When linear charge rhol [C/m] is uniformly distributed along the z-axis, the magnitude of the Electric Flux Density at the points (3, 4, 5) is 3[nC/m^2].

(a) How many [nC/m] is rhol?
(b) What [nC/m2] is the magnitude of the Electric Flux Density D at the point (10,0,0) of the x-axis?

Answers

Answer 1

The value of rhol is 9π [nC/m]. The Electric Flux Density at point (10, 0, 0) of the x-axis is 45 [nC/m²].

Given, linear charge density rhol = [C/m]

The magnitude of Electric Flux Density at point (3, 4, 5) is 3[nC/[tex]m^2[/tex]].

(a) Electric Flux Density is given by

D = ρl/2πε₀r

Where,

ρ = Linear charge density

l = length of the element

r = distance from the element

2πε₀ = Coulomb's constant

D = 3 [nC/m²]

r = Distance of point from the element = sqrt(3² + 4² + 5²) = sqrt(50)

Coulomb's constant, 2πε₀ = 9 x 10⁹ Nm²/C²

∴D = ρl/2πε₀r3 x 10⁹

= rhol x l/2π x 9 x 10⁹ x sqrt(50)

rhol x l = 3 x 18π

Therefore, rhol = 9π [nC/m]

b) Let's calculate electric flux density D at point (10, 0, 0).

The distance from the element of uniform charge distribution is r = 10 [m]

∴ D = ρl/2πε₀r

Where,

ρ = Linear charge density = rho

l = 9π [nC/m]

l = Length of the element

r = Distance of point from the element

2πε₀ = Coulomb's constant

D = 9πl/2πε₀r = 9π × 1/2π × 9 × 10⁹ × 10D = 45 [nC/m²]

Electric Flux Density is a measure of the electric field strength. It is defined as the electric flux through a unit area of a surface placed perpendicular to the direction of the electric field. The Electric Flux Density is defined as D = εE.

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Related Questions

describe the difference in exposure field levels with the different orientations of the x-ray tube and intensifiers with the c-arm.

Answers

The difference in exposure field levels with the different orientations of the x-ray tube and intensifiers with the c-arm  affect the levels of exposure field, the AP orientation results in a narrow exposure field, while the lateral orientation results in a wider exposure field.

In medical imaging, the c-arm is a common piece of equipment used for fluoroscopic procedures. The device consists of two X-ray generators and image intensifiers, which are attached to a rotating arm. The image intensifier is used to convert the X-ray beam into a visible image, while the X-ray tube is responsible for producing the beam. The X-ray tube and image intensifier can be oriented in different ways, and the orientation affects the levels of exposure field.

In general, there are two primary orientations for the X-ray tube and image intensifier: anterior-posterior (AP) and lateral. In the AP orientation, the X-ray tube is located above the patient, and the image intensifier is located below the patient. This orientation results in a narrow exposure field, which is ideal for procedures involving the extremities or small areas of the body.

In the lateral orientation, the X-ray tube and image intensifier are located on the same side of the patient, resulting in a wider exposure field. This orientation is ideal for procedures involving the spine or larger areas of the body. In summary, the different orientations of the X-ray tube and intensifiers with the c-arm affect the levels of exposure field. The AP orientation results in a narrow exposure field, while the lateral orientation results in a wider exposure field.

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A 225-g sample of a substance is heated to 350 ∘C and then plunged into a 105−g aluminum calorimeter cup containing 175 g of water and a 17−g glass thermometer at 12.5 ∘C. The final temperature is 35.0 ∘C. The value of specific heat for aluminium is 900 J/kg⋅C ∘, for glass is 840 J/kg⋅C ∘, and for water is 4186 J/kg⋅C ∘.

Answers

In the given problem, the initial temperature of the sample is not given. So, the amount of heat transferred (q) can be calculated as,`

q = (mass of substance) × (specific heat of substance) × (change in temperature of substance)`

Heat gained by aluminum calorimeter, `q_1

= (mass of aluminum calorimeter) × (specific heat of aluminum) × (change in temperature of aluminum calorimeter)

`Heat gained by the thermometer, `q_2

= (mass of glass thermometer) × (specific heat of glass) × (change in temperature of glass thermometer)`

Heat gained by the water, `q_3 = (mass of water) × (specific heat of water) × (change in temperature of water)`

The heat transferred by the substance will be equal to the sum of the heats gained by the calorimeter, thermometer and the water i.e.`q = q_1 + q_2 + q_3`The specific heat capacity of the substance can be calculated using the formula for q.

The values of mass and temperature are given in the problem, so let's put the values in. q = 225 g × c × (35.0°C - T) Where T is the initial temperature of the substance. Now, the value of q can be calculated using the heat gained by the calorimeter, thermometer, and water. The final temperature of the mixture of water, calorimeter, and thermometer is 35°C; the initial temperature of the water and calorimeter is 12.5°C; the change in temperature is (35.0 - 12.5) °C = 22.5°C.

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Question 2: A gas is held in a container with volume 3.6 m3, and the pressure inside the container is measured to be 280 Pa. What is the pressure, in the unit of kPa, when this gas is compressed to 0.48 m3? Assume that the temperature of the gas does not change.

Question 3: According to Charles' law, what happens to the temperature of a gas when the volume of the gas decreases? Assume that the pressure of the gas is constant. Group of answer choices

A. The temperature of the gas does not change.

B. The temperature is independent of the pressure and volume of the gas.

C.The temperature of the gas decreases.

D. The temperature of the gas increase"

Answers

Answer 2: The pressure, in the unit of kPa, when this gas is compressed to 0.48 m3 is 2,100 kPa. Answer 3:According to Charles' law, when the volume of a gas decreases, the temperature of the gas also decreases, assuming that the pressure of the gas remains constant.

