compute the frequency (in mhz) of an em wave with a wavelength of 1.3 in. (______ m) MHz

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Answer 1

The frequency of the EM wave with a wavelength of 1.3 inches is approximately 9090 MHz.

To compute the frequency of an EM wave with a wavelength of 1.3 inches, we first need to convert inches to meters and then use the formula for frequency.

1 inch = 0.0254 meters, so 1.3 inches = 1.3 * 0.0254 = 0.03302 meters.

The formula for frequency (f) is:
f = c / λ

where c is the speed of light (approximately 3 x 10^8 meters per second), and λ is the wavelength in meters.

f = (3 x 10^8 m/s) / 0.03302 m = 9.09 x 10^9 Hz

To convert Hz to MHz, divide by 10^6:
f = 9.09 x 10^9 Hz / 10^6 = 9090 MHz

So, the frequency of the EM wave with a wavelength of 1.3 inches is approximately 9090 MHz.

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Related Questions

a 1900 kgkg car traveling at a speed of 17 m/sm/s skids to a halt on wet concrete where μkμkmu_k = 0.60.

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The stopping distance of the car is 26.6 meters.

To solve this problem, we need to use the formula:

d = (v^2)/(2μk*g)

Where d is the stopping distance, v is the initial velocity, μk is the coefficient of kinetic friction, and g is the acceleration due to gravity (9.8 m/s^2).

Plugging in the given values, we get:

d = (17^2)/(20.609.8) = 26.6 meters

Therefore, the stopping distance of the car is 26.6 meters. This means that the car will travel 26.6 meters before coming to a complete stop on the wet concrete. It is important to note that the stopping distance depends on the coefficient of kinetic friction, which is lower on wet concrete than on dry concrete. This means that it will take longer for a car to come to a stop on wet concrete than on dry concrete, even if the initial velocity and car weight are the same. It is important to drive cautiously and at reduced speeds in wet conditions to avoid accidents and ensure safety.

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a soap bubble (n = 1.33) is floating in air. if the thickness of the bubble wall is 114 nm, what is the wavelength of the light that is most strongly reflected?

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The wavelength of the light that is most strongly reflected from the soap bubble is 2 x 114 nm x the refractive index of the soap bubble.

When light waves encounter a soap bubble, they undergo reflection and interference, resulting in a rainbow-like pattern. The thickness of the bubble wall determines which wavelengths are reinforced by constructive interference, resulting in the colors seen in the bubble. The wavelength that is most strongly reflected, or the wavelength that is reinforced the most by constructive interference, can be calculated using the formula 2 x d x n, where d is the thickness of the bubble wall and n is the refractive index of the soap bubble.

To determine the wavelength of the light most strongly reflected, we can use the formula for constructive interference in thin films: mλ = 2 * n * d
where m is the order of interference (we'll use m = 1 for the strongest reflection), λ is the wavelength of the light, n is the refractive index of the film (1.33 for the soap bubble), and d is the thickness of the film (114 nm).
1. Plug the given values into the formula: 1 * λ = 2 * 1.33 * 114 nm
2. Calculate the product: λ = 2 * 1.33 * 114 nm = 302.52 nm
3. Double the result to account for the round trip of the light within the bubble: λ = 2 * 302.52 nm = 605.04 nm
4. Divide the result by the refractive index to find the wavelength in air: λ = 605.04 nm / 1.33 ≈ 341 nm
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Which is larger, the area under the t-distribution with 10 degrees of freedom to the right of t= 2.32 or the area under the standard normal distribution to the right of z=2.32? The area under the t-distribution with 10 degrees of freedom to the right of t=2.32 is the area under the standard normal distribution to the right of z=2.32.

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Therefore, we can conclude that the area under the t-distribution with 10 degrees of freedom to the right of t=2.32 is larger than the area under the standard normal distribution to the right of z=2.32, since 0.0204 > 0.0107.

A t-distribution is used when we have a small sample size and do not know the population standard deviation, while a standard normal distribution is used when we have a large sample size and know the population standard deviation. The t-distribution is wider and flatter than the standard normal distribution, which means that it has more area in the tails.

Now, to compare the area under the t-distribution with 10 degrees of freedom to the right of t=2.32 and the area under the standard normal distribution to the right of z=2.32, we need to calculate these areas using a statistical software or a table.
Using a t-table, we can find that the area under the t-distribution with 10 degrees of freedom to the right of t=2.32 is approximately 0.0204. This means that there is a 2.04% chance of getting a t-value greater than 2.32 in a sample of size 10.
Using a standard normal table, we can find that the area under the standard normal distribution to the right of z=2.32 is approximately 0.0107. This means that there is a 1.07% chance of getting a z-value greater than 2.32 in a sample of any size.
Therefore, we can conclude that the area under the t-distribution with 10 degrees of freedom to the right of t=2.32 is larger than the area under the standard normal distribution to the right of z=2.32, since 0.0204 > 0.0107.

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Consider the reaction described in the first problem. First, some notation: H+H ⇄ H2: n1 = density of free H atoms = N1/V n2 = density of H2 molecules = Nz/V N = total number of particles = N1 + N2 F = total free energy = F1+F2 = free energy of all free H atoms (F1) plus the free energy of all H2 molecules (F2) Choose expression(s) that can be used to calculate the equilibrium state of the reaction. A. (∂F1/∂N1) τ.V=0 B. (∂F2/∂N2) τ.V=0 C. (∂F/∂N2) τ.V=0 D. (∂F/∂N1) τ.V=0

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The expression (∂F/∂N1) τ.V=0 considers the contributions of both n1 and n2 to the equilibrium state of the reaction.

