = P₁ + P₂

(b) The mole fraction (χ) of each gas can be calculated using the formula:

χ = moles of gas / total moles of gas

To find the moles of each gas, we use the ideal gas law rearranged:

n = PV / RT

Now, let's calculate the values.

Given:

Volume of Ne gas (V₁) = 435 mL = 0.435 L

Temperature of Ne gas (T₁) = 21 °C = 294 K

Pressure of Ne gas (P₁) = 1.09 atm

Volume of SF6 gas (V₂) = 456 mL = 0.456 L

Temperature of SF6 gas (T₂) = 25 °C = 298 K

Pressure of SF6 gas (P₂) = 0.89 atm

Volume of flask (V_total) = 325 mL = 0.325 L

Temperature of flask (T_total) = 30.2 °C = 303.2 K

Gas constant (R) = 0.0821 L·atm/(K·mol)

(a) To calculate the total pressure:

P₁ = (n₁/V₁)RT₁

P₁ = (PV₁/RT₁)

P₂ = (n₂/V₂)RT₂

P₂ = (PV₂/RT₂)

P_total = P₁ + P₂

(b) To calculate the mole fraction:

n₁ = P₁V_total / RT_total

n₂ = P₂V_total / RT_total

χ₁ = n₁ / (n₁ + n₂)

χ₂ = n₂ / (n₁ + n₂)

By plugging in the given values and performing the calculations, we can find the total pressure in the flask and the mole fraction of each gas.

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Storage is required for 35,000 kg of propane, received as a gas at 10 and 1(atm). Two proposals have been made: (a) Store it as a gas at 10C and 1(atm). (b) Store it as a liquid in equilibrium with its vapor at 10 and 6.294(atm). For this mode of storage, 90% of the tank volume is occupied by liquid. Compare the two proposals, discussing pros and cons of each. Be quantitative where possible. When you measure flow, in order to control level, this can be regarded as Select one:Feedback controlFeed forward controlOn/off controlRatio Controlb) and c)(A) and (C) are wrong answers, and please give a reason for the answer PLEASE!!! Describe the Nature and norms of social conflicts. Difference between topics Relatedto managing employees carreers andRelated carreers issues. Explain contents and to include work place example. QUESTION 2 a. Briefly explain the factors to beconsidered in planning a drip irrigation lay out.b. You are to estimate the irrigation water requirementfor a drip system you are designing for small : You are required to find an element that becomes visible after applying a specific condition in Selenium. Which of the following wait commands is used to complete this task? Implicit Explicit Both of these None of these G 1. How do you apply culture to marketing?2. What are keys to a successful global corporation?3. Identify issues of culture, ethics and business etiquette in a country of your choice. An electric heater of resistance 18.66 Q draws 8.21 A. If it costs 30/kWh, how much will it cost, in pennies, to run the heater for 5 h? . Star Jewelry sells 700 units resulting in $90,000 of sales revenue, $31,000 of variable costs, and $26,000 of fixed costs. The number of units that must be sold to achieve $43,000 of operating income is511 units, 819 units, 755 units Describe the three advantages for using an internal evaluator and three advantages for using an external evaluator. Select the correct answer from each drop-down menu.A quadrilateral has vertices A(11, -7), 8(9, 4), C(11, -1), and D(13, 4).Quadrilateral ABCD is apoint C(11, 1), quadrilateral ABCD would be aIf the vertex C(11, -1) were shifted to the IxilNebajhuipil:: a village in GuatemalaII:: an indigenous people and language#: a traditional Mayan garment 2. Pick a correct sentence. a) Having chosen a path -- one must not abandon it. b) After she told me about her feelings it was easier for me to understand her. c) Asking for help this can be hard for people who are not trustful. d) Although I dont like sci-fi that much, the Expanse series is rather good. Lindon Company is the exclusive distributor for an automotive product that sells for $58.00 per unit and has a CM ratio of 30%. The company's fixed expenses are $435,000 per year. The company plans to sell 30,000 units this year. Required: 1. What are the variable expenses per unit? (Round your "per unit" answer to 2 decimal places.) 2. What is the break-even point in unit sales and in dollar sales? 3. What amount of unit sales and dollar sales is required to attain a target profit of $261,000 per year? 4. Assume that by using a more efficient shipper, the company is able to reduce its variable expenses by $5.80 per unit. What is the company's new break-even point in unit sales and in dollar sales? What dollar sales is required to attain a target profit of $261,000 ? Separations of solids, liquids, and gasses are necessary in nearby all chemical and allied processindustries. These processes often involve mass transfer between two phases and comprisestechniques such as distillation, gas absorption, dehumidification, adsorption, liquid extraction,leaching, membrane separation, and other methods. Select any three techniques commonly usedin chemical process industriesTask expected from student:a Identity the process industries in Oman where these mass transter operations aredeployed and discuss their uses in process industry.b)Discuss the principle involved in these mass transfer operations with neat sketch. What were specific reasons for the tensions between Englishcolonials and the English Crown? What lead to the Revolution?What were the main political factions in creating the U.S.constitution? Why?