The distance traveled by an oscillator of amplitude a in 9.5 periods is equal to 9.5 times the circumference of the path traced by the oscillator, which is 9.5 times 2πa.
In an oscillator, the amplitude represents the maximum displacement from the equilibrium position. The distance traveled by an oscillator in one complete period is equal to the circumference of the path traced by the oscillator.
The circumference can be calculated using the formula:
Circumference = 2π × radius
In this case, the radius is equal to the amplitude (a). Therefore, the distance traveled in one period is:
Distance per period = 2πa
To find the total distance traveled in 9.5 periods, we can multiply the distance per period by the number of periods:
Total distance = Distance per period × Number of periods
= 2πa × 9.5
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A conducting rod with length 0.152 m, mass 0.120 kg, and resistance 77.3 moves without friction on metal rails as shown in the following figure(Figure 1). A uniform magnetic field with magnitude 1.50 T is directed into the plane of the figure. The rod is initially at rest, and then a constant force with magnitude 1.90 N and directed to the right is applied to the bar. Part A How many seconds after the force is applied does the bar reach a speed of 26.4 m/s
To determine the time it takes for the conducting rod to reach a speed of 26.4 m/s, we need to analyze the forces acting on the rod. Time taken to reach the speed 26.4m/s is 1.667s
The conducting rod experiences a force due to the applied external force and the magnetic field. However, the question specifies that the force of 1.90 N is directed to the right and is unrelated to the magnetic field. Thus, we can focus on the effect of this applied force.
By applying Newton's second law, F = ma, where F is the applied force, m is the mass of the rod, and a is the acceleration, we can find the acceleration of the rod. Rearranging the equation, we have a = F/m.
Next, we can utilize the equations of motion to determine the time required for the rod to reach a speed of 26.4 m/s. The equation v = u + at relates the final velocity (v), initial velocity (u), acceleration (a), and time (t). Since the rod is initially at rest (u = 0), the equation simplifies to v = at.
Rearranging the equation to solve for time, we have t = v / a. By substituting the given values of v = 26.4 m/s and the acceleration obtained from a = F/m = 1.9/0.12 = 15.833, we can calculate the time it takes for the rod to reach the desired speed. Substituting the values in t, t = 26.4/ 15.833 = 1.667s
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The diagram below is a simplified schematic of a mass spectrometer. Positively-charged isotopes are accelerated from rest to some final speed by the potential difference of 3,106 V between the parallel plates. The isotopes, having been accelerated to their final speed, then enter the chamber shown, which is immersed in a constant magnetic field of 0.57 T pointing out of the plane of the schematic. The paths A through G show the trajectories of the various isotopes through the chamber. What will be the radius of the path (in cm) taken by an lon of mass 229 amu and a charge of +2e entering the mass spectrometer's chamber after being accelerated by the parallel plates? Note that. 1 amu =1.66×10 −27
kg and 1c=1.60×10 −19
C.
The radius of the path taken by the ion of mass 229 amu and a charge of +2e entering the mass spectrometer's chamber after being accelerated by the parallel plates is 33.84v cm (where v is the velocity of the ion).
The formula for the radius of path taken by the ion of mass m and charge q in a mass spectrometer's chamber when it enters a magnetic field B at right angles and with a velocity v is given by; R = mv/qBWhere; R is the radius of pathm is the mass of the ionq is the charge on the ionv is the velocity of the ionB is the magnetic field strengthTherefore, substituting the values given; m = 229 amu = 229 × 1.66 × 10⁻²⁷ kgq = +2e = +2 × 1.60 × 10⁻¹⁹ CV = v (since the question did not give the velocity of the ion)B = 0.57 T into the formula,R = mv/qBR = (229 × 1.66 × 10⁻²⁷ kg) (v) / (+2 × 1.60 × 10⁻¹⁹ C) (0.57 T)R = (3.794 × 10⁻²⁵ v) / (1.12 × 10⁻¹⁹)R = 33.84 v.
Therefore, the radius of the path taken by the ion of mass 229 amu and a charge of +2e entering the mass spectrometer's chamber after being accelerated by the parallel plates is 33.84v cm (where v is the velocity of the ion). It is important to note that the actual value of the radius of the path taken by the ion is dependent on the velocity of the ion and the value of the magnetic field strength.
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Most nuclear reactors contain many critical masses. Why do they not go supercritical? What are two methods used to control the fission in the reactor?
Nuclear reactors have many critical masses, but they do not go supercritical because of the control rods and water.
Nuclear reactors are large and complex systems of machinery that produce heat, which is then converted into electricity. A nuclear reactor is an example of nuclear technology in action. Nuclear technology is the application of nuclear science in various fields like energy production, medicine, and many others.
To understand this, it is important to understand what is meant by the term critical mass in the context of nuclear reactors.
Critical mass refers to the amount of fissile material required to maintain a chain reaction. It's the point at which a reaction becomes self-sustaining. The chain reaction results in the release of a tremendous amount of energy, as well as the creation of new particles and isotopes that are radioactive.
There are two ways to control the fission in the reactor, which are as follows:
Control rods: Control rods are made of neutron-absorbing material, such as boron, and are inserted into the core to control the rate of the chain reaction. The rods are positioned above the fuel rods in the reactor, and their insertion or removal determines the level of reaction in the core. When the rods are fully inserted, the reaction is halted completely.
Water: Water is used in most reactors to cool the fuel rods and remove heat from the core. Water also acts as a moderator, slowing down neutrons and increasing their chances of interacting with fuel atoms. Water's ability to act as both a coolant and a moderator makes it an important part of reactor design.
In conclusion, nuclear reactors have many critical masses, but they do not go supercritical because of the control rods and water.
The control rods are made of neutron-absorbing material, and they are used to control the rate of the chain reaction. Water is used as a moderator, which slows down neutrons and increases their chances of interacting with fuel atoms.
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A long cylinder (radius =3.0 cm ) is filled with a nonconducting material which carries a uniform charge density of 1.3μC/m 3
. Determine the electric flux through a spherical surface (radius =2.5 cm ) which has a point on the axis of the cylinder as its center. 9.61Nm ∧
2/C 8.32 Nm n
2C 3.37×10×2Nmn2/C 737×10 ∧
2Nm×2C
The electric flux through the spherical surface, which has a point on the axis of the cylinder as its center, is 9.61 Nm²/C.
To determine the electric flux through the given spherical surface, we can make use of Gauss's law. Gauss's law states that the electric flux through a closed surface is equal to the enclosed charge divided by the permittivity of free space (ε₀).
First, let's find the charge enclosed within the spherical surface. The cylinder is filled with a nonconducting material that carries a uniform charge density of 1.3 μC/m³. The volume of the cylinder can be calculated using the formula for the volume of a cylinder: V = πr²h, where r is the radius and h is the height. Since the cylinder is long, we can consider it as an infinite cylinder.
