Amy decided to walk up the bleachers at the Sorilla Stadium. She walked up 43 rows of bleachers, which are each 2 feet high, in 4 minutes. If Amy weighs 110 lbs, what was her average power expended (in watts)? [2 pts] (Hint: Watts = Joules per second (W=J/s), 1 Joule = 1 Newton-meter (J = N*m) and 1 Newton is equal to 1 kg * m/s2) ?

Answers

Answer 1

Amy has to run 15.56 hours to expend one kWh of energy.

Work done by Amy = weight × no. of rows × height × (g),

Let's assume the weight of Amy is 60 kg.

Work done = 60 × 43 × 29.8

w = 15423.24 joule

Power need = work done / time

Power need = 64.26 watt

64.26 watt × time(h) = 1000kw-h

t = 1000/64.26 = 15.56hrs

Amy has to run 15.56 hours to expend one kWh of energy.

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Related Questions

Choose the correct statement(s) concerning n-type semiconductors: (i) The Ef (Femi level) is always below Ec (conducting band). (ii) The fraction of the donor level electrons excited into the conduction band is much larger than the number of electrons excited from the valence band. (iii) Electrons in the conduction band are the minority charge carriers. (iv) N-type semiconductors have direct bandgap. (v) Because the Number of electrons ‡ the Number of holes in n-type semiconductors, n-type semiconductors are charged.

Answers

The statement(s) concerning n-type semiconductors are:

(i) The Ef (Fermi level) is always below Ec (conduction band).

(iii) Electrons in the conduction band are the minority charge carriers.

The correct statements are (i) & (iii) .

(i) In n-type semiconductors, the Fermi level (Ef) represents the energy level at which there is a 50% probability of finding an electron.

Since n-type semiconductors have an excess of negatively charged electrons, the Fermi level is typically below the conduction band (Ec) to accommodate the additional electrons.

(iii) In n-type semiconductors, the majority charge carriers are the negatively charged electrons in the conduction band, while the minority charge carriers are the positively charged holes in the valence band.

This is due to the presence of donor impurities (such as phosphorus) that introduce additional electrons into the conduction band, making electrons the minority charge carriers.

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a scientist studies how the temperature of a baseball affects how far it goes when hit by a bat. what will make this experiment more repeatable?

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A scientist is studying how the temperature of a baseball affects how far it goes when hit by a bat. The scientist aims to make the experiment as repeatable as possible by following specific procedures that will allow for consistency and accuracy. The following steps will make the experiment more repeatable:

1. Standardization of the equipment: The scientist must ensure that the equipment used in the experiment is standardized. They should use the same type of bat, ball, and equipment for every trial to make the experiment as repeatable as possible.

2. Standardization of the environment: The scientist must maintain a standard environment for the experiment. The temperature, humidity, and atmospheric pressure must be the same for every trial.

3. Randomization: The scientist should randomly choose the order of trials to eliminate any potential biases.

4. Multiple Trials: The scientist should repeat the experiment multiple times to obtain accurate and consistent results. This will help to identify any anomalies or errors.

5. Record Keeping: The scientist must maintain accurate records of all the data collected from the experiment. They should record the date, time, and temperature of the ball and any other relevant information that can help to repeat the experiment.

6. Data Analysis: The scientist should analyze the data obtained from the experiment using statistical methods to identify any trends or patterns.

By following these steps, the scientist can make the experiment more repeatable and achieve accurate and consistent results.

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How many permutations of the set {1,2,3,4,5,6} do not contain the string 123? Hint. It may be easier to find first how many permutations do contain the given string. 13. How many permutations of the set {1, 2, 3, 4, 5, 6) do not contain the string 123? Hint. It may be easier to find first how many permutations do contain the given string.

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The set {1,2,3,4,5,6} do not contain the string 123 It may be easier to find first how many permutations do contain the given string. 13.  the number of permutations that do not contain the string "123" is 720 - 6 = 714.

To find the number of permutations of the set {1, 2, 3, 4, 5, 6} that do not contain the string "123," we can first find the number of permutations that do contain the string "123" and subtract it from the total number of permutations.

To count the number of permutations that contain the string "123," we can treat the string "123" as a single entity and find the number of permutations of the remaining elements.

The remaining elements are {4, 5, 6}, which can be permuted in 3! = 6 ways.

Therefore, the number of permutations that contain the string "123" is 6.

The total number of permutations of the set {1, 2, 3, 4, 5, 6} is 6!, which is equal to 720.

So, the number of permutations that do not contain the string "123" is 720 - 6 = 714

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a ray of light is emitted from within an unknown substance that has a layer of air above it. the light is incident on the air-substance boundary at the critical angle and undergoes total internal reflection. what is the index of refraction of the unknown substance

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The index of refraction of the unknown substance is approximately 1.00.

When light undergoes total internal reflection at the boundary between two media, it means that the angle of incidence is equal to or greater than the critical angle for that boundary. The critical angle can be determined using Snell's law:

n1 * sin(theta1) = n2 * sin(theta2)

In this case, the incident medium is the unknown substance, and the refractive index of air is approximately 1.00. When total internal reflection occurs, the angle of refraction, theta2, is 90 degrees (perpendicular to the boundary).

sin(theta2) = 1.00 (since sin(90 degrees) = 1.00)

Now, rearranging the equation and substituting the values, we have:

n1 * sin(theta1) = 1.00

The critical angle occurs when sin(theta1) is equal to 1, so:

n1 * 1 = 1.00

Simplifying the equation, we find

n1 = 1.00

Therefore, the index of refraction of the unknown substance is approximately 1.00.

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A 100-kW, 250-V shunt generator has a field circuit resistance of 50. And an armature circuit Resistance of 0.0552. Find: (a) The full-load line current flowing to the load; (b) The field current; (c) The armature current; and (d) The full-load generator voltage. QUESTION THREE (20 marks) 3000/4000 it has a primary

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(a) The full-load line current flowing to the load is approximately 4525.36 A , (b) The field current is 5 A , (c) The armature current is approximately 4525.36 A , (d) The full-load generator voltage is 250 V.

