your gasoline runs out on an uphill road inclined 14.5o at you manage to coast another 151m before the car stops. what was your initial speed?

Answers

Answer 1

To find the initial speed of the car before it ran out of gasoline, we can use the principle of conservation of energy. The potential energy lost by the car as it goes uphill is equal to the kinetic energy it had initially.

Given:

Inclined angle of the road: 14.5°

Distance coasted before stopping: 151 m

Let's assume:

Mass of the car: m

Acceleration due to gravity: g (approximately 9.8 m/s^2)

The potential energy lost by the car as it goes uphill is given by:

PE = m * g * h

Where:

h is the vertical height gained along the inclined road.

h = d * sin(θ)

Where:

d is the horizontal distance coasted before stopping (151 m)

θ is the inclined angle of the road (14.5°)

Substituting the values:

h = 151 m * sin(14.5°)

Now, the potential energy lost is equal to the kinetic energy the car had initially:

PE = KE

m * g * h = (1/2) * m * v^2

Where:

v is the initial speed of the car we want to find.

Simplifying the equation:

v^2 = 2 * g * h

Substituting the values:

v^2 = 2 * 9.8 m/s^2 * (151 m * sin(14.5°))

Now, we can solve for v:

v = √(2 * 9.8 m/s^2 * (151 m * sin(14.5°)))

Calculating this expression will give us the initial speed of the car before it ran out of gasoline.

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Related Questions

to project an image of an object that is enlarged, real, and inverted, you need to place the object in front of a convex lens in which region?

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To project an enlarged, real, and inverted image of an object, the object should be placed in front of the convex lens in the region between the focal point and the lens.

When light rays pass through a convex lens, they converge and form an image. The characteristics of the image depend on the relative positions of the object, lens, and the focal point. In order to achieve an enlarged image, the object must be positioned closer to the lens than the focal point. This allows the converging rays to interact with the lens and create a larger, magnified image on the other side of the lens.

Furthermore, the image formed by a convex lens is real and inverted when the object is located beyond the focal point. In this scenario, the rays of light converge to a point on the opposite side of the lens, resulting in an inverted image. Placing the object between the lens and the focal point would produce a virtual and erect image, rather than the desired real and inverted image.

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a proton is confined within a one-dimensional box of length a = 22 fm. what energy is required to excite the proton from the n = 1 state to the n= 3 state?

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The energy difference ΔE, which represents the energy required to excite the proton from the n = 1 state to the n = 3 state.

The energy required to excite a proton from the n = 1 state to the n = 3 state within a one-dimensional box can be calculated using the formula for the energy levels of a particle in a box. In this case, the length of the box is given as a = 22 fm.

The formula for the energy levels of a particle in a one-dimensional box is given by:

E_n = (n^2 * h^2) / (8mL^2),

where E_n is the energy level, n is the quantum number representing the state, h is the Planck's constant, m is the mass of the particle, and L is the length of the box.

To find the energy difference between the n = 1 and n = 3 states, we can subtract the energy of the n = 1 state from the energy of the n = 3 state:

ΔE = E_3 - E_1 = [(3^2 * h^2) / (8mL^2)] - [(1^2 * h^2) / (8mL^2)].

Plugging in the values, we have:

ΔE = [(9 * h^2) / (8mL^2)] - [(1 * h^2) / (8mL^2)].

Simplifying further:

ΔE = (8 * h^2) / (8mL^2).

Since we are dealing with a proton, we can substitute the mass of a proton (m = 1.67 × 10^(-27) kg) into the equation. Additionally, we can use the known value of Planck's constant (h = 6.626 × 10^(-34) J·s). Given that the length of the box is a = 22 fm (22 × 10^(-15) m), we can calculate the energy difference ΔE:

ΔE = (8 * (6.626 × 10^(-34))^2) / (8 * (1.67 × 10^(-27)) * (22 × 10^(-15))^2).

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a 93.5-kg ice hockey player hits a 0.15-kg puck, giving the puck a speed of 44 m/s. If both are initially at rest and if the ice is frictionless, how far does the player recoil in the time it takes the puck to reach the goal 15.0 m away?

Answers

The player recoils approximately 0.024 meters in the time it takes the puck to reach the goal.

To solve this problem, we can use the principle of conservation of momentum. According to this principle, the total momentum before the collision is equal to the total momentum after the collision.

Let's denote the initial velocity of the player as Vp and the final velocity of the player after recoil as Vp'. Similarly, let's denote the initial velocity of the puck as Vpu and the final velocity of the puck as Vpf.

Since both the player and the puck are initially at rest, their initial velocities are zero:

Vp = 0

Vpu = 0

After the collision, the player recoils and gains a final velocity Vp', while the puck acquires a final velocity Vpf.

