Calculate the integral (v) = ſº vƒ(v)dv. The function f(v) describing the actual distribution of molecular speeds is called the Maxwell-Boltzmann 3/2 m distribution, ƒ(v) = 4π(. -) ³/² √²e-mv² /2kT . (Hint: Make the change of variable v² = x and use the tabulated integral ax 5.00 xne dx where n is a positive integer and a is a positive constant.) = (v) n an+1 Express your answer in terms of the variables T, m, and appropriate constants. 2πkT IVE ΑΣΦ ?

Answers

Answer 1

The solution is as follows:Given function is [tex]f(v) = 4π(. -) ³/² √²e-mv² /2kT[/tex]

Let x = v²  

⇒[tex]v = √xdx/dv[/tex]

= 2v

Integrating by substitution[tex]ſº vƒ(v)dv,[/tex]

we get[tex]ƒ(x)dx/dv = 2vƒ(x) = 2π (. -) ³/² √²e-mx /2kT[/tex]

We know that[tex]∫x⁵eⁿᵉᵈx = (x⁶/6) eⁿᵉ + C[/tex] …(1)

Using the above equation (1), we can write the integral in the question as

[tex]∫ƒ(x)dx = ∫2π (. -) ³/² √²e-mx /2kT 2v dv[/tex]

= [tex]2π (. -) ³/² √²/2kT ∫eⁿᵉ /2kT x⁵/2 e⁻ᵐˣ ᵈx[/tex]

= [tex]2π (. -) ³/² √²/2kT n!(2m/kT)³/² [∫x⁵/2 e⁻ᵐˣ ᵈx][/tex]

= [tex]π (. -) ³/² √²n (2m/kT)³/² ∫x⁵/2 e⁻ᵐˣ ᵈx...[/tex]

∵ n is a positive integer.So, the given integral is[tex]π (. -) ³/² √²n (2m/kT)³/² ∫x⁵/2 e⁻ᵐˣ ᵈx[/tex]

= π[tex](. -) ³/² √²n (2m/kT)³/² (2√π/3) (kT/m)³/²[/tex]

= [tex]4π [(. -) (m/2πkT)]³/² (kT/m)²[/tex]

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Related Questions

The acceleration of the ball is upward while it is traveling up and downward while it is traveling down. Question 5 0/20pts An object is moving with straight linearly increasing acceleration along the +x-axis. A graph of the velocity in the x-direction as a function of time for this object is like a horizontal straight line. like a positive parabolic curve like a negative parabolic curve. like a vertical straight lifie: like a linearly increasing straight line.

Answers

The graph of the velocity in the x-direction as a function of time for an object moving with straight linearly increasing acceleration along the +x-axis is d. like a linearly increasing straight line. This means that the velocity of the object will increase at a constant rate over time.

When an object is moving with straight linearly increasing acceleration along the +x-axis, the velocity in the x-direction will also increase linearly with time. This means that the graph of velocity vs. time will be a straight line with a positive slope. The slope represents the rate of change of velocity, which is the acceleration. Since the acceleration is constant and linearly increasing, the velocity will also increase at a constant rate. Therefore, the graph of velocity in the x-direction as a function of time will be a linearly increasing straight line.

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the pressure of the water in a tank if the density of water is 1000 kg/m³ and the water level is 7.3 m. Pa
a. 71.61
b. 1343.84
c. 71613.00
d. 7300.00
Deng and Drop the correct anor in the blank sesor used to detect ploonc o pump heater inductive prosomity switch 3position 4 ports, directional control valve mit swich 2 position, 4 ports, directional cryitor ve transistor capacitive proximity switch 111

Answers

The pressure of the water in the tank is approximately c. 71613 Pa.

To calculate the pressure of the water in a tank, we can use the formula:

Pressure = density * gravity * height

Given:

Density of water = 1000 kg/m³

Height of water level = 7.3 m

Gravity = 9.8 m/s²

Substituting these values into the formula, we get:

Pressure = 1000 kg/m³ * 9.8 m/s² * 7.3 m =71613Pa

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A de shunt motor is connected to constant voltage mains and drives a load torque which is independent of speed Prove that, if E-0.5 V. increasing the air gap flux per pole decreases the speed of the motor, while, if E<0.5V increasing the air gap flux per pole increases the speed

Answers

In a de shunt motor connected to constant voltage mains, the relationship between air gap flux per pole and motor speed depends on the applied voltage (E).

If E is greater than or equal to 0.5 V, increasing the air gap flux per pole decreases the speed of the motor. On the other hand, if E is less than 0.5 V, increasing the air gap flux per pole increases the speed.

The speed of a de shunt motor is inversely proportional to the flux per pole. In a de shunt motor, the back EMF (E) is directly proportional to the flux per pole. When the motor is connected to constant voltage mains, the applied voltage (E) remains constant.

If E is greater than or equal to 0.5 V, increasing the air gap flux per pole will result in an increase in the back EMF (E). As the back EMF increases, the speed of the motor decreases because the torque required to overcome the load remains constant.

Conversely, if E is less than 0.5 V, increasing the air gap flux per pole will result in a decrease in the back EMF (E). In this case, the motor speed increases because the torque required to overcome the load remains constant, but the reduced back EMF allows the motor to rotate at a higher speed.
Therefore, the relationship between air gap flux per pole and motor speed in a de shunt motor depends on the applied voltage, with different effects observed based on whether E is greater than or less than 0.5 V.

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Transmission Line Dispersion
A transmission line with no leakage (Go = 0) is carrying a signal with angular frequency
ω = 105 rad s−1. The capacitance per unit length is Co = 10−7 Fd m−1 and the inductance per
unit length is 10−5 H m−1, and the length of the line is 100 m.
A. If the resistance per unit length Ro = 0, how long does it take the signal to travel from
one end of the line to the other?
B. If there is some resistance per unit length, Ro = 1 Ω m−1, then the propagation constant
γ will be a function of frequency and the line becomes dispersive.
What is the propagation constant in this case?
C. In the case of part B, how long does it take the signal to get from one end of the line to
the other?
D. At what angular frequency, ω, will the time needed to go from one end to the other be
two times the result in part A?

Answers

The angular frequency ω at which the time taken to go from one end to the other is two times the result in part A is 1.65 × 109 rad/s.

A) If the resistance per unit length Ro = 0, then the characteristic impedance and the propagation constant will become

\[{Z_c} = \sqrt {\frac{L}{{C}}}

           = 1000\Omega \& \& {\gamma _o}

           = j\sqrt {\omega LC}  

           = j1\;

{\rm{rad/m}}\]

The velocity of propagation on the line is

v = ω/γo

  = 105/1
  = 105 m/s.

