A 1.0-cm-diameter microscope objective has a focal length of 2.8 mm. It is used with light of wavelength of 550 nm.
Part A
What is the objective's resolving power if used in air?
Express your answer with the appropriate units.


Part B
What is the resolving power of the objective if it is used in an oil-immersion microscope with n(oil)= 1.45?
Express your answer with the appropriate units.

A) and B): No force whenever, F(t) = 0, ∀t. C): A constant force,

F(t) = F0,∀t.

Newton's Laws

In the year 1687, Isaac Newton distributed his fundamental work "Philosophiae Naturalis Principia Mathematica", in which he included three essential standards of movement. These standards are referred to now as Newton's maxims or Newton's laws.

A) and B): No force whenever,

F(t) = 0, ∀t.

As indicated by Newton's most memorable regulation, an article moves with constant velocity when no net force is following up on it.

C): A constant force,

F(t) = F0,∀t.

As indicated by Newton's subsequent regulation, the speed increase is corresponding to the acting force. Assuming that the speed increase is constant, the force is constant.

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According to the question, the work done by a car is calculated as 144Nm.

Force may be defined as a process of pushing or pulling on an object that significantly produces acceleration in the body on which it acts. It is an external agent capable of changing a body's state of rest or motion. It has a magnitude and a direction.

According to the question,

The force applied on a car = 18 N

The displacement made by a car = 8m.

Now, the work done is calculated with the help of the given formula:

                           = 18 N × 8m = 144Nm.

Therefore, the work done by a car is calculated as 144Nm.

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Answer:n to the right to the right

Explanation:

According to the physics professor's acceleration vs. time graph, a change in speed could also mean a change in velocity.

An object's velocity may alter depending on whether it is moving faster, slower, or in a different direction. The moon orbiting the earth and an apple falling to the ground are two instances of acceleration.

The pace at which displacement changes is known as velocity. The rate at which velocity changes is known as acceleration. Because it includes both magnitude and direction, mass and velocity quantity. Since acceleration is merely the rate at which velocity changes, acceleration is likewise a vector quantity.

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3m/s downward is the  velocity of a rock if it falls at a 3m/s. The idea of velocity is crucial in kinematics, the part of physical laws.

The direction speed of an item in motion as an indicator of it's own rate of shift in position as perceived from a certain frame of reference and measured by a specific standard of time (e.g., 60 km/h northbound) is known as velocity.

The idea of velocity is crucial in kinematics, the part of physical laws that explains the motion of things. 3m/s downward is the  velocity of a rock if it falls at a 3m/s.

Therefore, 3m/s downward is the  velocity of a rock if it falls at a 3m/s.

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Option c) is correct as in a region where electric field is zero, electric potential is constant and independent region location.

The statement that best describes the electric potential in a region of space where the electric field is zero is (c) the electric potential is constant everywhere in this region.

This can be explained by the fact that:

electric potential is amount of work done to get a unit charge from infinity to a particular point in electric field. When electric field is zero, there's zero force acting on charge and therefore work done is zero.

In such a scenario, the electric potential is said to be constant throughout the region because the amount of work required to move as charge one to another point doesn't depend on path. Any path will have no charge and thus potential difference will become zero.

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The motion of the kangaroo is under free-fall, its vertical speed when it leaves the ground 7.00m/s and it is in air for 1.43s.

The stir of the kangaroo is under free- fall. We're looking for the original haste, and we know that the haste in the loftiest position is zero.

From,

v ² = ( vo) ² 2ay,

we have,

v ² = ( vo) ² 2ay,

v ²- 2ay = vo ²

vo = √ v ²- 2ay

Vo = 7.00 m/ s

thus, the perpendicular speed of the kangaroo when it leaves the ground is 7.00 m/s.

Since the stir of the kangaroo has invariant acceleration, we can use the formula,

y = vo * t1/2 at ²

7t-4.905 t ²

t = 0 or t = 1.43

thus, kangaroo is about 1.43 seconds long in the air.

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Complete question:

A kangaroo can jump over an object 2.50 m high. (a) Calculate its vertical speed when it leaves the ground. (b) How long is it in the air?

The equation gives the capacitance of a parallel-plate capacitor:C = εA/d. Where C is the capacitance, ε is the permittivity of the dielectric material between the plates, A is the area of each plate, and d is the distance between the plates.