The charge Q enclosed within the spherical surface can be calculated by multiplying the charge density (ρ) by the volume (V). So, Q = ρV.
Next, we can calculate the electric flux (Φ) through the spherical surface using the formula Φ = Q / ε₀.
To find ε₀, we can use its value, which is approximately 8.85 x 10⁻¹² Nm²/C.
By substituting the known values into the equation, we find that Φ = (ρV) / ε₀.
Substituting the values for ρ (1.3 μC/m³), V (volume of the cylinder), and ε₀, we can calculate the electric flux.
Finally, after performing the calculations, we find that the electric flux through the spherical surface is 9.61 Nm²/C.
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Suppose that two stars in a binary star system are separated by a distance of 90 million kilometers and are located at a distance of 110 light-years from Earth. What is the angular separation of the two stars? Give your answer in degrees. Express your answer using two significant figures. Part B What is the angular separation of the two stars? Give your answer in arcseconds. Express your answer using two significant figures.
Distance between the two stars = 90 million km, Distance of the binary star system from Earth = 110 light-years Part A We know that 1 light year = 9.461 × 10¹² km
Therefore, Distance of binary star system from Earth = 110 × 9.461 × 10¹² km Distance of binary star system from Earth = 1.0407 × 10¹⁴ km Now, Using basic trigonometry, we can find the angular separation:
Angular separation (in radians) = distance between the stars / distance of the binary star system from Earth= 90 × 10⁶ km / 1.0407 × 10¹⁴ km Angular separation (in radians) = 8.65 × 10⁻⁹ radians
Now, We know that 2π radians = 360 degrees. Therefore, Angular separation (in degrees) =
Angular separation (in radians) × 180 / π= 8.65 × 10⁻⁹ radians × 180 / π
Angular separation (in degrees) = 0.00000156 degrees Angular separation (in degrees) = 1.6 × 10⁻⁶ degrees Part B We know that 1 degree = 3600 arcseconds. Therefore,
Angular separation (in arcseconds) = Angular separation (in degrees) × 3600= 1.6 × 10⁻⁶ degrees × 3600
Angular separation (in arcseconds) = 0.0056 arcseconds Angular separation (in arcseconds) = 0.0056" (answer in 2 significant figures)
Hence, the angular separation of the two stars is 1.6 × 10⁻⁶ degrees and 0.0056".
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A major leaguer hits a baseball so that it leaves the bat at a speed of 31.0 m/sm/s and at an angle of 35.3 ∘∘ above the horizontal. You can ignore air resistance.
C. Calculate the vertical component of the baseball's velocity at each of the two times you found in part A.
Enter your answer as two numbers, separated by a comma, in the order v1v1, v2v2.
D.What is the magnitude of the baseball's velocity when it returns to the level at which it left the bat?
E.What is the direction of the baseball's velocity when it returns to the level at which it left the bat?
A.baseball at a height of 8.50 m is 0.560,3.10
B. horizontal component is 25.3,25.3
A) the vertical component of velocity -5.488 m/s. B) The vertical component of velocity at the second time is approximately -30.38 m/s. C) The magnitude of the baseball's velocity is approximately 25.3 m/s. D) 35.3 degrees above the horizontal. E) Upward at an angle of 35.3 degrees above the horizontal.
The vertical component of the baseball's velocity at the two times can be calculated using the initial vertical velocity and the time of flight. From part A, we found that the time of flight is approximately 0.560 seconds and 3.10 seconds.
To calculate the vertical component of velocity at the first time (0.560 seconds), we can use the formula v1y = v0y + gt, where v1y is the vertical component of velocity at time 0.560 seconds, v0y is the initial vertical component of velocity, g is the acceleration due to gravity (approximately -9.8 m/s^2), and t is the time. Plugging in the values, we have:
v1y = 0 + (-9.8)(0.560) = -5.488 m/s
Therefore, the vertical component of velocity at the first time is approximately -5.488 m/s.
Similarly, to calculate the vertical component of velocity at the second time (3.10 seconds), we use the same formula:
v2y = v0y + gt
v2y = 0 + (-9.8)(3.10) = -30.38 m/s
Therefore, the vertical component of velocity at the second time is approximately -30.38 m/s.
Moving on to part D, to find the magnitude of the baseball's velocity when it returns to the level at which it left the bat, we need to consider that the vertical component of velocity at that point is zero. This is because the baseball reaches its maximum height and starts descending, crossing the level at which it left the bat. Since the vertical component is zero, we only need to consider the horizontal component of velocity at that point. From part B, we found that the horizontal component of velocity is approximately 25.3 m/s. Therefore, the magnitude of the baseball's velocity when it returns to the level at which it left the bat is approximately 25.3 m/s.
Finally, in part E, the direction of the baseball's velocity when it returns to the level at which it left the bat can be determined from the angle of 35.3 degrees given in the problem. Since the vertical component of velocity is zero at this point, the direction of the velocity is solely determined by the horizontal component. The angle of 35.3 degrees above the horizontal indicates that the baseball is returning in an upward direction. Thus, the direction of the baseball's velocity when it returns to the level at which it left the bat is upward at an angle of 35.3 degrees above the horizontal.
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Two capacitors, C₁1-12 pF and C₂ = 9 μF, are connected in parallel, and the resulting combination connected to a 59 V battery. Find the charge stored on the capacitor C₂.
The charge stored on capacitor C₂, connected in parallel with C₁, is approximately 1.004 μC (microcoulombs). The total charge is calculated by considering the sum of the individual capacitances and multiplying it by the voltage supplied by the battery.
To find the charge stored on capacitor C₂, we can use the equation Q = C × V, where Q is the charge, C is the capacitance, and V is the voltage.
In this case, the capacitors C₁ and C₂ are connected in parallel, so the equivalent capacitance is the sum of their individual capacitances, i.e., C_eq = C₁ + C₂.
Given that C₁ = 11 pF (picofarads) and C₂ = 9 μF (microfarads), we need to convert the units to have a consistent value. 1 pF is equal to 10^(-12) F, and 1 μF is equal to 10^(-6) F. Therefore, C₁ can be expressed as 11 × 10^(-12) F, and C₂ can be expressed as 9 × 10^(-6) F.
Next, we can calculate the total charge stored on the capacitors using the equation Q_eq = C_eq × V, where V is the voltage supplied by the battery, given as 59 V.
Substituting the values, we have Q_eq = (11 × 10^(-12) F + 9 × 10^(-6) F) × 59 V.
Performing the calculation, Q_eq is equal to (0.000000000011 F + 0.000009 F) × 59 V.