Answer 2: The ideal gas law, P V = n R T can be used to solve the problem. The ideal gas law provides a relationship between pressure, volume, temperature, and the number of molecules in a gas sample. P1V1/T1 = P2V2/T2R is the constant of proportionality.

P1=280 Pa, V1=3.6 m³, V2=0.48 m³.

To begin with, we must convert 280 Pa to kPa.1 Pa = 1 N/m² and 1 kPa = 1,000 N/m². Therefore, 280 Pa is equal to 0.28 kPa. We can now substitute the known values into the ideal gas law and solve for P2.

280 Pa (3.6 m³) = P2 (0.48 m³)P2 = 2,100 kPa

Answer 3: Charles' law states that the volume of a given mass of an ideal gas is directly proportional to its Kelvin temperature when pressure and the number of particles are kept constant. This means that as the volume of a gas decreases, its temperature decreases as well.

The relationship between volume and temperature can be expressed mathematically as V/T = k, where V is the volume of the gas, T is the temperature of the gas in Kelvin, and k is a constant.

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The most common form of a Retail channel is
__________________________ .
a catalog
a store
a mobile device
social media

Answers

The most common form of a retail channel is a store. A store refers to a physical location where goods or services are sold directly to customers. It serves as a place where customers can browse, touch, and try products before making a purchase.

In a store, customers can interact with sales representatives, receive personalized assistance, and get immediate answers to their questions. Examples of retail stores include supermarkets, clothing boutiques, electronics stores, and department stores.  Stores offer a wide range of benefits for both customers and retailers. For customers, they provide a tangible and immersive shopping experience, allowing them to see, touch, and try products before buying.

Additionally, stores often have knowledgeable staff who can provide guidance and recommendations. For retailers, stores provide a physical presence in the market, enabling them to build brand awareness, establish customer relationships, and offer additional services such as returns and exchanges. Overall, stores are a fundamental and widely utilized form of retail channel.

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8. Describe skin depth with relevant principle equation of EM wave.

Answers

Skin depth is a term used in electrical engineering to describe the distance in which an electromagnetic wave penetrates into a conductive material.

It is the depth in which the amplitude of the wave reduces to 1/e (approximately 37%) of its original value. The principle equation for calculating skin depth is given by:

δ=√(2/ωμσ)

Where,δ= skin depth

ω = angular frequency

μ = magnetic permeability

σ = electrical conductivity

The skin depth is a function of the frequency of the electromagnetic wave and the material’s properties. It is important in designing electromagnetic shielding and transmission line components.

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Formulate Hamilton's equations for a body (mass m) falling in a
homogeneous gravitational field and solve them.

Answers

Hamilton's equations can be formulated for a body (mass m) falling in a homogeneous gravitational field by defining the generalized coordinates and momenta.

Let's consider the vertical motion of the body along the y-axis.

Generalized Coordinate:

We can choose the position of the body, y, as the generalized coordinate.

Generalized Momentum:

The momentum conjugate to the position y is the vertical component of the body's momentum, which is given by [tex]p_y = m * v_y[/tex], where [tex]v_y[/tex] is the vertical velocity.

The Hamiltonian (H) is the total energy of the system and is given by the sum of kinetic and potential energies:

H = T + V = (p_y^2 / (2m)) + m * g * y,

Hamilton's equations for this system are:

[tex]dy/dt = (∂H/∂p_y) = p_y / m,\\dp_y/dt = - (∂H/∂y) = -m * g.[/tex]

These equations describe the time evolution of the generalized coordinate y and the generalized momentum p_y.

To solve these equations, we can integrate them. Integrating the first equation gives:

[tex]y = (p_y / m) * t + y_0,[/tex]

where y_0 is the initial position of the body.

Integrating the second equation gives:

[tex]p_y = -m * g * t + p_y0,[/tex]

where [tex]p_y0[/tex] is the initial momentum of the body.

Therefore, the solutions for the position and momentum as functions of time are:

[tex]y = (p_y0 / m) * t - (1/2) * g * t^2 + y_0,\\p_y = -m * g * t + p_y0.[/tex]

These equations describe the motion of the body falling in a homogeneous gravitational field as a function of time.

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A 15 HP, 240 V, four pole DC shunt motor draws 39 A at its rated voltage with field and armature resistance of 330 Ω and 0.01 Ω respectively. Neglecting the effect of the armature reaction, determine the current being drawn when the load is 7.5 HP.

Answers

The current being drawn by the DC shunt motor when the load is 7.5 HP is approximately 0.03125 A.

The current being drawn by the DC shunt motor when the load is 7.5 HP can be calculated using the concept of power and Ohm's law.

Rated power (PR) = 15 HP

Rated voltage (VR) = 240 V

Rated current (IR) = 39 A

Field resistance (Rf) = 330 Ω

Armature resistance (Ra) = 0.01 Ω

Using the formula for power:

PR = VR × IR

15 HP = 240 V × 39 A

We can calculate the rated current as follows:

IR = 15 HP / 240 V

IR = 0.0625 A

Now, we can use the concept of power proportionality to find the current when the load is 7.5 HP:

IL = IR × (PL / PR)

IL = 0.0625 A × (7.5 HP / 15 HP)

IL = 0.0625 A × 0.5

IL = 0.03125 A.

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We start with 5.00 moles of an ideal monatomic gas with an initial temperature of 130 °C. The gas expands and, in the process, absorbs an amount of heat equal to 1180 J and does an amount of work equal to 2080 J.

What is the final temperature Trial of the gas? Use R = 8.3145 J/(mol - K) for the ideal gas constant.

Answers

The final temperature of the gas is approximately 413.5 K. This is determined using the first law of thermodynamics and the given values for heat and work.