According to the conservation of momentum:

Total momentum before collision = Total momentum after collision

(mass of player * initial velocity of player) + (mass of puck * initial velocity of puck)

= (mass of player * final velocity of player) + (mass of puck * final velocity of puck)

(mass of player * Vp) + (mass of puck * Vpu) = (mass of player * Vp') + (mass of puck * Vpf)

Substituting the given values:

(93.5 kg * 0) + (0.15 kg * 0) = (93.5 kg * Vp') + (0.15 kg * 44 m/s)

0 + 0 = 93.5 kg * Vp' + 6.6 kg m/s

0 = 93.5 kg * Vp' + 6.6 kg m/s

Rearranging the equation:

93.5 kg * Vp' = -6.6 kg m/s

Vp' = (-6.6 kg m/s) / 93.5 kg

Vp' ≈ -0.0706 m/s

The negative sign indicates that the player recoils in the opposite direction of the puck's motion.

To determine the distance the player recoils, we can use the equation for displacement:

Displacement = Velocity * Time

In this case, the time it takes for the puck to reach the goal is the same as the time the player recoils.

The distance the player recoils is equal to the displacement. We can rearrange the equation to solve for time:

Time = Displacement / Velocity

Time = 15.0 m / 44 m/s

Time ≈ 0.34 s

Now, we can calculate the displacement:

Displacement = Vp' * Time

Displacement ≈ (-0.0706 m/s) * 0.34 s

Displacement ≈ -0.024 m

The negative sign indicates that the player recoils in the opposite direction of the puck's motion. Therefore, the player recoils approximately 0.024 meters in the time it takes the puck to reach the goal.

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what is the trick shot in pool called where you hit three balls at once and try to make them all in the same pocket

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The trick shot in pool where you hit three balls at once and attempt to make them all in the same pocket is known as a "three-ball combination shot." In this shot, you carefully align the cue ball and the target balls to create a precise sequence, striking the cue ball with the right amount of force and angle to pocket all three balls.

The trick shot in pool that you are referring to is commonly known as a "triple combination shot" or a "triple combination bank shot". It requires a high level of skill and precision to execute successfully. To perform this shot, the player needs to strike the cue ball in such a way that it hits three object balls simultaneously, with enough power to send all three balls towards the same pocket.

The key to this shot is to aim precisely and hit the cue ball with the right amount of force and spin. It can take a lot of practice and patience to master this shot, but when executed properly, it can be a crowd-pleaser and a game-changer. I hope this long answer helps you understand the trick shot in pool that you were curious about.

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Photodiode and Solar Cells Which of the following light sources emits the largest photon flux (photons/sec)? 2 3 5 Source # Wavelength (nm) 405 465 980 1512 3030 Power (mW) 11 11 5.6 3.8 1.7 emits the largest photon flux. Source # 3 (enter the integer, 1-5, of the correct source) Notes: If needed: 1 eV 1.6e 19 J and E(eV) 1240/A(nm)

Answers

Source #3 emits the largest photon flux with approximately 2.76e19 photons/sec.

To determine which light source emits the largest photon flux (photons/sec), we need to calculate the photon flux for each source using the given wavelength and power values.

The photon flux (N) can be calculated using the formula:

N = P / E

Where:

N is the photon flux (photons/sec)

P is the power (mW)

E is the energy of a single photon (J)

We can calculate the energy of a single photon using the equation:

E = 1.6e-19 J * (1240 / λ)

Where:

λ is the wavelength (nm)

Let's calculate the photon flux (N) for each source:

For Source #2:

λ = 465 nm

P = 11 mW

E = 1.6e-19 J * (1240 / 465)

 ≈ 4.288e-19 J

N2 = 11 mW / 4.288e-19 J

  ≈ 2.57e19 photons/sec

For Source #3:

λ = 980 nm

P = 5.6 mW

E = 1.6e-19 J * (1240 / 980)

 ≈ 2.036e-19 J

N3 = 5.6 mW / 2.036e-19 J

  ≈ 2.76e19 photons/sec

For Source #5:

λ = 3030 nm

P = 1.7 mW

E = 1.6e-19 J * (1240 / 3030)

 ≈ 6.54e-20 J

N5 = 1.7 mW / 6.54e-20 J

  ≈ 2.60e19 photons/sec

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at what points is the probability distribution function a maximum for the following state: nx = 1, ny = 1, nz = 1?

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The probability distribution function is a maximum only at the point (1, 1, 1) in the three-dimensional space.

To determine the points at which the probability distribution function is a maximum for the state nx = 1, ny = 1, nz = 1, we need to consider the quantum numbers associated with each coordinate axis.

In quantum mechanics, the probability distribution function of a particle in a three-dimensional space is given by the square of the wave function, which depends on the quantum numbers nx, ny, and nz. The quantum numbers determine the spatial distribution of the wave function and, therefore, the probability distribution.

For the given state nx = 1, ny = 1, nz = 1, the probability distribution function is determined by the wave function squared, |Ψ|^2.

Since each quantum number can take on integer values, nx = 1, ny = 1, nz = 1 represents a specific point in the three-dimensional space. In this case, the probability distribution function is non-zero only at the point corresponding to nx = 1, ny = 1, nz = 1.