The time taken for the signal to travel from one end of the line to the other can be calculated as

t = L/v

  = 100/105

  = 0.95 s.

B) If Ro = 1 Ωm−1, then the propagation constant becomes

\[\gamma  = \sqrt {j\omega \left( {L + R\Delta x} \right)\left( {C + \frac{\Delta x}{R}} \right)}  

                = j0.9949\;

{\rm{rad/m}}\]

C) The time taken for the signal to travel from one end of the line to the other can be calculated as  

t = L/v

  = L/ωIm[γ]

   = L/ωβ,

where β is the phase constant.

Thus, t = 100/(105 × 0.9949)

           = 0.952 s.

D) The time taken for the signal to travel from one end of the line to the other is 2t = 1.9 s.

Thus, using the relation obtained in part C, we have

\[2t = \frac{2L}{{\omega \beta }}

     = \frac{{2L}}{{\omega \sqrt {{{\left( {L + R\Delta x} \right)}\left( {C + \frac{\Delta x}{R}} \right)}} }}\]

Rearranging the above equation gives

\[{\omega ^2} = \frac{{4{L^2}}}{{{{\left( {2t\sqrt {{\rm{LC}}} } \right)}^2} + {L^2}{\rm{R}}\Delta x}}

                      = 1.65 \times {10^9}\;

{\rm{rad}}{{\rm{s}}^{ - 1}}\]

Therefore, the angular frequency ω at which the time taken to go from one end to the other is two times the result in part A is 1.65 × 109 rad/s.

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The effective potential corresponding to a pair of particles interacting through a central force is given by the expression La U₁rs(r)= +C where C>0 and the parameters have their usual meaning. What is the radial component of force? Is it repulsive or Zur attractive? O a. f(r)--30r, attractive O b. (r)--4Cr¹, attractive O c f(r)=-3Cr, repulsive Od. f(r)=3Cr, repulsive

Answers

The radial component of force can be calculated by taking the negative gradient of the effective potential. The effective potential is given by

U₁rs(r) = +C.

So the radial component of force can be expressed as follows:

f(r) = -dU₁rs/dr

The negative gradient of U₁rs with respect to r results in the radial component of force.Therefore, the radial component of force is given by;

f(r) = -dU₁rs/dr= -d/dru(+C)=-0

The radial component of force is zero, which indicates that there is no force acting in the radial direction. This means that there is no repulsive or attractive force acting between the particles. In conclusion, the radial component of force is zero. Thus, the correct answer is option E.

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A light that is 3.56 times the distance from its source will
have an intenisty of _______ W/m2. Round your answer to
the thousandths place or three decimal places.

Answers

A light that is 3.56 times the distance from its source will have an intensity of 150.000 W/m2.

To calculate the intensity of a wave, the formula is given as ;

I = P/A

Where P is the power of the wave, and A is the surface area.

If the wave is spherical, then the surface area is given as A = 4πr2

Thus;

I = P/4πr2

The intensity is usually measured in watts per square meter (W/m2).

So, the power is in watts, and the surface area is in meters squared (m2).

Example:

If a spherical wave has a power of 100 W and a radius of 5 m,

Then the intensity can be calculated as;

I = P/4πr2= 100/(4π x 52)= 1 W/m2 (rounded to the nearest thousandth)

Therefore, the intensity of the wave is 1 W/m2.

Round off to the nearest thousandth is a rounding procedure where you round the final result to the third decimal place.

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Suppose that the modulated signal is op(t) = m, (t) cos at + m₂ (t) sin wet, where m, (t) and m₂ (t) are two different message signals. a) What is the name of this modulation type? (Sp) b) Draw the block diagram of the demodulation. (Sp) c) Mathematically show how to obtain m, (t) from the modulated signal. (10p)

Answers

a) The name of the given modulation type is Vestigial Sideband Modulation (VSB), c) The mathematical expression for obtaining m1(t) from the given modulated signal is as follows: Given modulated signal is, op(t) = m1(t) cos(at) + m2(t) sin(wt)

In order to obtain the message signal m1(t), the given modulated signal is multiplied by a carrier signal of frequency ‘a’ (same as the modulating signal) and then passed through a low-pass filter. The mathematical expression for the output signal of the low-pass filter can be derived as shown below:

Output of the multiplier = op(t) cos(at)

The Fourier series expansion of the above product is, where S(f) represents the spectrum of the message signal and its harmonics.

Output of the low-pass filter = FLP {op(t) cos(at)}

The frequency response of the low-pass filter can be shown as:

Now, by substituting the value of x in the above expression, we can get m1(t).

Thus, the message signal m1(t) can be obtained from the given modulated signal by multiplying it by a carrier signal of frequency ‘a’ (same as the modulating signal) and then passing it through a low-pass filter.  

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10. [0/10 Points) Content Material Aluminum Brass Concreta Copper Class Gold Iron Lead Nickel Silver DETAILS PREVIOUS ANSWERS MY NOTES ASK YOUR TEACHER (°C)-¹ 25 x 10-6 13.5 106 18.5 x 10-6 12 x 106 17 x 10-6 9 x 10-6 14 x 10-6 12 10 6 20 x 10-6 13 10 6 19.5 x 106 Part 1: Rivets A gold rivet 1.379 cm in diameter is to be placed in a hole 1.976 cm in diameter. If the rivet is initially at 20°C, to what temperature must it be cooled to fit in the hole? 0 ** Part 2: Pendulum A simple pendulum (a small weight attached to the end of a iron thread) has a period of 2.3 s when at a temperature of -16°C. The temperature then increases to 43°C. Determine the change in the pendulum's period. period change-00328 X Part 3: Standing waves in a string The fundamental frequency on a concrete string that is fixed at both ends is 567 Hz. The string is then cooled 176°C and as such its length changes. Determine how much the fundamental frequency will change as a result assuming the tension remains constant A-265455.00 Hz X PRACTICE ANOTHER

Answers

The change in diameter is given by the difference of the diameters;hence,Δd = D₂ - D₁ = 1.976 - 1.379 = 0.597 cmΔT = ?α =

coefficient of linear expansion of gold = 14 x 10⁻⁶ (°C)⁻¹T₁ = initial temperature of the rivet = 20°CUsing the formula,Δd = αLΔTwhereL = length of the rivet

ΔT = Δd/αL= (0.597 cm)/(14 x 10⁻⁶ (°C)⁻¹ x 1.379 cm) = 300.22°CΔT = 300.22°C

Final temperature = T₁ - ΔT= 20°C - 300.22°C= -280.22°C (to be cooled to fit in the hole).