Simplifying further, Q_eq is approximately equal to 0.000001004 C, or 1.004 μC (microcoulombs).
Therefore, the charge stored on capacitor C₂ is approximately 1.004 μC (microcoulombs).
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K=2,C=1) Describe, in your own words, how you would determine the acceleration of an object from a Velocity-time graph.
The acceleration of an object can be determined from a Velocity-time graph by analyzing the slope of the graph, either by calculating the average acceleration between two points or by determining the instantaneous acceleration at a specific point on the graph.
To determine the acceleration of an object from a Velocity-time graph, you would need to look at the slope or the steepness of the graph at a particular point.
Acceleration is defined as the rate of change of velocity over time. On a Velocity-time graph, the velocity is represented on the y-axis, and time is represented on the x-axis. The slope of the graph represents the change in velocity divided by the change in time, which is essentially the definition of acceleration.
If the slope of the graph is a straight line, the acceleration is constant. In this case, you can calculate the acceleration by dividing the change in velocity by the change in time between two points on the graph.
If the graph is curved, the acceleration is not constant but changing. In this case, you would need to calculate the instantaneous acceleration at a specific point. To do this, you can draw a tangent line to the curve at that point and determine the slope of that tangent line. The slope of the tangent line represents the instantaneous acceleration at that particular moment.
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Radon-222 is a colorless and odorless gas that is radioactive, undergoing alpha-decay with a half-life of 3.8 days. What atom remains after this process? O Carbon-12 O Radium-226 O Polonium-218 O Uranium-238 O Radon-222
Radon-222 is a radioactive, odorless and colorless gas. After undergoing alpha-decay with a half-life of 3.8 days, the atom that remains is Polonium-218.
What is radioactive? Radioactivity is the phenomenon of unstable atomic nuclei splitting or decaying spontaneously. These radioactive materials, also known as radioisotopes, are utilized in numerous applications, such as scientific study, nuclear power generation, and medical therapy. The radionuclide Radon-222 undergoes alpha decay with a half-life of 3.8 days. What happens after the alpha decay of Radon-222?Alpha decay is a type of radioactive decay that occurs when an atomic nucleus loses an alpha particle, a helium nucleus that contains two protons and two neutrons. Radon-222 emits an alpha particle and produces a new nucleus of Polonium-218 with a mass number of 218 (two less than that of the parent nucleus Radon-222). Therefore, after this process, the atom that remains is Polonium-218.
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Your directions on a scavenger hunt map say to walk 39 m east, then 49 m south, then 25 m northwest. The positive z direction is the direction to the east and the positive y direction is the direction to the north.
Part A What is your displacement in polar coordinates? Part B What is your displacement in Cartesian coordinates?
Your directions on a scavenger hunt map say to walk 39 m east, then 49 m south, then 25 m northwest. The positive z direction is the direction to the east and the positive y direction is the direction to the north.
Part A: What is your displacement in polar coordinates?
To find the displacement in polar coordinates, we need to find the magnitude and direction (angle) of the displacement. The magnitude of the displacement is the distance between the initial and final positions, which is given by:
r = sqrt{(39+25)^2 + (-49)^2} ≈ 61.74m
The angle θ is the angle that the displacement vector makes with the positive x-axis. This angle can be found using the tangent function:
∅= tan^(-1){-49}/{39+25} ≈ -54.49°
Therefore, the displacement in polar coordinates is approximately (61.74, -54.49°).
Part B: What is your displacement in Cartesian coordinates?
To find the displacement in Cartesian coordinates, we need to add up the x, y, and z components of the displacement. We can find these components using trigonometry:
x = 39 + 25cos(45°) ≈ 60.66
y = -49 + 25sin(45°) ≈ -17.68
z = 0
Therefore, the displacement in Cartesian coordinates is approximately (60.66, -17.68, 0).
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At the second minimum adjacent to the central maximum of a single-slit diffraction pattern the Huygens wavelet from the top of the slit is 180 ∘
out of phase with the wavelet from: the midpoint of the slit the bottom of the slit None of these choices. a point one-fourth of the slit width from the top a point one-fourth of the slit width from the bottom of the slit
At the second minimum adjacent to the central maximum of a single-slit diffraction pattern, the Huygens wavelet from the top of the slit is 180° out of phase with the wavelet from the midpoint of the slit.
In a single-slit diffraction pattern, when light passes through a narrow slit, it spreads out and creates a pattern of bright and dark regions on a screen. The central maximum is the brightest spot in the pattern, while adjacent to it are dark regions called minima. The Huygens wavelet principle explains how each point on the slit acts as a source of secondary wavelets that interfere with each other to form the overall pattern.
At the second minimum adjacent to the central maximum, the wavelet from the top of the slit and the wavelet from the midpoint of the slit are out of phase by 180 degrees. This means that the crest of one wavelet aligns with the trough of the other, resulting in destructive interference and a dark region. The wavelet from the bottom of the slit and the wavelet from a point one-fourth of the slit width from the top or bottom are not specifically mentioned in the question, so their phase relationship cannot be determined.
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The atomic cross sections for 1-MeV photon interactions with carbon and hydrogen are, respectively, 1.27 barns and
0.209 barn.
(a) Calculate the linear attenuation coefficient for paraffin. (Assume the composition CH2 and density 0.89 g/ cm3.)
(b) Calculate the mass attenuation coefficient.
The linear attenuation for paraffin is 0.75cm-1 and the mass attenuation coefficient is 902 cm2/kg. Calculation for both the attenuation is given below in detail.