(a) The full-load line current flowing to the load can be calculated using Ohm's Law:

I = V / R

Power (P) = 100 kW

Voltage (V) = 250 V

Armature Circuit Resistance ([tex]R_{armature[/tex]) = 0.0552 ohms

we need to convert the power from kilowatts to watts:

P = 100 kW * 1000 = 100,000 W

Now we can calculate the full-load line current:

I = V / [tex]R_{armature}[/tex] = 250 V / 0.0552 ohms ≈ 4525.36 A

The full-load line current flowing to the load is approximately 4525.36 A.

(b) The field current can be calculated using the formula:

[tex]I_{field} = V / R_{field}[/tex]

Field Circuit Resistance ([tex]R_{field[/tex]) = 50 ohms

We can substitute the values into the formula to find the field current:

[tex]I_{field}[/tex] = 250 V / 50 ohms = 5 A

The field current is 5 A.

(c) The armature current is equal to the full-load line current flowing to the load since the armature circuit is in series with the load. The armature current is approximately 4525.36 A.

(d) The full-load generator voltage is given as 250 V in the question.

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A superheterodyne receiver is to operate in the frequency range of 550kHz-1650kHz, with the intermediate frequency of 450kHz. Let R = Cmax/Cmin denote the required capacitance ratio of the local oscillator and fsi denote the image frequency (in kHz) of the incoming signal. If the receiver is tuned to 700 kHz, calculate R.

Answers

The local oscillator and fsi denote the image frequency (in kHz) of the incoming signal. If the receiver is tuned to 700 kHz, The required capacitance ratio R is -2.6.

To calculate the required capacitance ratio R of the local oscillator in a superheterodyne receiver, we can use the formula:

R = (fsi + fIF) / (fsi - fIF)

where fsi is the image frequency and fIF is the intermediate frequency.

In this case, the intermediate frequency (fIF) is given as 450 kHz. We need to find the image frequency (fsi) when the receiver is tuned to 700 kHz.

The image frequency is the frequency that is mirrored around the intermediate frequency. It can be calculated as follows:

fsi = 2 * fIF - ft

where ft is the tuned frequency.

Substituting the given values into the formula, we have:

fsi = 2 * 450 kHz - 700 kHz

= 900 kHz - 700 kHz

= 200 kHz

Now we can calculate the capacitance ratio R:

R = (fsi + fIF) / (fsi - fIF)

= (200 kHz + 450 kHz) / (200 kHz - 450 kHz)

= 650 kHz / -250 kHz

= -2.6

The required capacitance ratio R is -2.6. Note that the negative sign indicates that the local oscillator needs to operate in the opposite phase to the incoming signal to achieve the desired intermediate frequency.

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explain how the sun moves each day relative to the fixed stars. how many degrees does it move and how long does it take to return to its original location

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The apparent motion of the Sun relative to the fixed stars is due to the rotation of the Earth on its axis.

From an observer on Earth, it appears as if the Sun moves across the sky from east to west throughout the day. However, this apparent motion is not due to the Sun's actual movement but rather the Earth's rotation.

The Earth completes one full rotation on its axis in approximately 24 hours, causing the Sun to appear to move a full 360 degrees across the sky during this time. This apparent motion of the Sun covers a path known as the Sun's daily path or apparent diurnal motion.

The Sun's daily path can be divided into 360 degrees because it takes approximately 24 hours for the Sun to return to its original location in the sky relative to the fixed stars. This means that the Sun appears to move approximately 15 degrees per hour (360 degrees divided by 24 hours). Consequently, the Sun moves approximately 1 degree every 4 minutes (15 degrees divided by 60 minutes).

It's important to note that the Sun's apparent motion relative to the fixed stars is a result of the Earth's rotation, and in reality, the Sun remains relatively stationary in space.

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Question 6 Not yet answered Which process is responsible for changing pyrite to hematite? Points out of \( 1.00 \) Select one: a. Dissolution. b. Hydrolysis. c. Oxidation. d. Reduction

Answers

The process of oxidation is responsible for changing pyrite to hematite.

The process responsible for changing pyrite (iron sulfide, FeS₂) to hematite (iron oxide, Fe₂O₃) is called oxidation. Pyrite undergoes oxidation when exposed to oxygen and water, resulting in the transformation of iron sulfide to iron oxide.

In this reaction, oxygen from the air reacts with pyrite in the presence of water, leading to the formation of hematite, sulfate ions (SO₄²⁻), and hydrogen ions (H⁺). The process of oxidation breaks down the pyrite mineral and replaces it with the iron oxide mineral hematite.

Therefore, The process of oxidation is responsible for changing pyrite to hematite.

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A wire is wrapped around in a circular loop with a radius of 10 centimeters 25 times, what is the magnetic moment of the wire when there are 4 amps of current running through the wire?​

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The magnetic moment of a current loop can be defined as the product of the current and the area of the loop. In this case, we have a wire wrapped in a circular loop with a radius of 10 centimeters 25 times, carrying a current of 4 amps.

Therefore, the area of the loop can be calculated as follows:Area of a single loop = πr²= π(10 cm)²= 100π cm²Area of 25 loops = 25(100π) cm²= 2500π cm²The magnetic moment of the wire can then be calculated as the product of the current and the area of the loop:Magnetic moment = current × area= 4 amps × 2500π cm²= 10000π A cm²This means that the magnetic moment of the wire is 10000π A cm² when there are 4 amps of current running through it.

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two objects of mass 2m and 10m undergo a completely inelastic collision (they stick together) in one dimension. if the two objects are at rest after the collision, what was the ratio of their speeds before the collision?

Answers

The ratio of their speeds before the collision is 0.

In an inelastic collision, the two objects stick together and move as one object after the collision. We can apply the principle of conservation of momentum to solve this problem.

Before the collision, the total momentum of the system is given by:

Total momentum before collision = (mass of object 1 * velocity of object 1) + (mass of object 2 * velocity of object 2)

Since both objects are initially at rest, their velocities are 0. Therefore, the total momentum before the collision is also 0.

After the collision, the two objects stick together and move with a common velocity. Let's denote this common velocity as V.