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A sinusoidal transverse wave travels along a long stretched string. The amplitude of this wave is 0.0885 m, its frequency is 2.77 Hz, and its wavelength is 1.41 m.
(a) What is the transverse distance between a maximum and a minimum of the wave?
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(b) How much time is required for 71.7 cycles of the wave to pass a stationary observer?
uploaded image
(c) Viewing the whole wave at any instant, how many cycles are there in a 30.7-m length of string?

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(a) The transverse distance between a maximum and a minimum of a wave is equal to twice the amplitude of the wave. In this case, the amplitude is given as 0.0885 m. Therefore, the transverse distance between a maximum and a minimum is:

Transverse distance = 2 * amplitude = 2 * 0.0885 m = 0.177 m.

(b) To determine the time required for a certain number of cycles to pass a stationary observer, we can use the formula:

Time = Number of cycles / Frequency.

In this case, the number of cycles is given as 71.7 and the frequency is 2.77 Hz. Substituting these values into the formula:

Time = 71.7 cycles / 2.77 Hz = 25.89 seconds.

Therefore, it takes approximately 25.89 seconds for 71.7 cycles of the wave to pass a stationary observer.

(c) The number of cycles in a certain length of a wave can be calculated using the formula:

Number of cycles = Length / Wavelength.

In this case, the length is given as 30.7 m and the wavelength is 1.41 m. Substituting these values into the formula:

Number of cycles = 30.7 m / 1.41 m = 21.8 cycles.

Therefore, there are approximately 21.8 cycles in a 30.7 m length of the string when viewing the whole wave at any instant.

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Which of the following combinations of circuit elements are self-contradictory ?
Check all that apply.
A. A 2-A current source in parallel with a short circuit.
B. A 5-V voltage source in parallel with a short circuit.
C. A 2-A current source in series with a 3-A current source.
D. A 2-A current source in series with an open circuit.
E. A 12-V voltage source in parallel with a 2-A current source.

Answers

The combinations of circuit elements that are self-contradictory are:

A. A 2-A current source in parallel with a short circuit.

C. A 2-A current source in series with a 3-A current source.

D. A 2-A current source in series with an open circuit.

In a circuit, certain combinations of elements can lead to contradictory or inconsistent behavior. These contradictions occur when the characteristics or behaviors of the elements are incompatible with each other or violate fundamental principles of circuit theory.

In the case of option A, a current source in parallel with a short circuit, it would imply that the current source is attempting to supply a specific current while the short circuit allows for an unlimited flow of current, which is contradictory.

Similarly, in option C, having a 2-A current source in series with a 3-A current source would result in a violation of Kirchhoff's Current Law, as the combined currents cannot be simultaneously supplied by the sources.

Option D presents a contradiction as a 2-A current source in series with an open circuit suggests that the current source is attempting to provide a constant current, but there is no path for the current to flow.

On the other hand, options B and E do not present self-contradictory combinations of circuit elements and are valid configurations.

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what is the magnitude of the force on the proton in the figure? assume that e = 1.4×106 v/m , b = 9.0×10−2 t , and v = 1.3×107 m/s

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To determine the magnitude of the force on the proton, we can use the equation for the force experienced by a charged particle moving through a magnetic field:

F = q * v * B

Where:

F is the force on the particle,

q is the charge of the particle,

v is the velocity of the particle, and

B is the magnetic field strength.

In this case, we are dealing with a proton, which has a charge of q = 1.6 × 10^(-19) C.

Given:

e = 1.4 × 10^6 V/m (electric field)

B = 9.0 × 10^(-2) T (magnetic field)

v = 1.3 × 10^7 m/s (velocity)

Since the problem only provides the electric field, and not the electric charge, it seems there might be some confusion or missing information. Please provide the necessary information (either the charge or the electric field) to accurately calculate the force on the proton.

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In the figure, an electron accelerated from rest through potential difference V1=0.851 kV enters the gap between two parallel plates having separation d = 27.5 mm and potential difference V2= 72.8 V. The lower plate is at the lower potential. Neglect fringing and assume that the electron's velocity vector is perpendicular to the electric field vector between the plates. In unit-vector notation, what uniform magnetic field allows the electron to travel in a straight line in the gap?

Answers

In unit-vector notation, this magnetic field should have a value of (-1.805, 0, 0) Tesla.

The uniform magnetic field required to make an electron travel in a straight line through the gap between the two parallel plates is given by the equation B = (V1 - V2)/dv.

Plugging in the known values for V1, V2, and d gives us a result of B = 1.805 T. Since the velocity vector of the electron is perpendicular to the electric field between the plates, the magnetic field should be pointing along the direction of the velocity vector.

Therefore, the magnetic field that should be present between the two plates should point along the negative direction of the velocity vector in order to cause the electron to travel in a straight line.

In unit-vector notation, this magnetic field should have a value of (-1.805, 0, 0) Tesla.

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what is the longest wavelength of light that can cause the release of electrons from a metal that has a work function of 3.50 ev ?

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The longest wavelength of light that can cause the release of electrons from a metal with a work function of 3.50 eV is approximately 354 nanometers.