The correct expression to calculate the equilibrium state of the reaction described in the problem is D. (∂F/∂N1) τ.V=0. This is because the expression takes into account the free energy of all free H atoms (F1) and the total number of particles (N1 + N2). The density of free H atoms (n1) and the density of H2 molecules (n2) are related to N1 and N2, respectively.

It is important to note that density (n) is defined as the number of particles (N) per unit volume (V), and molecules are composed of two or more atoms that are held together by chemical bonds. Thus, the equilibrium state of a reaction can be described by the free energy and the number of particles involved in the reaction.

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By what factor does the rms speed of a molecule change if the temperature is increased from 30°C to 101°C?

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The root-mean-square (rms) speed of a molecule is proportional to the square root of the temperature in kelvin. This means that if the temperature is increased by a factor of x, the rms speed of the molecule will increase by the square root of x.

Converting the temperatures to kelvin, we have 303 K and 374 K. The ratio of the temperatures is 374/303 = 1.234. Therefore, the factor by which the rms speed of a molecule changes is the square root of 1.234, which is approximately 1.11. This means that the rms speed of a molecule will increase by a factor of 1.11 if the temperature is increased from 30°C to 101°C.

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The x component of the velocity of an object vibrating along the x-axis obeys the equation vy(t) = -(0.60 m/s) sin((15.0 s-)t +0.25). If the mass of the object is 400 g, what is the amplitude of the motion of this object? 25.0 cm 4.0 cm 900 cm 9.0 cm 2500 cm 0.04 cm

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The amplitude of the motion of this object is 4.0 cm.

The given equation for the x component of the velocity is vy(t) = -(0.60 m/s) sin((15.0 s^-1)t + 0.25). To find the amplitude of the motion, we need to determine the displacement function, x(t), from the velocity function. Since velocity is the derivative of displacement with respect to time, we need to integrate the velocity function.
Integrating vy(t) with respect to time t, we get:
x(t) = -(0.60 m/s) * (1/15.0 s^-1) * cos((15.0 s^-1)t + 0.25) + C
Here, C is the integration constant, which represents the initial displacement. As we are looking for the amplitude of the motion, the initial displacement is not relevant. Thus, the amplitude can be found by considering the coefficient of the cosine term:
Amplitude = (0.60 m/s) / (15.0 s^-1) = 0.04 m
Converting this to centimeters:
Amplitude = 0.04 m * 100 cm/m = 4.0 cm
So, the amplitude of the motion of this object is 4.0 cm. Hence, option B is correct.

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Draw Conclusions - Explain the figurative and connotative meanings of line 33 (I'm bound for the freedom, freedom-bound'). How do they reflect the central tension of the poem?​

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In the poem, "Sympathy" by Paul Laurence Dunbar, the poet utilizes figurative and connotative meanings to express a central tension in the poem, which is the fight of an oppressed individual to achieve freedom.

In line 33, the poet uses figurative language to describe his longing to be free. "I'm bound for the freedom, freedom-bound" connotes two meanings. First, the word "bound" is a homophone of "bound," which means headed. As a result, the line suggests that the poet is going to be free. Second, the word "bound" could imply imprisonment or restriction, given that the poet is seeking freedom. Additionally, the poet uses the word "freedom" twice to show his desire for liberty. The phrase "freedom-bound" reveals the central tension of the poem. The poet employs it to imply that he is seeking freedom, but he is still restricted and imprisoned in his current circumstances. In conclusion, the phrase "I'm bound for the freedom, freedom-bound" in line 33 of the poem "Sympathy" by Paul Laurence Dunbar shows the desire of an oppressed person to be free, despite being confined in a challenging situation. The word "bound" implies both heading towards freedom and restriction, indicating the central tension in the poem.

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An elevator has mass 700 kg, not including passengers. The elevator is designed to ascend, at constant speed, a vertical distance of 19.5 m (five floors) in 16.6 s, and it is driven by a motor that can provide up to 40 hp to the elevator. What is the maximum number of passengers that can ride in the elevator? Assume that an average passenger has mass 65.0.

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The maximum number of passengers that can ride in the elevator is 11.

To find the maximum number of passengers, first convert the motor's power from horsepower (hp) to watts (W) using the conversion factor 1 hp = 746 W.

Next, calculate the total force needed to move the elevator upwards by using the formula F = ma, where F is the force, m is the total mass (elevator + passengers), and a is the acceleration (found using the formula d = 0.5at², where d is the distance and t is the time).

Then, find the total mass that the motor can lift using the formula P = Fd/t, where P is the power and d and t are as previously defined. Finally, subtract the elevator's mass from the total mass, and divide the result by the average mass of a passenger to find the maximum number of passengers.

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A standing wave pattern with 8 nodes is created in a string of length 1.0 m by using waves of frequency 114.1 hz. what is the speed of the waves in m/s?

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In a standing wave pattern with 8 nodes, we can determine the speed of the waves in the string by considering the wave's frequency, length, and the number of antinodes. The speed of the waves in the string is approximately 32.6 m/s.


A standing wave pattern with 8 nodes will have 7 antinodes since there is always one less antinode than nodes. To find the wavelength, we need to know that there are 1.5 wavelengths between adjacent antinodes. So, in a 1.0 m long string with 7 antinodes, there will be 3.5 wavelengths.

Next, we calculate the wavelength (λ) by dividing the string's length (1.0 m) by the number of half-wavelengths (3.5):
λ = 1.0 m / 3.5 = 0.2857 m


Now, we have the frequency (f) which is 114.1 Hz. The wave speed (v) can be calculated using the wave speed equation: v = f × λ Plugging in the values we have: v = 114.1 Hz × 0.2857 m = 32.6 m/s So, the speed of the waves in the string is approximately 32.6 m/s.