The total momentum after the collision is given by:

Total momentum after collision = (mass of combined object * velocity of combined object)

Since the two objects stick together, the mass of the combined object is the sum of the masses of the individual objects, i.e., (2m + 10m) = 12m.

The total momentum after the collision is therefore 12mV.

According to the principle of conservation of momentum, the total momentum before the collision is equal to the total momentum after the collision. Therefore:

0 = 12mV

Since the velocity V is zero (objects are at rest after the collision), we can conclude that the ratio of their speeds before the collision is:

Velocity of object 1 / Velocity of object 2 = 0

So, the ratio of their speeds before the collision is 0.

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an insulating sphere of radius 13 cm has a uniform charge density throughout its volume. if the magnitude of the electric field at a distance of 7.4 cm from the center is 46900 n/c ,what is the magnitude of the electric field at18.6 cm from the center?answer in units of n/c.

Answers

The magnitude of the electric field at a distance of 18.6 cm from the center of the insulating sphere is approximately 2.19 × 10^4 N/C.

To determine the magnitude of the electric field at a distance of 18.6 cm from the center of the insulating sphere, we can use the concept of Gauss's law and the fact that the sphere has a uniform charge density.

According to Gauss's law, the electric field outside a uniformly charged sphere behaves as if the entire charge were concentrated at the center of the sphere. This allows us to treat the sphere as a point charge.

Given that the magnitude of the electric field at a distance of 7.4 cm from the center is 46900 N/C, we can use the relationship between electric field and distance from a point charge:

E = k * (Q / [tex]r^{2}[/tex])

Where:

E is the electric field.

k is the electrostatic constant (approximately 9 × [tex]10^9 N m^2/C^2[/tex]).

Q is the total charge of the sphere.

r is the distance from the center of the sphere.

Let's denote the charge density as ρ, which is the charge per unit volume. The total charge Q of the sphere can be calculated as:

Q = (4/3) * π *[tex]r^{3}[/tex] * ρ

Given that the radius of the sphere is 13 cm (or 0.13 m), we can substitute the values into the equation:

46900 N/C = ( 9 × [tex]10^9 N m^2/C^2[/tex]) * [tex]((4/3) * \pi * (0.13 m)^3 * p) / (0.074 m)^2[/tex]

Simplifying the equation and solving for ρ:

ρ = (46900 N/C) * [tex](0.074 m)^2 / ((4/3) * \pi * (0.13 m)^3 * (9 * 10^9 N m^2/C^2))[/tex]

ρ ≈ 2.789 × [tex]10^-9 C/m^3[/tex]

Now, we can find the electric field at a distance of 18.6 cm (or 0.186 m) from the center using the same formula:

E = k * (Q / [tex]r^{2}[/tex])

E = [tex](9 * 10^9 N m^2/C^2) * ((4/3) * \pi * (0.13 m)^3 * p) / (0.186 m)^2[/tex]

Calculating the expression:

E ≈ 2.19 × 1[tex]0^{4}[/tex] N/C

Therefore, the magnitude of the electric field at a distance of 18.6 cm from the center of the insulating sphere is approximately 2.19 × 1[tex]0^{4}[/tex]N/C.

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How do you find slope of a time/velocity graph

Answers

Answer:

slope = ∆ v ∆ t

Explanation:

In homogeneous and conductive medium (μ.,), (1) establish the equation of charge density p and give its solution: (2) find relaxation time (that is, the time duration for charge density in conductive ); (3) find the relaxation time T for copper Po media from p when t=0, decreasing to e (o=5.8×10¹ S/m.ɛ=&=- -×10° F/m). 1 367

Answers

The initial charge density (ρ₀) and the electric field (E) to calculate the relaxation time (τ). Without this information, it is not possible to determine the relaxation time for copper based on the provided data.

To establish the equation of charge density in a homogeneous and conductive medium, we can use the continuity equation, which relates the charge density to the current density.

Equation of charge density (ρ):

The continuity equation states that the rate of change of charge density (ρ) in a given volume is equal to the negative divergence of the current density (J):

∂ρ/∂t + ∇⋅J = 0

In a homogeneous and conductive medium, the current density (J) can be expressed as:

J = σE

Where σ is the conductivity of the medium and E is the electric field.

Substituting this into the continuity equation:

∂ρ/∂t + ∇⋅(σE) = 0

Solution for charge density (ρ):

To find the solution for ρ, we need to solve the above equation based on the specific conditions of the system and the given boundary conditions.

The relaxation time (τ) is the characteristic time scale for charge density to relax to a steady-state value. It is defined as the time it takes for the charge density to decrease to 1/e (approximately 0.368) of its initial value.

Calculation of relaxation time (τ) for copper:

Given:

σ = 5.8 × 10^7 S/m (conductivity of copper)

ε₀ = 8.854 × 10^(-12) F/m (vacuum permittivity)

We need additional information such as the initial charge density (ρ₀) and the electric field (E) to calculate the relaxation time (τ). Without this information, it is not possible to determine the relaxation time for copper based on the provided data.

Please provide the necessary information to calculate the relaxation time (τ) for copper, including the initial charge density (ρ₀) and the electric field (E) at time t=0.

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Problem 4.0 (25 Points) Draw the circuit diagram of MOD-4 down counter, and also show the timing diagram (waveforms) of the counter including clock pulse.

Answers

The circuit diagram of a MOD-4 down counter consists of four flip-flops connected in a specific configuration. Each flip-flop represents one stage of the counter. The clock pulse is connected to all the flip-flops to synchronize their operation.

Here is a textual representation of the circuit diagram for a MOD-4 down counter:

Clock --|     |-----|     |-----|     |-----|     |

       |     |     |     |     |     |     |     |

     +-|D    |     |D    |     |D    |     |D    |--- Q0

     | |  FF |     | FF |     | FF |     | FF |

     | |     |     |     |     |     |     |     |

     | |     |     |     |     |     |     |     |

     | |     |     |     |     |     |     |     |

     | |     |     |     |     |     |     |     |

     +-|>    |     |>    |     |>    |     |>    |--- Q1

       |_____|     |_____|     |_____|     |_____|

          |           |           |           |

          |           |           |           |

          |           |           |           |

          |           |           |           |

         _|_         _|_         _|_         _|_

          |           |           |           |

          |           |           |           |

          |           |           |           |

          |           |           |           |

         Q2          Q3          Q0          Q1

The timing diagram (waveforms) of the counter includes the clock pulse and the outputs (Q0, Q1, Q2, and Q3). Each output represents the state of its respective flip-flop at a given time.

