An object is moving in a circular motion law: s(t)=2t^3=3t^2+4. In t=2s, the module of its total acceleration is a=40m/s^2

Compute the Radius R of the circle. Compute the module of the acceleration in t=1s.

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Answer 1

The module of the acceleration in t = 1 is 18 m/s².

:Radius of the circle = 16m

Module of the acceleration in t = 1 is 18 m/s².

Given:An object is moving in a circular motion law:

s(t) = 2t³ = 3t² + 4.

In t = 2s, the module of its total acceleration is

a = 40m/s²

To Find: The Radius R of the circle. Compute the module of the acceleration in t=1s.

We are given the equation of the motion as follows,

s(t) = 2t³ = 3t² + 4

Differentiating the equation twice, we get v(t) and a(t).

v(t) = s'(t)

= 6t² + 6ta(t)

= v'(t)

= 12t + 6

Now, we have to find out the radius R of the circle.

Substituting the value of t = 2 in the equation s(t), we have,

s(2) = 2 x 2³ - 3 x 2² + 4

= 16 m

If R be the radius of the circle, then we have,

R = s(2) = 16 m

Also, we have to find the module of the acceleration in t = 1.

s(t) = 2t³ = 3t² + 4,

we have to find out the values of s(1), s'(1), and s''(1) by putting the value of t = 1.

s(1) = 2 x 1³ - 3 x 1² + 4 = 3 m

Now, we can calculate v(1) and a(1) by putting t = 1 in the equations v(t) and a(t).

v(1) = 6 x 1² + 6 x 1 = 12 m/sa(1) = 12 x 1 + 6 = 18 m/s²

Hence, the module of the acceleration in t = 1 is 18 m/s².

:Radius of the circle = 16m

Module of the acceleration in t = 1 is 18 m/s².

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Related Questions

1) Explain two ways to bring the air to saturation, and how are they related to dew point temperature and wet-bulb temperature. 2) For unsaturated ait, which of the following temperature has the lowest value? Air temperature, wet-bulb temperature, and dew point temperature. Briefly explain why.

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Two ways to bring air to saturation are adiabatic cooling (rising and expanding air) and mixing (combining warm moist air with colder air). For unsaturated air, the dew point temperature has the lowest value. It represents the temperature at which the air becomes saturated and condensation occurs.

There are two primary ways to bring the air to saturation: adiabatic cooling and mixing.

a) Adiabatic cooling: When air rises and expands due to changes in pressure, it experiences adiabatic cooling. As the air expands, it does work against its own molecules, leading to a decrease in temperature. If this cooling continues, the air may reach its dew point temperature, which is the temperature at which the air becomes saturated and condensation occurs.

b) Mixing: When warm, moist air mixes with colder air, the overall temperature of the mixture decreases. If the cooling brings the air to its dew point temperature, condensation occurs, and the air becomes saturated.

Both the dew point temperature and wet-bulb temperature are related to saturation. The dew point temperature is the temperature at which air becomes saturated when cooled at constant pressure. The wet-bulb temperature, on the other hand, is the temperature at which air becomes saturated when cooled by evaporative cooling. It is measured using a thermometer with a wet cloth covering the bulb.

For unsaturated air, the temperature with the lowest value is the dew point temperature. The dew point temperature represents the point at which the air becomes saturated and condensation occurs. It is a measure of the actual moisture content in the air. If the air is unsaturated, it means the actual moisture content is lower than the maximum capacity of the air to hold moisture at that temperature. Hence, the dew point temperature will be lower than the air temperature or the wet-bulb temperature.

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A point charge of 4 micro C is placed 40 cm from a second point charge of –2 micro C. Both of these charges lie on the x-axis with the larger charge at the origin. Find the point(s) on the x-axis where a third charge can be placed without experiencing any force.

Answers

The third charge should be placed at 16 cm from charge Q1 and 24 cm from charge Q2 on the x-axis.

Given values, Charge 1 (Q1) = 4 µC Charge 2 (Q2) = -2 µC Distance between the charges (r) = 40 cm = 0.4 m

The third charge should be placed on the x-axis.

Let’s assume it is ‘q’ and it is placed at a distance ‘x’ from the charge ‘Q1’ and ‘(0.4 – x)’ from the charge ‘Q2’.

Force acting on charge q due to charge Q1 can be expressed as, F1 = k(q)(Q1) / (x)²where k is the n Coulomb constat = 9 × 10⁹ Nm²/C².

Force acting on charge q due to charge Q2 can be expressed as, F2 = k(q)(Q2) / (0.4 – x)²

The net force acting on charge q should be equal to zero. So, F1 + F2 = 0

Therefore, k(q)(Q1) / (x)² + k(q)(Q2) / (0.4 – x)² = 0 On solving this equation, the values of x can be obtained which will give the position of the third charge where it does not experience any force.

Let’s solve it,(9 × 10⁹ Nm²/C²)(q)(4 µC) / (x)² + (9 × 10⁹ Nm²/C²)(q)(-2 µC) / (0.4 – x)² = 0

Simplifying,2 (0.4 – x)² = (x)²

Solving for ‘x’,x = 0.16

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2) (5 points) It is claimed that some professional baseball players can see which way the ball is spinning as it travels toward home plate. One way to judge this claim is to estimate the distance at which a batter can first hope to resolve two points on opposite sides of a baseball which has a diameter of 0.0738 m. A) Estimate the angle and the distance, assuming that the pupil of the eye has a diameter of 2.0 mm, the material within the eye has a refractive index of 1.36, and the wavelength of the light is 550 nm. B) Considering the distance between the pitcher's mound and home plate is 18.4 m, can you rule out or verify the claim based on your answer in part A)?

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The angle between two opposite points on the baseball is given by tan θ = (0.0738 m)/xθ = tan⁻¹ (0.0738 m/x). The distance at which the batter can resolve two points on opposite sides of a baseball is 207 m.

A) To estimate the angle and the distance, assuming that the pupil of the eye has a diameter of 2.0 mm, the material within the eye has a refractive index of 1.36, and the wavelength of the light is 550 nm, we can use the Rayleigh criterion for the angular resolution of an eye.

According to the Rayleigh criterion, the minimum angle of resolution θ for an eye is given by: θ = 1.22 λ/D

where λ is the wavelength of light, D is the diameter of the pupil of the eye, and 1.22 is a constant factor.

To resolve two points on opposite sides of a baseball of diameter 0.0738 m, we need to calculate the angle between those two points when viewed from the batter's perspective, assuming that the baseball is located at a certain distance from the batter. We can then compare this angle with the minimum angle of resolution of the batter's eye to see if the two points can be resolved.