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A tube open at one end closed at the other and produces sound having a fundamental frequency of 350 Hx. If you now opem the closed end, the fundamental Frequency becomes 0.7.5 Hz. 175 Hz 350 Hz 700 Hz 1400 Hz Shock waves occur when the frequency of the waves is the resonant frequency of the system the amplitude of waves exceeds the critical shock value. two waves from different sources collide with each other. the wave source is traveling at a speed greater than the wave speed. the period of the waves matches the lifetime of the waves The figure shows the displacement y of a traveling wave at a given position as a function of time and the displacement of the same wave at a given time as a function of position. How last is the wave traveling7 30 m/s 0.7S m/s 0.06 m/s 1.5 m/s 2.0 m/s

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In this case, the speed of the wave can be calculated from the given graphs to be 0.75 m/s.

When a tube is open at one end and closed at the other, it can produce sound with a fundamental frequency of 350 Hz. However, when the closed end is opened, the fundamental frequency decreases to 175 Hz. This is because the open end allows for more harmonics to be produced, lowering the fundamental frequency. Frequency is the number of waves that pass a certain point in a given amount of time, while waves are disturbances that propagate through a medium. Shock waves occur when the amplitude of waves exceeds the critical shock value or when two waves from different sources collide with each other. The speed of a wave can be calculated by dividing the distance traveled by the time taken, which can be determined from the displacement-time or displacement-position graphs.

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Water flows at 0.20 L/s through a 7.0-m-long garden hose 2.5 cm in diameter that is lying flat on the ground. Part A The temperature of the water is 20 ∘C. What is the gauge pressure of the water where it enters the hose?

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The gauge pressure of the water where it enters the hose is ΔP = 145 Pa with a temperature of the water is 20 °C.

From the given,

water flows (Q) = 0.20 L/s = 2×10⁻⁴ m³/s.

Length of the garden (L) = 7 m

Diameter (d) = 2.5 cm

Temperature of water = 20°C

gauge pressure =?

By using the formula, Q = πR⁴ ×ΔP/ 8ηL, where η is the viscosity of the fluids and R is the radius, and ΔP is a difference in pressure or Gauge pressure.

viscosity (η) at 20°C is 1.0×10⁻³ Pa.s.

ΔP = Q (8ηL/πR⁴)

 Q = 0.20 × 1/1000 = 2 × 10⁻⁴ m³/s

ΔP = (2 × 10⁻⁴×8×1×10⁻³×7) / (π×(2.5×10⁻²/2)⁴)

    = 112×10⁻⁷ / 7.69×10⁻⁸

   = 14.5 × 10¹

  = 145 Pa.

Thus, the difference in pressure or gauge pressure is 145 Pa.

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A hydrogen atom is initially in the n = 7 state. It drops to the n = 4 state, emitting a photon in the process. (a) What is the energy in eV) of the emitted photon? 0.57 eV (b) What is the frequency (in Hz) of the emitted photon? 1.38e+14 Hz (c) What is the wavelength (in um) of the emitted photon? 0.217 How is wavelength related to frequency and the speed of light? um

Answers

The wavelength of the emitted photon is approximately 2.17 um.

What is the energy, frequency, and wavelength of a photon emitted when a hydrogen atom transitions from the n = 7 state to the n = 4 state?

The energy of the emitted photon can be calculated using the formula:

Energy (in eV) = (1240 / wavelength (in nm))

Given that the energy of the emitted photon is 0.57 eV, we can rearrange the formula to solve for the wavelength:

wavelength (in nm) = 1240 / Energy (in eV)

Substituting the given energy value, we get:

wavelength (in nm) = 1240 / 0.57 = 2175.44 nm

To convert nm to um, divide the wavelength by 1000:

wavelength (in um) = 2175.44 nm / 1000 = 2.175 um

Therefore, the wavelength of the emitted photon is approximately 2.175 um.

The frequency of the emitted photon can be calculated using the equation:

frequency (in Hz) = speed of light / wavelength (in m)

Given the wavelength of 2.175 um, we need to convert it to meters by multiplying by 10⁻⁶:

wavelength (in m) = 2.175 um ˣ 10⁻⁶ = 2.175 × 10⁻⁶ m

Now we can calculate the frequency:

frequency (in Hz) = speed of light / wavelength (in m) = 3 × 10⁸ m/s / (2.175 × 10⁻⁶ m) = 1.38 × 10¹⁴ Hz

Therefore, the frequency of the emitted photon is approximately 1.38 × 10^14 Hz.

(c) Wavelength and frequency are related by the speed of light equation:

speed of light (in m/s) = wavelength (in m) ˣ frequency (in Hz)

Since the speed of light is a constant, we can rearrange the equation to solve for wavelength:

wavelength (in m) = speed of light (in m/s) / frequency (in Hz)

Substituting the given frequency value, we get:

wavelength (in m) = 3 × 10⁸ m/s / (1.38 × 10¹⁴ Hz) ≈ 2.17 × 10⁻⁶ m

To convert meters to micrometers (um), multiply by 10⁶ :

wavelength (in um) = 2.17 × 10⁻⁶ m ˣ 10⁶ = 2.17 um

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The Hubble Space Telescope (HST) orbits Earth at an altitude of 613 km. It has an objective mirror that is 2.40 m in diameter. If the HST were to look down on Earth's surface (rather than up at the stars), what is the minimum separation of two objects that could be resolved using 536 nm light?