The energy of a photon of light is given by E = hc/λ, where E is the energy, h is the Planck constant (6.63 x 10^-34 J·s), c is the speed of light (3 x 10^8 m/s), and λ is the wavelength of light. The work function of the metal represents the minimum energy required to release an electron from the metal's surface.

To calculate the longest wavelength of light, we can equate the energy of a photon to the work function: hc/λ = 3.50 eV. Rearranging the equation, we have λ = hc/E, where E is the work function. Substituting the values for h, c, and the work function, we get λ = (6.63 x 10^-34 J·s)(3 x 10^8 m/s) / (3.50 eV)(1.6 x 10^-19 J/eV). Solving this equation gives us λ ≈ 354 nanometers, which is the longest wavelength of light that can cause the release of electrons from the metal.

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a particle in a box with mass m has the normalized wave function given in the previous problem at time t. if the energy of this particle is measured, what is the probability that the ground state energy is obtained?

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if the energy of this particle is measured, the probability of obtaining the ground state energy of a particle in a one-dimensional box with the given wave function can be found by calculating the probability that the energy of the particle is equal to the ground state energy.

The wave function is given by ψ(x) = sqrt(2/L) * sin(nπx/L), where n is a positive integer.

The energy of the particle in the nth energy level is given by E_n = (n^2 * h^2) / (8mL^2).

To calculate the probability of obtaining the ground state energy, we need to find the coefficient c_1 of the wave function for the ground state energy, which is sqrt(2/L).

The probability of measuring the ground state energy is then given by P = |c_1|^2 = (2/L) = 1/2L.

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A 4. 0 kg particle moves in an xy-plane. At the instant when the particle's position and velocityare r = (2. 0 m)? + (4. 0 m)J and i = (-4. 0 Ms)], the force on the particle is F = (-3. 0 N)i. At this instant, determine (a) the particle's angular momentum, (b) the particle's momentumabout the point x = 0, y = 4. 0 m, (c) the torque acting on the particle about the origin, and (d) thetorque acting on the particle about the point x = 0, y = 4. 0 m

Answers

A 4 kg particle moves in an xy-plane and force on the particle is F = (-3.0N)i so,

the particle's angular momentum is (-32 kgm²/s)  kthe particle's momentum about the point x = 0, y = 4. is(-32 kgm²/s)  k. the torque acting on the particle about the origin is (12  N.m) kthe torque acting on the particle about the point is  0 N.m

The product of an object's mass and its velocity is its momentum. Momentum exists in all mass-moving objects. Only the fact that it deals with rotating or spinning objects makes angular momentum different.

A characteristic known as angular momentum describes the rotating inertia of an item or set of objects when they are moving along an axis that may or may not pass through them. The Earth possesses spin angular momentum from its daily rotation around its axis and orbital angular momentum from its yearly revolution around the Sun. Since angular momentum is a vector quantity, its full representation calls for the identification of both a magnitude and a direction.

a)  Particle  angular momentum  =  rp

                                                    =  4[(2 i  +  4 j) x ( - 4 j) ]

                                                     =   (-32 kg*m2/s)  k

b)     particle momentum about point  =   4[(2 i  +  0 j)  x ( - 4 j) ]

                                                           =   (-32 kg*m2/s)  k

c)   torque acting on particle about origin  =   rF

                                                              =   [(2 i  +  4 j) x (-3 i)]

                                                             =      (12  N.m)  k

d)    torque acting on particle about point  =  [(2 i  +  0 j) x (-3 i)]

                                                                   =    0  N.m

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an lc circuit has a capacitance of 40 f and an inductance of 10 mh. at time t = 0, the charge on the capacitor is 12 μ c, and the current is 15 ma. the maximum current is

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The maximum current in the LC circuit is approximately 24 mA.

An LC circuit with a capacitance of 40 μF (microfarads) and an inductance of 10 mH (millihenries) is experiencing an oscillation. At time t=0, the charge on the capacitor is 12 μC (microcoulombs) and the current is 15 mA (milliamperes). To find the maximum current, we can use the formula:

I_max = Q_max / √(L/C)

where I_max is the maximum current, Q_max is the maximum charge, L is the inductance, and C is the capacitance.

Given that Q_max = 12 μC, L = 10 mH, and C = 40 μF, we can plug in the values and calculate I_max:

I_max = (12 μC) / √((10 mH)/(40 μF))

I_max ≈ 24 mA

Therefore, maximum current  is approximately 24 mA.

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A flat coil of wire has an inductance of 40.0 mH and a resistance of 5.00 Ω. It is connected to a 22.0-V battery at the instant t = 0. Consider the moment when the current is 3.00 A.

Answers

At t = 0, when the current is 3.00 A, the voltage across the coil is approximately 15 V.

In the question provided:

Inductance of the coil: L = 40.0 mH = 40.0 × 10⁻³ H

Resistance of the coil: R = 5.00 Ω

Battery voltage: V = 22.0 V

Current at t = 0: I = 3.00 A

At t = 0, the inductor opposes changes in current flow, resulting in a transient behavior. To calculate the voltage across the coil, we can use the equation for the voltage in an RL circuit:

V = L di/dt + IR

Since we are interested in the voltage at t = 0 when the current is 3.00 A, we can assume the current is constant and the derivative term is zero:

V = IR

Substituting the given values:

V = (3.00 A) * (5.00 Ω)

Calculating the result:

V ≈ 15.0 V.