The clock pulse waveform will have a regular pattern of high (logic 1) and low (logic 0) states, indicating the clock cycle. The outputs Q0, Q1, Q2, and Q3 will change their states according to the down counting sequence.

For a MOD-4 down counter, the counting sequence is as follows:

Clock Cycle   Q3  Q2  Q1  Q0

     1        0   0   0   1

     2        0   0   1   0

     3        0   0   1   1

     4        0   1   0   0

     1        0   1   0   1

     2        0   1   1   0

     3        0   1   1   1

     4        1   0   0   0

     ... and so on

The timing diagram would represent these changes in the outputs with respect to the clock pulse waveform over time.

Please note that it is highly recommended to refer to circuit diagrams and timing diagrams provided in textbooks, online resources, or consult with experts to ensure accuracy and clarity when working with complex circuit designs.

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a) A particular polymer is found to have birefringence of magnitude An) = 5x 10- for light with wavelength 632 nm. Find the minimum thickness of a quarter waveplate (QWP) made from this material.

Answers

The minimum thickness of the quarter waveplate made from this polymer is 316 μm.

To find the minimum thickness of a quarter waveplate (QWP) made from a polymer with a given birefringence, we can use the following formula:

Thickness = λ / (4 × Δn)

Where:

Thickness is the minimum thickness of the QWP.

λ is the wavelength of light.

Δn is the birefringence of the material.

Given:

λ = 632 nm (converted to meters: 632 × [tex]10^{-9[/tex] m)

Δn = 5 × [tex]10^{-4[/tex]

Substituting the given values into the formula:

Thickness = (632 × [tex]10^{-9[/tex] m) / (4 × 5 × [tex]10^{-4[/tex])

Simplifying the expression:

Thickness = (632 × [tex]10^{-9[/tex] m) / (20 × [tex]10^{-4[/tex])

= (632 × [tex]10^{-9[/tex] m) / (2 × [tex]10^{-3[/tex])

= (632 × [tex]10^{-9[/tex] m) / (2 × [tex]10^{-3[/tex])

= 316 × [tex]10^{-6[/tex] m

= 316 μm

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A planet of temperature 1630 K and luminosity 3.3 × 1022 W lies 32.9 astronomical units from a star. The star is 33.7 parsecs from the Earth. If the planet is emitting as a black body, what is its radius? ( ♂ = 5.67 × 10−8W m¯²K−4 ). -4 Enter the radius of the planet (in metres).

Answers

The radius of the planet, is approximately 0.0135 meters, indicating its size in relation to its temperature and luminosity.

To calculate the radius of the planet, we can use the Stefan-Boltzmann law for black body radiation. The equation is given by L = 4π[tex]R^2[/tex]σ[tex]T^4[/tex], where L is the luminosity, R is the radius of the planet, σ is the Stefan-Boltzmann constant, and T is the temperature.

Rearranging the equation to solve for R, we have R = √(L / (4πσ[tex]T^4[/tex])).

Substituting the given values into the equation:

L = 3.3 × [tex]10^{22[/tex] W

T = 1630 K

σ = 5.67 × [tex]10^{-8[/tex] W [tex]m^{(-2)[/tex] [tex]K^{(-4)[/tex]

Calculating the radius:

R = √(3.3 × [tex]10^{22[/tex] / (4π × 5.67 × [tex]10^{-8[/tex] × [tex]1630^{4[/tex]))

R = √(3.3 × [tex]10^{22[/tex] / (4π × 5.67 × [tex]10^{-8[/tex] × [tex]1630^{4[/tex]))

First, we'll simplify the expression within the square root:

R = √(3.3 × [tex]10^{22[/tex] / (4π × 5.67 × [tex]10^{-8[/tex] × 26833690000))

R = √(3.3 × [tex]10^{22[/tex] / (1.8 × [tex]10^9[/tex] × 26833690000))

R = √(3.3 × [tex]10^{13[/tex] / (1.8 × 26833690000))

Next, we'll divide the numerator by the denominator:

R = √(0.00018333333333333333)

R = 0.013539807

So, the evaluated radius of the planet is approximately 0.0135 meters.

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An electron travels with a velocity of 2x10° m/s perpendicular to a magnetic flux density of 0.15W/m? Determine the force on moving electron.

Answers

The force on the moving electron is [tex](1.6 * 10^{-19} C) * (2 * 10^{7} m/s) * (0.15 T).[/tex]

To determine the force on a moving electron in a magnetic field, we can use the formula for the magnetic force:

Force (F) = q * v * B * sin(theta)

Where:

q is the charge of the electron ([tex]1.6 * 10^{-19}[/tex] C),

v is the velocity of the electron ([tex]2 * 10^{7}[/tex] m/s),

B is the magnetic flux density (0.15 T), and

theta is the angle between the velocity vector and the magnetic field vector (assuming it's perpendicular, theta = 90 degrees).

Substituting the given values into the formula, we have:

F = [tex](1.6 * 10^{-19} C) * (2 x 10^{7} m/s) * (0.15 T) * sin(90 degrees)[/tex]

Since sin(90 degrees) = 1, the force simplifies to:

F =[tex](1.6 * 10^{-19} C) * (2 * 10^{7} m/s) * (0.15 T)[/tex]

Evaluating this expression gives us the force exerted on the moving electron.

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At 0.5 µm wavelength of maximum radiation emission, what are the
corresponding temperatures (in K)?
Group of answer choices
5794 K
579.4 K
57.94 K
288.15 K

Answers

The corresponding temperature (in K) at a wavelength of 0.5 µm is approximately 5794 K.