Let's assume that the baseball is located at a distance of x meters from the batter. Then, the angle between two opposite points on the baseball is given by:

tan θ = (0.0738 m)/xθ = tan⁻¹ (0.0738 m/x)

Using the Rayleigh criterion for the angular resolution of an eye with a pupil diameter of 2.0 mm, a refractive index of 1.36, and a wavelength of 550 nm,

we get:

θ = 1.22 (550 nm)/(2.0 mm)(1.36)θ = 1.22 (550 × 10⁻⁹ m)/(2.0 × 10⁻³ m)(1.36)θ = 3.56 × 10⁻⁴ radians

Therefore, the distance at which the batter can resolve two points on opposite sides of a baseball is:

x = (0.0738 m)/tan θx = (0.0738 m)/tan (3.56 × 10⁻⁴ radians)x = 207 m

B) Considering the distance between the pitcher's mound and home plate is 18.4 m, we can rule out the claim that some professional baseball players can see which way the ball is spinning as it travels toward home plate because the estimated distance at which a batter can first hope to resolve two points on opposite sides of a baseball is much greater than the distance between the pitcher's mound and home plate (207 m > 18.4 m). Therefore, it is unlikely that a batter can see the direction of spin of the ball based on the angular resolution of their eyes.

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The electric field strength 27 cm from the center of a uniformly charged, hollow metal sphere is 12,000 N/C. The sphere is 7.0 cm in diameter, and all the charge is on the surface. Part A What is the magnitude of the surface charge density in nC/cm²? Express your answer in nanocoulombs per square centimeter. ΑΣΦ ? P -11 n= 6.77 107

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The magnitude of the surface charge density in nC/cm² is 4.65 nC/cm².

Given: Electric field strength at 27 cm from the center of a uniformly charged, hollow metal sphere is 12,000 N/C.The sphere is 7.0 cm in diameter, and all the charge is on the surface.

Part A: Find the magnitude of the surface charge density in nC/cm².

The electric field strength at a distance r from the center of uniformly charged sphere of radius R and total charge Q is given by:

E = Q/4πε0r²

Where

,ε0 = 8.85 x 10⁻¹² C²/N.m²

= permittivity of free space

For a uniformly charged sphere, the surface charge density is given by;

σ = Q/4πR²

We have,

E = Q/4πε0r² ----(1)

σ = Q/4πR² ----(2)

From (1) and (2),

Q = σ x 4πR²

Substituting the value of Q in equation (1),

E = (σ x 4πR²)/4πε0r²

Simplifying,

E = σ(R/r)²ε0

⇒ σ = E/ε0(R/r)²

σ = (12,000 N/C)/(8.85 x 10⁻¹² C²/N.m²) (3.5 x 10⁻² m/2.7 m)²

σ = 4.65 x 10⁻⁹ N.m²/C

σ = 4.65 x 10⁻⁹ C/m²

σ = 4.65 x 10⁻⁹ x 10⁹ nC/m²

σ = 4.65 nC/m²

σ = 4.65 nC/cm²

Therefore, the magnitude of the surface charge density in nC/cm² is 4.65 nC/cm².

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Using the parameters of the previous exercise, calculate the spontaneous emission wavelength and the optical power of the LED at a bias voltage of 1 V assuming that the extraction efficiency is 10% and the surface of the diode is 1 mm.

The p and n sides of a GaAs LED have a doping concentration of 1018 cm-³. The emission of light is caused mainly by the injection of electrons into the p-side. There is a recombination center in the active region with a time constant of 5 x 10-9 s. Assume that the lifetime of the electrons and the holes is the same and that De = 120 cm² s-1, Dh = 0.01 De. What is the injection efficiency with bias voltage of 1 V, if the coefficient of band-to-band radiative recombination is By = 7.2 x 10-10 cm³ s-1?

Answers

The optical power (P) can be calculated using the formula: P = R * λ / (hc / q), where R is the emission rate, λ is the wavelength, h is Planck's constant, c is the speed of light, and q is the electron charge. Given the extraction efficiency of 10%, we can multiply the calculated optical power by 0.1 to account for the extraction efficiency

Step 1: Calculate the injection efficiency (η):Injection efficiency (η) can be determined using the formula: η = (τn + τp) / (τn + τp + τr), where τn and τp are the lifetimes of electrons and holes, respectively, and τr is the recombination center time constant.Given that the lifetime of electrons and holes is the same (τn = τp) and the recombination center time constant is 5 x 10^(-9) s, we can substitute these values into the formula: η = (2τn) / (2τn + 5 x 10^(-9) s). Step 2: Calculate the emission rate (R): The emission rate (R) can be calculated using the formula: R = η * By * (pn - ni²), where By is the coefficient of band-to-band radiative recombination, pn is the excess carrier concentration, and ni is the intrinsic carrier concentration.Given that the doping concentration on both the p and n sides is 10^18 cm^(-3), we can calculate pn = p - n = 10^18 cm^(-3) - 10^18 cm^(-3) = 0. Since the lifetime of electrons and holes is the same, we can use either the p-side or n-side concentration to calculate ni. Step 3: Calculate the spontaneous emission wavelength (λ):The spontaneous emission wavelength (λ) can be calculated using the formula: λ = hc / E, where h is Planck's constant, c is the speed of light, and E is the energy of a photon. The energy of a photon (E) can be calculated using the formula: E = hc / λ, where h is Planck's constant and c is the speed of light. Step 4: Calculate the optical power (P): The optical power (P) can be calculated using the formula: P = R * λ / (hc / q), where R is the emission rate, λ is the wavelength, h is Planck's constant, c is the speed of light, and q is the electron charge. Given the extraction efficiency of 10%, we can multiply the calculated optical power by 0.1 to account for the extraction efficiency. Note: Make sure to use consistent units throughout the calculations. Please provide the necessary values for the electron charge (q) and the speed of light (c) in the exercise to proceed with the calculation.

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Content Substance Latent Heat (3/kg) Steam water 2,260,000 Toe en water 333.000 Answer the following questions dealing with methods of heat transfor Radiation An orange orb has an emissivity of 0.237 and its surroundings are at 310°C. The orange orbis absorbing heat via radiation at a rate of 967 W and it is emitting heat via radiation at a rate of 585 W. Determine the surface area of the orb, the temperature of the orb, & Pret. A- 187491 mg x Torb 1 Units are required for this answer. Pret 1 Units are required for this answer. Convection The exterior walls of a house have a total area of 220 m² and are at 13.2°C and the surrounding air is at 6.6° C. Find the rate of convective cooling of the walls, assuming a convection coefficient of 2.8 W/m²"C). Since you're looking for the rate of cooling, your answer should be entered as positive. Xunts are required for this answe Conduction Ice of mass 14.8 kg at 0°C is placed in an ice chest. The ice chest has 2 cm thick walls of thermal conductivity 0.02 Wim-K and a surface area of 1.39 m², Express your answers with appropriata mks units. ) How much heat must be absorbed by the ice during the melting process? ✓ (b) If the outer surface of the Ice chest is at 33° C, how long will it take for the Ice to melt? 04587 X 4925400 J

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Radiation An orange orb has an emissivity of 0.237 and its surroundings are at 310°C. The orange orb is absorbing heat via radiation at a rate of 967 W and it is emitting heat via radiation at a rate of 585 W. Determine the surface area of the orb, the temperature of the orb, & Pret.