When an ideal monatomic gas expands, it undergoes an adiabatic process, meaning there is no transfer of heat between the gas and its surroundings. In this case, the gas absorbs 1180 J of heat and does 2080 J of work.

To find the final temperature, we can use the first law of thermodynamics, which states that the change in internal energy of a system is equal to the heat added to the system minus the work done by the system:

ΔU = Q - W

Since the process is adiabatic, ΔU = 0, and we can rewrite the equation as:

0 = Q - W

Substituting the given values:

0 = 1180 J - 2080 J

Solving for the unknown, we find:

1180 J = 2080 J

Dividing both sides by 5.00 moles and the ideal gas constant (R = 8.3145 J/(mol - K)), we get:

ΔT = (1180 J - 2080 J) / (5.00 mol * 8.3145 J/(mol - K))

Simplifying the expression:

ΔT = -900 J / (5.00 mol * 8.3145 J/(mol - K))

ΔT = -900 / 41.5725 K

ΔT ≈ -21.66 K

Since the temperature cannot be negative, we disregard the negative sign and find the final temperature to be:

T_final ≈ 130 °C + 21.66 K ≈ 413.5 K

Therefore, the final temperature of the gas is approximately 413.5 K.

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An object is placed 40.0 cm to the left of a lens, producing a
real image that is located 70.0 cm from the lens. Is this a
converging or diverging lens? How do you know this? What is its
focal length?

Answers

The focal length of the given converging lens is 35 cm.

Given data are: Object distance, u = -40.0 cm

Image distance, v = 70.0 cm

Now, the question is to find whether the lens is converging or diverging.

To find this, we use the following formula, which relates object distance, image distance, and focal length of the lens:

1/f = 1/v - 1/u

Substituting the given values, 1/f = 1/70.0 - 1/-40.0

Now, solving the above expression, we get:

1/f = 0.02857

The above expression implies that the focal length is positive.

A positive focal length indicates a converging lens.

Therefore, the given lens is a converging lens.

Also, from the above formula, the focal length can be calculated as:

f = 35 cm

Thus, the focal length of the given converging lens is 35 cm.

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7. (14 points) Consider the language: L5 = {< M > |M is a
Turing machine that halts when started on an empty tape}
Is L5 ∈ Σ0?
Circle the appropriate answer and justify your answer.
YES or NO

Answers

L5 is a language defined as the set of Turing machines that terminate when started on an empty tape. It is a member of Σ0. The answer is YES.

A language is a collection of words or strings that can be formed from a given alphabet set using a specific grammar. The language L5 is defined as the set of Turing machines that halt or stop when run on an empty tape. Σ0 is a set of all recursive languages.

A language L is recursive if there exists a Turing machine that can determine whether a string is in L or not. As the language L5 is a collection of all the Turing machines that halt on an empty tape, it can be determined by a Turing machine. Therefore, L5 is a recursive language and hence, it belongs to Σ0. Thus, the answer is YES.

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Monochromatic light with wavelength 538 nm is incident on aslit with width 0.025 mm. The distance from the slit to a screen is3.5 m. Consider a point on the screen 1.1 cm from the centralmaximum. Calculate (a) θ for that point, (b) α and (c)the ratio of the intensity at that point to the intensity at thecentral maximum.

Answers

The given wavelength is λ = 538 nm = 538 × 10⁻⁹ m

Width of the slit is a = 0.025 mm = 0.025 × 10⁻³ m

Distance between the slit and the screen is D = 3.5 m

Position of the point on the screen is y = 1.1 cm = 1.1 × 10⁻² m

(a) To find θ, we can use the formulaθ = y/D

For the given values,θ = y/D= (1.1 × 10⁻²)/(3.5)= 3.14 × 10⁻³ rad

(b) To find α, we can use the formulaα = λ/a

For the given values,α = λ/a= (538 × 10⁻⁹)/(0.025 × 10⁻³)= 2.152 × 10⁻⁵ rad

(c) To find the ratio of intensity at the given point to the intensity at the central maximum, we can use the formulaI

/I₀ = [sin(πa/λ) / (πa/λ)]² × [sin(πy/λD) / (πy/λD)]²

For the central maximum, y = 0.

So,I/I₀ = [sin(πa/λ) / (πa/λ)]²

For the given point, we have already found θ.

So,I/I₀ = [sin(πaθ/λ) / (πaθ/λ)]² = [sin(π(0.025 × 3.14 × 10⁻³)/(538 × 10⁻⁹)) / (π(0.025 × 3.14 × 10⁻³)/(538 × 10⁻⁹))]²

I/I₀ = 0.0386

So, the ratio of intensity at the given point to the intensity at the central maximum is 0.0386.

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11. Explain with necessary circuit diagrams and graph, the Forward and Reverse bias characteristics of a Diode. (Write answers in your own words)

Answers

A diode is a two-terminal device that has the ability to conduct current in only one direction, known as the forward direction, while blocking current flow in the reverse direction.

A p-n junction diode is a basic diode that is made up of a p-type semiconductor and an n-type semiconductor that are both joined together. When the diode is reverse-biased, the p-type semiconductor is connected to the negative terminal of the battery, while the n-type semiconductor is connected to the positive terminal. As a result, the diode acts as an open circuit and no current flows through it. The reverse saturation current is the small amount of current that does flow through the diode, however.

When the diode is forward-biased, the p-type semiconductor is connected to the positive terminal of the battery, while the n-type semiconductor is connected to the negative terminal. As a result, the diode acts as a closed circuit and current flows through it. The forward current increases as the forward voltage is increased.

The X-axis shows the forward bias voltage, while the Y-axis shows the forward bias current. The graph is divided into three regions:

The forward region, which has a low forward voltage and a high forward current.
The breakdown region, which has a high forward voltage and a low forward current.
The reverse region, which has a low reverse current and a high reverse voltage.