According to Wien's displacement law, the wavelength of maximum radiation emission (λmax) is inversely proportional to the temperature (T) of the object. The equation is given as,

λmax = b / T, wavelength in meters is  λmax, Wien's displacement constant (approximately 2.898 × 10⁻³ m·K) is b, and temperature in Kelvin is T. To convert the wavelength from micrometers (µm) to meters (m), we divide by 10⁶,

λmax = 0.5 µm / 10⁶

λmax = 5 × 10⁻⁷ m

Plugging in the values, we can solve for T,

5 × 10⁻⁷ m = (2.898 × 10⁻³ m·K) / T

Cross-multiplying and solving for T,

5 × 10⁻⁷ m × T = 2.898 × 10⁻³ m·K

T ≈ (2.898 × 10⁻³ m·K) / (5 × 10⁻⁷ m)

T ≈ 5794 K

Therefore, the corresponding temperature (in K) at a wavelength of 0.5 µm is approximately 5794 K.

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consider the collison of a bouncy tennis ball with the wall as sketched in the figure if the mass of the tennis if 58g its inistial speed 180m/s and its speed after impact is 120m/s what is the change of the ball momentum during the impact measured in kgm/s

Answers

The tennis ball's momentum change during the impact with the wall is -3.48 kg·m/s.

During the collision, the change in momentum can be calculated by subtracting the initial momentum from the final momentum. Given that the mass of the tennis ball is 58 grams (0.058 kg), its initial speed is 180 m/s, and its speed after impact is 120 m/s, we can determine the change in momentum.

To calculate the initial momentum, we multiply the mass of the ball by its initial speed: 0.058 kg × 180 m/s. Similarly, the final momentum is obtained by multiplying the mass of the ball by its speed after impact: 0.058 kg × 120 m/s. Subtracting the initial momentum from the final momentum gives us the change in momentum during the impact.

Therefore, the change in momentum of the tennis ball during the impact with the wall is determined to be -3.48 kg·m/s. The negative sign indicates a reversal in the direction of momentum, suggesting that the ball changes its direction after colliding with the wall. This change in momentum reflects the transfer of momentum from the ball to the wall during the collision, resulting in a decrease in the ball's speed.

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Near the critical point of a pure fluid, the Gibbs energy obeys the scaling function λG(t,p)=G(λ a
⋅t,λ a
p) where the reduced temperature, pressure, and volume displacements are t= T c

T c

−T

p= P c

P c

−P

v= V
ˉ
c

V
ˉ
− V
ˉ
c


(a) Differentiation of G with respect to pressure gives the volume displacement, v=( ∂p
∂G

) Use Eqs.(1) and (3) to derive the scaling law for v(t,p) in terms of a t

and a p

. (b) The coefficient of thermal expansion, α p

, is given by α p

=( ∂t
∂v

) Use your result from part (a) to derive the scaling law for α p

(t,p) in terms of a t

and a p

. (c) Use your result from part (b) with p=0 and λ a
⋅t=1 to get the behavior of α p

(t,0) along the critical isobar. (d) The Gibbs energy scaling exponents, a t

and a p

, are related to the experimental coexistence curve exponent, β, and the experimental compressibility exponent, δ, by β= a t

1−a p


and δ= 1−a p

a p


Use Eqs.(5), to express your power law representation for α p

(t,0) in part (c) in terms of the experimental exponent(s). Hint: You will find that the exponent that governs the temperature dependence of α p
(t,0) is independent of δ.

Answers

The scaling law for volume displacement, v(t, p), in terms of scaling exponents aₜ and aₚ is given by v(t, p) = aᵥ / (∂G/∂(λₐ⋅t)).

The scaling law for v(t, p) in terms of aₜ and aₚ, we can start with the given expression for the Gibbs energy scaling function:

λG(t, p) = G(λₐ⋅t, λₐ⋅p)   ---(1)

We differentiate this equation with respect to pressure (p) while treating t as a constant:

∂(λG)/∂p = (∂G/∂p)⋅(∂(λₐ⋅p)/∂p)

The derivative of λₐ⋅p with respect to p is λₐ. Now, using the relation v = (∂p/∂G), we can rewrite the above equation as:

v(t, p) = (∂p/∂G) = (∂(λG)/∂p) / (∂(λₐ⋅p)/∂p) = (∂G/∂p) / λₐ

Since G is a function of λₐ⋅t and λₐ⋅p, we can express ∂G/∂p as:

∂G/∂p = (∂G/∂(λₐ⋅p))⋅(∂(λₐ⋅p)/∂p)

Plugging this back into the equation for v(t, p), we get:

v(t, p) = (∂G/∂(λₐ⋅p)) / (λₐ⋅(∂(λₐ⋅p)/∂p))

Now, substitute the scaling function λG(t, p) from equation (1) into the above equation:

v(t, p) = (∂(λG)/∂(λₐ⋅p)) / (λₐ⋅(∂(λₐ⋅p)/∂p))

Simplifying further, we obtain:

v(t, p) = (∂(G(λₐ⋅t, λₐ⋅p))/∂(λₐ⋅p)) / (λₐ⋅(∂(λₐ⋅p)/∂p))

Using the chain rule of differentiation, we can rewrite the numerator as:

∂(G(λₐ⋅t, λₐ⋅p))/∂(λₐ⋅p) = (∂G/∂λₐ⋅t)⋅(∂(λₐ⋅t)/∂(λₐ⋅p))

Since (∂(λₐ⋅t)/∂(λₐ⋅p)) = (∂t/∂p), we can further simplify the expression:

v(t, p) = (∂G/∂λₐ⋅t) / (λₐ⋅(∂t/∂p))

Introduce the volume displacement scaling factor aᵥ as:

v(t, p) = aᵥ⋅(∂G/∂λₐ⋅t) / (λₐ⋅(∂t/∂p))

Comparing this equation with the desired form v(t, p) = aₜ⋅(∂t/∂p), we can conclude that:

aₜ = aᵥ / (∂G/

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Two stars are in a binary system. One is known to have a mass of 0.800 solar masses. If the system has an orbital period of 51.7 years, and a semi-major axis of 3.44E+9 km, what is the mass of the other star?

Answers

Binary stars exist. One weighs 0.800 solar masses. If the system has a 51.7-year orbital period and a 3.44E+9-km semi-major axis,The mass of the other star in the binary system (M2) is approximately 9.226 × 10⁻³¹ kilograms.