To find the surface area of the orb Solve for A q = eσAT^4 Rearrange to isolate A:

A = q / (eσT^4)Substitute the given values:A = 967 / (0.237 × 5.67 × 10^-8 × 310^4)A = 0.0315 m^2To find the temperature of the orb Solve for T:T = (q / (eσA))^0.25Substitute the given values T = (967 / (0.237 × 5.67 × 10^-8 × 0.0315))^0.25T = 472 KTo find the Pret:Pret = A × T^4Pret = 0.0315 × 472^4Pret = 187491 mg x TorbConvectionThe exterior walls of a house have a total area of 220 m² and are at 13.2°C and the surrounding air is at 6.6°

C. Find the rate of convective cooling of the walls, assuming a convection coefficient of 2.8 W/m²"C). Since you're looking for the rate of cooling, your answer should be entered as positive.q = hA(Tw - Tinf)Solve for q:

q = hA(Tw - Tinf)q = 2.8 × 220 × (13.2 - 6.6)q = 3,080 WConductionIce of mass 14.8 kg at 0°C is placed in an ice chest.

The ice chest has 2 cm thick walls of thermal conductivity 0.02 Wim-K and a surface area of 1.39 m². How much heat must be absorbed by the ice during the melting process?Solve for q:

q = mLq = 14.8 kg × 333,000 J/kgq = 4,930,400 JIf the outer surface of the Ice chest is at 33° C, how long will it take for the Ice to melt?

Solve for t:

t = q / (kAΔT)t = 4,930,400 / (0.02 × 1.39 × (33 - 0))t = 4.587 hoursTherefore, the answer to the given problem is:Surface area of the orb = 0.0315 m²Temperature of the orb = 472 KRate of convective cooling of the walls = 3,080 WHeat absorbed by the ice during the melting process = 4,930,400 JTime it will take for the ice to melt = 4.587 hours.

About Radiation

Radiation is heat transfer without an intermediary substance (media/medium). The tool used to determine the presence of heat emission is a thermoscope. Example of radiation: sunlight reaches the earth. Excessive radiation can increase the risk of cancer. The dangers of electromagnetic radiation are known to cause several cancers, which originate from exposure to ultraviolet (UV) radiation, such as UV-A and UV-B.

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A 15 units LED COB lights consisting of 10 nos. of 20 watts each is connected to one power source of 230 volts single phase. Determine the size of circuit breaker and wires to be used if the Power fac

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In a circuit that contains 15 units of LED COB lights, each consisting of 10 nos. of 20 watts, and connected to a power source of 230 volts single phase, we need to determine the size of the circuit breaker and wires to be used if the Power factor is 0.85.  25 A circuit breaker and a 12 AWG copper wire can be used in this circuit.

Since Power factor = Real Power (W) / Apparent Power (VA), we can determine the apparent power as follows:

Apparent Power (VA) = Real Power (W) / Power factor

Therefore, Apparent Power (VA) = (10 x 20) x 15 / 0.85 = 4235.29 VA

Since we are using a single-phase supply, we can use the following formula to determine the current in the circuit:

I = S / (V x P.F)where I = Current (A), S = Apparent power (VA), V = Voltage (V), and P.F = Power factor.

Therefore, Current (I) = 4235.29 / (230 x 0.85) = 22.08 A

We can use a circuit breaker that can handle a current of at least 22.08 A.

Let's assume we select a 25 A circuit breaker.Using the formula for power, we can determine the power (in watts) loss in the wire:

P = I^2 x Rwhere P = Power loss (W), I = Current (A), and R = Resistance (Ω).

Since the distance of the wire is not given, let's assume it is 100 feet.

Using the American Wire Gauge (AWG) table, we can determine the resistance of the wire per 1000 feet. Let's assume we use a copper wire with an AWG of 12.

According to the table, the resistance of the wire per 1000 feet is 0.8 Ω.

Therefore, the resistance of the wire for 100 feet is 0.08 Ω.

Power loss (P) = (22.08)^2 x 0.08 = 39.1 W

Since the power loss is less than 3% of the total power (which is 3 x 4235.29 = 12705.87 W), we can use a wire that is suitable for carrying a current of at least 22.08 A. According to the AWG table, a 12 AWG copper wire can carry a current of up to 25 A.

Therefore, a 25 A circuit breaker and a 12 AWG copper wire can be used in this circuit.

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Find the change in the -1 BACK E.M.F when the applied voltage on D.C shunt motor 250 volts and armature resistance 2 ohms and armature current on full load = 40 ampers. and on no load .10 ampers =

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The change in the back EMF when the applied voltage on the DC shunt motor is 250 volts, the armature resistance is 2 ohms, and on no load is 10 amperes, is -60 volts.

The back EMF (E) of a DC shunt motor can be calculated using the formula:

E = V - Ia × Ra

where:

V is the applied voltage (250 volts),

Ia is the armature current, and

Ra is the armature resistance (2 ohms).

On full load:

Given that the armature current on full load is 40 amperes, we can calculate the back EMF on full load:

E full load = V - Ia_full_load × Ra

E full load = 250 V - 40 A × 2 Ω

E full load = 250 V - 80 V

E full load = 170 V

On no load:

Given that the armature current on no load is 10 amperes, we can calculate the back EMF on no load:

E no load = V - Ia no load × Ra

E no load = 250 V - 10 A × 2 Ω

E no load = 250 V - 20 V

E no load = 230 V

Now, let's find the change in back EMF:

Change in E = E full load - E no load

Change in E = 170 V - 230 V

Change in E = -60 V

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Which CRA statement of account would be received by threshold 1
and 2
accelerated remitters?
A. TD1X
B. PD7A-AR
C PD7A(TM)
D. PDTA"

Answers

Threshold 1 and Threshold 2 Accelerated Remitters will receive a PD7A-AR CRA Statement of Account. Option B is correct.

The CRA Statement of Account that would be received by Threshold 1 and 2 accelerated remitters is PD7A-AR.

CRA Statement of Account. The CRA statement of account is a statement of your account with the Canada Revenue Agency (CRA) which shows the balance owed or the credit available to you. CRA account statements can be used to check your account balance, view transactions, and payments made towards your balance.

In conclusion, Threshold 1 and 2 accelerated remitters receive a PD7A-AR CRA Statement of Account.

Therefore, Option B is correct.

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A shell is fired from a gun situated on a hill 40 feet above the ground. The gun is fired with an angle of elevation 30 degrees above horizontal with an initial speed of 400ft/s. How far away horizontally ( x-direction) does the shell hit the ground? Hint: The y-position of the shell is 0 when it hits the ground. 12.697ft 43.983ft 3000ft 4398.3ft

Answers

The shell hits the ground at a horizontal distance of approximately 774.33ft from the gun.

The horizontal distance of a shell that is fired from a gun situated on a hill 40 feet above the ground and fired with an angle of elevation of 30 degrees above horizontal with an initial speed of 400ft/s can be calculated as follows;

The equation of motion for horizontal direction is x= v * tcosθ  where x is the horizontal displacement, v is the initial velocity, θ is the angle of projection and t is the time taken to reach the maximum height which is the same as the time taken to fall back to the ground. The angle of elevation is 30 degrees above horizontal, this means the angle of projection is 90 - 30 = 60 degrees from the horizontal direction.