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THE COMPLETE QUESTION IS:

A coil with an inductance of 40.0 mH and a resistance of 5.00 Ω is connected to a 22.0-V battery at t = 0. We want to determine the voltage across the coil when the current reaches 3.00 A.

a film of mgf2 (n = 1.38) having thickness 1.64 10-5 cm is used to coat a camera lens.

Answers

The given information states that a film of [tex]MgF_2[/tex](refractive index, n = 1.38) with a thickness of 1.64 × [tex]10^{-5[/tex] cm is used as a coating on a camera lens.

OPL = refractive index × thickness

OPL = 1.38 × 1.64 × [tex]10^{-5[/tex] cm

Refractive index is a fundamental concept that describes how light propagates through different media. It is defined as the ratio of the speed of light in a vacuum to the speed of light in a given medium. Symbolized by the letter 'n,' the refractive index quantifies how much the direction of light changes when it passes from one medium to another.

When light transitions from a medium with a lower refractive index to one with a higher refractive index, such as from air to water, it slows down and bends towards the normal, an imaginary line perpendicular to the surface of separation.

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at omega = 8000 rad/sec the phase angle between the generator voltage and the current through the resistor is

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Apologies for the confusion. To calculate the phase angle between the generator voltage and the current through the resistor at an angular frequency of ω = 8000 rad/sec, we need to know the circuit configuration and the relationship between the voltage and current.

Assuming a simple circuit with a resistor (R), the phase angle between the generator voltage (V) and the current (I) can be determined using Ohm's Law. In a purely resistive circuit, the voltage and current are in phase with each other.

The phase angle (θ) can be calculated using the formula:

θ = arctan(X/R)

where X is the reactance, which represents the imaginary component of the impedance. In a purely resistive circuit, the reactance is zero, so the phase angle is also zero.

If there are any reactive components (such as inductors or capacitors) present in the circuit, their values and the circuit's configuration will determine the reactance and consequently the phase angle.

Please provide additional details about the circuit configuration, including the presence of any reactive components and their values, so that we can calculate the phase angle more accurately.

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estimate the stiffness of the spring in a child’s pogo stick if the child has a mass of 41.3 kg and bounces once every 2.12 seconds. the mass of the pogo is 1.22 kg.

Answers

To estimate the stiffness of the spring in a child's pogo stick, we can use Hooke's Law, which states that the force exerted by a spring is directly proportional to the displacement of the spring from its equilibrium position.

The period (T) of the pogo stick's bouncing motion can be calculated using the given information:

T = 2.12 seconds

The period is the time taken for one complete cycle, which in this case is one bounce.

To calculate the stiffness of the spring (k), we need to determine the angular frequency (ω) of the bouncing motion. The angular frequency is given by:

ω = 2π / T

Let's calculate the angular frequency:

ω = 2π / 2.12 seconds

  ≈ 2.968 radians/second

Next, we can calculate the effective mass (m_eff) of the system, which is the sum of the child's mass (m_child) and the pogo stick's mass (m_pogo):

m_eff = m_child + m_pogo

     = 41.3 kg + 1.22 kg

     ≈ 42.52 kg

Finally, we can calculate the stiffness (k) using the formula:

k = m_eff * ω^2

Let's substitute the values and calculate the stiffness:

k = (42.52 kg) * (2.968 radians/second)^2

 ≈ 372.22 N/m

Therefore, the estimated stiffness of the spring in the child's pogo stick is approximately 372.22 N/m.

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exposure f8 at 1/125 is equivalent to

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Exposure f8 at 1/125 is equivalent to the following exposure settings:

- f/11 at 1/60 (one stop less light)

- f/16 at 1/30 (two stops less light)

- f/5.6 at 1/250 (one stop more light)

- f/4 at 1/500 (two stops more light)

These settings represent the same exposure value (EV) but with different combinations of aperture and shutter speed.

Decreasing the aperture (higher f-number) or increasing the shutter speed (higher denominator) decreases the amount of light entering the camera, while increasing the aperture (lower f-number) or decreasing the shutter speed (lower denominator) increases the amount of light entering the camera.

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in an airplane travels 600 km against the wind. it takes 50 min to travel 300 km with the wind. find the speed of the wind

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To find the speed of the wind, we can set up a system of equations using the given information. Let's assume the speed of the airplane is "a" km/h and the speed of the wind is "w" km/h.

Let's denote the speed of the airplane as "a" km/h and the speed of the wind as "w" km/h. When the airplane is flying against the wind, its effective speed is reduced. So, the time it takes to travel 600 km against the wind can be expressed as 600/(a - w) hours.

Similarly, when the airplane is flying with the wind, its effective speed is increased. So, the time it takes to travel 300 km with the wind can be expressed as 300/(a + w) hours.