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To determine the minimum separation of two objects on Earth's surface that could be resolved by the Hubble Space Telescope (HST) using 536 nm light, we can use the Rayleigh Criterion formula:

θ = 1.22 * (λ / D)

where θ is the angular resolution, λ is the wavelength of the light (536 nm), and D is the diameter of the objective mirror (2.40 m).



1. Convert the wavelength to meters:


λ = 536 nm * (1 m / 1,000,000,000 nm) = 5.36 * 10^(-7) m

2. Calculate the angular resolution:

θ = 1.22 * (5.36 * 10^(-7) m / 2.40 m) ≈ 2.72 * 10^(-7) radians

3. Convert the angular resolution to the linear resolution on Earth's surface:


Minimum separation (s) = θ * h


where h is the altitude of the HST (613 km).

4. Convert the altitude to meters:


h = 613 km * (1000 m / 1 km) = 613,000 m

5. Calculate the minimum separation:

s = 2.72 * 10^(-7) radians * 613,000 m ≈ 0.1667 m or 166.7 cm


So, the minimum separation of two objects on Earth's surface that could be resolved by the HST using 536 nm light is approximately 166.7 cm.

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Aria is deciphering a cryptic clue in a difficult crossword puzzle. an eeg of her brain would indicate _____ waves.

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Aria is deciphering a cryptic clue in a difficult crossword puzzle. an eeg of her brain would indicate Beta waves . An electroencephalogram (EEG) is a test that measures electrical activity in the brain using electrodes attached to the scalp.

When Aria is deciphering a cryptic clue in a difficult crossword puzzle, her brain is likely to produce brain waves with a frequency in the beta range (13-30 Hz). Beta waves are associated with cognitive processes such as attention, focus, and problem-solving. They are typically observed in the frontal and parietal lobes of the brain, which are involved in executive functions and decision-making.

In addition to beta waves, other types of brain waves may also be present during problem-solving tasks, such as alpha waves (8-12 Hz) and gamma waves (30-100 Hz). Alpha waves are associated with relaxation and a passive state of mind, but they may also be observed during tasks that require mental focus and attention.

Gamma waves are the fastest brain waves and are thought to be involved in higher-order cognitive processes such as perception, consciousness, and learning.

Overall, the specific type and frequency of brain waves that Aria produces during her crossword puzzle task will depend on the complexity of the puzzle, her level of engagement and attention, and individual differences in brain function

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You hold one end of a solid rod in a fire, and the other end becomes hot. This is an example of
a. heat conduction.
b. heat convection.
c. heat radiation.
d. thermal expansion.
e. none of the above.

Answers

Heat conduction is the transfer of heat from a hot object to a colder one through direct contact. In this example, the solid rod is in direct contact with the fire, and the heat is transferred through the rod to the other end, making it hot. Heat convection, on the other hand, is the transfer of heat through the movement of fluids, such as air or water. Heat radiation is the transfer of heat through electromagnetic waves, such as the heat from the sun. Thermal expansion refers to the increase in size of an object due to an increase in temperature. None of these processes are occurring in the example given, so the correct answer is A, heat conduction.

Heat conduction is the transfer of heat energy through a solid material without any movement of the material itself. In this case, the heat is transferred through the solid rod from the end in the fire to the other end. The other options, heat convection and heat radiation, are not applicable in this case. Heat convection involves the movement of a fluid (liquid or gas) due to temperature differences, and heat radiation involves the transfer of heat through electromagnetic waves, which doesn't require any physical medium. Thermal expansion refers to the expansion of a material when heated, which is not the main focus of this question.

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a particle travels in s straight line with a acceleration of a=(6-0.5s^2) m
m/s^2 initially (at t=0), the position of the particle is s0 = 1m, and its velocity is v0 = 5m/s. For the time interval 0 ≤ t ≤ 6 seconds, please do the following:
(a) Sketch the motion of the particle.Calculate the particle's (b) displacement, (c) average velocity, (d) total distance traveled, and (e) average speed.

Answers

particle's displacement is 98 m, particle's average velocity is 16.33 m/s, particle's total distance traveled is 218.5 m and average speed is 36.42 m/s.

(a) The motion is represented with the help of image, x axis shows time and y axis shows distance

(b) To find the particle's displacement, we can integrate the particle's velocity over the time interval:

s - s0 = ∫(v dt) = ∫(a t + v0 dt) = (3t^2 - 0.5t³) + 5t

At t=6s, we get:

s - s0 = (3*(6^2) - 0.5*(6³)) + 5*6 - 1 = 98 m

So the particle's displacement is 98 m to the right.

(c) To find the particle's average velocity, we can divide the displacement by the time interval:

avg = (s - s0)/(t - 0) = (98 m)/(6 s) = 16.33 m/s

So the particle's average velocity is 16.33 m/s to the right.

(d) To find the particle's total distance traveled, we can integrate the absolute value of the particle's velocity over the time interval:

|v| = |a t + v0| = |(6 - 0.5t²) t + 5|

distance = ∫(|v| dt) = ∫(|a t + v0| dt) = (∫(6t - 0.5t³ dt) + 5t) = (3t² - 0.125t⁴ + 2.5t²) + 5t

At t=6s, we get:

distance = (3*(6²) - 0.125*(6⁴) + 2.5*(6²)) + 5*6 = 218.5 m

So the particle's total distance traveled is 218.5 m.

(e) To find the particle's average speed, we can divide the total distance traveled by the time interval:

speed_avg = distance/(t - 0) = 218.5 m/6 s = 36.42 m/s

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1. Point A on the rod has a velocity of 8 m/s to the right. Where is the IC for the rod?a. Point ab. Point Bc. Point Cd. Point D2. If two bodies contact one another without slipping, and the points in contact move along different paths, the tangential components of acceleration will be ___________ and the normal components of accelration will be _________.a. the same, the sameb. different, differentc. the same, differentd. different, the same3. Whe considering a point on a rigid body in general plane motion:a. Its total acceleration consists of both absolute acceleration and relative acceleration components.b. Its total acceleration consists of only absoulte accelartion componetsc. Its relative accelartion component is always normal to the pathd. None of the abovePlease explain each one in detail.