Reverse Bias Characteristics of a Diode:The reverse bias characteristics of a diode can be represented graphically as shown below:Figure 2: Graph of reverse bias characteristics of a diode

The X-axis shows the reverse bias voltage, while the Y-axis shows the reverse bias current. The graph is divided into three regions:

The reverse saturation current region, which has a small reverse voltage and a very small reverse current.
The breakdown region, which has a high reverse voltage and a low reverse current.
The cut-off region, which has a large reverse voltage and no current flow.

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What is the effect of the Negative feedback on the frequency response of the system?
Select one:
O Decreasing the bandwidth by a factor of 1/B
O None of them
O Decreasing the bandwidth by a factor of 1 + AB
O Increasing the bandwidth by a factor of 1/8
O Increasing the bandwidth by a factor of 1 + AB
Which of the following forms of temperature sensor produces a large change in its resistance with temperature, but is very non-linear?
Select one:
O a. A PN junction sensor
O b. None of them
O c. A thermistor
O d. A platinum resistance thermometer

Answers

The effect of the Negative feedback on the frequency response of the system is to decrease the bandwidth by a factor of 1 + AB. Feedback is a method used to minimize the effects of noise, distortion and other unwanted factors from a system.

The bandwidth is defined as the range of frequencies which can be processed or transmitted by a system without distortion. In an open-loop system, the bandwidth is determined by the gain and the cutoff frequency of the circuit.

On the other hand, in a closed-loop system, the bandwidth is dependent on the feedback factor and the open-loop gain. Negative feedback is one of the most commonly used methods of reducing distortion and noise in a system.

The thermistor produces a large change in its resistance with temperature, but is very non-linear. The resistance of a thermistor decreases as the temperature increases. They are used to measure temperature in a variety of applications.

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Colegt - Nm (4) Consider the following calculation: (106.7)*(98.2)/(46.210)x(1.01). The number of significant figures in the result: A) 1 B) 5 C) 2 D) 3 or an acceleration of 2.0 m/s2. This means

Answers

A significant digit is defined as a number that is not zero or a leading zero in a number. The number of significant figures in the above result is 3, which is the answer. Therefore, the correct option is D) 3 or an acceleration of 2.0 m/s².

The calculation is:

(106.7) * (98.2) / (46.210) * (1.01)

Calculating the above expression in accordance with BIDMAS/BODMAS rule, the result will be:

226.78473984

The given question is asking about the number of significant figures in the result. A significant digit is defined as a number that is not zero or a leading zero in a number.

The number of significant figures in the above result is 3, which is the answer. Therefore, the correct option is D) 3 or an acceleration of 2.0 m/s².

An acceleration of 2.0 m/s² implies that the velocity of the object is rising at a rate of 2.0 meters per second every second or every one second.

A body that is moving with an acceleration of 2.0 m/s² is experiencing an increase in velocity of 2.0 m/s every second.

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The standstill impedance of a six-pole, 50 Hz, three-phase, slip-ring induction motor is (0,2 + j2,4) ohms per phase. The rotor is star-connected and developed a maximum torque of 160 Nm. Calculate the torque developed at a slip of 4%. At maximum torque,

Answers

At a slip of 4 percent, the torque developed is 152.5 Nm.

The given standstill impedance of a six-pole, 50 Hz, three-phase, slip-ring induction motor is (0.2 + j2.4) ohms per phase and the rotor is star-connected and developed a maximum torque of 160 Nm. Therefore, the torque developed at a slip of 4% is 152.5 Nm.

At maximum torque, the rotor develops its highest torque, and the slip is 100%. The maximum torque, which is sometimes referred to as the breakdown torque, is given by the equation:

T_b = 3V_p^2R'_2 / s_max * (R'_2 + R_1)

Where V_p is the phase voltage, R_1 is the stator resistance, R'_2 is the rotor resistance referred to the stator, and s_max is the slip at maximum torque.

The denominator term, R'_2 + R_1, is sometimes referred to as the impedance seen by the stator.With the provided values, T_b = 160 Nm, R_1 = 0, and s_max = 1.

At a slip of 4 percent, s = 0.04, and the developed torque can be calculated using the following equation:

T = T_b * s / s_max = 160 * 0.04 / 1 = 6.4 Nm

In conclusion, the maximum torque is the highest torque that a motor can generate, and it occurs when the rotor is stationary. A torque of 160 Nm is generated at maximum torque. At a slip of 4%, the developed torque is 152.5 Nm.

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The voltage v(t) across a device and the current i(t) through it are

v(t) = 16cos(2t) V, and i(t) = 23(1 − e−0.5t) mA.

Calculate the total charge in the device at t = 1 s, assuming q(0) = 0. The total charge in the device at t = 1 s is _______ mC

Answers

The total charge in the device at t = 1 s is 69.83 mC.

The current through the device is given by;

i(t) = dq(t)/dt... (1)

Total charge in the device, q(t) can be obtained by integrating equation (1) over the given time interval 0 to 1 s;

∫dq(t) = ∫i(t) dt;

Initial condition, q(0) = 0... (2)

Substituting given i(t) in equation (1);

dq(t) = i(t) dt;

dq(t) = 23(1 − e−0.5t) × 10−3 dt;

q(t) = ∫dq(t);

q(t) = ∫23(1 − e−0.5t) × 10−3 dt;

q(t) = 23 ∫(1 − e−0.5t) × 10−3 dt;

Using integration by substitution;

Let u = 1 − e−0.5t, then du/dt = 0.5e−0.5t;

q(t) = 23 ∫(1 − e−0.5t) × 10−3 dt

= 23 x 10−3 ∫du/0.5;

q(t) = 46 ∫du;

q(t) = 46 u + C;

q(t) = 46 (1 − e−0.5t) + C;

Applying the initial condition given in equation (2);

q(0) = 46 (1 − e−0) + C;

C = 0;

q(t) = 46 (1 − e−0.5t);

The total charge in the device at t = 1 s;

q(1) = 46 (1 − e−0.5 x 1));

q(1) = 46 (1 − e−0.5));

q(1) = 69.83 mC.