Given that the time taken against the wind is 50 minutes (or 50/60 = 5/6 hours) and the time taken with the wind is 50 minutes (or 50/60 = 5/6 hours), we can set up the following equations:

600/(a - w) = 5/6

300/(a + w) = 5/6

By solving these equations simultaneously, we can find the values of "a" and "w" and determine the speed of the wind.

From the equations:

600/(a - w) = 5/6 ---- (1)

300/(a + w) = 5/6 ---- (2)

To eliminate the fractions, we can cross-multiply and simplify the equations:

Equation (1):

600 * 6 = 5 * (a - w)

3600 = 5a - 5w

5a - 5w = 3600 ---- (3)

Equation (2):

300 * 6 = 5 * (a + w)

1800 = 5a + 5w

5a + 5w = 1800 ---- (4)

Now, let's solve equations (3) and (4) simultaneously. We can add them to eliminate "w":

(5a - 5w) + (5a + 5w) = 3600 + 1800

10a = 5400

a = 5400/10

a = 540 km/h

Substituting the value of "a" back into equation (3), we can solve for "w":

5(540) - 5w = 3600

2700 - 5w = 3600

-5w = 3600 - 2700

-5w = 900

w = 900/-5

w = -180 km/h

Therefore, the speed of the wind is 180 km/h, and the speed of the airplane is 540 km/h. The negative sign indicates that the wind is blowing against the direction of the airplane's travel.

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draw a two terminal diagram showing a resistor, r1, in series with two other resistors in parallel, r2 and r3. give an equation for the total resistance of this configuration.

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A two terminal diagram is a representation of a circuit that shows the connections between the components.

In this case, the diagram will show a resistor, labeled as r1, in series with two other resistors, labeled as r2 and r3, that are in parallel with each other. A resistor is a component that opposes the flow of current in a circuit and is measured in ohms. The diagram will show r1 connected to r2 and r3, which are connected to each other at a single point. This is the parallel connection. The two terminal diagram will have a single input terminal and a single output terminal, where the current flows in and out of the circuit.

The total resistance, labeled as R_total, is calculated by adding the resistances of r1, r2, and r3. Since r2 and r3 are in parallel, we can use the formula for calculating the total resistance of a parallel circuit. The formula is 1/R_total = 1/r2 + 1/r3. We can then add the resistance of r1 by adding it to the reciprocal of R_total. The final equation for the total resistance is R_total = r1 + (1/((1/r2)+(1/r3))). This equation can be used to calculate the total resistance of any circuit with these components in this configuration.

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astronauts on our moon must function with an acceleration due to gravity of 0.165g .if an astronaut can throw a certain wrench 15.0 m vertically upward on earth, how high could he throw it on our moon if he gives it the same starting speed in both places?

Answers

The wrench can be thrown to a height of approximately 90.91 meters on the Moon if it is given the same starting speed as on Earth.

To determine the height to which the wrench can be thrown on the moon, given the same starting speed as on Earth, we can use the concept of gravitational potential energy.

On Earth:

Let's assume the starting speed on Earth is denoted as v and the height to which the wrench is thrown is h.

Using the principle of conservation of energy, the initial kinetic energy (KE) will be converted into gravitational potential energy (PE) at the highest point of the trajectory.

On Earth, the wrench is thrown vertically upward against the acceleration due to gravity of 9.8 m/s². Therefore, at the highest point, the final velocity (vfinal) will be zero.

Using the equation: KEinitial = PEhighest,

(1/2)mv² = mgh,

Where m is the mass of the wrench (which cancels out in the equation), v is the initial speed, g is the acceleration due to gravity, and h is the height.

We can solve this equation for h:

h = (v²) / (2g)

On the Moon:

On the Moon, the acceleration due to gravity is 0.165 times that on Earth. So, the acceleration due to gravity on the Moon, gmoon, is given by:

gmoon = 0.165 * 9.8 m/s².

Since the initial speed (v) is the same on both Earth and the Moon, we can use the equation for height (h) on the Moon, using gmoon:

hmoon = (v²) / (2gmoon).

Comparing the two equations for height on Earth and the Moon:

h = (v²) / (2g),

hmoon = (v²) / (2gmoon).

Since the initial speed (v) is the same in both cases, we can see that the height on the Moon (hmoon) will be inversely proportional to the acceleration due to gravity on the Moon (gmoon) compared to Earth's gravity (g)

So, the height to which the wrench can be thrown on the Moon is given by:

hmoon = h / (gmoon / g)

Substituting the values:

g = 9.8 m/s² (acceleration due to gravity on Earth)

gmoon = 0.165 * 9.8 m/s² (acceleration due to gravity on the Moon)

hmoon = h / (gmoon / g)

hmoon = 15.0 m / (0.165 * 9.8 m/s² / 9.8 m/s²)

hmoon = 15.0 m / 0.165

hmoon = 90.91 m.

Therefore, the wrench can be thrown to a height of approximately 90.91 meters on the Moon if it is given the same starting speed as on Earth.