In this case, the area of each plate is 10 cm × 20 cm = 200 cm^2 = 0.02 m^2. The distance between the plates is 2.0 mm = 0.002 m. The permittivity of the dielectric material is ε = ε0εr, where ε0 is the vacuum permittivity (8.85 × 10^-12 F/m), and εr is the relative permittivity or dielectric constant (4.1).

So, substituting these values into the equation, we get:

C = εA/d

= (ε0εr)(0.02)/(0.002)

= (8.85 × 10^-12)(4.1)(0.02)/(0.002)

= 7.26 × 10^-11 F

= 72.6 pF

Therefore, the capacitance parallel-plate capacitor is 72.6 pF.

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The optical generation rate of a silicon sample illuminated with light is the rate at which photogenerated carriers are created in the sample.

Optical generation rate is typically expressed in units of A/cm2. The optical generation rate is a function of the light intensity, the wavelength of the light, and the material properties of the silicon sample. The rate of generation of electron-hole pairs through photon absorption is known as "optical generation rate". Optical generation rate is usually denoted by G(x) and in unit of electrons/cm³s.

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Selected signal assignment statement to represent the 4-to-1 MUX has been shown below.

a)entity mux4to1 is

port(A,B: in std_logic;

      CD : in std_logic_vector(1 down to 0),

      F: out std_logic);

end mux4to1;

Architecture behavioral of mux4to1 is

begin

with CD select

F<= transport (not A) after 10 ns when "00",

       transport B after 10 ns when "01",

      transport  (not B) after 10 ns when "10",

      transport  "0" after 10 when "11";

end behavioral;

b)entity mux4to1 is

port(A,B: in std_logic;

      CD : in std_logic_vector(1 down to 0),

      F: out std_logic);

end mux4to1;

Architecture behavioral of mux4to1 is

begin

F <= inertial (not A) after 10 ns  WHEN (CD = “00”) ELSE

        inertail B after 10 ns WHEN (sel = “01”) ELSE

       inertail (not B) after 10 ns WHEN (sel = “10”) ELSE

       inertail "0" after 10 ns WHEN (sel = “11”) ELSE

        ‘X’;

end behavioral;

c)entity mux4to1 is

port(A,B: in std_logic;

      CD : in std_logic_vector(1 down to 0),

      F: out std_logic);

end mux4to1;

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The rock was dropped from a height of approximately 0.862 meters above the top of the glass door.

We can use the kinematic equations of motion to solve this problem. In particular, we can use the equation:

y = vi*t + [tex](1/2)at^2[/tex]

where:

y is the distance the rock falls

vi is the initial velocity of the rock (which is 0, since the rock is dropped from rest)

a is the acceleration due to gravity (which is approximately [tex]-9.81 m/s^2[/tex], since the rock is falling downwards)

t is the time it takes for the rock to fall the distance y.

We know that the rock falls a total distance of 2.1 meters (the height of the glass door), and it takes 0.28 seconds to fall this distance. Therefore, we can plug in these values and solve for the initial height:

2.1 m = 0 + [tex](1/2)( -9.81 m/s^2)(0.28 s)^2[/tex]+ vi*(0.28 s)

Simplifying and solving for vi, we get:

vi = (2.1 m - (1/2)[tex](-9.81 m/s^2)(0.28 s)^2)[/tex] / 0.28 s

vi = 6.14 m/s

So the initial velocity of the rock when it was dropped was 6.14 m/s. Now we can use the kinematic equation:

y = vi*t + [tex](1/2)at^2[/tex]

To solve for the initial height. We know the initial velocity and the time it took for the rock to fall past the glass door (0.28 seconds), so we can plug in these values and solve for y:

y = vit + [tex](1/2)at^2[/tex]

y = (6.14 m/s)(0.28 s) + [tex](1/2)(-9.81 m/s^2)(0.28 s)^2[/tex]

y = 0.862 m

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Answer:

Approximately [tex]7.6\; {\rm m}[/tex] while the force was applied.

Explanation:

Divide net force by mass to find acceleration:

[tex]\begin{aligned}(\text{acceleration}) &= \frac{(\text{net force})}{(\text{mass})} = 2.25\; {\rm m\cdot s^{-2}}\end{aligned}[/tex].