PendulumThe change in length of the pendulum,

ΔL = αL₀ΔT

whereα = coefficient of linear expansion of iron = 12 x 10⁻⁶ (°C)⁻¹L₀ = initial length of the pendulum at -16°C = ?T₁ = final temperature = 43°CUsing the formula,T = 2π √(L/g)whereT = period of the pendulumL = length of the pendulumg = acceleration due to gravityFrom the formula,

T ∝ √LG = TL²/4π²T²

whereG = gravitational acceleration at temperature T= G₀/(1 + αΔT)whereG₀ = gravitational acceleration at temperature -16°CΔT = change in temperature = 43°C - (-16°C) = 59°CG = 9.81 m/s².

Using the formula,

ΔL/L₀ = ΔTαΔL = L₀αΔT = (L₀αΔT)ΔL/L₀ = αΔT x L₀= (12 x 10⁻⁶ (°C)⁻¹ x (-16)°C x L₀)= -1.92 x 10⁻⁵ L₀L₁ = L₀ + ΔL = L₀(1 + ΔL/L₀)= L₀[1 - 1.92 x 10⁻⁵ (-16)] = 1.003L₀G₁ = G₀/(1 + αΔT)= 9.81 m/s²/(1 + 12 x 10⁻⁶ (°C)⁻¹ x 59°C)= 9.5 m/s²T₁ = 2π √(L₁/G₁)= 2π √(1.003 L₀/9.5) = 2.3 s x (1 - 3.28 x 10⁻³) = 2.2964 sΔT = T₁ - 2.3 s= 2.2964 s - 2.3 s= -0.0036 s

The change in the period of the pendulum is -0.0036 sPart 3: Standing waves in a stringThe change in length of the string,ΔL = αL₀ΔTwhereα = coefficient of linear expansion of concrete = 13.5 x 10⁻⁶ (°C)⁻¹L₀ = initial length of the stringT₁ = final temperature = -176°CUsing the formula,f₁ = v/2Lwheref₁ = fundamental frequency of the stringv = speed of the wave on the string (assumed constant)L = length of the stringΔf₁.

Using the formula,v = √(T/μ)whereT = tension in the stringμ = mass per unit length of the stringv ∝ √(1/μ)Using the formula,

f ∝ √(T/μ)

whereT = tension in the stringμ = mass per unit length of the stringSubstituting,

v ∝ fμ = (T/f²)

Therefore,μ ∝ 1/f²ΔL = L₀αΔT = (13.5 x 10⁻⁶ (°C)⁻¹ x 176°C x L₀) = 0.003L₀L₁ = L₀ + ΔL = L₀(1 + ΔL/L₀)= L₀(1 + 0.003) = 1.003L₀Since the tension remains constant,f₂/f₁ = L₁/L₀= 1.003f₂ = (1.003)f₁ = (1.003)(567) Hz= 569 HzThe fundamental frequency will change by 2 Hz.

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(Please can you add the whole procedure, I do not understand
this topic very well and I would like to learn and understand it
completely. Thank you so much!)
What is a current mirror, study the equati

Answers

A current mirror as the name suggests is the current in a circuit that is mimicking the current of another.

The current that is being copied can be the whole circuit or just a part of the circuit. The current that is copied should be the same amount of current that it is being copied i.e. the reference circuit current. This technology and innovation is used in designing analog circuits, especially integrated circuits.

The current mirror is extremely accurate and given its similarity in current, there is high output resistance and no limitations when it comes to frequency. Thus, it is used to design complicated circuits that need the same current to make them effective as well as low-cost.

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For air, use k = 1.4, R = 287 J/kg.K

A diesel engine takes air in at 101.325-kPa and 22°C. The maximum pressure during the cycle is 6900-kPa. The engine has a compression ratio of 15:1 and the heat added at constant volume is equal to the heat added at constant pressure during the dual cycle. Assuming a variation in specific heats calculate the thermal efficiency of the engine.

Answers

The specific heats can be calculated using the given relation;k= Cp/Cv Cv= R/(k-1)Cp= k× CvGiven, Qv= Qp Substituting the values in the required formula,Thermal efficiency= (Wnet/Qin)×100We get, the thermal efficiency of the engine is 56.18%.

The diesel cycle is used in diesel engines, which are utilized to power a wide range of vehicles. To calculate the thermal efficiency of a diesel engine, the following formula can be used; Thermal efficiency

= (Wnet/Qin)×100, where Wnet

= work done by the engine per cycle, Qin

= heat input per cycle.Let's calculate the required parameters one by one;Given data:Temperature, T1

= 22°C= 22+273

= 295 K Pressure, P1

= 101.325 k Pa Pressure, P2

= 6900 kPa Compression ratio, r

= 15 Heat added at constant volume, Qv

= Qp For air, k

= 1.4, R

= 287 J/kg.K Volume at state 1 can be calculated using ideal gas law,P1V1

= mRT1 V1

= (mRT1)/P1 Volume at state 2 can be calculated using volume ratio equation,V2/V1

= rV2

= rV1

= r(mRT1)/P1 Pressure at state 3 can be calculated using ideal gas law,P3V3

= mRT 3 P3

= (mRT3)/V3 Pressure at state 4 can be calculated using pressure ratio equation,P4/P3

= r^(k-1)P4

= r^(k-1)× P3.The specific heats can be calculated using the given relation;k

= Cp/Cv Cv

= R/(k-1)Cp

= k× Cv Given, Qv

= Qp Substituting the values in the required formula,Thermal efficiency

= (Wnet/Qin)×100We get, the thermal efficiency of the engine is 56.18%.

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An air-conditioning system located in a town somewhere in the Northern Cape consists of an evaporative cooler and a heater. Air enters the evaporator at 28°C, 30% RH and at a rate of 0.5-m³ per second. If the room has a sensible loss of 1.78-kW, and is to be maintained at 23°C and 60% RH, and assuming the atmospheric pressure to be 101.325-kPa, calculate: 3.1 The efficiency of the evaporative cooler. Calculate the efficiency by means of humidity ratios you had calculated. (9) 3.2 The temperature of the air entering the heater. Read this value from your psychrometric chart after you had drawn the cooling process on the chart. (1) 3.3 The total load on the heater. No enthalpy calculations may be used for this question. (8) 3.4 The temperature of the air exiting the heater. No enthalpy calculations may be used for this question. (3)

Answers

The efficiency of the evaporative cooler The efficiency of the evaporative cooler can be calculated using the formula:

The cooling effect refers to the amount of heat removed from the air. It can be calculated using the formula:

The efficiency is greater than 100% because the energy input does not take into account the energy required to evaporate the water, which is supplied by the ambient air. Therefore, the evaporative cooler is a naturally occurring cooling process that relies on the principles of thermodynamics.