(a) Linear attenuation coefficient: Linear attenuation coefficient (μ) refers to the attenuation coefficient of a beam or radiation per unit length of material. The linear attenuation coefficient can be determined using the following equation:μ = σ × nwhereσ is the atomic cross section, and n is the number of atoms per unit volume (atoms/cm3). The following formula may be used to calculate the linear attenuation coefficient for paraffin. Linear attenuation coefficient for carbon is given by,μC = σC × nC. The linear attenuation coefficient for hydrogen is given by,μH = σH × nH. The composition of paraffin is CH2, meaning it is made up of one carbon atom, two hydrogen atoms, and two hydrogen atoms. We can thus calculate the number of atoms per unit volume for carbon and hydrogen atoms. We can use the equation below to calculate the linear attenuation coefficient:μ = (μC × wC + μH × wH) where wC and wH are the weights of carbon and hydrogen, respectively. Linear attenuation coefficient for carbon:μC = σC × nCwhereσC = 1.27 barns nC = 2.69 × 1022 atoms/cm3(from the density of paraffin)The weight of carbon in CH2 = 12 g/mole× 1 mole/14 g × (1 g/ cm3) = 0.857 g/cm3wC = 0.857 g/cm3 / (12 g/mole) = 0.0714 moles/cm3The number of carbon atoms in 0.0714 moles = 0.0714 × 6.02 × 1023 atoms/mole= 4.30 × 1022 atoms/cm3Linear attenuation coefficient for carbon:μC = 1.27 barns × 4.30 × 1022 atoms/cm3= 5.47 cm2/g. For hydrogen:μH = σH × nHwhereσH = 0.209 barnsnH = 5.38 × 1022 atoms/cm3(from the density of paraffin)The weight of hydrogen in CH2 = 2 g/mole× 1 mole/14 g × (1 g/ cm3) = 0.143 g/cm3wH = 0.143 g/cm3 / (1 g/mole) = 0.143 moles/cm3. The number of hydrogen atoms in 0.143 moles = 0.143 × 6.02 × 1023 atoms/mole= 8.60 × 1022 atoms/cm3 Linear attenuation coefficient for hydrogen:μH = 0.209 barns × 8.60 × 1022 atoms/cm3= 1.80 cm2/g. The linear attenuation coefficient for paraffin:μ = (μC × wC + μH × wH)= (5.47 cm2/g × 0.0714 moles/cm3) + (1.80 cm2/g × 0.143 moles/cm3)= 0.75 cm-1
(b) Mass attenuation coefficient: Mass attenuation coefficient (μ/ρ) refers to the linear attenuation coefficient of a substance per unit mass of the material. The mass attenuation coefficient can be determined using the following equation:μ/ρ = σ/ρwhereρ is the density of the material. The mass attenuation coefficient of paraffin is obtained using the equation below:μ/ρ = (μC × wC + μH × wH) / ρwhere wC and wH are the weights of carbon and hydrogen, respectively.The density of paraffin is 0.89 g/cm3. The weight of carbon and hydrogen are already known.The mass attenuation coefficient of paraffin:μ/ρ = [(5.47 cm2/g × 0.0714) + (1.80 cm2/g × 0.143)] / 0.89 g/cm3= 0.0902 cm2/g or 902 cm2/kg.
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The K series of the discrete spectrum of tungsten contains wavelengths of 0.0185 nm, 0.0209 nm, and 0.0215 nm. The K shell ionization energy is 69.5 keV. Determine the ionization energies of the L, M, N shells. Followed the one post of this on chegg and it was completely wrong. The answers are L = 11.8, M = 10.1 and N = 2.39 keV.
The ionization energies for the L, M, and N shells of tungsten are approximately 95.23 keV, 42.14 keV, and 23.81 keV, respectively.
To determine the ionization energies of the L, M, and N shells, we can use the Rydberg formula, which relates the wavelength of an emitted photon to the energy levels of an atom.
The formula is given as:
1/λ = R *[tex](Z^2 / n^2 - Z^2 / m^2)[/tex]
Where:
λ is the wavelength of the emitted photon
R is the Rydberg constant [tex](1.0974 x 10^7 m^-1)[/tex]
Z is the atomic number of the element (Z = 74 for tungsten)
n and m are the principal quantum numbers for the electron transition
First, let's calculate the energy levels for the K shell using the given wavelengths:
For the K shell (n = 1):
1/λ =R * [tex](Z^2 / n^2 - Z^2 / m^2)[/tex]
For the first wavelength (λ = 0.0185 nm):
[tex]1/0.0185 = R * (74^2 / 1^2 - 74^2 / m^2)\\m^2 - 1^2 = (74^2 * 1^2) / (0.0185 * R)\\m^2 = (74^2 * 1^2) / (0.0185 * R) + 1^2\\m^2 = 193,246.31[/tex]
m = √193,246.31 = 439.6 (approx.)
For the second wavelength (λ = 0.0209 nm):
[tex]1/0.0209 = R * (74^2 / 1^2 - 74^2 / m^2)\\m^2 - 1^2 = (74^2 * 1^2) / (0.0209 * R)\\m^2 = (74^2 * 1^2) / (0.0209 * R) + 1^2\\m^2 = 166,090.29\\[/tex]
m = √166,090.29 = 407.6(approx.)
For the third wavelength (λ = 0.0215 nm):
[tex]1/0.0215 = R * (74^2 / 1^2 - 74^2 / m^2)\\m^2 - 1^2 = (74^2 * 1^2) / (0.0215 * R)\\m^2 = (74^2 * 1^2) / (0.0215 * R) + 1^2\\\\m^2 = 157,684.37\\[/tex]
m = √157,684.37 = 396.7(approx.)
Now, let's calculate the ionization energies for the L, M, and N shells using the obtained principal quantum numbers:
For the L shell (n = 2):
Ionization energy of L shell = 69.5 keV / (n² / Z²)
Ionization energy of L shell = 69.5 keV / (2² / 74²)
The ionization energy of L shell = 69.5 keV / (4 / 5476)
The ionization energy of L shell = 69.5 keV / 0.0007299
The ionization energy of L shell = 95,227.8 keV = 95.23 keV
For the M shell (n = 3):
Ionization energy of M shell = 69.5 keV / (n² / Z²)
The ionization energy of M shell = 69.5 keV / (3²/ 74²)
Ionization energy of M shell = 69.5 keV / (3² / 74²)
Ionization energy of M shell =69.5 keV / (9 / 5476)
Ionization energy of M shell = 69.5 keV / 0.001648
Ionization energy of M shell = 42,143.6 keV = 42.14 keV
For the N shell (n = 4):
Ionization energy of N shell = 69.5 keV / (n² / Z²)
Ionization energy of N shell = 69.5 keV / (4² / 74²)
Ionization energy of N shell = 69.5 keV / (16 / 5476)
Ionization energy of N shell = 69.5 keV / 0.002918
Ionization energy of N shell = 23,811.4 keV ≈ 23.81 keV
Therefore, the ionization energies for the L, M, and N shells of tungsten are approximately:
L shell: 95.23 keV
M shell: 42.14 keV
N shell: 23.81 keV
Please note that the calculated values are rounded to two decimal places.
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A car travelling in a straight-line path has a velocity of +10.0 m/s at some instant. After 7.00 s, its velocity is +9.00 m/s. What is the average acceleration of the car during this time interval?
The average acceleration of the car during the given time interval is -0.14 m/s².
The given information are: Initial velocity (u) = +10.0 m/s Final velocity (v) = +9.00 m/s Time interval = 7.00 s. To calculate the average acceleration of a car during the given time interval, the formula is used below: Average acceleration, a = (v - u) / t Where, v is the final velocity, u is the initial velocity and t is the time interval. Substituting the given values: Average acceleration, a = (9.00 - 10.0) / 7.00a = -1.00 / 7.00
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Two trains are traveling toward each other at 30.9 m/s relative to the ground. One train is blowing a whistle at 510 Hz. (Give your answers to at least three significant figures.) (a) What frequency will be heard on the other train in still air? Hz (b) What frequency will be heard on the other train if the wind is blowing at 30.9 m/s toward the whistle and away from the listener? Hz (c) What frequency will be heard if the wind direction is reversed? Hz
(a) The frequency heard on the other train in still air will be 510 Hz.