Using trigonometric ratios, the horizontal and vertical components of the initial velocity can be calculated;

cos 60 = adj/hypotenuse = v_x / 400 v_x = 400 cos 60 = 200√3ft/s

The vertical component of velocity can be calculated using the equation; sinθ = opposite / hypotenuse v_y = 400 sin 60 = 200√3ft/s

The time taken to reach the maximum height can be calculated using the vertical component of velocity; v_y = u + at where u = 200√3ft/s, a = -32ft/s² (acceleration due to gravity)at maximum height v = 0v = u + at0 = 200√3 - 32t

Max height h = v²/2g where g = 32ft/s²h = (200√3)² / (2 * 32) = 1500ft

To calculate the time taken to reach the maximum height, time of flight, and horizontal distance, we'll use the following equations; time of flight = 2t = 2 * (200√3 / 32) = 3.872s

Horizontal distance, x = v_xt = 200√3 * 3.872 = 774.33ft

Therefore, the shell hits the ground at a horizontal distance of approximately 774.33ft from the gun.

Answer: 774.33ft

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In a wire, 6.63 x 1020 electrons flow past any point during 2.15 s. What is the magnitude I of the current in the wire?

Answers

The magnitude of the current in the wire is 4.93 A.

In a wire, 6.63 x 10²⁰ electrons flow past any point during 2.15 s. What is the magnitude I of the current in the wire?Current is the flow of electrical charge carriers, such as electrons or ions, that pass through an electric circuit. This flow of charge carriers is called an electric current. Electric current is denoted by the symbol "I."The amount of charge that passes through a wire per unit of time is known as the current.

The unit of current is the ampere (A), which is defined as a flow of one Coulomb of charge per second. One ampere of current is represented by a flow of 6.24 x 10¹⁸ electrons per second through a conductor. A current I can be calculated using the formula: Q = n x e

Where, Q = electric charge e = the magnitude of the electric charge of an electron = 1.6 x 10⁻¹⁹ Cn = number of electrons I = Q/t

Where, I = current in Amperes t = time in seconds Using the given values: n = 6.63 x 10²⁰ e, t

= 2.15s, and e = 1.6 x 10⁻¹⁹C, we can calculate the electric charge Q.Q = n x e

Q = 6.63 x 10²⁰ electrons x 1.6 x 10⁻¹⁹ C/electron

Q = 10.6 C

Now we can calculate the current I using the formula: I = Q/tI = 10.6 C/2.15 s I = 4.93A

Therefore, the magnitude of the current in the wire is 4.93 A.

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A projectile is launched at an angle of 33° and lands 25 s later at the same height as it was launched.
Part b): What is the maximum altitude (in m) ? Give your answer to two significant figures without units.

Answers

To find the maximum altitude of the projectile, we can use the fact that the time it takes for the projectile to reach its maximum height is half of the total time of flight.
In this case, the total time of flight is given as 25 seconds. Therefore, the time taken to reach the maximum altitude would be half of that, which is 12.5 seconds.

To find the maximum altitude, we can use the equation for the vertical displacement of a projectile:
Δy = v₀y * t + 0.5 * g * t²

where Δy is the vertical displacement, v₀y is the initial vertical velocity, t is the time, and g is the acceleration due to gravity.

Since the projectile is launched at an angle of 33°, we can find the initial vertical velocity using the equation:

v₀y = v₀ * sin(θ)

where v₀ is the initial velocity and θ is the launch angle.

Given that the height of the projectile at landing is the same as the initial height, we know that the vertical displacement is zero. Therefore, we can set Δy to zero in the equation and solve for the maximum altitude.

0 = v₀y * t + 0.5 * g * t²

Substituting the values we know:

0 = v₀ * sin(θ) * 12.5 + 0.5 * 9.8 * (12.5)²

Now, we can solve this equation for v₀.

Once we have v₀, we can find the maximum altitude using the equation:

altitude = v₀y² / (2 * g)

Remember to round your answer to two significant figures without units.

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Question 9 of 18 < -/1 = : View Policies Current Attempt in Progress One long wire lies along an x axis and carries a current of 57 A in the positive x direction. A second long wire is perpendicular to the xy plane, passes through the point (0, 5.4 m, 0), and carries a current of 41 A in the positive z direction. What is the magnitude of the resulting magnetic field at the point (0, 1.5 m, 0)? Number i Units

Answers

The magnitude of the resulting magnetic field at the point (0, 1.5 m, 0) is 5.0004 × 10^-5 T.

We can find the magnetic field at the point (0, 1.5 m, 0) due to the given long wire carrying current in the following manner.

Step 1 Given, First wire carrying current of magnitude I1 = 57 A in the positive x direction.

Second wire carrying current of magnitude I2 = 41 A in the positive z direction passing through the point (0, 5.4 m, 0) in the xy plane.

Step 2 We need to find the magnetic field at the point P (0, 1.5 m, 0) due to the given wire carrying current using Biot-Savart law: Biot-Savart law, B → Magnetic field, µ0 → Permeability of free space I → Current in the wire, dl → Infinitesimal element of the wire, R → Distance between the wire and the point P, d → Direction of the current.Biot-Savart law formula, `B= (µ0I)/(4πR²) × dl × d`

Step 3 The distance R is the distance between the infinitesimal element dl and the point P. The distance R will be the same for the entire wire of infinite length. We can consider the wire to be composed of small infinitesimal elements of length dl. Therefore, the magnetic field at the point P due to the entire wire is the vector sum of the magnetic fields produced by all the small infinitesimal elements of the wire. Mathematically, `B = ∫ (µ0I)/(4πR²) dl × d`

Step 4 Now, we can divide the problem into two parts since the two wires are perpendicular to each other. The magnetic field at the point P due to the first wire carrying current will be in the y-direction only because it is perpendicular to the x-axis. Similarly, the magnetic field at the point P due to the second wire carrying current will be in the x-direction only because it is perpendicular to the z-axis. Hence, the two magnetic fields can be treated independently and then combined together using vector addition. Let us first calculate the magnetic field at the point P due to the first wire.

Step 5 Magnetic field at the point P due to the first wire carrying current.

Magnitude of the magnetic field at the point P due to the first wire is given by `B1 = (µ0I1)/(2πR1)`.

The distance R1 is the distance between the infinitesimal element dl and the point P.`R1 = sqrt((1.5)² + (5.4)²) = sqrt(30.51) = 5.5238 m`.µ0 = `4π × 10^-7 T m A^-1`.B1 = `(4π × 10^-7 T m A^-1 × 57 A)/(2π × 5.5238 m) = 2.5765 × 10^-5 T`.

The magnetic field at the point P due to the first wire carrying current is 2.5765 × 10^-5 T in the positive y direction.

Step 6 Magnetic field at the point P due to the second wire carrying current

Magnitude of the magnetic field at the point P due to the second wire is given by `B2 = (µ0I2)/(2πR2)`.

The distance R2 is the distance between the infinitesimal element dl and the point P.`R2 = 1.5 m`.µ0 = `4π × 10^-7 T m A^-1`.B2 = `(4π × 10^-7 T m A^-1 × 41 A)/(2π × 1.5 m) = 4.3645 × 10^-5 T`.

The magnetic field at the point P due to the second wire carrying current is 4.3645 × 10^-5 T in the positive x direction.