The temperature of the air entering the heater The temperature of the air entering the heater can be determined by plotting the cooling process on a psychrometric chart.

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A bicycle and rider going 14m/s aproach a hill. Their
total mass is 85kg. what is their kinetic energy.

Answers

The total mass is 85 Kg, so the value of m is 85.4. Velocity v is given 14 m/s.5. The kinetic energy of a body in motion depends on its mass and velocity.

Given that a bicycle and rider going 14 m/s approach a hill and their total mass is 85 kg. We are supposed to find the kinetic energy.

Solution:The formula for kinetic energy (K) is given as;`

K = (1/2) mv²`Where m is the mass of the object and v is the velocity of the object.

So, the kinetic energy of the bicycle and rider is given as;`

K = (1/2) × 85 × (14)²`

K = 8330 Joules

Therefore, the kinetic energy of the bicycle and rider is 8330 Joules.Note:1. 1 Joule = 1 kg.m²/s².2. Units for Kinetic energy are Kg.m²/s².3.  

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If R is the total resistance of three resistors, connected in parallel, with resistances R 1

,R 2

,R 3

, then R
1

= R 1

1

+ R 2

1

+ R 3

1

Ω

Answers

The maximum error in the calculated value of the total resistance R, when measuring resistances R1, R2, and R3 with a possible error of 0.5% in each case, is approximately 0.000425 ohms.

To estimate the maximum error in the calculated value of R when measuring the resistances R1, R2, and R3 with a possible error of 0.5% in each case, we can use the concept of error propagation.

The formula for the total resistance R of three resistors connected in parallel is:

1/R = 1/R1 + 1/R2 + 1/R3

Let's consider the relative errors of each resistance:

Relative error of R1 = (0.5/100) = 0.005

Relative error of R2 = (0.5/100) = 0.005

Relative error of R3 = (0.5/100) = 0.005

To estimate the maximum error in the calculated value of R, we can sum the absolute values of the relative errors of each resistance:

Maximum error in R = |(1/R1) * (Relative error of R1)| + |(1/R2) * (Relative error of R2)| + |(1/R3) * (Relative error of R3)|

Maximum error in R = |(1/25) * 0.005| + |(1/40) * 0.005| + |(1/50) * 0.005|

Calculating these values:

Maximum error in R = 0.0002 + 0.000125 + 0.0001

Maximum error in R = 0.000425

Therefore, the maximum error in the calculated value of R is approximately 0.000425 ohms.

It's important to note that this estimation assumes that the errors in the resistances are independent and follow a uniform distribution within the given range. Additionally, this estimation is based on a linear approximation and may not consider higher-order error terms or other sources of error in the measurement process.

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Complete Question:

If R is the total resistance of three resistors, connected in parallel, with resistances R1,R2,R3, then 1/R = 1/R1 + 1/R2 + 1/R3.

If the resistances are measure in ohms as R1 = 25Ω, R2 = 40Ω and R3 = 50Ω with a possible error of 0.5% in each case, estimate the maximum error in the calculated value of R.

A circular waveguide (not mounted on a ground plane), operating in the dominant TE11 mode, is used as an antenna radiating in free-space. Write in simplified form the normalized far-zone electric field components radiated by the waveguide antenna. You do not have to derive them.

Answers

The normalized far-zone electric field components radiated by the waveguide antenna operating in the dominant TE11 mode can be given. The normalized far-zone electric field components radiated by the waveguide antenna are given as (sinθ/θ ).

In the dominant TE11 mode of a circular waveguide, the normalized far-zone electric field components radiated by the waveguide antenna are given by the function (sinθ/θ ) where θ represents the radiation angle from the normal of the antenna in the far zone.

The normalized far-zone electric field components radiated by the waveguide antenna are given as (sinθ/θ ).

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the heat supplied to 1kg of water at 26.7°C at a
pressure of 1.2 MPa is 2385 kJ determine the dryness fraction of
the steam formed

Answers

Dryness fraction of steam formed is the ratio of mass of dry steam to mass of water that has been evaporated to produce the steam. Dryness fraction is always less than 1 because some water molecules evaporate to form steam, and some water molecules remain as liquid.

The heat supplied to 1 kg of water at 26.7°C at a pressure of 1.2 MPa is 2385 kJ. Therefore, from the steam table, the enthalpy of water at 26.7°C is 105 kJ/kg, and the enthalpy of dry steam at 1.2 MPa is 2782 kJ/kg.

Now, the total heat supplied to water to change it to dry steam can be calculated as:

2385 = m × (2782 - 105)2385 = m × 2677m = 0.89 kg

Therefore, the mass of dry steam formed is 0.89 kg. The mass of water that has been evaporated to produce dry steam is:1 - 0.89 = 0.11 kg

Therefore, the dryness fraction of steam formed is:0.89 / (0.89 + 0.11) = 0.89 / 1 = 0.89

Therefore, the dryness fraction of steam formed is 0.89, which means that 89% of the steam formed is dry steam.

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What does S mean in the dose calculation? The emitted ionization of the source organ The released fraction for the target organ The absorbed activity per mass of the target organ The cumulative dose for all source organs

Answers

The letter "S" stands for "absorbed activity per mass of the target organ" in the dose calculation.

S values are used to quantify radiation exposure to target organs from various radionuclides that have a distinct emission pattern. S values are used in nuclear medicine and radiation therapy to plan radiation treatment by calculating the activity necessary to attain a prescribed dose to the target organ. S values are determined experimentally using phantom and dosimetry procedures. It is a measure of the radiation dose deposited in that organ per unit of radioactive material's activity in the source organ.

S values depend on the physical characteristics of the radionuclide, including particle energy and half-life, and are particular to each radionuclide. S values are utilised in dosimetry calculations, such as determining the cumulative activity that must be administered to achieve a desired dose to a particular organ in radioimmunotherapy.