To calculate the mass of the other star in the binary system, we can use Kepler's Third Law of Planetary Motion, which applies to binary systems as well. The formula is given by:

(M1 + M2) = (4π²a³) / (G × T²),

where M1 and M2 are the masses of the two stars, a is the semi-major axis of the orbit, G is the gravitational constant, and T is the orbital period.

We need to convert the units to be consistent:

M1 = 0.800 × (mass of the Sun) = 0.800 × 1.989E+30 kg,

a = 3.44E+9 km = 3.44E+12 m,

T = 51.7 years = 51.7 × 365.25 × 24 × 3600 s.

Substituting the values into the formula and solving for M2:

M2 = [(4π² × a³) / (G × T²)] - M1.

Now, we need to consider the values of the constants:

G = 6.67430E-11 m³ kg⁻¹ s⁻²,

π ≈ 3.14159.

Substituting the constants and the given values:

M2 = [(4 × π² × (3.44E+12)³) / (6.67430E-11 × (51.7 × 365.25 × 24 × 3600)²)] - (0.800 × 1.989E+30).

To evaluate the expression step by step:

Calculate the denominator of the expression:

Denominator = 6.67430E-11 × (51.7 × 365.25 × 24 × 3600)²

Denominator ≈ 1.77748428E+6

Calculate the numerator of the expression:

Numerator = 4 × π² × (3.44E+12)³

Numerator ≈ 1.67039364E+38

Subtract the product of the mass of the known star (M1) and the conversion factor:

M1 = 0.800 × 1.989E+30

M1 ≈ 1.5912E+30

M2 = Numerator / Denominator - M1

M2 = 9.22628607E+31

Therefore, the mass of the other star in the binary system (M2) is approximately 9.226 × 10³¹ kilograms.

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how is proper end-gap clearance on new piston rings assured during the overhaul of an engine? group of answer choices by accurately measuring and matching the outside diameter of the rings with the inside diameter of the cylinders. by using rings specified by the engine manufacturer. by placing the rings in the cylinder and measuring the end-gap with a feeler gauge.

Answers

Proper end-gap clearance on new piston rings is typically assured during the overhaul of an engine by placing the rings in the cylinder and measuring the end-gap with a feeler gauge.

The end-gap refers to the space between the ends of the piston ring when it is installed in the cylinder. It is important to have the correct end-gap clearance to ensure proper sealing and functioning of the piston rings. If the end-gap is too tight, the ring may bind or cause excessive friction, leading to engine damage. If the end-gap is too wide, it can result in poor compression and oil leakage.

To achieve the correct end-gap clearance, the rings are carefully inserted into the cylinder bore. Then, a feeler gauge, which is a set of thin metal strips of known thickness, is used to measure the gap between the ends of the ring. The appropriate feeler gauge is selected to ensure that the end-gap falls within the specified range provided by the engine manufacturer.

By following this process and measuring the end-gap with a feeler gauge, engine technicians can ensure that the new piston rings have the correct clearance, promoting optimal engine performance and longevity.

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a baseball leaves a pitcher's hand horizontally at a speed of 113 km/h. the distance to the batteris 18.3 m. (ignore the effect of air resistance.) (a) how long does the ball take to travel the first halfof that distance? (b) the second half? (c) how far does the ball fall freely during the first half? (d)during the second half?

Answers

(a) To find the time it takes for the ball to travel the first half of the distance, we can use the equation:
distance = speed × time
Since the initial speed of the ball is given in km/h, we need to convert it to m/s:
113 km/h = 113,000 m/3600 s = 31.4 m/s
The first half of the distance is half of 18.3 m, so it is 9.15 m.
Using the equation, we can rearrange it to solve for time:
time = distance / speed
time = 9.15 m / 31.4 m/s ≈ 0.291 s
Therefore, it takes approximately 0.291 seconds for the ball to travel the first half of the distance.
(b) Since the second half of the distance is the same as the first half (9.15 m), the time it takes for the ball to travel the second half will also be 0.291 seconds.
(c) During the first half of the distance, the ball falls freely due to gravity. The vertical distance it falls can be calculated using the equation for free fall:
distance = 0.5 × g × t^2
where g is the acceleration due to gravity (approximately 9.8 m/s^2) and t is the time (0.291 s).
distance = 0.5 × 9.8 m/s^2 × (0.291 s)^2 ≈ 0.41 m
Therefore, the ball falls freely for approximately 0.41 meters during the first half of the distance.
(d) During the second half of the distance, the ball continues to fall freely due to gravity. The vertical distance it falls will be the same as in the first half, which is approximately 0.41 meters.

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A monorail train traveling at 44 m/s must be stopped in a distance of 220 m. What average acceleration is required, and what is the stopping time?

Answers

Answer: The average acceleration required to stop the monorail train is approximately -4.4 m/s².

The stopping time of the monorail train is approximately 10 seconds.

Explanation:

To find the average acceleration required to stop the monorail train, we can use the equation:

v²-u² = 2as

where:

- v  is the final velocity (0 m/s, as the train finally stops)

- u is the initial velocity (44 m/s) (given)

- a  is the average acceleration

- s is the distance covered (220 m) (given)

Substituting the acquired values:

→0² = 44² + 2a(220)

Simplifying the equation:

→0 = 1936 + 440a

Rearranging the equation:

→440a = -1936

→a = -1936÷440

→ a = -4.4 m/s² (approx.)

∴The average acceleration required to stop the monorail train is approximately -4.4 m/s².

To find the stopping time, we can use the equation:

v = u + at

where:

- v is the final velocity (0 m/s)

- u is the initial velocity (44 m/s)

- a is the average acceleration -4.4m/s²

- t is the stopping time (To Find)

Substituting the known values:

→0 = 44 + (-4.4)t

Simplifying the equation:

→ -4.4t = -44

→t = -44÷ (-4.4)

→ t = 10 sec (approx.)

The stopping time of the monorail train is approximately 10 seconds.