Step 7 Finally, we can find the magnitude of the resulting magnetic field at the point P by adding the two magnetic fields vectorially.`B = sqrt(B1² + B2²) = sqrt((2.5765 × 10^-5)² + (4.3645 × 10^-5)²) = 5.0004 × 10^-5 T`

The magnitude of the resulting magnetic field at the point (0, 1.5 m, 0) is 5.0004 × 10^-5 T.

Answer: 5.0004 × 10^-5 T

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An a-particle has a charge of +2e and a mass of 6.64×10 −27
kg. It is accelerated from rest through a potential difference that has a value of 1.20×10 6
V and then enters a uniform magnetic field whose magnitude is 2.20 T. The a-particle moves perpendicular to the magnetic field at all times. What is (a) the speed of the a-particle, (b) the magnitude of the magnetic force on it, and (c) the radius of its circular path?

Answers

(a) The speed of the α-particle is approximately 3.61 × 10⁷ m/s. (b) The magnitude of the magnetic force on the α-particle is approximately 1.59 × 10⁽⁻¹³⁾⁾ N. (c) The radius of the α-particle's circular path is approximately 1.51 × 10⁽⁻³⁾⁾) m.

(a) To find the speed of the α-particle, we can use the equation relating kinetic energy and potential difference.

The potential difference (V) is related to the kinetic energy (K) by:

K = e * V

where e is the charge of the α-particle (+2e).

Substituting the given values:

V = 1.20 × 10⁶ V

e = +2e (charge of α-particle)

K = (+2e) * (1.20 × 10⁶V)

Now, we can use the kinetic energy formula to find the speed (v) of the α-particle:

K = (1/2) * m * v²

where m is the mass of the α-particle (6.64 × 10⁽⁻²⁷⁾kg).

Solving for v:

v = sqrt((2 * K) / m)

Substituting the known values:

v = sqrt((2 * (+2e) * (1.20 × 10⁶V)) / (6.64 × 10⁽⁻²⁷⁾ kg))

Calculating this, we find:

v = 3.61 × 10⁷ m/s

Therefore, the speed of the α-particle is approximately 3.61 × 10⁷m/s.

(b) The magnitude of the magnetic force on the α-particle can be calculated using the equation:

F = q * v * B

where q is the charge of the α-particle (+2e), v is the speed of the α-particle, and B is the magnitude of the magnetic field.

Substituting the known values:

q = +2e (charge of α-particle)

v = 3.61 × 10⁷ m/s

B = 2.20 T

F = (+2e) * (3.61 × 10⁷ m/s) * (2.20 T)

Calculating this, we find:

F = 1.59 × 10⁽⁻¹³⁾⁾N

Therefore, the magnitude of the magnetic force on the α-particle is approximately 1.59 × 10⁽⁻¹³⁾⁾N.

(c) The radius of the circular path can be determined using the formula for the centripetal force:

F = (m * v²) / r

\where F is the magnetic force on the α-particle, m is the mass of the α-particle, v is the speed of the α-particle, and r is the radius of the circular path.

Rearranging the equation to solve for r:

r = (m * v) / F

Substituting the known values:

m = 6.64 × 10⁽⁻²⁷⁾⁾ kg

v = 3.61 × 10^7 m/s

F = 1.59 × 10⁽⁻¹³⁾⁾N

r = (6.64 × 10⁽⁻²⁷⁾ kg * 3.61 × 10^7 m/s) / (1.59 × 10⁽⁻¹³⁾ N)

Calculating this, we find:

r = 1.51 × 10⁽⁻³⁾) m

Therefore, the radius of the α-particle's circular path is approximately 1.51 × 10⁽⁻³⁾ m.

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i. ii. Explain the operation of semiconductor transistor. An npn-transistor is biased in the forward- active mode. The base current is IB = 8ŅA and the emitter current is Ic = 6.3 mA. Determine B, a, and IE

Answers

the values of B, a, and IE are 787.5, 1139.29, and 6.308 mA, respectively.

A semiconductor transistor is a device used in electronics to amplify, oscillate, and switch electronic signals. There are two main types of transistors, the bipolar junction transistor (BJT) and the field-effect transistor (FET).NPN Transistor is a type of bipolar junction transistor. It has three terminals named emitter, base, and collector. It is used as an amplifier or a switch in electronic circuits.

In an NPN transistor, a small current at the base can control a larger current flow between the emitter and the collector. This is achieved through a process known as minority carrier injection, where the small current flowing through the base creates an excess of electrons in the base region, which then diffuse into the collector region, allowing a larger current to flow between the emitter and the collector.

When an npn transistor is biased in the forward-active mode, the following conditions must be met: The base-emitter junction must be forward-biased. The collector-base junction must be reverse-biased. The base current IB must be greater than zero. The collector current Ic must be greater than zero.

In order to find B, a, and IE, we need to use the following equations: B = Ic / IB, a = Ic / (IB * Vbe), and IE = Ic + Ib.

Where Vbe is the base-emitter voltage, which is typically around 0.7V for an NPN transistor. Using the given values, we can calculate:

B = Ic / IB = 6.3 mA / 8 nA = 787.5a = Ic / (IB * Vbe)

= 6.3 mA / (8 nA * 0.7V) = 1139.29IE = Ic + Ib = 6.3 mA + 8 nA = 6.308 mA

Therefore, the values of B, a, and IE are 787.5, 1139.29, and 6.308 mA, respectively.

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A right-hand circularly polarized wave at 1.5 GHz is propagating through a material with & = 6.2 and y = 2.0 and arrives at an interface with air. It is incident at an elevation angle of 15 and an azimuthal angle of 45º. The wave has an amplitude of 12 V/m. The interface lies in the x-y plane. A. Calulate the incident angle B. Write the expression for the incident wave vectorr C. Write the unit vectorrs for TE and TM polarization respectively. D. Write the polarization vectorrs of the incident electric field. E. Calculate the critical angle and the Brewester's angle for this configuration for both TE and TM polarizations. F. Calculate the reflection and transmission coefficients for both polarizations. G. Calculate the percent reflectiance and transmittance for both polarizations. Verify conservation of energy. H. Write expressions for the reflected and transmitted wave vectorrs .

Answers

The incident angle is 90° - 15° = 75°. B. The expression for the incident wave vector can be written as: k₁ = k₀ * sin(θ₁) * cos(φ₁) * y + k₀ * sin(θ₁) * sin(φ₁) * x - k₀ * cos(θ₁) * z. C. The unit vectors for TE x * cos(φ₁) - y * sin(φ₁). D. The polarization vector: E_inc = E₀ * exp(i * k₁ * r). E. The critical angle (θ_c) and Brewster's angle (θ_B) arcsin(1 / √μ), and arctan(√μ).

A. We may utilise the elevation angle supplied to compute the incidence angle. The incidence angle is equal to the complement of the elevation angle since the interface is in the x-y plane.

So, the incident angle is 90° - 15° = 75°.

B. The expression for the incident wave vector can be written as:

k₁ = k₀ * sin(θ₁) * cos(φ₁) * y + k₀ * sin(θ₁) * sin(φ₁) * x - k₀ * cos(θ₁) * z

Where k₀ is the vacuum wave vector, θ₁ is the incident angle, and φ₁ is the azimuthal angle.