(Note that [tex]1\; {\rm N} = 1\; {\rm kg\cdot m\cdot s^{-2}}[/tex].)

The question states that this acceleration of [tex]a = 2.25\; {\rm m\cdot s^{-2}}[/tex] continued for [tex]t = 2.6\; {\rm s}[/tex]. Additionally, it is given that initial velocity was [tex]u = 0\; {\rm m\cdot s^{-1}}[/tex] (initially at rest.)

Let [tex]x[/tex] denote the distance travelled. Apply the SUVAT equation [tex]x = (1/2)\, a\, t^{2} + u\, t[/tex] to find this distance:

[tex]\begin{aligned}x &= \frac{1}{2}\, a\, t^{2} + u\, t \\ &= \frac{1}{2}\, (2.25)\, (2.6)^{2}\; {\rm m} + (0)\, (2.6)\; {\rm m} \\ &= \frac{1}{2}\, (2.25)\, (2.6)^{2}\; {\rm m} \\ &\approx 7.6\; {\rm m}\end{aligned}[/tex].

The geologist sees depositional contact. Therefore, option A is correct.

A sedimentary or volcanic rock is said to have been deposited on an older rock at a depositional contact (of any type). Where volcanic rocks encroach on older rock, this is known as an intrusive contact (of any type).

The ten different types of contacts are as follows: (1) bedding planes, (2) diastems, (3) angular irregularities, (4) disconformities, (5) para-conformities, (6) nonconformities, (7) pedologic contacts, (8) faults, 9) intrusive contacts, and 10) extrusive contacts.

Hence, option A is correct.

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your question is incomplete, most probably the full question is this:

what a geologist sees. a geology student sits beside an outcrop on mont royal, the namesake of montreal. this exposure shows the intrusion of molten basalt into preexisting limestone.

Energy extraction generally refers to the process of obtaining useful energy from a particular source or converting one form of energy to another. This can include extracting energy from fossil fuels, nuclear reactions, wind, solar power, hydropower, or other sources.

In the context of the given question about aluminum production, "energy extraction" refers specifically to the process of obtaining aluminum metal from its ore, which in this case is Al2O3. This process requires a significant amount of energy, as indicated by the high value of the heat of reaction in the equation given in the question. By contrast, recycling aluminum from scrap metal requires much less energy and is therefore generally considered to be more energy-efficient and environmentally friendly than extracting aluminum from its ore.

To calculate the amount of heat needed to purify 1.00 mole of Al originally at 298 K by melting it, consider two processes:

1. Heating the Al from 298 K to its melting point at 933 K, which requires heat Q1:

Q1 = n * Cp * delta T

= 1.00 mol * 24 J/(mol K) * (933 K - 298 K)

= 20,832 J

2. Melting the Al at its melting point, which requires heat Q2:

Q2 = n * delta H_fus

= 1.00 mol * 10.7 kJ/mol

= 10,700 J

The total heat required to purify 1.00 mole of Al by melting it is the sum of Q1 and Q2:

Q_total = Q1 + Q2

= 20,832 J + 10,700 J

= 31,532 J

Now, to determine whether it is more energy-efficient to recycle existing Al or to extract Al from Al2O3, compare the energy required for each process. The equation for extracting Al from Al2O3 shows that the reaction releases 1675 kJ of energy for every 2 moles of Al produced. Therefore, the energy required to extract 1 mole of Al from Al2O3 is:

energy required = 1675 kJ / 2

= 837.5 kJ

Comparison to the 31,532 J of energy required to melt and purify 1 mole of Al, we see that recycling existing Al requires significantly less energy than extracting Al from Al2O3.

Specifically, the energy required to extract 1 mole of Al from Al2O3 is approximately 219 times greater than the energy required to purify 1 mole of existing Al by melting it.

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The free-body diagram that will represent the weight of the car is the one in which the weight of the car points downwards.

Free-body diagrams are diagrams used in physics and engineering to represent an object and the forces acting on it. They are used to analyze the forces and determine the net force acting on an object, which is then used to determine the object's acceleration and motion.

The free-body diagram of the car will be as follows:

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A) It would take 2079 J of heat to increase the temperature of 2.10 mol of a diatomic gas by 60.0 K at a constant volume.