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. Illustrate the ways in which climate change may occur (mean and variance) and how that may result in changes to the frequency of ‘extreme’ events. Provide an example of an extreme event. How has the frequency changed historically or how may it change with projected climate change? How ‘confident’ is the science for the example you provide?
Q2. Use diagrams to illustrate the Walker circulation and how it changes during the ENSO cycle. What are the mechanisms behind these changes and how might it affect rainfall in Western Australia?

Answers

1. Climate change can lead to changes in both the mean and variance of various climatic factors, which can, in turn, impact the frequency of extreme events.

2. The Walker circulation is an east-west atmospheric circulation pattern that occurs in the tropical Pacific Ocean.

Climate change is causing a general increase in global temperatures. This can result in more frequent and intense heatwaves, leading to extreme heat events. Climate change can disrupt rainfall patterns, leading to changes in the frequency and intensity of extreme precipitation events. This can include heavy rainfall, storms, and floods.

An example of an extreme event influenced by altered precipitation patterns is the flooding in Houston, Texas, during Hurricane Harvey in 2017. With climate change, the frequency of intense rainfall events is expected to increase in many regions.

The science behind the link between climate change and extreme events is well-established and supported by multiple lines of evidence. While it can be challenging to attribute a specific event solely to climate change, scientific research has shown that climate change increases the likelihood and severity of many extreme events.

The Walker circulation is associated with the El Nino-Southern Oscillation (ENSO) cycle, which is a natural climate phenomenon that alternates between El Nino (warmer phase) and La Nina (cooler phase).

During normal, non-ENSO conditions (neutral phase), the Walker circulation is relatively stable. The trade winds blow from east to west across the equatorial Pacific, pushing warm surface waters towards the western Pacific. The warm water accumulates near Indonesia, leading to the development of a low-pressure system known as the Equatorial Low.

During El Niño conditions, the Walker circulation weakens. The trade winds become weaker, allowing the warm surface waters to flow back towards the central and eastern Pacific. The Equatorial Low weakens, and warm surface temperatures spread eastward, resulting in altered rainfall patterns and atmospheric conditions worldwide.

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How does latitude impact the processes that control density-driven circulation? Evaluate the differences in high latitude regions of the ocean versus equatorial regions of the ocean. Why do deep waters form in high latitudes?

Answers

Latitude has a significant impact on the processes that control density-driven circulation in the ocean.

Latitude affects the ocean's density-driven circulation. In high latitudes, the production of thick deep waters is aided by the cold surface waters and sea ice. This thick water sinks, starting a vertical overturning circulation that aids in thermohaline circulation all over the world. The warm surface waters in equatorial locations, in contrast, do not sink to create deep water masses. They do assist in the redistribution of heat via ocean currents, though. fluctuations in density-driven circulation patterns result from fluctuations in temperature and ice production at high latitudes relative to equatorial areas.

Latitude has a considerable effect on circulation caused by density. The production of dense deep waters that sink and aid in vertical overturning circulation is made easier in high-latitude areas with cold surface waters and sea ice. Warm surface waters in equatorial locations do not lead to considerable deep water creation, although they do contribute to heat transfer via ocean currents.

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Heat-set treatment enables thermally resistant bottles suitable
for hot fills.
True
False

Answers

True, Heat-set treatment enables thermally resistant bottles suitable for hot fills.

Heat-set treatment is a process used to enhance the thermal resistance of bottles, making them suitable for hot-fill applications. During the heat-set treatment, the bottles are subjected to elevated temperatures for a specific period, allowing the polymer molecules to reorient and stabilize, resulting in improved heat resistance.

This process helps prevent the deformation or failure of the bottles when filled with hot liquids. The bottles can withstand higher temperatures without warping or losing their structural integrity by undergoing heat-set treatment. Therefore, it is true that heat-set treatment enables the production of thermally resistant bottles suitable for hot fills.

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photons of red light have a wavelength of approximately meters. the energy of a photon is inversely proportional to its wavelength. a photon with times the energy as a photon of red light will have a wavelength that can be written as meters, where and is an integer. (in other words, in scientific notation.) what is written as a decimal?

Answers

To find the wavelength of a photon with energy 3 times that of a photon of red light, we can use the relationship between energy and wavelength. Therefore, the wavelength, written as a decimal, is approximately 2.067 x 10⁻⁷ meters.

The energy of a photon is given by the equation:

E = hc / λ

Where E is the energy, h is Planck's constant (approximately 6.626 x 10⁻³⁴ J·s), c is the speed of light (approximately 3.0 x 10⁸ m/s), and λ is the wavelength.

We know that the energy of the red light photon is inversely proportional to its wavelength. So, if the energy is multiplied by 3, the wavelength will be divided by 3.

Let's denote the wavelength of the red light photon as λ_red. Therefore, the wavelength of the photon with 3 times the energy can be represented as λ = λ_red / 3.

The given wavelength of red light is approximately 6.2 x 10⁻⁷ meters.

Substituting this value into the equation, we get:

λ = (6.2 x 10⁻⁷) / 3

λ = 2.067 x 10⁻⁷ meters

Therefore, the wavelength, written as a decimal, is approximately 2.067 x 10⁻⁷ meters.

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ballistic pendulum a ballistic pendulum is a block of wood hanging on a string. when a projectiled is shot into the wood, it swings back and up. by measuring the height to which the pendulum rises, an experimenter can determine the kinetic energy and the speed of the projectile which struck the wood. you may use 10 m/s2 for all of the calculations in this problem. a) you shoot a .22 caliber bullet weighing 0.2 kg at a block of wood weighing 3.0 kg. after the bullet becomes embedded in the wood it rises 125 cm vertically. what was the kinetic energy of the bullet/block combination just after the collision? b) what was the velocity of the bullet/block combination just after the collision?

Answers

Answer:a) The kinetic energy of the bullet/block combination just after the collision was 150 J.

In a ballistic pendulum experiment, the kinetic energy of the bullet/block combination just after the collision can be determined by measuring the height to which the pendulum rises. Using the equation for gravitational potential energy, mgh = K, where m is the mass of the pendulum (3.0 kg), g is the acceleration due to gravity (10 m/s²), and h is the height the pendulum rises (1.25 m or 125 cm), we can calculate the kinetic energy. Substituting the given values, we find K = mgh = 3.0 kg × 10 m/s² × 1.25 m = 150 J.

b) The velocity of the bullet/block combination just after the collision was 25 m/s.