Answers

So option (c) is incorrect. Option (b) is also incorrect because the total acceleration consists of both absolute and relative acceleration components.

The answer is (c) Point C. The IC (Instantaneous Center) is the point on a rotating body where the velocity of all points on the body is zero. In this case, the point A on the rod has a velocity of 8 m/s to the right, so the IC must be somewhere to the left of point A. The only option that is to the left of point A is Point C, so that is the correct answer.

The answer is (c) the same, different. When two bodies contact each other without slipping, they have different tangential velocities because they are moving along different paths. This means that their tangential components of acceleration will also be different. However, the normal components of acceleration will be the same because the two bodies are in contact with each other and therefore have the same normal force acting on them.

The answer is (a) Its total acceleration consists of both absolute acceleration and relative acceleration components. When considering a point on a rigid body in general plane motion, its total acceleration consists of both absolute acceleration and relative acceleration components. The absolute acceleration is the acceleration of the point with respect to a fixed reference frame, while the relative acceleration is the acceleration of the point with respect to the rotating body. The relative acceleration component is not always normal to the path, it depends on the direction of the rotation.

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Ozonolysis of alkenes yields carbon dioxide as a product. a. True b. False

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b. False.

Ozonolysis of alkenes typically yields a mixture of products including carbonyl compounds, aldehydes, ketones, and carboxylic acids. It does not typically yield carbon dioxide as a product.

Your question is whether ozonolysis of alkenes yields carbon dioxide as a product. The answer is:

b. False

Ozonolysis of alkenes does not yield carbon dioxide as a product. Instead, it breaks the double bond in the alkene, forming smaller carbonyl-containing compounds such as aldehydes or ketones.

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Obtaining the luminosity function of galaxies: A galaxy survey is carried out over a solid angle w, and only objects with distance < Dlim shall be considered (i.e., imagine you made a hard cut in redshift to remove all galaxies with z > 2(Dlim)). The galaxy survey is flux limited, which means that only sources with flux above a threshold, S > Smin, can be detected. a) Show that the total volume in which galaxies are considered for the survey is Vtot = (Diim):W b) Calculate the volume Vmax (L) within which we can observe galaxies with luminosity L. c) Let N(L) be the number of galaxies found with luminosity smaller than L. Show that the luminosity function is then given by 1 dN(L) D(L) = Vmax(L) dL (1) d) State in words why we need to apply this "Vmax" correction (or weighting) to any result derived from a flux-limited survey. How will the Vmax correction change our estimate of the relative number of intrinsically faint to intrinsically luminous galaxies?

Answers

The four statements in the question have been proved as shown in the explanation part. The V(max) correction would make the luminosity function flatter, decreasing the relative number of luminous galaxies and increasing the relative number of faint galaxies.

(a) To calculate the total volume in which galaxies are considered for the survey, we can start with the definition of solid angle, which is given by:

w = A / r²

where A is the area of the surveyed region and r is the distance to the farthest galaxy that can be detected (i.e., Dlim). Rearranging this equation gives:

A = w×r²

The volume of the surveyed region is then:

V(tot) = A × Dlim = w×r² × Dlim

Substituting for A, we get:

V(tot) = w(Dlim)³

(b) The volume within which we can observe galaxies with luminosity L is given by:

V(max)(L) = w ∫[0,D(L)] dr r²

where D(L) is the distance to a galaxy with luminosity L. We can use the distance modulus relation to relate L and D(L):

L = 4π(D(L))² F

where F is the flux of the galaxy. Since the survey is flux-limited, we have:

F = kS(min)

where k is a constant. Substituting for F in the distance modulus relation gives:

D(L) = [(L/4πkS(min))]^(1/2)

Substituting this expression for D(L) into the expression for V(max)(L), we get:

V(max)(L) = w ∫[0,(L/4πkS(min))^(1/2)] dr r²

Solving this integral gives:

V(max)(L) = (4/3)πw(L/4πkS(min))^(3/2)

(c) The number of galaxies found with luminosity smaller than L is given by:

N(L) = ∫[0,L] ϕ(L') dL'

where ϕ(L) is the luminosity function. Since the survey is flux-limited, we have:

ϕ(L) = dN(L) / (V(max)(L) dL)

Substituting this expression for ϕ(L) into the equation for N(L), we get:

N(L) = ∫[0,L] dN(L') / (V(max)(L') dL')

Using the chain rule, we can rewrite this as:

N(L) = ∫[0,L] dN/dV(max)(L') dV(max)(L')

Integrating this equation gives:

N(L) = [V(tot) / w] ∫[0,L] dN/dV(max)(L') V(max)(L')^-1 dL'

Multiplying and dividing by dL', we get:

N(L) = [V(tot) / w] ∫[0,L] dN/dL' (dL' / dV(max)(L')) V(max)(L')^-1 dL'

Using the definition of V(max)(L'), we can write:

(dL' / dV(max)(L')) = (3/2) (4πkS(min))^(1/2) (V(max)(L'))^(-3/2) L'^(1/2)

Substituting this expression and the expression for V(max)(L') into the previous equation, we get:

N(L) = (2/3) (V(tot) / w) (4πkS(min))^(1/2) ∫[0,L] ϕ(L') L'^(1/2) dL'

Using the definition of ϕ(L), we can rewrite this as:

N(L) = (2/3) (V(tot) / w) (4πkS(min))^(1/2) ∫[0,L] dN(L') / (V(max)(L') dL')

d) In a flux-limited survey, the objects that are detected are those that emit enough radiation to be detected by the survey instruments, i.e., those that have a flux above a certain threshold.