B) It would take 1244 J of heat to increase the temperature of 2.10 mol of a monatomic gas by 60.0 K at a constant volume.

The terms "diatomic" and "monoatomic" describe how many atoms make up a molecule or an ion. Diatomic molecules, like O2 or HCl, are made up of two covalently connected atoms of the same element. On the other hand, monoatomic species are made of a single atom, which could be neutral like helium or argon or charged like cations and anions. Diatomic molecules have unique chemical properties and are frequently involved in chemical processes, whereas monoatomic species normally exist as gases under normal conditions and are relatively inert. In the study of chemistry and physics, the contrast between diatomic and monoatomic particles is significant, particularly in understanding the behavior of various elements and their interactions with other substances.

(A) To calculate the amount of heat required to increase the temperature of 2.10 mol of a diatomic gas by 60.0 K at constant volume, we can use the formula: Q = nCvΔT

where Q is the amount of heat, n is the number of moles of the gas, Cv is the molar heat capacity at constant volume, and ΔT is the change in temperature. For a diatomic gas, Cv = (5/2)R, where R is the gas constant.

So, substituting the given values, we get:

Q = (2.10 mol)(5/2)(8.31 J/mol·K)(60.0 K)

Q = 2079 J

Therefore, it would take 2079 J of heat to increase the temperature of 2.10 mol of a diatomic gas by 60.0 K at a constant volume.

B) For a monatomic gas, Cv = (3/2)R. So, using the same formula as above, we get:

Q = (2.10 mol)(3/2)(8.31 J/mol·K)(60.0 K)

Q = 1244 J

Therefore, it would take 1244 J of heat to increase the temperature of 2.10 mol of a monatomic gas by 60.0 K at a constant volume.

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) To calculate the amount of heat required to increase the temperature of 2.10 mol of a diatomic gas by 60.0 K at constant volume, we can use the formula:

Q = nCvΔT

where Q is the amount of heat, n is the number of moles of the gas, Cv is the molar heat capacity at constant volume, and ΔT is the change in temperature. For a diatomic gas, Cv = (5/2)R, where R is the gas constant.

So, substituting the given values, we get:

Q = (2.10 mol)(5/2)(8.31 J/mol·K)(60.0 K)

Q = 2079 J

Therefore, it would take 2079 J of heat to increase the temperature of 2.10 mol of a diatomic gas by 60.0 K at constant volume.

B) For a monatomic gas, Cv = (3/2)R. So, using the same formula as above, we get:

Q = (2.10 mol)(3/2)(8.31 J/mol·K)(60.0 K)

Q = 1244 J

Therefore, it would take 1244 J of heat to increase the temperature of 2.10 mol of a monatomic gas by 60.0 K at constant volume.

The type of ion channel that will open and close depending on changes in electrical potential across the membrane is referred to as voltage-gated. In this case the word “voltage” is already telling you that it functions with electrical potential

Those ion channels that require a chemical messenger to bind to them in order to open or close are called ligand-gated. The word “ligand” tells you that there is a compound (chemical messenger) that is ligand of a receptor, once it binds with the receptor, the channels will be active.

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Explanation:

Convert °F to °C. and Convert °C to °F

Newton's ring is a phenomenon of interference pattern of the light rays which is created by reflection of light rays.

Newton's rings is a phenomenon in which an interference pattern of the light is generally created by the reflection of light rays between the two surfaces, typically a spherical surface and an adjacent touching flat surface in space.

Newton's rings, in optics, is a series of concentric light- and dark-colored bands which are observed between any two pieces of glass when one is convex and it rests on its convex side on another piece which is having a flat surface. Thus, a layer of air exists between the two.

Newtons ring experiment is used for the determination of wavelength of monochromatic lights. It is also used for the determination of refractive index of transparent liquid.

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(a) The rate of temperature increase is about 1.40 degrees Celsius per second. (b) It would take about 1428.57 seconds or 23.81 minutes to obtain a temperature increase of 2000 degrees Celsius.