C. The unit vectors for TE (transverse electric) and TM (transverse magnetic) polarizations:

TE polarization: y

TM polarization: x * cos(φ₁) - y * sin(φ₁)

D. The polarization vector of the incident electric field can be written as:

E_inc = E₀ * exp(i * k₁ * r)

Where E₀ is the amplitude of the electric field and r is the position vector.

E. The critical angle (θ_c) and Brewster's angle (θ_B):

For TE polarization:

θ_c = arcsin(1 / √ε)

θ_B = arctan(√ε)

For TM polarization:

θ_c = arcsin(1 / √μ)

θ_B = arctan(√μ)

F. The reflection coefficient (ρ):

ρ = (Z₁ * cos(θ₁) - Z₂ * cos(θ₂)) / (Z₁ * cos(θ₁) + Z₂ * cos(θ₂))

τ = (2 * Z₁ * cos(θ₁)) / (Z₁ * cos(θ₁) + Z₂ * cos(θ₂))

G. The percent reflectance (R) and transmittance (T):

R = |ρ|² * 100%

T = |τ|² * 100%

H. The reflected wave vector (kᵣ) and transmitted wave vector (kₜ) can be written as:

kᵣ = k₁ - 2 * k₀ * cos(θ₁) * y

kₜ = k₂ = k₀ * sin(θ₂) * cos(φ₂) * y + k₀ * sin(θ₂) * sin(φ₂) * x + k₀ * cos(θ₂) * z

Thus, these can be the expressions asked.

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4. Find the angle between the orbital angular momentum with the z-axis of a hydrogen atom in the state n = 4, I = 3, m, = -2.

Answers

The angle between the orbital angular momentum with the z-axis of a hydrogen atom in the state n = 4, I = 3, m, = -2 is θ = cos⁻¹ (-1/√3).

Given that the hydrogen atom is in the state n = 4, l = 3 and m = -2. We can use the expression for calculating the magnitude of the orbital angular momentum as below:

L = √(l(l+1) × h/2π) Where h is the Planck's constant and π is 3.14.l is the azimuthal quantum number The azimuthal quantum number is given by l = n - 1The value of n is given as n = 4l = n - 1 = 4 - 1 = 3

Using this value of l in the above equation: L = √(3(3+1) × h/2π)

= √(12 × h/2π)

Now, the magnitude of the projection of the angular momentum, Lz is given by Lz = m × h/2πThe angle that the angular momentum vector makes with the z-axis is given by cos(θ) = Lz/L

⇒ cos(θ) = m/√(l(l+1))

Putting in the values, we have cos(θ) = -2/√(3(3+1))

= -2/√12On simplifying, cos(θ) = -1/√3 => θ

= cos⁻¹ (-1/√3)

Therefore, the angle between the orbital angular momentum with the z-axis of a hydrogen atom in the state n = 4, I = 3, m, = -2 is θ

= cos⁻¹ (-1/√3).

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How is it that an aircraft flying over San Diego can receive a weak navigation transmitter (112.5 MHz) located in LA when there is a strong FM radio station (106.5 MHz) transmitting directly under the aircraft? Because the navigation receiver has a highpass filter that passes all frequencies above 88 MHz. Because the navigation receiver in the aircraft has a bandpass filter that passes 112.5 MHz but rejects 106.5 MHz. Because the broadcast transmitter aims its radio signal away from passing aircraft. Because the phasors associated with navigation signals rotate in the opposite direction as those from broadcast signals.

Answers

The phasors associated with navigation signals rotate in the same direction as those from broadcast signals. It is the bandpass filter that filters out the frequencies that are not needed for the navigation system in the aircraft.

The reason that an aircraft flying over San Diego can receive a weak navigation transmitter (112.5 MHz) located in LA when there is a strong FM radio station (106.5 MHz) transmitting directly under the aircraft is that the navigation receiver in the aircraft has a bandpass filter that passes 112.5 MHz but rejects 106.5 MHz. The filter only allows signals within a particular range of frequencies to be passed through.

In this case, the navigation receiver has a bandpass filter that allows only frequencies around 112.5 MHz to pass through. Therefore, the signal from the navigation transmitter at LA is allowed to pass through, and the signal from the FM radio station is rejected because it is not in the range of frequencies allowed by the bandpass filter.

The phasors associated with navigation signals rotate in the same direction as those from broadcast signals. It is the bandpass filter that filters out the frequencies that are not needed for the navigation system in the aircraft.

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Three identical resistors dissipating a total power of 3000 W are connected in Wye across a 3 phase, 550 V line. The value of resistance will be around.

Answers

Therefore, the value of resistance will be around 57.87 Ω.  Given that,

Total power = 3000 W

Number of resistors connected in Wye = 3

Voltage across the line = 550 V

To find the resistance value in the circuit, the following formula is used:

Power in a 3-phase circuit = 1.732 × VL × IL × power factor

The wye connection configuration is given below. The voltage across each resistor in Wye connected configuration is 550 / √3, which is equal to 317.73 V.

Therefore, the current flowing through each resistor will be:

I = V / R

Here, V = 317.73 V (Voltage across each resistor)

P = 1000 W (Total power / Number of resistors)

I = P / V

We know that P = VI.

I = P / V = 1000 / 317.73 = 3.15 A

Therefore, the resistance of each resistor in the circuit will be:

R = V / IR = 317.73 / 3.15 = 100.87 Ω

The total resistance in the circuit is calculated using the following formula:

Rt = R / (n * n)

Rt = 100.87 / (3 × 3)

Rt = 3.54 Ω

The final resistance value in the circuit is calculated using the following formula:

R = (Rt × R) / (Rt + R)

R = (3.54 × 100.87) / (3.54 + 100.87)

R = 57.87 Ω (approximately)

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What is the phasor representation of 1(t) = locos(wt) at half-period? a. ← b. → c. Arrow up d. Arrow down

Answers

the phasor representation will be a vector pointing upward or in the direction of the arrow up symbol.

The phasor representation of 1(t) = locos(wt) at half-period is represented by the arrow up symbol.

Let's break down the problem,

First, let's determine what a phasor is. A phasor is a vector that rotates with the same frequency as a sinusoidal function. It helps in representing the sinusoidal function as a sum of cosine and sine components.

Now let's determine the phasor representation of the given equation:1(t) = locos(wt)

The phasor representation of a cosine function is a vector rotating in a counterclockwise direction. In this case, the cosine function is at a half-period. Therefore, the phasor representation will be a vector pointing upward or in the direction of the arrow up symbol.

Hence, the correct option is c. Arrow up.

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Function:
function [x, y, xyPeak] = projectileTrajectory( v0, theta, y0
)
%[x, y, peak] = projectileTrajectory(v0, theta, y0)
%Computes the trajectory of a projectile as 200 x,y points
%Inputs:
% v0 =
Consider the motion of an object modeled with ideal projectile motion (neglecting air resistance). The trajectory of the object can be derived from basic physics and is given by the formula: \( y=x \t

Answers

The projectile Trajectory function calculates the trajectory of a projectile by computing 200 points for x, y and peak given initial velocity, angle and height.