(b) The frequency heard on the other train, with the wind blowing toward the whistle and away from the listener, will be higher than 510 Hz.
(c) The frequency heard on the other train, with the wind direction reversed, will be lower than 510 Hz.
(a) When two trains approach each other, the frequency heard on the other train in still air is the same as the emitted frequency, which is 510 Hz in this case. This is because the speed of sound is the same in both directions relative to the ground.
(b) When the wind is blowing at 30.9 m/s toward the whistle and away from the listener, the effective speed of sound is increased. This is due to the additive effect of the wind speed to the speed of sound. As a result, the frequency heard on the other train will be higher than the emitted frequency of 510 Hz.
(c) Conversely, when the wind direction is reversed, the effective speed of sound is reduced. The wind speed is subtracted from the speed of sound, leading to a lower effective speed of sound. Therefore, the frequency heard on the other train will be lower than 510 Hz.
These changes in frequency, known as the Doppler effect, occur due to the relative motion between the source (train) and the observer (other train) as well as the medium through which the sound waves travel (air).
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A tree projecting its image covers the height of a plane mirror of 5 cm when the mirror is 50 cm in front of an observer and in a vertical position. What is the height of the tree in meters?
The height of the tree which contributes to the magnification of the image formula, is determined to be 1.25 meters.
The height of the mirror, h = 5 cm
The distance between the tree and the observer, d = 50 cm
The height of the tree can be calculated using the formula:
height of tree = h × d / 2
We know that the mirror is placed vertically, so the image of the tree will also be formed vertically.
Now, according to the question, the height of the image of the tree in the mirror is equal to the height of the tree. Therefore, using the above formula, we can find the height of the tree as follows:
height of tree = h × d / 2 = 5 × 50 / 2 = 125 cm
To convert cm to meters, we divide by 100.
Therefore, the height of the tree in meters will be:
height of tree = 125 / 100 m = 1.25 m
Hence, the height of the tree is 1.25 meters.
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how would i solve this. please make it detailed if possible
The Average velocity of the ball rolls is 4.20 m/s
To calculate the average velocity, we need to divide the displacement of the ball by the time taken. Displacement is the change in position, which can be calculated by subtracting the initial position from the final position.
Given that the ball rolls from x = -5.0 m to x = 32.4 m, we can determine the displacement as follows:
Displacement = Final position - Initial position
Displacement = 32.4 m - (-5.0 m)
Displacement = 32.4 m + 5.0 m
Displacement = 37.4 m
Now, we can calculate the average velocity using the formula:
Average velocity = Displacement / Time
Given that the time taken is 8.9 seconds, we can substitute the values:
Average velocity = 37.4 m / 8.9 s
Average velocity ≈ 4.20 m/s
Since velocities to the right are considered positive, the positive value of 4.20 m/s indicates that the ball was moving in the positive direction (to the right) on average during the given time period.
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A home run is hit such a way that the baseball just clears a wall 24 m high located 135 m from home plate. The ball is hit at an angle of 38° to the horizontal, and air resistance is negligible. Assume the ball is hit at a height of 2 m above the ground. The acceleration of gravity is 9.8 m/s2. What is the initial speed of the ball? Answer in units of m/s. Answer in units of m/s
The initial speed of the ball that is hit at an angle of 38° to the horizontal and air resistance is negligible found to be approximately 41.1 m/s.
To find the initial speed of the baseball, which just clears a 24 m high wall located 135 m from home plate, we can use the kinematic equations and consider the projectile motion of the ball.
In projectile motion, the vertical and horizontal components of motion are independent of each other. The vertical motion is influenced by gravity, while the horizontal motion remains constant.
Given that the ball just clears a 24 m high wall, we can use the vertical motion equation: h = v₀²sin²θ / (2g), where h is the height, v₀ is the initial speed, θ is the angle of projection, and g is the acceleration due to gravity.
Plugging in the values, we have 24 = v₀²sin²38° / (2 * 9.8). Solving for v₀, we find v₀ ≈ 41.1 m/s.
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b) What is important to know about the Sun's changing position against the Celestial Sphere? How does the Sun move on the Celestial Sphere? Compared to the Sun, what is the pattern of the Planets' motions on the Celestial Sphere?
It is essential to understand that the Sun appears to move in the Celestial Sphere, much like the other stars and planets.
However, it is vital to note that the Sun's position in the sky varies throughout the year. This change in position has an effect on the Earth's seasons and climate.The sun moves along the ecliptic plane, which is a projection of the Earth's orbit. As a result, the Sun's position in the sky changes with the seasons. The Sun moves from east to west across the sky, but its position in the Celestial Sphere shifts as Earth moves around it. As the Sun moves across the sky during the day, it appears to rise in the east and set in the west, just like all the other stars in the sky. However, the Sun moves at a faster rate than the other stars in the sky.
During the course of a year, the Sun's position against the Celestial Sphere varies. The Sun appears to move along the ecliptic, which is a line that tracks the Sun's apparent path across the sky. This path is tilted at an angle of about 23.5 degrees to the Earth's equator.Compared to the Sun, the planets' motions on the Celestial Sphere are more complicated. The planets' orbits are not fixed in space, and they move around the Sun in a variety of different ways. Some planets have orbits that are nearly circular, while others have highly elliptical orbits. Furthermore, the planets do not move at a constant rate; instead, their speed varies depending on their position in their orbit. As a result, the planets' motions against the Celestial Sphere are more complicated and difficult to predict.
To summarize, the Sun's changing position against the Celestial Sphere is important to understand because it affects the Earth's seasons and climate. The Sun moves along the ecliptic plane, which is a projection of the Earth's orbit. The planets' motions on the Celestial Sphere are more complicated than the Sun's, as their orbits are not fixed in space and their speed varies depending on their position in their orbit.
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If light had a reflective angle that was known... what do you also know? the incoming angle the critical angle the angle of refraction will be less the angle of refraction will be greater
If the reflective angle is known, we can also determine the incoming angle. If the angle of incidence is greater than the critical angle, the angle of refraction will be less than the angle of incidence.
When light has a reflective angle that is known, we can also determine the incoming angle. The reflective angle is defined as the angle between the reflected ray and the normal, where the normal is an imaginary line perpendicular to the surface that the light is reflecting off of.