(a) The rate of temperature increase can be calculated by first finding the total energy being transferred per second by the decay of fission products, which is 150 MW. This is equivalent to 150 x 10⁶ J/s. Then, we can use the formula:

rate of temperature increase = (energy transferred per second) / (mass x specific heat)

Plugging in the values, we get:

rate of temperature increase = (150 x 10⁶ J/s) / (1.60 x 10⁵ kg x 0.3349 kJ/kg∘C)
rate of temperature increase ≈ 1.40∘C/s

Therefore, the rate of temperature increase is about 1.40 degrees Celsius per second.

(b) To find the time it would take to obtain a temperature increase of 2000 degrees Celsius, we can use the formula:

time = (change in temperature) / (rate of temperature increase)

Plugging in the values, we get:

time = (2000∘C) / (1.40∘C/s)
time ≈ 1428.57 s

Therefore, it would take about 1428.57 seconds or 23.81 minutes to obtain a temperature increase of 2000 degrees Celsius.

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Complete question:

Even when shut down after a period of normal use, a large commercial nuclear reactor transfers thermal energy at the rate of 150 MW by the radioactive decay of fission products. This heat transfer will cause a rapid increase in temperature if the cooling system fails.

(a) Calculate the rate of temperature increase, in degrees Celsius per second (°C/s), if the mass of the reactor core is 1.4 × 105 kg and it has an average specific heat of 0.3349 kJ/(kg.°C).

(b) How long, in minutes, would it take for the temperature to increase by 2000°C, which could cause some metals holding the radioactive materials to melt? (The initial rate of temperature increase would be greater than that calculated here because the heat transfer is concentrated in a smaller mass. Later, however, the temperature increase would slow down because the 5 x 105-kg steel containment vessel would also begin to heat up.)

An increase in the spring constant changes will result in a larger frequency for an oscillating spring-mass system.

The mass spring system is a system composed of objects that have mass and are connected to springs. The spring circuit can be composed of several springs mounted in series or parallel as needed. Springs connected in series will decrease the value of the spring constant, while the installation of springs in parallel will increase the value of the spring constant.

Spring system formation is a simple spring system formation arranged in series or parallel. The stages of the research carried out included determining the mathematical equation for mass movement determined from the equilibrium position in the formation of a spring system, including a spring system of a mass connected to two springs arranged in series, a spring system of a mass connected to two springs arranged in parallel and a spring system of two masses. connected by two springs arranged in series, then create a spring system simulation program.

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A recursive is a function that eventually calls itself.

Base recursive functions are defined as the recursive functions where the last statement performed is the recurrent call.

Recursive function: what is it?

A recursive function is a function which explains that one that generates a series of phrases by repeating or using its own prior term as input. The math sequence, which has presence of some words with a following differences between them, is typically the basis on which we study about this function.

How does a recursive function operate?

The function is defined as something which is repeatedly through recursion within the function. Until and unless we have the base case which is satisfied, the recursive condition makes repeated calls to the function. The base case is contained in the function, and it causes the execution to stop when its condition is met.

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The work done on the bowling ball is 576 J to accelerate an 8.0-kg bowling ball from rest to a speed of 12 m/s and a distance of 2.5 m to reach a speed of 12 m/s if the average force on the bowling ball is 230 N.

Work = 1/2 × m × [tex]v^2[/tex]

( m =8 kg=is the mass, v= 12 m/s= is final velocity)

Work = 1/2 × 8.0 kg × [tex](12 m/s)^2[/tex] = 576 J

As per work-energy principle,  the work done on an object = the change in its kinetic energy

Work = ΔKE

(ΔKE = change in kinetic energy, initial kinetic energy=0)

final kinetic energy is,

KE = 1/2 × m × [tex]v^2[/tex] = 1/2 × 8.0 kg × [tex](12 m/s)^2[/tex] = 576 J

the change in kinetic energy,

ΔKE = KE - 0 = 576 J (work is equal to force here)

So, Work = Force × Distance

Distance = Work / Force = 576 J / 230 N = 2.5 m

As a result, the work done on the bowling ball is 576 J to accelerate and travel 2.5 m with an 8.0-kg bowling ball.

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The work that must be done on charges brought from infinity to charge a spherical shell of radius R = 0.100 m to a total charge Q = 125 μC = 1.12 x 10⁶ J

The potential difference of the charge is the amount of work required to bring a unit positive charge from infinity.