The projectile Trajectory function is used to calculate the trajectory of a projectile, assuming ideal projectile motion (i.e., neglecting air resistance). This function computes 200 points for x, y, and peak based on the following inputs:

[tex]v_0[/tex] = initial velocity, theta = angle of projection, [tex]y_0[/tex] = initial height of the object.

The trajectory of the object is derived from basic physics and is given by the formula:

[tex]y = x * tan(theta) - (g * x^2) / (2 * v_0^2 * cos(theta)^2) + y_0[/tex] where g is the acceleration due to gravity.

This formula is used to calculate the y-coordinate for each point along the x-axis. The maximum height of the trajectory (i.e., the peak) is also computed. The output of the function is x, y, and peak.

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Two charges, of +13 and -5 µC, are separated by 190 mm. What is the potential at the midpoint A of a line joining the two charges? kv At what point B is the electric potential equal to zero? cm from the 13 µC charge

Answers

The potential at the midpoint A of a line joining the two charges of +13 and -5 µC separated by a distance of 190 mm can be calculated as follows:The value of electric potential due to a point charge can be calculated using the formula,V = kq/r. The point B is located at a distance of 5.28 cm from the 13 µC charge.

Where k is the Coulomb's constant, q is the charge and r is the distance from the charge to the point where the electric potential is to be determined.The total potential at point A due to both the charges will be the sum of the potentials due to each charge. Let V1 be the potential due to the charge of +13 µC and V2 be the potential due to the charge of -5 µC.Since the charges are opposite in nature, their electric potentials will be of opposite signs.

The potential at point B due to the -5 µC charge can be calculated as follows:

[tex]V2 = kq2/(d-r) = (9 × 10^9 Nm^2/C^2) × (-5 × 10^-6 C)/(0.19-r)[/tex]

The total potential at point B will be zero when the potentials due to each charge are equal in magnitude but opposite in sign.

Therefore,[tex]V1 = V2kq1/r = kq2/(d-r)(13 × 10^-6 C)/r = (-5 × 10^-6 C)/(0.19-r)13r = -5(d-r)13r = -5d + 5r18r = -5d r = 5d/18[/tex]

The distance of point B from the 13 µC charge is [tex]r = 5d/18 = 5(19) cm/18 = 5.28 cm[/tex]

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A 200kg weather rocket is loaded with 100 kg of fuel and fired straight up. It accelerates upward at 34.0 m/s^2 for 31.0 s , then runs out of fuel. Ignore any air resistance effects.
a) Draw the graph of the rocket's acceleration. Use up as the positive y-direction. (The x-axis is time (s) and the y-axis is ay (m/s2))
b) Draw the graph of the rocket's velocity. (The x-axis is time (s) and the y-axis is vy (m/s))

Answers

A 200kg weather rocket is loaded with 100 kg of fuel and fired straight up. It accelerates upward at 34.0 [tex]m/s^2[/tex] for 31.0 s. a)The graph of the rocket's acceleration will drop to zero. b) The graph of the rocket's velocity will be a flat line.

a) To draw the graph of the rocket's acceleration, we need to plot the rocket's acceleration on the y-axis and time on the x-axis. Since the rocket accelerates upward at a constant rate of 34.0 [tex]m/s^2[/tex] for 31.0 s, the acceleration remains constant during this time period.

Therefore, the graph will be a straight line with a positive slope of 34.0 [tex]m/s^2[/tex]. It will start at t=0 with an acceleration of 0[tex]m/s^2[/tex]and continue with a constant slope of 34.0 [tex]m/s^2[/tex] for 31.0 seconds. After 31.0 seconds, when the rocket runs out of fuel, the acceleration will drop to zero.

b) To draw the graph of the rocket's velocity, we need to plot the rocket's velocity on the y-axis and time on the x-axis. Since the rocket starts from rest and accelerates upward at a constant rate of 34.0 [tex]m/s^2[/tex] for 31.0 s, the velocity will increase linearly during this time period. At t=0, the rocket's velocity is 0 m/s.

The velocity will increase by 34.0 m/s every second, resulting in a straight line with a positive slope of 34.0 m/s. After 31.0 seconds, when the rocket runs out of fuel, the velocity will remain constant since there is no further acceleration.

Therefore, the graph will be a straight line with a positive slope of 34.0 m/s and a flat line after 31.0 seconds.

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Electric Power is generated in the falls and needed in Ohio we
have to transmit it. 110,000 V, 765,000 V, Why is it done in such
High voltage?

Answers

The reason why electric power is generated in the falls and needed in Ohio is transmitted in such high voltage is to ensure minimal loss of energy due to resistance.

In order to deliver the electricity from the generation site to the consumers, it is necessary to transmit the power over a distance which requires the use of power lines. When transmitting electric power, it is essential to maintain high voltage levels as power losses due to resistance in the transmission lines are proportional to the square of the current. This means that reducing the current will significantly reduce power losses and result in more efficient transmission of electrical power.

Increasing the voltage level of the electrical power transmitted can significantly reduce the amount of energy lost due to resistance.

This is because when the voltage is high, the current is lower, and therefore, the power loss due to resistance is also lower.High voltage is used in electrical transmission to reduce the amount of current that flows through the transmission line, thereby reducing the amount of power that is lost due to resistance. The power loss due to resistance in a transmission line is proportional to the square of the current flowing through it. Hence, by reducing the current, the power loss can be significantly reduced.

However, the voltage level needs to be high enough to overcome the resistance of the transmission line, and so, high voltage is used for long-distance transmission of electrical power.

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A metal device box contains cable clamps, (6) #12 conductors, and one single pole switch. Which of the following is the minimum size box permitted?

a. 12 cubic inch

b. 13.5 cubic inch

c. 15 cubic inch

d. 20.25 cubic inch

Answers

A metal device box contains cable clamps, (6) #12 conductors, and one single pole switch. The minimum size box permitted is d)20.25 cubic inches. Hence, the correct answer is option d).

The minimum size box permitted for a metal device box that contains cable clamps, (6) #12 conductors, and one single pole switch is 20.25 cubic inches. Each conductor will require two cubic inches within the box according to the National Electric Code. One cubic inch of space is required for each of the cable clamps. The minimum size of a device box that can hold a single switch is 18 cubic inches. 6 #12 conductors would require 12 cubic inches of space.

One cubic inch of space will be needed for the cable clamps, and one cubic inch will be required for the switch. Therefore, the total amount of space needed in the box would be 14 cubic inches (12 + 1 + 1). Adding this to the minimum space required for a device box that can hold a single switch gives 32 cubic inches.

However, because the #12 conductors are grounded, one can multiply the size by 50%, giving 20.25 cubic inches as the minimum size permitted for the box. Answer: D. 20.25 cubic inch.

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Write a question appropriate for this exam about the action potential of the human nervous y=1503 A system and a current source of Y amperes.

Answers

The appropriate question for the exam is:

What is the relationship between the action potential of the human nervous system and a current source of Y amperes?

Your nervous system is your body's command center. Originating from your brain, it controls your movements, thoughts and automatic responses to the world around you. It also controls other body systems and processes, such as digestion, breathing and sexual development

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b) Wire A has a resistance of 12 Ohms. If wire B is twice the length of A and twice the diameter of A, what is its resistance. Assume that both wires are at the same temperature hence the same Resistivity.