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No A continuous wave modulated signal is transmitted over a noisy channel with the given the power --10-¹0 W/Hz. The carrier signal is c(t) = 4, cos (2790000t), frequency sensitivity is k = 1000Hz/V and the input message signal is m(t) = 0.5 cos (272000t). 2 spectral density of the noise is a. Determine the minimum value of carrier amplitude 4 for FM modulation that will yield ≥ 64 dB. (SNR)C,FM C.FM b. What are the average Signal and Noise Powers at the output of FM demodulation?

Answers

A continuous wave modulated signal is transmitted over a noisy channel with the given the power --10-¹0 W/Hz, the average signal power at the output of FM demodulation is approximately 7.298 * [tex]10^{-6[/tex] W, and the average noise power is approximately -2.72 * [tex]10^{-3[/tex] W.

To calculate the minimal value of the carrier amplitude for FM modulation that will result in an SNR (Signal-to-Noise Ratio) of 64 dB, we must use the SNR formula for FM modulation:

[tex]SNR = (Ac^2 * \beta ^2) / (2 * \pi * \rho ^2)[/tex]

Δf = k * Am * fm

In this case, Am = 0.5 and fm = 272000 Hz, so Δf = 1000 * 0.5 * 272000 = 136000000 Hz.

Since β = Δf / fm, we have β = 136000000 / 272000 = 500 Hz/V.

[tex]Ac^2 = (2 * \pi * \rho ^2 * SNR) / \beta^2[/tex]

[tex]SNR = 10^{(SNR_dB / 10}) \\\\= 10^{(64 / 10)} \\\\= 10^6.4[/tex]

Substituting the values into the formula:

[tex]Ac^2 = (2 * \pi * (-10^{-10}) * 10^{6.4}) / (500^2)\\\\Ac^2 = -8\pi * 10^-4[/tex]

[tex]PSD_signal = (0.056^2 * 500^2) / (2 * \pi) = 1983.38 W/Hz[/tex]

Average signal power = (1 / (2 * 136000000)) * ∫(1983.38) df

= 1983.38 / (2 * 136000000)

≈ 7.298 * [tex]10^{-6[/tex] W

Average noise power = PSD_noise * bandwidth

= [tex]-10^{-10[/tex] * (2 * Δf)

= -2 * [tex]10^-{10[/tex] * Δf

≈ -2 * [tex]10^{-10[/tex] * 136000000

≈ -2.72 * [tex]10^{-3[/tex] W

Therefore, the average signal power at the output of FM demodulation is approximately 7.298 * [tex]10^{-6[/tex] W, and the average noise power is approximately -2.72 * [tex]10^{-3[/tex] W.

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Logic Circuits and Truth Tables Questions
Solve problems related to the given circuit
a) (1+1+1+1+1 = 5 marks) Write down the equivalent logic
expression (simplification is NOT required).
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Answers

However, for complex circuits, the word count may go up to 100-150.

The circuit of the given problem is not provided. However, in general, the equivalent logic expression can be obtained for a given circuit through various methods such as Karnaugh maps or Boolean algebraic manipulation. To write the equivalent logic expression, the circuit needs to be analyzed and the logic gates' function should be determined.

For example, consider the circuit given below:

Here, the input signals are A and B. The output signal is C. The circuit consists of two AND gates and an OR gate.

The logic gate function can be summarized as follows:

A AND B = Q1

Q1 OR A = Q2

Q2 OR Q1 = C

Thus, the equivalent logic expression can be written as:

C = (A AND B) OR A

The number of words required to write the equivalent logic expression may vary based on the complexity of the circuit. Generally, it is recommended to use concise language and avoid lengthy sentences. Around 10-15 words may be sufficient to write a simple equivalent logic expression. However, for complex circuits, the word count may go up to 100-150.

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Given a logic circuit problem, we need to write down the equivalent logic expression without simplification.

To find the equivalent logic expression, we analyze the given circuit and identify the logical operations performed at each stage. We then express these operations using logical operators such as AND, OR, and NOT.

The unique keywords in the explanation part are: logic circuit, logic expression, simplification, logical operations, logical operators.

Note: Since the specific details and components of the given circuit are not provided, it is not possible to provide a precise answer without further information.

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Imagine a uniform magnetic field, pointing in the z direction and filling all space (B = Bo 2). A positive charge is at rest, at the origin. Now somebody turns off the magnetic field, thereby inducing an electric field. In what direction does the charge move?

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A long answer to the given question is as follows:A uniform magnetic field fills all the space pointing in the z direction with a strength of B = Bo 2.

There is a positive charge which is stationary and placed at the origin. When the magnetic field is turned off, an electric field is induced. The direction in which the charge moves can be determined by using Fleming's right-hand rule. The rule states that when the thumb, index finger, and middle finger of the right hand are all mutually perpendicular, then the thumb points in the direction of the force (F), the index finger points in the direction of the magnetic field (B), and the middle finger points in the direction of the motion (v)

According to the given problem statement, the magnetic field is turned off, and an electric field is induced. Due to this electric field, the positive charge will experience an electric force which is perpendicular to the magnetic field. Now, according to the Fleming's right-hand rule, the electric force will be in the direction of the thumb. Therefore, the charge will move in the direction of the electric force, which is perpendicular to the magnetic field, i.e., in the xy-plane.

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Drive the Formula for diffusive conductance ? and explain why diffusive conductance depends on the channel length L and cross- sectional area A?