V = E x d

= k (q/r)

where;

V = The potential difference (J)

E = The field potential (N/C)

d = The distance that the charge (m)

k = Coulomb constant (8.99 x 10⁹ Nm²/C²)

q = The unit charge

r = radius

Hence,

The work done:

= (8.99 x 10⁹ Nm²/C²) (125 x 10–⁶) / 0.1

= 1.12 x 10⁶ J

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Answer:F=6*10\4N

Explanation:the 4 is th sqaer

Circulation of heat in the oceans and atmosphere is an example of energy movement through convection.

The movement of heat energy through a fluid is known as convection. This kind of heating is most frequently seen in the kitchen, typically with a liquid that is brought to a boil. The air that makes up the atmosphere behaves like a fluid. The rocks are warmed up as a result of the sun's radiation penetrating the ground.

As a result of conduction, the temperature of the rock will increase, which will cause heat energy to be released into the environment. This will result in the formation of a bubble of air that is warmer than the air around it. This pocket of air climbs into the atmosphere and continues its journey. The heat that was held within the bubble dissipates into the atmosphere as it rises, causing the bubble to gradually become cooler.

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The velocity of the object both horizontally and vertically at 2.00 seconds is (A) 8.7 m/s and - 14.6 m/s. The result is obtained by us using formula for projectile motion.

In horizontal motion, the velocity is not affected by the gravitational acceleration. It can be calculated by

vx = v₀ cos θ

In vertical motion, the velocity is affected by the gravitational acceleration. It ca be expressed as

vy = v₀ sin θ - gt

An object is moving in projectile motion.

we have:

The horizontal velocity of the object is

vx = 10.0 × Cos 30°

vx = 10.0 × ½ √3

vx = 5√3

vx = 8.7 m/s

The vertical velocity of the object is

vy = v₀ sin 30 - gt

vy = 10.0 (½) - 9.8 (2.00)

vy = 5 - 19.6

vy = - 14.6 m/s

Hence, the velocity of the object is vx = 87 m/s and vy = - 14. m/s.

The correct option is (A).

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The standing wave can be obtained by taking the sum of the two traveling waves with equal amplitude and opposite phase velocities. To do this, we can use the trigonometric identity:

sin(A) + sin(B) = 2 cos((A+B)/2) sin((A-B)/2)

Ey = 2 E0 cos(wt) sin(kx)

This represents a standing wave with nodes (zero amplitude) at x = nλ/2k, where n is an integer.

Similarly, for the magnetic field Bz, we have:

Bz = 2 B0 cos(wt) sin(kx)

S = E x B

where x represents the vector cross product. Substituting the expressions for E and B, we get:

S = E0 B0 sin^2(kx) / μ0

where μ0 is the permeability of free space.

The Poynting vector is zero when sin^2(kx) = 0, which occurs at x = nπ/k for n an integer. This represents positions where the electric and magnetic fields are out of phase and the energy flow is momentarily zero.

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The depth pressure of the vat obtained is 44.076 m.

Extinguisher Type hue of the band acceptable for (class of fire) Comments All Red Water Unsafe around other types of fire. BA Foam Blue Unsafe around other types of fire. Class A fires can also be put out with Powder White B, (E), or "AB(E)" type powder. Dioxide of carbon (E) Black, B Watch out for discharge pressure.

Time from the crane to the bottom of the vat (t) = 3.20 s

H = ½gt²

H = ½ × 9.8 × 3.2²

H = 4.9 × 10.24

H = 50.176 m

Height (H) = 50.176 m from crane to vat's bottom

Crane's height above the vat (h) is 6.10 metres

Depth of vat = H – h

Depth of vat = 50.176 – 6.10

Depth of vat = 44.076 m

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The temperature gradient in the flow of direction is 294525 W.

A temperature gradient is the gradual variance in temperature with distance. The slope of the gradient is consistent within a material. A gradient is established anytime two materials at different temperatures are in physical contact with each other.

Q= T/( L/ KA)

Q= ( 1500 − 450) / 0.15 / 9.35v * 4.35)

   = 294525 W

Units of measure of temperature gradients are degrees per unit distance, such as °F per inch or °C per meter.

Many temperature gradients exist naturally, while others are created. The largest temperature gradient on Earth is the Earth itself. Q= T/Ka.

Therefore, The temperature gradient in the flow of direction is 294525 W.

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