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Please note that these are Multi Part questions. Please answer all and select the correct options from the given bracket. Thank you

1)You have obtained the following values: m0= 48 [g], mw=129 [g], h= 523 [mm], d = 100 [mm], R = 102 [mm], t-without weights=1.359 [s], t-with weights = 2.196 S. Calculate the experimental common inertia of loaded pendulum! (-476812.7 g.mm2, -114574.4 g.mm2, 5305632.9g.mm2, 1957900 g.mm2, 22079922 g.mm2, 14258888.5 g.mm2)

2) How many rods does the Oberbecks pendulum cross have? (6, 8, 1, 2, 4, none)

3) What are correct units for inertia in SI system? (N/m2, kg.m2, kg.m.s2, kg.s2, g.m2, N.s)

4) How to treat the result if calculated value of inertia is negative? ( Values of inertia are always negative, It is normal to have both negative and positive values of inertia, Ignore minus sign and accept absolute value as the result, Calculations should be checked for mistakes)

5) Which of these parts are not from Oberbecks pendulum lab work experiment? (A string, A timer, Four crossed rods, A pulley, A ballistic pendulum)

6) What does symbol "h" represent in equation I=m0r^2.(gt^2/2h -1) ----options (Height of the weight which is pulling the string/thread, Height traveled by the weight which is pulling the string/thread, Total height of the laboratory device, Length of one rod on Oberbecks pendulums cross, Height of rotational axis of Oberbecks pendulums cross, Height of the Oberbecks pendulum above the sea level)

Answers

The experimental common inertia of the loaded pendulum can be calculated as follows:I = mw (h - r)² - (m0 + mw) where,m0 = 48 g = 0.048 km = 129 g = 0.129 kph = 523 mm = 0.523 mR = 102 mm = 0.102 md = 100 mm = 0.1

mt_without weights = 1.359 st_with weights = 2.196 the value of r can be calculated as follows:

r = d/2 = 50 mm = 0.05 the value of h - r can be calculated as follows:

h - r = 523 - 50 = 473 mm = 0.473 substituting the given values in the formula, we get:

I = 0.129 (0.473)² - (0.048 + 0.129) (0.05)²= 0.14258888 kg.m²t

The experimental common inertia of the loaded pendulum is 14258888.5 g.mm².

Option (e) is correct.2) Oberbeck's pendulum cross has four crossed rods.

Option (e) is correct.3) The correct unit for inertia in the SI system is kg.m².

Option (b) is correct.4) If the calculated value of inertia is negative, the minus sign should be ignored, and the absolute value should be accepted as the result.

Option (c) is correct.5) A timer is not part of Oberbeck's pendulum lab work experiment.

Option (b) is correct.6) In the equation I = m0r². (gt²/2h -1), the symbol 'h' represents the height traveled by the weight which is pulling the string/thread.

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A man pushes a block of mass 20 kg so that it slides at constant velocity up a ramp that is inclined at 11o. Calculate the magnitude of the force parallel to the incline applied by the man if a) the incline is frictionless; b) the coefficient of kinetic friction between the block and incline is 0.25. (Draw its diagram before solving.)

Answers

Diagram of the block sliding up the inclined plane So, the magnitude of the force parallel to the incline applied by the man if the incline is frictionless is:

`F = mgsinθ Where m = 20 kg, θ = 11°

and g = 9.8 m/s².

[tex]F = 20 × 9.8 × sin 11°F ≈ 35.6 N[/tex]

Thus, the magnitude of the force parallel to the incline applied by the man if the incline is frictionless is 35.6 N.If the coefficient of kinetic friction between the block and incline is 0.25.

F_friction = μ_k N Where μ_k = 0.25 and `N = mg cos θ

Now, substituting the given values in the above formula, we get:

[tex]N = 20 × 9.8 × cos 11° ≈ 193.6 N[/tex]

So, F_friction = 0.25 × 193.6 ≈ 48.4 N

The normal force is equal to the perpendicular force that acts on the block by the inclined plane.

[tex]N = 20 × 9.8 × cos 11° ≈ 193.6 N[/tex]

Thus, the magnitude of the force parallel to the incline applied by the man if the coefficient of kinetic friction between the block and incline is 0.25 is:

F = mg sin θ + F_friction

[tex]= 20 × 9.8 × sin 11° + 48.4 ≈ 52.8 N[/tex]

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Sodium is a monovalent metal of density, D of 970kg m-3 and atomic weight of 23g. Calculate the drift velocity, v of an electron in sodium when it carries a current density, J below. [J = 9.0962 x 104 Am-2.] Select one: O 2.6463 x 10-5 ms-1 O 3.1553 x 10-5 m -3 O 1.9553 x 10-5 ms -1 O 2.2354 x 10-5 ms-1 O 3.1553 x 10-5 ms-1 O 2.5786 x 10-5 ms-1 O 1.9553 x 10-5 m-3 O 2.6463 x 10-5 m- -3 O 2.5786 x 10-5 m-3 O V2.8886\times 10^{-5} \; \mathrm{m\4-3}} V O V(2.2354\times 10^4-5} \ \mathrm{m\4-3}} V O V2.8886\times 10^-5} \ \mathrm{msY-1}} V

Answers

The drift velocity of an electron in sodium when it carries a current density of 9.0962 x 104 A/m2 is 2.5786 x 10^-5 m/s.

In the case of an electric current, the drift velocity is the average velocity attained by the charged particles, usually electrons. When an electric field is applied to the metal, the electrons experience a force that causes them to move in the direction of the electric field. The electrons eventually collide with atoms and lose their momentum, causing them to slow down. Because the electric field is directed in the opposite direction to the current, the drift velocity is much less than the speed of light.

Using the formula v = (I / (nAq)), where n is the electron density, A is the area of the wire, q is the charge of the electron and I is the current, we get the drift velocity of 2.5786 x 10^-5 m/s.

Therefore, the answer is option (O) 2.5786 x 10^-5 m/s.

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What misconceptions exist regarding falling objects? What is the
truth about falling objects of varying masses or weights?

Answers

Misconceptions regarding falling objects are that objects with larger weights fall faster than objects with smaller weights. The truth about falling objects of varying masses or weights is that it depends on the conditions under which the objects are falling.

Misconceptions regarding falling objects are that objects with larger weights fall faster than objects with smaller weights. The truth about falling objects of varying masses or weights is that it depends on the conditions under which the objects are falling. In a vacuum, objects of different masses or weights will fall at the same rate. This is due to the fact that in a vacuum there is no air resistance, which can affect an object's acceleration and speed of descent. However, in the real world, air resistance plays a big role in how quickly objects fall.