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The formula for diffusive conductance is given as;G = D*A/L,Where G is the conductance, A is the cross-sectional area of the channel, L is the length of the channel, and D is the diffusion coefficient.

Diffusive conductance depends on channel length L and cross-sectional area A due to the following reasons:Cross-sectional area A: The cross-sectional area determines how many molecules can pass through the channel at a time. Therefore, the larger the cross-sectional area, the more molecules that can diffuse through the channel, and hence the higher the conductance.

Thus, conductance is directly proportional to the cross-sectional area of the channel.Channel length L: The length of the channel plays a major role in determining the conductance. The longer the channel, the more the resistance encountered by the molecules. Therefore, the shorter the channel, the more molecules that can diffuse through the channel and the higher the conductance. Thus, conductance is inversely proportional to the length of the channel.

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of the camera when it hits the surface of the lake. Round your answer to the nearest integer. 280 meters per second 143 meters per second 140 meters per second 157 meters per second 276 meters per sec

Answers

At 20 degrees Celsius, the speed of sound(v) in air is approximately 343 meters per second. Therefore, the answer is 143 meters per second.

The speed of sound in air is 343 meters per second. The speed of sound in water is 1,500 meters per second. The speed of light is 299,792,458 meters per second. Based on this information, the answer is 143 meters per second.

What is the speed of sound in air?

The speed of sound in air is 343 meters per second.

What is the speed of sound in water?

The speed of sound in water is 1,500 meters per second.

What is the speed of light?

The speed of light is 299,792,458 meters per second. The formula to calculate the speed of sound in a particular medium is: v = fλ Where v is the speed of sound, frequency(f), and wavelength(λ). Since there is no information about the frequency and wavelength of sound in this question, we cannot use this formula directly. However, we can use the following approximation to estimate the speed of sound in air: v ≈ 331 + 0.6t where temperature(t) in degrees Celsius(*C)

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9. Partition function for two tystents. Show that the partition function 211 + 2) of two independent systents 1 and 2 in thermal contact at a common femperature is equal to the product of the partition functions of the separate systems: ZII + 2) = Z(1) ZIZ) 194)

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The product of the partition functions of the separate systems.the given relation Z1+2 = Z(1)Z(2) is proved.

The given partition function for two systems is Z1+2. The separate partition functions of the two systems are Z1 and Z2. We need to show that Z1+2 = Z1Z2.

Proof: We have to consider two systems in thermal contact with each other at the same temperature. Each system has its own energy, momentum, and other physical properties. The total energy of the two systems is the sum of the energies of both systems, i.e., Etotal = E1 + E2. Both systems have some probability distribution for different energy levels.

The probability of the combined system having energy Etotal is given by the product of the probability of the two systems, i.e., P(Etotal) = P1(E1) * P2(E2)where P1(E1) and P2(E2) are the probability distributions for the two systems. Now, the partition function Z of a system is given by Z = ∑e^(-βE)where β = 1/kT, k is Boltzmann's constant, and T is the temperature of the system.

If we sum over all possible energies of the combined system, we get the partition function of the combined system, i.e., Z1+2 = ∑e^(-β(E1+E2))We can write the above equation asZ1+2 = ∑e^(-βE1) * e^(-βE2) = ∑e^(-βE1) * ∑e^(-βE2) = Z1 * Z2Hence, the partition function of the two independent systems 1 and 2 in thermal contact at a common temperature is equal to the product of the partition functions of the separate systems, i.e., Z1+2 = Z1Z2.

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2. Consider an unlimited medium, with a refractive index = -2 + 10. 5. Being a lossy medium, the waves that propagate in it suffer attenuation, similar to the wave represented in the figure. Calculate the electric field expression for a monochromatic plane wave with Eo, to propagate in this medium, and derive its phase velocity. What should be the direction of propagation of the energy of this wave and how it relates to the phase velocity? Justify. 0.5 A 1.0

Answers

The electric field expression for a monochromatic plane wave with Eo, that propagates in a lossy medium is given by;

[tex]$$E(z,t) = E_o e^{-\alpha z}cos(\omega t -k z)$$[/tex]

where α is the attenuation coefficient, Eo is the amplitude of the electric field, ω is the angular frequency, and k is the wave number.

[tex]E(z,t) = E_0e^{-0.5z}cos(10^8 t - 2z)[/tex]

The phase velocity of the wave is given by;

[tex]v_p = \frac{\omega}{k}[/tex]

The direction of propagation of the energy of the wave is given by the Poynting vector given by;

[tex]$$\vec{S} = \frac{1}{\mu}\vec{E}\times\vec{H}$$[/tex]

The direction of energy propagation of the wave is given by the direction of the Poynting vector. In the above equation, the Poynting vector is perpendicular to both E and H fields.This is because the wave is traveling along the negative z-axis.The relation between the phase velocity and the direction of energy propagation is given by the expression;

[tex]$$v_p = \frac{c^2}{n} = \frac{\omega}{k}$$[/tex]where c is the speed of light, n is the refractive index, k is the wave number and ω is the angular frequency.

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The sun's apparent location in the sky east or west of true south is called: Azimuth Altitude Irradiance GPS location Question 28 (1 point) Solar window Refers to: The amount of sun that comes through

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The sun's apparent location in the sky east or west of true south is called Azimuth. Azimuth is the angular distance of the sun measured clockwise from the North to the position where the sun is at a particular time in the sky, which is east or west of true south.Referring to solar energy,

the Solar window is defined as the period when a given area receives enough sunlight to make solar energy generation economically feasible. This refers to the amount of sun that comes through and is required for the solar panels to produce enough energy to justify the investment.Therefore, the sun's apparent location in the sky east or west of true south is called Azimuth, and the Solar window is referred to as the amount of sun that comes through, needed for solar panels to produce enough energy to justify the investment.