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Consider two different machines A and B that could be used at a station. Machine A has a mean effective process time te of 1.0 hours and an SCV c = 0.25. Machine B has a mean effective process time of 0.85 hour and an SCV of 4. (a) For an arrival rate of 0.92 job per hour with ca = 1, which machine will have a shorter average cycle time? (b) Now put two identical machines of type A (in parallel) at the station and double the arrival rate. What happens to cycle time? Do the same for machine B. Which type of machine produces shorter average cycle time? (c) With only one machine at a station, let the arrival rate be 0.95 job per hour with c = 1. Recompute the average time spent at the stations for both machine A and machine B.

Answers

a. Machine A has a shorter average cycle time compared to Machine B. b. Machine A (1.125 hours) still has a shorter average cycle time compared to Machine B (2.125 hours). c. with an arrival rate of 0.95 job per hour and c = 1, Machine B now has a shorter average cycle time compared to Machine A.

(a) To determine which machine will have a shorter average cycle time, we need to compare their cycle times using the given parameters. The cycle time can be calculated as the sum of the mean effective process time (te) and half of the product of te and SCV (Standard Coefficient of Variation).

For Machine A:

Cycle time for Machine A = te + 0.5 * te * c

Substituting the given values:

Cycle time for Machine A = 1.0 hour + 0.5 * 1.0 hour * 0.25 = 1.125 hours

For Machine B:

Cycle time for Machine B = te + 0.5 * te * c

Substituting the given values:

Cycle time for Machine B = 0.85 hour + 0.5 * 0.85 hour * 4 = 2.125 hours

Therefore, Machine A has a shorter average cycle time compared to Machine B.

(b) When two identical machines of type A are placed in parallel at the station and the arrival rate is doubled, the cycle time for each machine will remain the same. This is because the machines are independent, and each machine will handle its portion of the arrival rate.

Similarly, when two identical machines of type B are placed in parallel at the station and the arrival rate is doubled, the cycle time for each machine will also remain the same.

Comparing the cycle times, Machine A (1.125 hours) still has a shorter average cycle time compared to Machine B (2.125 hours).

(c) For Machine A:

Cycle time for Machine A = te + 0.5 * te * c

Substituting the given values:

Cycle time for Machine A = 1.0 hour + 0.5 * 1.0 hour * 1 = 1.5 hours

For Machine B:

Cycle time for Machine B = te + 0.5 * te * c

Substituting the given values:

Cycle time for Machine B = 0.85 hour + 0.5 * 0.85 hour * 1 = 1.275 hours

Therefore, with an arrival rate of 0.95 job per hour and c = 1, Machine B now has a shorter average cycle time compared to Machine A.

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if equal masses of ice at 0°c and water at 80°c are mixed, then what will be the final temperature of the mixture

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When equal masses of ice at 0°C and water at 80°C are mixed, the final temperature of the mixture will be 0°C. This is because during the process of mixing, heat energy will transfer from the water at 80°C to the ice at 0°C.

Causing the ice to melt and reach its melting point. The heat transfer continues until the ice and water reach thermal equilibrium at 0°C.

When the ice and water are mixed, heat energy flows from the water at 80°C to the ice at 0°C. The water transfers heat to the ice until the ice begins to melt. The melting of ice requires a certain amount of energy, known as the latent heat of fusion. This energy is used to convert the solid ice into liquid water at its melting point of 0°C.

During the process of melting, the water at 80°C loses heat energy to the ice, causing its temperature to decrease. At the same time, the ice absorbs heat energy from the water, causing it to melt and reach 0°C. This heat transfer process continues until both the ice and water reach thermal equilibrium at 0°C.

Therefore, the final temperature of the mixture will be 0°C, as all the ice will have melted and the system reaches a uniform temperature.

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Elephants can create and hear infrasonic sounds - sounds with frequencies lower than about 20 Hz -- which can travel long distances. They create these sounds using the catvity that extends from their larynx to the tip of their long trunk. Consider this cavity as a cylindrical air column of length 4.63 meters that is closed at the larynx and open at the tip of the trunk.
1. Calculate the fundamental frequency of a standing wave in such an elephant's air column, in hertz. Take the speed of sound in air to be 346 m/s.
2. With the same speed of sound as 1, 346 m/s, how long, in meters would an elephants air column have to be to maintain a standing wave at a fundamental frequency of 9.8 Hz.

Answers

1. To calculate the fundamental frequency of a standing wave in the elephant's air column, we can use the formula:

f = v / (2L)

where:

- f is the frequency of the standing wave,

- v is the speed of sound in air,

- L is the length of the air column.

Given:

v = 346 m/s

L = 4.63 meters

Substituting the values into the formula:

f = 346 m/s / (2 * 4.63 m)

f ≈ 37.5 Hz

Therefore, the fundamental frequency of the standing wave in the elephant's air column is approximately 37.5 Hz.