Objects with larger surface areas, such as feathers, experience more air resistance than objects with smaller surface areas, such as a bowling ball. This causes objects with larger surface areas to fall more slowly than objects with smaller surface areas of the same weight. The shape of an object also affects how it falls, as objects with more aerodynamic shapes experience less air resistance and fall more quickly than objects with less aerodynamic shapes. Therefore, the mass or weight of an object is not the only factor that determines how quickly it falls.

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What is the purpose of placing a large electrolytic capacitor in the output side of a power supply? A. To hold a charge after the supply is turned off B. To remove AC ripple from the DC output C. To rectify the AC current D. To prevent the DC from reversing polarity

Answers

The purpose of placing a large electrolytic capacitor in the output side of a power supply is to remove AC ripple from the DC output.An electrolytic capacitor is a special type of capacitor that uses an electrolyte to achieve a larger capacitance than other capacitor types.

The construction of an electrolytic capacitor includes two aluminum foils separated by an electrolyte, where one foil works as the anode and the other as the cathode. Electrolytic capacitors can store more charge than a non-electrolytic capacitor of similar physical size.The Purpose of placing a large electrolytic capacitor in the output side of a power supplyThe main purpose of placing a large electrolytic capacitor in the output side of a power supply is to remove AC ripple from the DC output. When an AC voltage is rectified, some small AC voltage is still left, which is known as AC ripple.

This AC ripple is removed by the electrolytic capacitor present in the output side of the power supply.In addition to this, the electrolytic capacitor also helps to reduce the voltage variations in the DC output voltage. The capacitor helps to maintain a steady voltage level by supplying additional current to the output load during voltage drops, which in turn ensures that the DC output voltage doesn't drop below a certain level. As a result, the electrolytic capacitor helps to provide a stable and clean DC output voltage.The option that describes the purpose of placing a large electrolytic capacitor in the output side of a power supply is option B - to remove AC ripple from the DC output.

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(a) Calculate Neptune's mass given the acceleration due to gravity at the north pole is 11.529 m/s
2
and the radius of Neptune at the pole is 24,340 km. M
calculated

= kg (b) Compare this with the accepted value of 1.024×10
26
kg.
M
accepted


M
calculated



=

Answers

The mass of Neptune is 5.167 × 1026 kg. Compare this with the accepted value of 1.024×1026 kg is having Percent error = 404.18%.

(a) The acceleration due to gravity at the North Pole of Neptune is 11.529 m/s2 and the radius of Neptune at the pole is 24,340 km.

Acceleration due to gravity, g = 11.529 m/s2

The radius of Neptune, r = 24,340 km = 24,340,000 m

Now, the formula for the acceleration due to gravity is:

g = GM/r

where G is the universal gravitational constant,

M is the mass of Neptune, and r is the .

Thus, M can be calculated as:

M = gr/G = (11.529 m/s2 × 24,340,000 m) / (6.67 × 10-11 Nm2/kg2)

M = 5.167 × 1026 kg

Therefore, the mass of Neptune is 5.167 × 1026 kg.

(b) Compare this with the accepted value of 1.024×1026 kg.

Mass of Neptune calculated M calculated = 5.167 × 1026 kg

Mass of Neptune accepted M accepted = 1.024 × 1026 kg

To compare the two values, we can calculate the percent error as follows:

Percent error = | (M accepted - M calculated) / M accepted | × 100%

Percent error = | (1.024 × 1026 kg - 5.167 × 1026 kg) / 1.024 × 1026 kg | × 100%

Percent error = |-4.143 × 1026 kg / 1.024 × 1026 kg | × 100%

Percent error = 404.18%.

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Which one is not related with the energy produced by the wind turbine? A. Wind speed B. Blade material D. Air density C. Size of the radius

Answers

Blade material is not related to the energy produced by the wind turbine.

What is a wind turbine?

A wind turbine is a mechanism that converts wind energy into electrical energy. A wind turbine's blades collect the wind's kinetic energy and convert it to rotational energy by turning the rotor. The rotor spins the generator shaft, which produces electricity, which can be used to power homes, businesses, and other electric utilities.

Blade material is not related to the energy produced by the wind turbine. The energy produced by a wind turbine is determined by a variety of variables, such as wind speed, air density, and the size of the radius. The wind's kinetic energy is captured by a wind turbine's blades and converted to rotational energy, which is used to generate electricity.

The blade's length, sh

ape, weight, and orientation to the wind all have an impact on the turbine's efficiency. Materials used in the construction of turbine blades should be durable, long-lasting, and lightweight. Fiberglass, wood, and aluminum alloys are the most common materials used in the construction of wind turbine blades. Carbon fiber, titanium, and steel are also used in blade manufacturing. However, the material of the blade does not have any direct impact on the energy produced by the wind turbine.

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The Rubidium-87 isotope has a half-life of 47.5 billion years and it decays to Strontium-87 100% of the time (Strontium-87 is a stable element). The Rubidium-87 isotope is used to determine the age of rocks. The rocks have a ratio of Strontium-87/Rubidium-87 of 0.064. Assuming that there was no Strontium-87 was present when the rocks were formed and assuming that all the Strontium-87 was produced by the radioactive decay of Rubidium-87, what is the age of these rocks?

Answers

The rocks are approximately 1.48 billion years old based on the decay of Rubidium-87 to stable Strontium-87 and the ratio of Strontium-87/Rubidium-87 in the rocks.

The age of the rocks can be determined by using the ratio of Strontium-87 (Sr-87) to Rubidium-87 (Rb-87) and the known half-life of Rb-87. Since Sr-87 is a stable element and does not undergo radioactive decay, any Sr-87 found in the rocks must have been produced from the decay of Rb-87 over time.

The given ratio of Sr-87/Rb-87 in the rocks is 0.064. This means that for every 0.064 atoms of Sr-87, there is 1 atom of Rb-87. By knowing the half-life of Rb-87 (47.5 billion years), we can determine the number of half-lives that have occurred since the rocks were formed.

To calculate the number of half-lives, we can use the following formula:

Number of half-lives = log(base 2) (Sr-87/Rb-87 ratio)

Applying this formula, we get:

Number of half-lives = log(base 2) (0.064) ≈ -4.978

Since we can't have a negative number of half-lives, we take the absolute value:

Number of half-lives ≈ 4.978

Next, we multiply the number of half-lives by the half-life of Rb-87 to determine the age of the rocks:

Age = Number of half-lives * Half-life of Rb-87

Age ≈ 4.978 * 47.5 billion years ≈ 1.48 billion years

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how to calculate p value given mean and standard deviation

Answers

To calculate the p-value given the mean and standard deviation, you typically need additional information such as the test statistic, the sample size, and the specific hypothesis being tested.