However, not all objects that emit radiation above this threshold are equally detectable. The detectability of an object depends on its intrinsic luminosity, distance, and the solid angle over which the survey is carried out.

The V(max) correction is applied to correct for the fact that the survey can only detect objects within a certain volume, called Vmax, which depends on their luminosity.

The correction takes into account the fact that more luminous objects can be detected over a larger volume than less luminous objects. Without the V(max) correction, the survey would give a biased estimate of the luminosity function, favoring intrinsically luminous objects over faint ones.

The V(max) correction would change our estimate of the relative number of intrinsically faint to intrinsically luminous galaxies.

It would increase the number of faint galaxies relative to luminous galaxies since faint galaxies have smaller V(max), while the luminous ones have larger V(max).

In other words, the V(max) correction would make the luminosity function flatter, decreasing the relative number of luminous galaxies and increasing the relative number of faint galaxies.

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Part A What is the probability that an electron in the 1s state of a hydrogen atom will be found at a distance less than a/5 from the nucleus? Express your answer using three significant figures. Submit Request Answer Part B Use the results of part A to calculate the probability that the electron will be found at distances between a/5 and a from the nucleus. Express your answer using three significant figures. Submit Request Answer

Answers

A: The probability of finding an electron in the 1s state of a hydrogen atom at a distance less than a/5 from the nucleus is approximately 0.001.  B: Using the result from Part A, the probability of finding the electron at distances between a/5 and a from the nucleus is approximately 0.999.

To solve for the probability of finding an electron in the 1s state of a hydrogen atom at a distance less than a/5 from the nucleus, we can use the radial probability density function, which is given by: P(r) = (4/a^3)*(r^2)*e^(-2r/a)
where r is the distance from the nucleus and a is the Bohr radius.
We need to integrate this function from 0 to a/5 to get the probability of finding the electron within this distance. Using calculus, we get: P(0 to a/5) = ∫(0 to a/5) P(r) dr = 0.001.

To find this probability, we need to integrate the radial probability density function for the 1s orbital of the hydrogen atom from 0 to a/5. The radial probability density function is given by: To calculate the probability of the electron being found between a/5 and a, we need to integrate the radial probability density function for the 1s orbital from a/5 to a. Using the same function as in Part A:P(r) = (4/a^3) * e^(-2r/a).

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plane polarized light of intensity i 0 is passed through a polarizer oriented at 45° to the original plane of polarization. what is the intensity transmitted?A. 0.70 IoB. 0.50 IoC. 0.35 IoD. 0.25 IoE. 0.00 Io

Answers

When plane polarized light of intensity i0 passes through a polarizer that is oriented at 45° to the original plane of polarization, the intensity transmitted can be calculated using Malus' Law. This law states that the intensity of light transmitted through a polarizer is proportional to the square of the cosine of the angle between the polarization direction of the incident light and the polarizer.

Correct answer is B

In this case, the polarizer is oriented at 45° to the original plane of polarization, which means that the angle between the polarization direction of the incident light and the polarizer is also 45°. The cosine of 45° is 1/√2, so the intensity transmitted is proportional to (1/√2)^2 = 1/2. Therefore, the correct answer is B. 0.50 Io.

Mathematically, we can express this as:
[tex]I = I0 cos^2 θ[/tex]

where I0 is the initial intensity of the polarized light, θ is the angle between the polarization direction of the incident light and the polarizer, and I is the intensity of the light transmitted through the polarizer.

In this case, θ = 45°, so:

[tex]I = I0 cos^2 45° = I0 (1/√2)^2 = I0/2[/tex]

Thus, the intensity transmitted is half of the initial intensity, or 0.50 Io.

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The  intensity of the transmitted light is 1/4 of the intensity of the incident light:

I = 0.25 I0

So the correct answer is option D, 0.25 Io.

When plane-polarized light is passed through a polarizer oriented at 45° to the original plane of polarization, the intensity of the transmitted light is given by:

I = I0 cos^2θ

where I0 is the intensity of the incident light, and θ is the angle between the plane of polarization of the incident light and the axis of the polarizer.

In this case, θ is 45°, so we have:

I = I0 cos^2(45°) = I0 (cos(45°))^2 = I0 (1/2)^2 = I0/4

Therefore, the intensity of the transmitted light is 1/4 of the intensity of the incident light:

I = 0.25 I0

So the correct answer is option D, 0.25 Io.

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The passenger liners Carnival Destiny


and Grand Princess have a mass of


about 1. 0 x 108 kg each. How far apart


must these two ships be to exert a


gravitational attraction of 1. 0 x 103 N


on each other?

Answers

The passenger liners Carnival Destiny and Grand Princess each have a mass of about 1.0 x 10^8 kg. The distance apart these two ships must be to exert a gravitational attraction of 1.0 x 10^3 N on each other can be calculated using Newton's law of gravitation, which states that the force of attraction between two objects is directly proportional to the product of their masses and inversely proportional to the square of the distance between them.

The formula is given as F = G(m₁m₂/d²), where F is the force of attraction between the two objects, G is the universal gravitational constant, m₁ and m₂ are the masses of the objects, and d is the distance between the centres of mass of the objects.

Rearranging the formula to solve for d: d = √(G(m₁m₂)/F).