To determine the velocity of the bullet/block combination, we apply the principle of conservation of momentum. Before the collision, the momentum of the bullet is equal to the momentum of the bullet/block combination after the collision. By setting up the equation m_bullet × v_bullet = (m_bullet + m_block) × v_combination, where m_bullet is the mass of the bullet (0.2 kg), m_block is the mass of the block (3.0 kg), and v_combination is the velocity of the combination after the collision, we can solve for v_combination. Since the bullet becomes embedded in the block, their final velocity is the same. Therefore, v_combination = v_bullet. Substituting the values, we get 0.2 kg × v_bullet = 3.2 kg × v_bullet. Dividing both sides by v_bullet, we find 0.2 kg = 3.2 kg. This implies that the initial velocity of the bullet, v_bullet, is equal to the velocity of the bullet/block combination just after the collision, v_combination, which is 25 m/s.

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Match the proper equality with the proper conversion factor/s. Factors may be used once, more than once or not at all. Units are made up but prefixes are not.

Answers

Length: 1 kilometer (km) = 1,000 meters (m). Mass: 1 ton (t) = 1,000 kilograms (kg). Time: 1 hour (h) = 60 minutes (min). Temperature: Celsius (°C) to Fahrenheit (°F) conversion: F = (9/5) C + 32

The proper equality and conversion factors are matched based on the given units. Here are some examples: The conversion factor is 1,000, which is used to convert kilometers to meters or vice versa. The conversion factor is 1,000, which is used to convert tons to kilograms or vice versa. The conversion factor is 60, which is used to convert hours to minutes or vice versa. The conversion factor here is (9/5) and 32, which are used to convert Celsius to Fahrenheit or vice versa. These examples demonstrate how conversion factors are applied to convert between different units of measurement. It is essential to use the correct conversion factors to ensure accurate conversions.

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At what rate is the distance between the cars increasing 2 hours later? Let x= the distance covered by the south traveling car. Let y= the distance covered by the west traveling car. Let z= the distance between the cars. In this problem you are given two rates. What are they? Express your answers in the form dx/dt,dy/dt, or dz/dt=a number. Enter your answers in the order of the variables shown; that is, dx/dt first, dy/dt, etc. next. What rate are you trying to find? Write an equation relating x and y. Note: In order for WeBWork to check your answer you will need to write your equation so that it has no denominators. For example, an equation of the form 2/x=6/y should be entered as 6x=2y or y=3x or even y3x=0. Use the chain rule to differentiate this equation and then solve for the unknown rate, leaving your answer in equation form. Substitute the given information into this equation and find the unknown rate. Express your answer in the form dx/dt or dy/dt= number. a) Find the Fourier series of function, f(x) given below: ; for -nx0 f(x)= x; for 0x which is assumed to be periodic with (i) period 21. (ii) the period is not specified. Production Budget Landon Publishers Inc. projected sales of 74,000 diaries for 2016. The estimated January 1, 2016, inventory is 5,200 units, and the desired December 31, 2016, Inventory is 7,000 units. What is the budgeted production (in units) for 2016? .................units Direct Labor Cost Budget Stevenson Publishers Inc. budgeted production of 27,000 diaries in 2016. Each diary requires assembly. Assume that five minutes are required to assemble each diary. If assembly labor costs $13 per hour, determine the direct labor cost budget for 2016. Do not round your intermediate calculations but, if required, round your final answer to the nearest dollar.................. What are considered the driving forces of the derivatives market? Rank them in order of importance and provide a reason for your answer What is NOT a result of listening attentively to others?- you show that you care about them-you make them feel confident-you make them feel self-conscious- you give them a feeling of self-worth Our first task will be to extract the text data that we are interested in. Take a moment and review the file synthetic.txt.You will have noticed there are 17 lines in total. But only the subset of data between the lines *** START OF SYNTHETIC TEST CASE *** and *** END OF SYNTHETIC TEST CASE *** are to be processed.Each of the files provided to you has a section defined like this. Specifically:The string "*** START OF" indicates the beginning of the region of interestThe string "*** END" indicates the end of the region of interest for that fileWrite a function, get_words_from_file(filename), that returns a list of lower case words that are within the region of interest.The professor wants every word in the text file, but, does not want any of the punctuation.They share with you a regular expression: "[a-z]+[-'][a-z]+|[a-z]+[']?|[a-z]+", that finds all words that meet this definition.Here is an example of using this regular expression to process a single line:import reline = "james' words included hypen-words!"words_on_line = re.findall("[a-z]+[-'][a-z]+|[a-z]+[']?|[a-z]+", line)print(words_on_line)You don't need to understand how this regular expression works. You just need to work out how to integrate it into your solution.Feel free to write helper functions as you see fit but remember these will need to be included in your answer to this question and subsequent questions.We have used books that were encoded in UTF-8 and this means you will need to use the optional encoding parameter when opening files for reading. That is your open file call should look like open(filename, encoding='utf-8'). This will be especially helpful if your operating system doesn't set Python's default encoding to UTF-8.For example:TestResultfilename = "abc.txt"words2 = get_words_from_file(filename)print(filename, "loaded ok.")print("{} valid words found.".format(len(words2)))print("Valid word list:")print("\n".join(words2))abc.txt loaded ok.3 valid words found.Valid word list:ababacfilename = "synthetic.txt"words = get_words_from_file(filename)print(filename, "loaded ok.")print("{} valid words found.".format(len(words)))print("Valid word list:")for word in words:print(word)synthetic.txt loaded ok.73 valid words found.Valid word list:toby'scodewasratherinterestingithadthefollowingissuesshortmeaninglessidentifierssuchasnandndeepcomplicatednestingadoc-stringdroughtverylongramblingandunfocusedfunctionsnotenoughspacingbetweenfunctionsinconsistentspacingbeforeandafteroperatorsjustlikethishereboywashegoingtogetalowstylemarklet'shopeheaskshisfriendbobtohelphimbringhiscodeuptoanacceptablelevel