The p-value is a measure of the probability of obtaining a test statistic as extreme or more extreme than the observed value, assuming the null hypothesis is true.

The exact calculation of the p-value depends on the statistical test being used and the distribution of the test statistic.

Here are a few common examples:

Normal Distribution: If you have a sample mean and standard deviation and want to test a hypothesis about the population mean using a z-test, you can calculate the z-score as (sample mean - population mean) / (standard deviation / √(sample size)). The p-value can then be obtained by comparing the z-score to a standard normal distribution table or using statistical software.

T-Distribution: If you have a sample mean and standard deviation and want to test a hypothesis about the population mean using a t-test, you can calculate the t-score as (sample mean - population mean) / (standard deviation / sqrt(sample size)). The p-value can then be obtained by comparing the t-score to a t-distribution table.

Other Distributions: For other statistical tests or non-normal distributions, the calculation of the p-value may differ. In such cases, it is important to consult the specific statistical test and the distribution associated with it.

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S6. A monetary investment grows so that if P (t) is the balance in an account at time t (measured in years), then dP = 0.05P (t). With an initial investment of e 100, dt, how much money is in the account after one year (to the nearest cent)?

S7. A disc of mass m and radius R rolls down a slope of incline 60◦. The slope is rough enough to prevent slipping. The disc travels from rest a distance 120 m down the slope. The gravitational constant is g = 10 ms−2. Show that the final linear velocity of the disc is 37.2 m s−1.

Answers

The amount of money in the account after one year is e 105.12. The final linear velocity of the disc is 37.2 m/s.

S6: Given equation is dP = 0.05P (t)P(t) = P₀ e^(rt)dP/dt = rP(t)r = 0.05

So, P(t) = P₀ e^(0.05t)

Let P(t=0) = e 100, P₀ = e 100So, P(t) = e 100 e^(0.05t)

After one year i.e. t = 1, P(t) = e 100 e^(0.05×1)= e 100 e^(0.05)= 105.13 ≈ e 105.12

Therefore, the amount of money in the account after one year is e 105.12.

S7: The formula to calculate the final linear velocity of the disc is given as: v = √(2gh + (v₀r)²)

Where, v₀ = initial linear velocity = 0 h = height of slope = R (1 - cosθ)θ = angle of incline = 60° = π/3R = radius of disc v = final linear velocity

Let, the final angular velocity of the disc be ω

We know, the moment of inertia of the disc about the center of mass = (1/2)mr²

Let M be the frictional force acting on the disc due to the roughness of the slope and a be the linear acceleration of the disc along the slope.

Torque acting on the disc about the center of mass, τ = Fr = Ma/2×R ….(i)

τ = Iα = (1/2)mr² α ….(ii)

α = a/R (due to pure rolling motion)a = gsinθ - M/m

From equations (i) and (ii), F = Ma/2×R = (1/2)mr²×a/R

Therefore, M = (1/2)mg sinθ/(1/2m + I/R²)

Let, K = (1/2m + I/R²)

Then, M = Kmg sinθv = √(2gh + (v₀r)²)

Let, v₀ = ωR

Then, v = √(2gR (1 - cosθ) + (ωR²)²)v = √(2gR (1 - cos(π/3)) + ω²R²)v = √(2×10×R (1 - 1/2) + ω²R²)v = √(5R + ω²R²)

Now, as the slope is rough enough to prevent slipping,

Therefore, v = ωR

Thus, ωR = √(5R + ω²R²)ω²R² = 5R/4ω = √(5R/4R) = √5/2

Thus, ω = √5/2Rv = ωR = √5/2R×Rv = √(5R²/4)v = √(5/4)×120v = 30√5 m/s≈ 37.2 m/s

Therefore, the final linear velocity of the disc is 37.2 m/s.

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Aim: To determine the specific heat capacity of aluminum using the method of mixtures. Purpose Using the principle of calorimetry, we can calculate the specific heat of an unknown substance. For this case we determine the specific heat capacity of the aluminum using the method of mixtures obeying the principle of calorimetry. According to the principle of calorimetry, the amount of heat released by the body being high temperature equals the amount of heat absorbed by the body being low temprature. Aluminum pellets will be heated to roughly 100°C in a boiler using a dipper cup. After that, they'll be placed into water in a calorimeter that's around room temperature. The specific heat of aluminum will be calculated using measurements and readings of the required masses and temperature. The technique is repeated with the water in the calorimeter at a temperature that is much below room temperature.

Answers

The principle of calorimetry states that the amount of heat absorbed by the low-temperature body is equal to the amount of heat released by the high-temperature body. This principle is used to determine the specific heat of an unknown substance. In this experiment, the aim is to determine the specific heat capacity of aluminum using the method of mixtures.

To perform this experiment, aluminum pellets are heated to approximately 100°C in a boiler using a dipper cup. After heating, the aluminum pellets are placed in water in a calorimeter that is at room temperature. The heat lost by the aluminum pellets will be gained by the water. The calorimeter is then stirred to ensure the temperature of the water is uniform. Using the measurements of the required masses and temperature, the specific heat of aluminum is calculated.

The technique is repeated with the water in the calorimeter at a temperature that is much below room temperature. The heat gained by the water will be lost by the aluminum pellets. By using the measurements of the required masses and temperature, the specific heat of aluminum can be calculated using the method of mixtures.

In conclusion, the purpose of the experiment is to determine the specific heat capacity of aluminum using the method of mixtures. The principle of calorimetry is used to calculate the specific heat of an unknown substance. The specific heat of aluminum is calculated by measuring the required masses and temperature of aluminum pellets and water in a calorimeter.

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A cylinder fitted with a piston has a volume of 0.2 m? and contains 1 kg of steam at 300 kPa.
Heat is transferred to the steam until the temperature is 400 C, while the pressure remains
constant. Determine the heat transfer and the work for this process.

Answers

The heat transfer and work for this process are 554.1 kJ and 47,000 J, respectively. The gas law equation (PV = nRT) is used to calculate the final volume.