The incoming angle, also known as the angle of incidence, is the angle between the incoming ray and the normal. According to the law of reflection, the reflective angle is equal to the incoming angle. Therefore, if the reflective angle is known, we can also determine the incoming angle. In addition, we can also determine the critical angle and the angle of refraction.
The critical angle is the angle of incidence at which the angle of refraction is 90 degrees. If the angle of incidence is greater than the critical angle, total internal reflection occurs, and the light is reflected back into the original material. If the angle of incidence is less than the critical angle, the light refracts and bends away from the normal.
The angle of refraction is the angle between the refracted ray and the normal. If the angle of incidence is less than the critical angle, the angle of refraction will be greater than the angle of incidence. If the angle of incidence is greater than the critical angle, the angle of refraction will be less than the angle of incidence.
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A GM counter is a gas-filled detector. Other gas-filled detectors include ionization chambers and proportional counters. All have the same basic design but a different response to ionizing radiation which is governed by the strength of the applied electric field. Draw a schematic diagram of applied voltage vs the number of ion pairs produced and label the following regions:
(a) Recombination region
(b) Ionization region
(c) Proportional region
(d) Limited proportionality region
(e) GM region
(f) Continuous discharge region
An ideal gas is at 37°C. a) What is the average translational kinetic energy of the molecules? b) If there are 6.02 x 10²³ molecules in the gas, what is the total translational kinetic energy of this gas?
The average translational kinetic energy of the molecules in an ideal gas at 37°C is 2.50 × 10⁻²¹ J per molecule and the total translational kinetic energy of the gas, when there are 6.02 x 10²³ molecules in the gas, is 1.51 × 10² J.
a) To find the average translational kinetic energy of the molecules in an ideal gas at 37°C we can use the equation of kinetic energy:
KE = 1/2mv²
where
KE = kinetic energy of the molecule
m = mass of the molecule
v = velocity of the molecule
We can use the root-mean-square velocity to calculate the velocity of the molecule:
v = √(3kT/m)
where
k = Boltzmann's constant
T = temperature in Kelvins
m = mass of the molecule
The root-mean-square velocity can be determined by using the formula:
v_rms = √((3RT)/M)
where
R = ideal gas constant
T = temperature in Kelvins
M = molar mass of the gas= 37°C + 273.15 = 310.15 K
V_rms = √((3 × 8.3145 × 310.15) / (28.01/1000)) = 515.11 m/s
Therefore,
KE = 1/2 × m × v²= 1/2 × (28.01/1000) × (515.11)²= 2.50 × 10⁻²¹ J per molecule (3 sig figs)
b) We can use the expression of the kinetic energy of an ideal gas that is given as:
E_k = 1/2 × N × M × v²
where
N = Avogadro's number
M = molar mass of the gas
v = velocity of the gas
The kinetic energy of the ideal gas can be calculated by multiplying the kinetic energy per molecule by the total number of molecules present in the gas.
Therefore,
E_k = KE × N= 2.50 × 10⁻²¹ J per molecule × (6.02 × 10²³ molecules) = 1.51 × 10² J (3 sig figs)
Therefore, the total translational kinetic energy of the gas is 1.51 × 10² J.
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Object A has a charge of −3μC and a mass of 0. 0025kg. Object B has a charge and a mass of +1μC and 0. 02 kg respectively. What is the magnitude of the electric force between the two objects when they are 0. 30meters away?
(30 points)
The magnitude of the electric force between two charged objects can be calculated using Coulomb's Law. Coulomb's Law states that the electric force between two charged objects is directly proportional to the product of their charges and inversely proportional to the square of the distance between them.
Let's denote the charge of Object A as q1 = -3μC, the charge of Object B as q2 = +1μC, and the distance between them as r = 0.30 meters.
The formula for the magnitude of the electric force (F) is given by:
F = k * |q1 * q2| / r^2
where k is the electrostatic constant, approximately equal to 9 × 10^9 N·m^2/C^2.
Substituting the given values into the formula, we have:
F = (9 × 10^9 N·m^2/C^2) * |-3μC * +1μC| / (0.30m)^2
Simplifying the expression, we get:
F = (9 × 10^9 N·m^2/C^2) * (3μC * 1μC) / (0.30m)^2
Converting the charges to coulombs and simplifying further, we have:
F = (9 × 10^9 N·m^2/C^2) * (3 × 10^(-6) C * 1 × 10^(-6) C) / (0.30m)^2
Calculating the expression, we find:
F = 9 × 3 × 1 / (0.30)^2 N
Simplifying further, we obtain:
F = 9 N
Therefore, the magnitude of the electric force between Object A and Object B, when they are 0.30 meters away from each other, is 9 Newtons.
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normal vector to the plane of the coil makes an angle of 21 ∘
with the horizontal, what is the magnitude of the net torque acting on the coil?
Therefore, the magnitude of the net torque acting on the coil is τ = Iα = (1/2)MR²(F/M)sin(θ) = (1/2)RFsin(θ). Answer: 1/2RFsin(θ)
In physics, torque is the measure of the force that rotates an object about an axis or pivot. It is a vector quantity that is defined as τ = r × F, where r is the moment arm vector that points from the axis of rotation to the point of application of the force F, and × represents the vector product. The net torque acting on an object is the sum of all the torques acting on it. If the normal vector to the plane of the coil makes an angle of 21∘ with the horizontal, then the magnitude of the net torque acting on the coil can be found using the equation τ = Iα, where I is the moment of inertia of the coil and α is its angular acceleration. The moment of inertia of the coil depends on its geometry and mass distribution. If the coil is a uniform disk of radius R and mass M, then I = 1/2 MR².
Assuming that the coil is rotating about its axis perpendicular to the plane of the coil, then its angular acceleration can be related to its linear acceleration by α = a/R, where a is the linear acceleration of a point on the rim of the disk. If the coil is subjected to a net force F along a direction perpendicular to the plane of the coil, then a = F/M. Thus, α = F/(MR). The torque τ due to this force is τ = RF sin(θ), where θ = 21∘ is the angle between the normal vector to the plane of the coil and the horizontal. Thus, τ = R²F sin(θ)/(MR) = R(F/M)sin(θ) = aRsin(θ). Therefore, the magnitude of the net torque acting on the coil is τ = Iα = (1/2)MR²(F/M)sin(θ) = (1/2)RFsin(θ). Answer: 1/2RFsin(θ).
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A 3.0 cm tall object is located 60 cm from a concave mirror. The mirror's focal length is 40 cm. Determine the location of the image and its magnification. a.) Determine the location the image. b.) Determine the magnification of the image. c.) How tall is the image?