Substituting the given values into the formula: d = √(6.67 x 10^-11 N(m²/kg²)(1.0 x 10^8 kg)(1.0 x 10^8 kg)/(1.0 x 10^3 N)).

Simplifying the expression: d = √(6.67 x 10^-11 N(m²/kg²)(1.0 x 10^16 kg²)/(1.0 x 10^3 N))d = √(6.67 x 10^-2 m²) = 0.258 m (to 3 significant figures).

Therefore, the two ships must be 0.258 meters or approximately 26 centimetres apart to exert a gravitational attraction of 1.0 x 10^3 N on each other.

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A family of two children and an adult visited an amusement park and paid an entry fee of $90. Another family of three children and two adults visited the same amusement park and paid an entry fee of $155. What is the entry fee for a child at the amusement park?

Answers

The entry fee for a child at the amusement park is $65.

To find the entry fee for a child at the amusement park, we need to determine the difference in entry fees between the two families and divide it by the difference in the number of children between the two families.

Entry fee difference: $155 - $90 = $65

The difference in number of children: 3 - 2 = 1

To find the entry fee for a child, we divide the entry fee difference ($65) by the difference in the number of children (1):

Entry fee for a child = Entry fee difference / Difference in number of children

Entry fee for a child = $65 / 1 = $65

Therefore, the entry fee for a child at the amusement park is $65.

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the north end of a strong magnet and the south end of a weak magnet are near each other. which experiences the larger force? how do you know?

Answers

The north end of a strong magnet experiences the larger force.

How do we know which experiences the larger force?

The fundamental principle underlying most magnetic interactions is polarity- where opposite poles attract and like ones oppose each other.

When we bring together two magnets with varying strengths - say a stronger and weaker one- their behavior becomes predictable: The north pole of the powerful magnet should get drawn towards south pole of weaker magnetic field, while its own southern extremity should experience some pushback.

And according to physics principles governing magnetic forces- in particular how attraction and repulsion work-, we know such attractions would typically have more potency than opposing forces; hence why we can conclude that stronger magnets exert relatively larger forces at their respective northern ends.

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an l-c circuit has an inductance of 0.430 h and a capacitance of 0.280 nf . during the current oscillations, the maximum current in the inductor is 2.00 a .

Answers

During the oscillations in an L-C circuit , the maximum energy stored in the capacitor during current oscillations is approximately 1.018 * 10⁻¹⁰ joules. The energy in the capacitor oscillates at a frequency of approximately 664.45 Hz.

Part A:

The maximum energy stored in the capacitor (Emax) can be calculated using the formula:

[tex]E_{\text{max}} = \frac{1}{2} \cdot C \cdot V^2[/tex]

where C is the capacitance and V is the voltage across the capacitor.

Given:

Inductance (L) = 0.430 H

Capacitance (C) = 0.280 nF = 0.280 * 10⁻⁹ F

Maximum current in the inductor (Imax) = 2.00 A

Since the current oscillates in an L-C circuit, the maximum voltage across the capacitor (Vmax) is equal to the maximum current in the inductor multiplied by the inductance:

Vmax = Imax * L

Substituting the given values:

Vmax = 2.00 A * 0.430 H = 0.86 V

Now we can calculate the maximum energy stored in the capacitor:

Emax = (1/2) * C * Vmax²

= (1/2) * 0.280 * 10⁻⁹ F * (0.86 V)²

= 1.018 * 10⁻¹⁰ J

Therefore, the maximum energy stored in the capacitor during the current oscillations is approximately 1.018 * 10⁻¹⁰ joules.

Part B:

The energy in the capacitor oscillates back and forth in an L-C circuit. The frequency of oscillation (f) can be determined using the formula:

[tex]f = \frac{1}{2\pi \sqrt{L \cdot C}}[/tex]

Substituting the given values:

[tex]f = 1 / (2 * math.pi * math.sqrt(0.430 * 0.280e-9))[/tex]

= 664.45 Hz

Therefore, the capacitor contains the amount of energy found in Part A approximately 664.45 times per second.

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Complete question :

An L-C circuit has an inductance of 0.430 H and a capacitance of  0.280 nF . During the current oscillations, the maximum current in the inductor is 2.00 A .

Part A

Part complete What is the maximum energy Emax stored in the capacitor at any time during the current oscillations? Express your answer in joules.

Part B

How many times per second does the capacitor contain the amount of energy found in part A? Express your answer in times per second.

a population of n = 7 scores has a mean of μ = 10. if one score with a value of x = 4 is removed from the population, what is the value for the new mean? group of answer choices

Answers

The new mean after removing the score of x = 4 from the population is 11.

The new mean would be 12. The sum of the remaining six scores would be 66 (since 10 x 6 = 60) and when you add the score that was removed (4), the total sum becomes 70. Divide 70 by the new sample size of 6, and the new mean is 12.
To find the new mean after removing a score of x = 4 from a population of n = 7 with a mean of μ = 10, follow these steps:

1. Calculate the sum of all scores in the original population by multiplying the mean by the population size: 10 * 7 = 70.
2. Subtract the removed score from the sum: 70 - 4 = 66.
3. Determine the new population size by subtracting 1 from the original population: 7 - 1 = 6.
4. Calculate the new mean by dividing the adjusted sum by the new population size: 66 / 6 = 11.

So, the new mean after removing the score of x = 4 from the population is 11.

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problem 15. electrons are ejected from a metallic surface with speeds ranging up to 2.50 x 108 m/s when light with a wavelength of 1.50 10 12m − l = × is used

Answers

This problem is related to the photoelectric effect, which describes the ejection of electrons from a metal surface when light is shone on it. The maximum kinetic energy of the ejected electrons is given by:

KEmax = hf - Φ

where h is the Planck constant, f is the frequency of the incident light, Φ is the work function of the metal, and KEmax is the maximum kinetic energy of the ejected electrons.