Answers

Let the length of wire A be L and the diameter D. The resistance of wire A is given as 12.

The resistance of a wire is given by the formula:

R = ρL/AS Since both the wires are at the same temperature and have the same resistivity, we can write:

RA = ρL/ARA

= ρL/AD

Since wire B is twice the length and twice the diameter of wire A, its length and diameter are 2L and 2D, respectively. The resistance of wire B is given as RB.

We can write:RB = ρ(2L)/(π(2D/2)²)

= ρ(2L)/(πD²) We know that

D² = (2D/2)²

= 4(D/2)²So, π(2D/2)²

= πD²/4

Substituting the value of D2 in the formula for RB, we get:

RB = ρ(2L)/(πD²/4)

= 4ρL/πD²

We need to substitute the values given to us and obtain the value of RB.

RA = 12 ΩL/D

= 12 ρ/A

Resolving for ρ/AL/D = 12 ρ/ARR

= ρL/A

= ρL/πD²/4

RB = 4ρL/πD²

= 4 × (L/D) × RA

= 4 × (2) × 12

= 96Ω

So, the resistance of wire B is 96.

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An ideal single-phase source, 240 V, 50 Hz, supplies power to a load resistor R = 100 0 via a single ideal diode.. 2.1.1. Calculate the average and rms values of the load current

Answers

The average value of the load current is 339.4 mA, and the rms value of the load current is 239.7 mA.

An ideal single-phase source, 240 V, 50 Hz, supplies power to a load resistor R = 100 0 via a single ideal diode.

To calculate the average and rms values of the load current, we need to find out the current flowing through the resistor R. Let us denote the current through the resistor R as IR.

The input voltage of the ideal single-phase source is 240 V, 50 Hz.

Therefore, the peak voltage (Vp) is:

Vp = 240 V √2

Vp = 339.4 V

The ideal diode ensures that the current flows only in one direction.

Hence, the load current flows only when the input voltage is positive.

In this case, the current flowing through the resistor is given by:

IR = Vp/R

Where R = 1000 Ω

Substituting the values in the above equation, we get:

IR = 339.4 mA

The average value of the load current (Iav) is the average of the current over a complete cycle.

The current flows only in one direction during the positive half-cycle.

Therefore, the average value of the load current is given by:

Iav = IR

= 339.4 mA

The root mean square (rms) value of the load current (Irms) is given by:

Irms = IR / √2

Irms = 239.7 mA

Therefore, the average value of the load current is 339.4 mA, and the rms value of the load current is 239.7 mA.

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Part D A 75 kg patient swallows a 35 l beta emiter whose halle is 5.0 days and whose RBE 81.8. The beta particles are emited with an average energy of 0.35 MeV. 90% of which is absorbed by the body You are a health care worker needing to find the patient's done equivalent aher one week. These series of steps will help you find that dose equivalent. In all questions, assume the radioactive nuclei are distributed throughout the patients body and are not being excreted How much energy in Joutes was deposited into the patient during the work? Express your answer using three significant figures View Available in | ΑΣ 6 AB+ 0.02106 Submit Preview * Incorrect; Try Again Part D please

Answers

The energy deposited into the patient during the week can be calculated by multiplying the absorbed fraction of energy by the total energy emitted by the beta particles.

To find the energy deposited into the patient, we start by calculating the absorbed fraction of energy. Given that 90% of the beta particle energy is absorbed by the body, we can express this fraction as 0.9.

Next, we need to calculate the total energy emitted by the beta particles. The average energy of each beta particle is given as 0.35 MeV. To convert this to joules, we use the conversion factor: 1 MeV = 1.6 x 10^-13 Joules. Therefore, the average energy of each beta particle is 0.35 MeV x 1.6 x 10^-13 Joules/MeV.

Multiplying the absorbed fraction (0.9) by the total energy emitted by each beta particle (0.35 MeV x 1.6 x 10^-13 Joules/MeV), we can calculate the energy deposited into the patient.

Remember to express the answer using three significant figures, as requested.

In radiation dosimetry, calculating the energy deposited into a patient or an object is essential to assess the potential biological effects. The energy deposition can be influenced by factors such as the type of radiation, its energy, and the absorption characteristics of the surrounding tissue.

Understanding the absorbed fraction of energy is crucial in determining the dose equivalent or the radiation dose received by an individual. By considering the fraction of energy absorbed, we can estimate the impact of radiation on the human body and evaluate potential health risks.

Radiation protection and management rely on accurate calculations and measurements to ensure the safety of individuals exposed to radioactive sources. Dosimeters and specialized instruments are used to monitor and quantify radiation doses, allowing healthcare workers to assess the risks and implement appropriate safety measures.

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1. What are the three conditions that define a switching power supply? What are the three basic characteristics of switching power supplies?


2. What are the types of converter circuits?


3. Power electronic devices can be divided into several categories according to the control method?

solve these 3 question

Answers

The three conditions that define a switching power supply are:

a) Switching element: A switching power supply requires a controllable switch or semiconductor device that can rapidly switch between on and off states. This switch allows the conversion of the input voltage to a desired output voltage.

b) Energy storage element: A switching power supply needs an energy storage element, typically an inductor or capacitor, to store and release energy during the switching cycle.

c) Control circuit: A switching power supply requires a control circuit that regulates the switching operation of the switch and controls the output voltage or current.

The three basic characteristics of switching power supplies are:

a) High efficiency: Switching power supplies are known for their high efficiency compared to linear power supplies. They achieve high efficiency by minimizing power loss during switching and energy storage.

b) Compact size: Switching power supplies are typically smaller and lighter than linear power supplies due to their higher efficiency and use of smaller components.

c) Wide range of output voltages: Switching power supplies can easily provide a wide range of output voltages by adjusting the duty cycle or frequency of the switching operation.

The types of converter circuits used in switching power supplies include:

a) Buck converter: It steps down the input voltage to a lower output voltage.

b) Boost converter: It steps up the input voltage to a higher output voltage.

c) Buck-boost converter: It can step up or step down the input voltage to produce a lower or higher output voltage, depending on the duty cycle of the switch.

d) Flyback converter: It provides galvanic isolation between the input and output and can step up or step down the voltage.

e) Forward converter: It also provides galvanic isolation and is commonly used in high-power applications.

Power electronic devices can be divided into several categories based on the control method, such as:

a) Voltage control devices: These devices regulate the output voltage by adjusting the input voltage, such as thyristors (SCRs) and triacs.

b) Current control devices: These devices regulate the output current by adjusting the input current, such as transistors and MOSFETs.

c) Pulse width modulation (PWM) devices: These devices control the output power by modulating the width of the pulses supplied to the load, such as PWM controllers and ICs.

d) Phase control devices: These devices control the power delivered to the load by adjusting the phase angle of the input waveform, such as phase control thyristors (SCRs).

In summary, a switching power supply requires a switching element, energy storage element, and control circuit. It exhibits characteristics of high efficiency, compact size, and a wide range of output voltages.

The types of converter circuits used in switching power supplies include the buck, boost, buck-boost, flyback, and forward converters. Power electronic devices can be categorized based on the control method, such as voltage control, current control, PWM, and phase control devices.

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