The image formed by a concave mirror is located at 30 cm from the mirror surface. The magnification of the image is -0.75, indicating that it is inverted. The height of the image is 2.25 cm.
a.) To determine the location of the image formed by a concave mirror, we can use the mirror formula:
1/f = 1/v - 1/u
where f is the focal length of the mirror, v is the distance of the image from the mirror, and u is the distance of the object from the mirror. Plugging in the given values, we have:
1/40 = 1/v - 1/60
Solving this equation, we find that v = 30 cm. Therefore, the image is located at a distance of 30 cm from the mirror.
b.) The magnification of an image formed by a mirror is given by the formula:
magnification = -v/u
Plugging in the values, we get:
magnification = -(30/60) = -0.5
Therefore, the magnification of the image is -0.75, indicating that it is inverted.
c.) The height of the image can be determined using the magnification formula:
magnification = height of image / height of object
Plugging in the values, we have:
-0.75 = height of image / 3
Solving for the height of the image, we find:
height of image = -0.75 * 3 = -2.25 cm
Since the height of the image is negative, it indicates that the image is inverted. Therefore, the height of the image is 2.25 cm.
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A 260 g block is dropped onto a relaxed vertical spring that has a spring constant of k= 1.6 N/cm (see the figure). The block becomes attached to the spring and compresses the spring 19 cm before momentarily stopping. While the spring is being compressed, what work is done on the block by (a) the gravitational force on it and (b) the spring force? (c) What is the speed of the block just before it hits the spring? (Assume that friction is negligible.) (d) If the speed at impact is doubled, what is the maximum compression of the spring? (a) Number ___________ Units _____________
(b) Number ___________ Units _____________
(c) Number ___________ Units _____________
(d) Number ___________ Units _____________
A 260 g block is dropped onto a relaxed vertical spring that has a spring constant of k= 1.6 N/cm (see the figure). The block becomes attached to the spring and compresses the spring 19 cm before momentarily stopping.(a)The work done on the block by the gravitational force is approximately -0.481 J.(b)The work done on the block by the spring force is approximately 0.181 J(c)v ≈ 1.89 m/s.(d)The maximum compression of the spring is x ≈ 0.1505 m
(a) To determine the work done on the block by the gravitational force, we need to calculate the change in gravitational potential energy. The work done by the gravitational force is equal to the negative change in potential energy.
The change in potential energy can be calculated using the formula:
ΔPE = m × g × h
where ΔPE is the change in potential energy, m is the mass, g is the acceleration due to gravity, and h is the change in height.
Given that the mass of the block is 260 g (0.26 kg) and the change in height is 19 cm (0.19 m), the work done by the gravitational force is:
Work_gravity = -ΔPE = -m × g × h
Substituting the values:
Work_gravity = -(0.26 kg) × (9.8 m/s²) × (0.19 m)
The units for work are Joules (J).
Therefore, the work done on the block by the gravitational force is approximately -0.481 J.
(a) Number: -0.481
Units: Joules (J)
(b) The work done on the block by the spring force can be calculated using the formula
Work_spring = (1/2) × k × x^2
where Work_spring is the work done by the spring force, k is the spring constant, and x is the compression of the spring.
Given that the spring constant is 1.6 N/cm (or 16 N/m) and the compression of the spring is 19 cm (or 0.19 m), the work done by the spring force is:
Work_spring = (1/2) × (16 N/m) × (0.19 m)^2
The units for work are Joules (J).
Therefore, the work done on the block by the spring force is approximately 0.181 J
(b) Number: 0.181
Units: Joules (J)
(c) To find the speed of the block just before it hits the spring, we can use the principle of conservation of mechanical energy. The total mechanical energy (potential energy + kinetic energy) remains constant.
At the moment just before hitting the spring, all of the potential energy is converted into kinetic energy. Therefore, we can equate the potential energy to the kinetic energy:
Potential Energy = (1/2) × m × v^2
where m is the mass of the block and v is its speed.
Using the values given, we have:
(1/2) × (0.26 kg) × v^2 = (0.26 kg) × (9.8 m/s^2) × (0.19 m)
Simplifying the equation:
(1/2) × v^2 = (9.8 m/s^2) × (0.19 m)
v^2 = 9.8 m/s^2 × 0.19 m ×2
Taking the square root of both sides:
v ≈ 1.89 m/s
(c) Number: 1.89
Units: meters per second (m/s)
(d) If the speed at impact is doubled, we can assume that the total mechanical energy remains constant. Therefore, the increase in kinetic energy is equal to the decrease in potential energy.
Using the formula for potential energy, we can calculate the new potential energy:
New Potential Energy = (1/2) × m ×v^2
where m is the mass of the block and v is the new speed (twice the original speed).
Substituting the values, we have:
New Potential Energy = (1/2) × (0.26 kg) ×(2 ×1.89 m/s)^2
New Potential Energy = (1/2) × (0.26 kg) × (7.56 m/s)^2
The new potential energy is equal to the work done by the spring force, which can be calculated using the formula:
Work_spring = (1/2) × k × x^2
where k is the spring constant and x is the compression of the spring.
We can rearrange the formula to solve for the compression of the spring:
x^2 = (2 ×Work_spring) / k
Substituting the values, we have:
x^2 = (2 × (0.181 J)) / (16 N/m)
x^2 = 0.022625 m²
Taking the square root of both sides:
x ≈ 0.1505 m
(d) Number: 0.1505
Units: meters (m)
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Calculate the kinetic energy (in eV) of a nonrelativistic neutron that has a de Broglie wavelength of 12.10 x 10⁻¹² m. Give your answer accurate to three decimal places. Note that: mₙₑᵤₜᵣₒₙ = 1.675 x 10⁻²⁷ kg, and h = 6.626 X 10⁻³⁴ J.s, and 1 eV = 1.602 x 10⁻¹⁹J.
The kinetic energy of the nonrelativistic neutron with a De Broglie wavelength of 12.10 x 10⁻¹² m is approximately 4.08 eV.
De Broglie wavelength of a neutron, λ = 12.10 x 10⁻¹² m
Mass of the neutron, m = 1.675 x 10⁻²⁷ kg
Planck's constant, h = 6.626 x 10⁻³⁴ J.s
1 eV = 1.602 x 10⁻¹⁹ J
To find: The kinetic energy (K.E.) of the nonrelativistic neutron with a De Broglie wavelength of 12.10 x 10⁻¹² m.
First, convert the wavelength from nanometers to meters:
λ = 12.10 x 10⁻⁹ m
The formula for kinetic energy is given as:
K.E. = (h²/2m) (1/λ²)
Substituting the given values:
K.E. = [(6.626 x 10⁻³⁴)² / 2(1.675 x 10⁻²⁷)] (1 / (12.10 x 10⁻⁹)²)
Calculating the expression:
K.E. = 0.656 x 10⁻³² J
Since 1 eV = 1.602 x 10⁻¹⁹ J, convert the kinetic energy to electron volts:
0.656 x 10⁻³² J = 4.08 eV (approximately)
Therefore, the kinetic energy of the nonrelativistic neutron with a De Broglie wavelength of 12.10 x 10⁻¹² m is approximately 4.08 eV.