In this problem, we are given the wavelength of the incident light, λ = 1.50 x 10^-12 m. We can use the relationship between the speed of light, wavelength, and frequency to find the frequency of the incident light:

c = fλ

where c is the speed of light. Substituting the given values, we get:

f = c / λ = (3.00 x 10^8 m/s) / (1.50 x 10^-12 m) = 2.00 x 10^20 Hz

Next, we are told that the electrons are ejected with speeds ranging up to 2.50 x 10^8 m/s. The maximum kinetic energy of the ejected electrons is given by:

KEmax = 1/2 mv^2

where m is the mass of the electron and v is the speed of the electron.

We can use the relationship between kinetic energy, frequency, and Planck's constant to find the work function Φ:

KEmax = hf - Φ

Φ = hf - KEmax

Substituting the given values and converting units as necessary:

h = 6.626 x 10^-34 J s (Planck constant)

m = 9.11 x 10^-31 kg (mass of electron)

KEmax = 1/2 mv^2 = 1/2 (9.11 x 10^-31 kg) (2.50 x 10^8 m/s)^2 = 2.27 x 10^-18 J

f = 2.00 x 10^20 Hz

Φ = hf - KEmax = (6.626 x 10^-34 J s) (2.00 x 10^20 Hz) - 2.27 x 10^-18 J = 1.32 x 10^-18 J

Therefore, the work function of the metal is 1.32 x 10^-18 J.

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what is the resonant frequency of a series circuit consisting of a 100 pf capacitor, a 10 kω resistor, and a 1 mh inductor?

Answers

The resonant frequency of the series circuit is approximately 15,915.49 Hz.

The resonant frequency (f_r) of a series circuit consisting of a 100 pF capacitor, a 10 kΩ resistor, and a 1 mH inductor can be calculated using the formula:

f₍r₎ = 1 / (2 × π × √(L × C))

where L is the inductance (1 mH = 0.001 H) and C is the capacitance (100 pF = 0.0000001 F).

f₍r₎ = 1 / (2 × π × √(0.001 × 0.0000001))
f₍r₎≈ 1 / (2 × π × √0.0000000001)
f₍r₎ ≈ 1 / (2 × π× 0.00001)
f₍r₎ ≈ 15,915.49 Hz

The resonant frequency of the series circuit is approximately 15,915.49 Hz.

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a spring with a spring constant of 8.50 n/m is compressed 4.00 m. what is the force that the spring would apply

Answers

The force that the spring would apply can be calculated using the formula F = kx, where F is the force, k is the spring constant, and x is the distance the spring is compressed.

we have a spring constant of 8.50 N/m and a compression distance of 4.00 m. Plugging these values into the formula, we get ,F = 8.50 N/m x 4.00 m ,F = 34 N Therefore, the force that the spring would apply is 34 N.

To calculate the force applied by a spring, we use Hooke's Law, which is given by the formula F = -k * x, where F is the force applied by the spring, k is the spring constant, and x is the compression or extension of the spring. In this case, the spring constant k is 8.50 N/m, and the compression x is 4.00 m. Plugging these values into the formula, we get F = -8.50 N/m * 4.00 m F = -34 N, the magnitude of the force is 34 N.

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A 200 g mass attached to a horizontal spring oscillates at a frequency of 2.0 Hz. At t = 0 s, the mass is at x = 5.0 cm and has vx = -20 cm/s. Determine the following.(a) the period(b) the angular frequency(c) the amplitude

Answers

(a). The period of the oscillation is 0.5 seconds.

(b). The angular frequency of the oscillation is 4π rad/s.

(c). The amplitude of the oscillation is approximately 6.43 cm.

(a) To find the period of the oscillation, we can use the formula:

T = 1 / f

where T is the period and f is the frequency.

Given that the frequency is 2.0 Hz, we can calculate the period as follows:

T = 1 / 2.0 Hz

T = 0.5 s

(b) The angular frequency (ω) can be calculated using the formula:

ω = 2πf

where ω is the angular frequency and f is the frequency.

Given that the frequency is 2.0 Hz, we can calculate the angular frequency as follows:

ω = 2π * 2.0 Hz

ω = 4π rad/s

(c) To find the amplitude, we can use the equation of motion for simple harmonic motion:

x(t) = A * cos(ωt + φ)

where x(t) is the displacement at time t, A is the amplitude, ω is the angular frequency, and φ is the phase angle.

At t = 0 s, the mass is at x = 5.0 cm. Substituting these values into the equation, we have:

5.0 cm = A * cos(0 + φ)

cos(φ) = 5.0 cm / A

At t = 0 s, the mass has a velocity of vx = -20 cm/s. The velocity is given by the derivative of the displacement equation:

v(t) = -Aω * sin(ωt + φ)

-20 cm/s = -Aω * sin(0 + φ)

sin(φ) = -20 cm/s / (-Aω)

Using the values of sin(φ) and cos(φ) obtained from the above equations, we can determine the amplitude A. By taking the ratio of sin(φ) and cos(φ), we have:

tan(φ) = sin(φ) / cos(φ) = (-20 cm/s / (-Aω)) / (5.0 cm / A)

Simplifying, we get:

tan(φ) = 4 / 5.0

Using a calculator, we can find the value of φ:

φ ≈ 38.66 degrees

Now, we can substitute the value of φ into the equation cos(φ) = 5.0 cm / A to solve for A:

cos(38.66 degrees) = 5.0 cm / A

A = 5.0 cm / cos(38.66 degrees)

A ≈ 6.43 cm

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