2. To find the length of the air column required to maintain a standing wave with a fundamental frequency of 9.8 Hz, we rearrange the formula as:

L = v / (2f)

Given:

v = 346 m/s

f = 9.8 Hz

Substituting the values into the formula:

L = 346 m/s / (2 * 9.8 Hz)

L ≈ 17.7 meters

Therefore, the length of the elephant's air column would need to be approximately 17.7 meters to maintain a standing wave with a fundamental frequency of 9.8 Hz.

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a string is tied at each end. when vibrated at 600 hz a standing wave is produced with four antin- odes. at what frequency would a standing wave with five antinodes be produced?

Answers

Answer:

[tex]f_5=750 \ Hz[/tex]

Conception:

What is a standing wave? A standing wave is a wave produced by two interfering waves which creates a unique shape that almost makes the wave look stationary. Standing waves can also be referred to as stationary waves (refer to the attached image).

Two distinct points exist on standing waves called nodes and antinodes. A node occurs where there is no displacement from equilibrium which is caused by complete destructive interference. An antinode occurs where there is max displacement from equilibrium which is caused by complete constructive interference(refer to the attached image).

What is frequency? The frequency of a wave is the number of waves that pass a fixed point per second. The unit of measurement for frequency is one cycle per second which is a hertz, "Hz."

Explanation:

Given that a string is vibrated at 600 Hz creates a standing wave with four antinodes. Find at what frequency will create a standing wave with five antinodes.

We first need to find the fundamental frequency, which is the lowest frequency possible to create a standing wave.

[tex]\boxed{\left\begin{array}{ccc}\text{\underline{Use the formula:}}\\f_n=nf_1\\\end{array}\right }[/tex]

 "f_1" represents the fundamental frequency. Find "f_1."

[tex]\Longrightarrow f_n=nf_1;f_4=600 \ Hz;n=4\\\\\Longrightarrow 600=(4)f_1 \Longrightarrow f_1=\frac{600}{4} \Longrightarrow \boxed{f_1=150 \ Hz}[/tex]

Use the fundamental frequency to find the frequency to produce a standing wave with five antinodes. We are now finding "f_5."

[tex]\Longrightarrow f_5=(5)f_1 \Longrightarrow f_5=(5)(150) \Longrightarrow \boxed{\boxed{\therefore f_5=750 \ Hz}}[/tex]

Thus, the frequency to produce a standing wave with 5 antinodes is found.

number of extra electrons to generate a charge q:

Answers

The number of extra electrons needed to generate a charge q depends on the charge on a single electron, which is approximately -1.602 x 10^-19 Coulombs. To determine the number of extra electrons needed, you can use the formula:

n = q / (-e)

where n is the number of extra electrons, q is the total charge in Coulombs, and e is the charge on a single electron. The negative sign in the formula indicates that electrons have a negative charge.

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the is an adjustable feature of the hol v-scope? A.Coarce focus knob B.Iluminator switch C.Stafe D.All of the aboce

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D. All of the above. The HOL V-scope has a coarse focus knob, an illuminator switch, and a stage that can be adjusted to accommodate different sizes and types of specimens.

Additionally, the content loaded onto the V-scope is also adjustable and can be customized to suit the user's needs. Coarse Adjustment Knob: To concentrate the specimen, the coarse adjustment knob, which is placed on the microscope's arm, raises and lowers the stage. With just a half turn of the adjustment knob, the gearing system creates a significant vertical movement of the stage. Since the coarse adjustment should never be used with high power lenses (40X and 100X), it should only be utilised with low power objectives (4X and 10X).

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Light duty ladders have a maximum weight limit of:
A. 200 pounds. B. 300 pounds
C. 400 pounds

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The maximum weight limit for light-duty ladders depends on the specific ladder and its manufacturer's specifications. However, as a general guideline, light-duty ladders usually have a maximum weight limit of around 200 pounds.

It's important to note that exceeding the maximum weight limit of a ladder can be dangerous and may result in accidents or injuries. When using a ladder, it's essential to read and follow the manufacturer's guidelines and weight limits to ensure safe and proper use.

If the user's weight or the weight of the materials being carried exceeds the ladder's maximum weight limit, a heavier-duty ladder should be used instead.

In summary, the maximum weight limit for light-duty ladders is typically around 200 pounds, but it's important to check the manufacturer's specifications for the specific ladder being used.

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A cosmic ray travels 60.0 km through the earth's atmosphere in 350 μs , as measured by experimenters on the ground. You may want to review (Pages 1035 - 1039).
How long does the journey take according to the cosmic ray?

Answers

A cosmic ray travels through the Earth's atmosphere in 350 μs, but its journey time according to the cosmic ray cannot be determined without knowing its velocity.

To find the journey time according to the cosmic ray, we can use the time dilation equation, t' = t / γ, where t' is the cosmic ray's journey time, t is the time measured by the ground-based experimenters (350 μs), and γ is the Lorentz factor.

The Lorentz factor, γ, is given by γ = 1 / sqrt(1 - (v^2 / c^2)), where v is the velocity of the cosmic ray and c is the speed of light.

However, the problem does not provide the velocity of the cosmic ray, so we cannot calculate the exact journey time without that information.

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