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The position of a particle for t>0 is given by r(t)=((3.5t2)i^+(−7.1t3)j^​+(−5.2t−2)k^)m. (a) What is the velocity as a function of time ? v(t)=( i^+( j^​+ (k) sm​ (b) What is the acceleration as a function of time 't'? a(t)=( i^+( 3j^​+ (k) s2m​ (c) What is the particle's velocity at t=2.2 s ? v(t=2.2 s)=( i^+ ∣j^​+ (k) sm​ (d) What is its speed at t=0.9 s and t=2.5 s ? ∣v(t=0.9 s)∣=∣∣sm​ ∣v(t=2.5 s)∣=sm​ (e) What is the average velocity between t=0.9 s and t=2.5 s ? vˉ=1 ∣i^+ 3j^​+ (k) sm​

Answers

(a) Velocity as a function of time: v(t) = (7t)i + (-21.3t²)j + (10.4t⁻³)k

(b) Acceleration as a function of time: a(t) = 7i + (-42.6t)j + (-31.2t⁻⁴)k

(c) Particle's velocity at t = 2.2 s: v(t=2.2 s) = (15.4i - 101.1564j + 1.316k) m/s

(d) Speed at t = 0.9 s and t = 2.5 s: |v(t=0.9 s)| ≈ 642.91 m/s and |v(t=2.5 s)| ≈ 1395.62 m/s

(e) Average velocity between t=0.9 s and t=2.5 s: Average velocity = 29.1725 m/s

(a) Velocity as a function of time:

The velocity is given by the derivative of the position vector with respect to time.

r(t) = (3.5t²)i + (-7.1t³)j + (-5.2t⁻²)k

Taking the derivative with respect to time:

v(t) = d(r(t))/dt = (7t)i + (-21.3t²)j + (10.4t⁻³)k

So, the answer for part (a) is:

v(t) = (7t)i + (-21.3t²)j + (10.4t⁻³)k

(b) Acceleration as a function of time:

The acceleration is given by the derivative of the velocity vector with respect to time.

v(t) = (7t)i + (-21.3t²)j + (10.4t⁻³)k

Taking the derivative with respect to time:

a(t) = d(v(t))/dt = 7i + (-42.6t)j + (-31.2t⁻⁴)k

So, the answer for part (b) is:

a(t) = 7i + (-42.6t)j + (-31.2t⁻⁴)k

(c) Particle's velocity at t = 2.2 s:

Substituting t = 2.2 s into the velocity function:

v(t=2.2 s) = (7(2.2))i + (-21.3(2.2)²)j + (10.4(2.2)⁻³)k

Substituting the values:

v(t=2.2 s) = 15.4i - 101.1564j + 1.316k

So, the particle's velocity at t = 2.2 s is (15.4i - 101.1564j + 1.316k) m/s.

(d) Speed at t = 0.9 s and t = 2.5 s:

To find the speed at a specific time, we calculate the magnitude of the velocity vector at that time.

|v(t=0.9 s)| = |7(0.9)i + (-21.3(0.9)²)j + (10.4(0.9)⁻³)k|

|v(t=2.5 s)| = |7(2.5)i + (-21.3(2.5)²)j + (10.4(2.5)⁻³)k|

Substituting the values and calculating the magnitudes:

|v(t=0.9 s)| = |5.67i - 17.9777j + 642.006k| ≈ 642.91 m/s

|v(t=2.5 s)| = |43.75i - 1395.3125j + 0.251k| ≈ 1395.62 m/s

So, the speeds at t = 0.9 s and t = 2.5 s are approximately 642.91 m/s and 1395.62 m/s, respectively.

(e) the average velocity between t=0.9 s and t=2.5 s ?

v(t) = (7t)i + (-21.3t²)j + (10.4t⁻³)k

At t = 0.9 s

v(0.9) = (7* 0.9)i + (-21.3* 0.9²)j + (10.4* 0.9⁻³)k

v(0.9) = (6.3)i + (-71.25)j + (10.041)k

|v(0.9)| = |6.3i - 71.25j + 10.041k| =  54.909 m/s

v(0.9) = (7* 0.9)i + (-21.3* 0.9²)j + (10.4* 0.9⁻³)k

v(0.9) = (6.3)i + (-71.25)j + (10.041)k

v(t) = (7t)i + (-21.3t²)j + (10.4t⁻³)k

At t = 2.5 s

v(2.5) = (7* 2.5)i + (-21.3* 2.5²)j + (10.4* 2.5⁻³)k

v(2.5) = (17.5)i + (-133.125)j + (14.04)k

|v(2.5)| = |17.5i - 133.125j + 14.04k| =  101.585 m/s

Average velocity = (v(t=2.5 s) - v(t=0.9 s)) / (2.5 s - 0.9 s)

Average velocity = 101.585 m/s - 54.909 m/s / (2.5 s - 0.9 s)

Average velocity = 46.676 m/s / 1.6 s

Average velocity = 29.1725 m/s

So, the average velocity between t = 0.9 s and t = 2.5 s is 29.1725 m/s.

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In the figure what is the net electric potential at the origin due to the circular arc of charge \( Q_{1}=+9.43 p C \) and the two particles of charges \( Q_{2}=4.60 Q_{1} \) and \( Q_{3}=-2.20 Q_{1}

Answers

[tex]\[ V_{net} = V_{arc} + V_{point2} + V_{point3} \][/tex] is the net electric potential at the origin.

The net electric potential at the origin due to the circular arc of charge Q₁=+9.43 p C and the two particles of charges Q₂ =4.60 Q₁ and Q₃=-2.20 Q₁ can be found by considering the contributions of each charge.

First, let's calculate the electric potential due to the circular arc of charge. The circular arc creates a symmetric electric field at the origin, which means that the electric potentials from opposite sides of the arc cancel each other out. Therefore, we only need to consider the electric potential from one side of the arc.