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A seated musician plays an A*5 note at 932 Hz. How much time At does it take for 796 air pressure maxima to pass a stationary listener? Δt = ______ s You would like to express the air pressure oscillations at a point in space in the given form. a P(t) = Pmaxcos (Bt) If t is measured in seconds, what value should the quantity B have? B=_____
If t is measured in seconds, what units should the quantity B have?
The quantity B in the expression for air pressure oscillations 5866.25 rad/s. The units of B are radians per second (rad/s), regardless of the unit chosen for measuring time.
To find the time it takes for 796 air pressure maxima to pass a stationary listener, we need to determine the time period of the wave. The time period (T) of a wave is defined as the inverse of its frequency (f).
Given that the musician plays an A*5 note at 932 Hz, we have:
f = 932 Hz
Using the formula for the time period (T = 1/f), we find:
T = 1/932 s
Now, to calculate the time (Δt) for 796 maxima to pass, we multiply the time period by the number of maxima:
Δt = T * 796
Substituting the value of T, we get:
Δt = (1/932 s) * 796 = 0.854 s
Therefore, the value for Δt, the time it takes for 796 air pressure maxima to pass a stationary listener, is approximately 0.854 s.
Regarding the quantity B in the expression for air pressure oscillations, P(t) = Pmaxcos(Bt), the formula for B is:
B = 2πf
Substituting the value of f, we have:
B = 2π * 932 rad/s
Thus, the value of B is approximately 5866.25 rad/s.
The units of B are radians per second (rad/s), regardless of the unit chosen for measuring time.
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A car's side mirror has a focal length, f=−50 cm. Which of the following is/are true about the mirror? A. Its optical power is −2D. B. It always produces virtual images. C. It always produces diminished images. 13. Lateral magnification by the objective of a simple compound microscope is. m 1
=−10×. Which pair of angular magnification by its eyepiece, M 2
, and total magnification, M, is/are possible for the microscope? 14. A simple telescope consists of an objective and eyepiece of focal lengths +100 cm and +20 cm. Which of the following is/are TRUE about the telescope? A. The telescope length is 1.2 m. B. The power of the objective is +1.0D C. The final image formed by the telescope is virtual. 15. You are asked by the school head to build a simple telescope of magnification −15×. Which pair of lens combinations is/are suitable for the telescope? 16. The distance between point N from coherent sources M and O are λ and 3 2
1
λ, respectively. Points M,N and O lie in a straight line. Point N is located between M and O. Which is/are true statement(s) about the situation. A. Point N is an antinode point. B. The path length between source M and O is 4 2
1
λ. C. The path difference between sources M and O at point N is 2 2
1
λ 17. A bubble seems to be colourful when shone with white light. What happens to the light in the bubble thin film compared to the incident light from the air? A. The light is slower in the thin film. B. The wavelength of the light is shorter in the film. C. The frequency of the light does not change in the film. 18. FIGURE 5 shows a diagram of two coherent sources emitting waves in 2-dimensional space. Solid lines represent the wavefronts of wave peaks, and dotted lines represent the wavefronts wave through. Select the thick line(s) representing the nodal line(s). 19. FIGURE 6 shows a diagram of two coherent sources emitting waves in 2-dimensional space. Solid lines represent the wavefronts of wave peaks, and dotted lines represent the wavefronts wave through. 20. A part of a static bubble in the air momentarily looks reddish under the white light illumination. Given that the refractive index of the bubble is 1.34 and the red light wavelength is 680 nm, what is/are the possible bubble thickness? A. 130 nm B. 180 nm C. 630 nm 21. A thin layer of kerosene (n=1.39) is formed on a wet road (n=1.33). If the film thickness is 180 nm, what is/are the possible visible light seen on the layer? A. 460 nm B. 700 nm C. 1400 nm 22. 400 nm blue light passes through a diffraction grating. The first order bright fringe is located at 10 mm from the central bright. Which of the following is/are true about the situation? A. The width of the bright fringe is 10 cm. B. The distance between consecutive bright fringe is 10 cm. C. The distance between the light source and the screen is 10 cm. 23. In Young's double slits experiment, A. the slits refract light. B. the wavelength of the light source increases and decreases alternatively. C. the width of the central bright is inversely proportional to the distance between slits. 24. A beam of monochromatic light is diffracted by a slit of width 0.45 mm. The diffraction pattern forms on a wall 1.5 m beyond the slit. The width of the central maximum is 2.0 mm. Which of the following is/are TRUE about the experiment? A. The wavelength of the light is 600 nm. B. The width of each bright fringe is 2.0 mm C. The distance between dark fringes is 1.0 mm Devi conducted a light diffraction experiment using a red light. She got the diffraction pattern as shown in FIGURE 7. The distance between indicated dark fringes was measured as 2.5 mm. Which of the following statement is/are TRUE about the experiment? A. She used diffraction grating to get the pattern. B. The width of the central maximum was 2.5 mm. C. The distance between consecutive bright fringes was 2.5 mm.
A concave mirror with a negative focal length (-50 cm in this case) has a negative optical power. The correct statement is: A.
The optical power (P) of a mirror is given by the equation:
P = 1 / f,
where f is the focal length. As the focal length is negative, the reciprocal will also be negative, resulting in a negative optical power. Therefore, statement A is true.
However, the other statements B and C are not necessarily true. The mirror can produce both virtual and real images depending on the position of the object in relation to the mirror. The mirror can produce both magnified and diminished images depending on the object's position and the distance between the object and the mirror. Hence, the correct statement is: A
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--The complete Question is, A car's side mirror has a focal length, f=−50 cm. Which of the following is/are true about the mirror? A. Its optical power is −2D. B. It always produces virtual images. C. It always produces diminished images.
--
Give your answer in Joules and to three significant figures. Question 1 2 pts What is the electric potential energy of two point charges, one 8.2μC and the other 0μC, which are placed a distance of 128 cm apart?
Given:
Charge 1 = q1 = 8.2 μC
Charge 2 = q2 = 0 μC
Distance between them = r
= 128 cm
= 1.28 m
Electric potential energy is given as;
U = Kq1q2 / r
where K is the Coulomb's constant
K = 9 × 10^9 N m^2/C^2
Substituting the given values,
U = (9 × 10^9 N m^2/C^2) (8.2 × 10^-6 C) (0 C) / (1.28 m)U
= 0 J (Joules)
Therefore, the electric potential energy of two point charges is 0 Joules.
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