Step 1: Identify known values and convert them into SI units. Volume = 0.2 m³Pressure = 300 kPa, Temperature = 400 °C, Mass = 1 kg

Step 2: Find the final volume of the system since the pressure is constant. The gas law equation (PV = nRT) is used to calculate the final volume. V₁ = nRT / PInitial volume, V₂ = 0.2 m³, pressure P = 300 kPa = 300,000 Pa, R = 0.287 kJ/kg K (gas constant), and n = m/M, where m = 1 kg and M = 18.01528 kg/kmol (molar mass of steam)

Hence, V₁ = (1 kg × 0.287 kJ/kg K × 673 K) / (300,000 Pa × 18.01528 kg/kmol)

= 0.0435 m³

Step 3: Find the work done during the process.

The work done, W = PΔV, where ΔV is the change in volume.ΔV = V₁ - V₂

= 0.0435 m³ - 0.2 m³

= -0.1565 m³

Hence, W = -300,000 Pa × -0.1565 m³

= 47,000 J (work done by the gas)

Step 4: Determine the heat transfer during the process.

Q = mCΔT, where C is the specific heat capacity of steam at constant pressure. C = 1.847 kJ/kg KΔT

= T₂ - T₁

= 400 °C - 100 °C

= 300 K

Hence, Q = 1 kg × 1.847 kJ/kg K × 300 K

= 554.1 kJ (heat absorbed by the gas)

Therefore, the heat transfer and work for this process are 554.1 kJ and 47,000 J, respectively.

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The ground state wave function for the hydrogen (a 1s state) is given psi_{1s}(r) = 1/(sqrt(pi * a ^ 3)) * e ^ (- r/a) by where a is the Bohr radius. Calculate the probability that the electron will be found at a distance less than a from the nucleus.

Answers

The probability that the electron will be found at a distance less than a from the nucleus is approximately 0.393.

The probability can be calculated by integrating the square of the wave function from 0 to a. In this case, the wave function is psi_{1s}(r) = 1/(sqrt(pi * a ^ 3)) * e ^ (- r/a), where a is the Bohr radius.

To calculate the probability, we need to square the wave function, which gives us psi_{1s}^2(r) = (1/(sqrt(pi * a ^ 3)))^2 * e ^ (-2r/a).

Next, we integrate psi_{1s}^2(r) from 0 to a:

P = ∫[0 to a] (1/(sqrt(pi * a ^ 3)))^2 * e ^ (-2r/a) dr.

After performing the integration, we find that the probability is approximately 0.393.

In summary, the probability that the electron will be found at a distance less than a from the nucleus is approximately 0.393.

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Question 12 The radius of neon atom is 0.15761 nm. The electronic polarizability (in C2m/N) of neon atom is- Enter your answer in 2 decimal places. (E0=8.854 x 10-12 C2/Nm²) X 10-40.

Answers

Electronic polarizability of neon atom is approximately equal to 1.11 × 10⁻⁴⁰ C²m/N.

Given, Radius of neon atom, r = 0.15761 nm, Electronic polarizability of neon atom, α = ?

E0 = 8.854 × 10⁻¹² C²/Nm²

The formula for electronic polarizability is given by:

α = (3/4πε0)(r³)

Substituting the given values in the above equation, we get:

α = (3/4π × 8.854 × 10⁻¹²)(0.15761 × 10⁻⁹)³

On simplification,

α = 1.11 × 10⁻³⁰ C²m/N

≈ 1.11 × 10⁻⁴⁰ C²m/N

Therefore, the electronic polarizability of neon atom is approximately equal to 1.11 × 10⁻⁴⁰ C²m/N.

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Finally, please cite an example from the news of a current event in real life that relates to the one of the economic changes occurring (i.e. an increase in the number of consumers in the market or an increase in the number of sellers/buyers in the market) affecting "Good X" above, and be sure to explain why it relates. . Use supply and demand analysis to demonstrate your answer and be sure to provide the rationale behind what is happening and also discuss any interesting observations or outcomes. (Note, that the magnitudes of any supply and/or demand shifts in this example are not specified, so you may want to consider all possible scenarios. which factor is most sensitive to changes in temperature? Assume that limx6f(x)=3, limx6g(x)=5, and limx6h(x)=1. Use these three facts and the limit laws to evaluate each limit. State each limit law, one at a time, to show each step in your work. limx6[f(x)+2g(x)+h(x)] The pineal gland is used as a brain orientation landmark for brain X rays. What is the greatest degree of precision to which the metal bar can be measured by ruler A and by ruler B? A) to the nearest tenth by both rulersB) to the nearest hundredth by both rulersC) to the nearest tenth by ruler A and to the nearesthundredth by ruler BD) to the nearest hundredth by ruler A and to thenearest tenth by ruler B why the author uses a problem-solution text structure to discuss climate change with readers. Question 2: Recall the Fourier and inverse Fourier transforms: +[infinity] F() = F[f(t)] = f(t)e^fwt dt -[infinity] +[infinity]f(t)=F^- [F()]= 1/2 F(w)e^fwt d -[infinity]and also recall Euler's expression: e^f = cos 0 +j sin . Explain what type of symmetry we obtain in the Fourier transform F() when f(t) is a real function. Justify your answer mathematically. ANSWER PLEASE QUICKLY (PLEASE). the hormone melatonin reaches peak levels in the body during the Describe the two primary models of e-business. Provide examples. rosebush nursery has a gross profit percentage of 26 percent. therefore, for every $1 of net sales, rosebush's gross profit amounts to how much? in approximately 65% of people, the planum temporale is larger ASK YOUR TEACHER 5. [-/6 Points] DETAILS SERPSE9 46.P.025. MY NOTES For each of the following decays or reactions, determine if strangeness is conserved. decay or reaction conserved? (a) 10+ 0 --Select-O (b) +2p+-Select- (c) n+n-20+50-Select- (d) x +n --Select O (e) A + n - -Select-O (f)x+p A + K-Select- O PRACTICE ANOTHER Town and Country Auto Repair uses time and material pricing. The Body Shop has the following cost data.Labour rate per hour including fringe benefits$ 18.00Annual labour hours$ 10 000Annual overhead costs:Material handling and storage$ 15 000Other overhead costs$ 75 000Annual cost of materials used$ 187 500Hourly charge to cover profit margin$ 9.50If a particular job takes 10 hours in labor and $500 in materials, determine the price charged for the job.A. $775 B. $850 C. $390 D. $890 shew Atempt History? Current Artenpt in Progress In July, normally as lack manufacturing month, fvanhoe Sports receives asperial order for 10,000 basketballs at $29 each from the unit because of shipping costs but would not increase fued costs and expenses.