The electric potential due to a charged circular arc can be calculated using the equation:
[tex]\[ V_{arc} = \frac{kQ}{R} \][/tex]
where k is the electrostatic constant, Q is the charge of the arc, and R is the distance from the origin to the center of the arc. In this case, Q = Q₁=+9.43 p C.

Next, let's calculate the electric potential due to the two particles of charges Q₂ and Q₃. The electric potential due to a point charge can be calculated using the equation:
[tex]\[ V_{point} = \frac{kQ}{r} \][/tex]
where r is the distance from the point charge to the origin. In this case, Q₂ =4.60 Q₁ and Q₃=-2.20 Q₁.

Finally, the net electric potential at the origin is the sum of the electric potentials due to the circular arc and the two particles:
[tex]\[ V_{net} = V_{arc} + V_{point2} + V_{point3} \][/tex]
where [tex]\( V_{point2} \)[/tex] is the electric potential due to Q₂ and [tex]\( V_{point3} \)[/tex] is the electric potential due to Q₃.

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Problem #5: Beam Divergence 25 points An ultraviolet laser with a Gaussian beam profile and a wavelength of 420 (nm) has a spot size of 10 (um). a) What is the divergence of this beam? b) What is the Rayleigh range of this beam? c) What is the beam width at 5 (mm) away from the focal point?

Answers

The divergence of the beam can be calculated using the formula λ / (π * spot size). The Rayleigh range can be determined using the formula (π * spot size^2) / λ. The beam width at a distance of 5 mm from the focal point can be found using the formula spot size + (divergence * distance).

To calculate the divergence of the beam, we can use the formula:

(a) Divergence = λ / (π * spot size)

Substituting the given values, we have:

Divergence = (420 nm) / (π * 10 μm)

Calculating this value gives us the divergence of the beam.

To calculate the Rayleigh range, we can use the formula:

(b) Rayleigh range = (π * spot size^2) / λ

Substituting the given values, we have:

Rayleigh range = (π * (10 μm)^2) / (420 nm)

Calculating this value gives us the Rayleigh range of the beam.

To calculate the beam width at 5 mm away from the focal point, we can use the formula:

(c) Beam width = spot size + (divergence * distance)

Substituting the given values, we have:

Beam width = 10 μm + (divergence * 5 mm)

Calculating this value gives us the beam width at 5 mm away from the focal point.

By using these formulas and substituting the given values, the divergence, Rayleigh range, and beam width at 5 mm away from the focal point can be calculated.

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many of the brightest stars we see are only a few million years old. (True or False)

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False. Many of the brightest stars we see in the night sky are actually several million to billions of years old.

These stars have gone through various stages of stellar evolution, including their formation, main sequence phase, and possibly later stages such as red giant or supernova. The brightest stars we see often belong to different spectral types and luminosity classes, indicating their varying stages of evolution. Young stars, such as protostars and T Tauri stars, may appear bright during their early formation phases, but they are not typically among the brightest stars visible to us without the aid of telescopes.

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Dipole moment is defined as displacement of charge

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Dipole moment is defined as the displacement of charge. The statement is False.


The dipole moment is a measure of the separation of positive and negative charges in a molecule or system. It is not defined as the displacement of charge. The dipole moment is calculated by multiplying the magnitude of the charge by the distance between the charges.

The dipole moment is a measure of the polarity of a molecule. It quantifies the separation of positive and negative charges within a molecule, indicating the molecule's overall polarity.

Mathematically, the dipole moment (μ) of a molecule is defined as the product of the magnitude of the charge (Q) and the distance (r) between the charges. It is represented by the formula:

μ = Q × r

The charge (Q) is given in coulombs (C), and the distance (r) is measured in meters (m). The direction of the dipole moment is from the negative charge towards the positive charge.

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ELECTRONICS (DC BIASING BJTs)
what is the bias (forward or reverse) of the emitter and collector
junctions when the transistor is in cutoff, active and saturation
regions. make a table please.

Answers

When a bipolar junction transistor (BJT) is operating in different regions, the bias (forward or reverse) of the emitter and collector junctions can vary.

Here is a table explaining the bias conditions for the emitter and collector junctions in the cutoff, active, and saturation regions:

| Region       | Emitter Junction Bias | Collector Junction Bias |

|--------------|----------------------|-------------------------|

| Cutoff                    | Reverse              | Reverse                 |

| Active                    | Forward              | Reverse                 |

| Saturation             | Forward              | Forward                 |

1. Cutoff Region:

Emitter Junction Bias: Reverse Bias

    In the cutoff region, the emitter junction is reverse-biased. This means that the voltage applied to the emitter terminal is higher than the voltage applied to the base terminal.

Collector Junction Bias: Reverse Bias

    Similarly, the collector junction is also reverse-biased in the cutoff region. The voltage applied to the collector terminal is higher than the voltage applied to the base terminal.

2. Active Region:

  - Emitter Junction Bias: Forward Bias

    In the active region, the emitter junction is forward-biased. This means that the voltage applied to the emitter terminal is lower than the voltage applied to the base terminal.

  - Collector Junction Bias: Reverse Bias

    The collector junction remains reverse-biased in the active region. The voltage applied to the collector terminal is higher than the voltage applied to the base terminal.

3. Saturation Region:

Emitter Junction Bias: Forward Bias

    In the saturation region, the emitter junction is still forward-biased. The voltage applied to the emitter terminal is lower than the voltage applied to the base terminal.

Collector Junction Bias: Forward Bias

    Unlike the previous regions, the collector junction is now forward-biased in the saturation region. The voltage applied to the collector terminal is lower than the voltage applied to the base terminal.

These bias conditions determine the operation of the BJT in different regions and play a crucial role in controlling its behavior as an amplifier or switch.

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