Explanation:
work=force*distance. force=load/10
___________
work=60*60=3600n
power=work/time(seconds)
Powe required is 1000
Explanation:
-Given: M= 600kg H: 60
-Time of operation: t = 6 min = 360 seconds
-Work done in lifting boxes: w= mgh (600 x 10 x 60) = 360,000
-Power required: p=[tex]\frac{w}{t} = \frac{360000}{360} = 1000[/tex]
resistances of 2.0ω, 4.0ω, and 6.0ω and a 24-v emf device are all in series. the potential difference across the 4.0-ω resistor is:
The answer is 8 V.
Since the resistors are in series, the current passing through all of them is the same. Let's call this current "I".
Using Ohm's Law, we can find the voltage drop across each resistor:
V1 = IR1 = I(2.0 Ω) = 2I
V2 = IR2 = I(4.0 Ω) = 4I
V3 = IR3 = I(6.0 Ω) = 6I
The sum of the voltage drops across each resistor should equal the voltage provided by the emf device, which is 24 V.
V1 + V2 + V3 = 2I + 4I + 6I = 12I = 24 V
Solving for I, we get:
I = 24 V / 12 Ω = 2 A
Now we can find the voltage drop across the 4.0-Ω resistor:
V2 = IR2 = (2 A)(4.0 Ω) = 8 V
Therefore, the potential difference across the 4.0-Ω resistor is 8 V.
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) uncharged 10 µf capacitor and a 470-kω resistor are connected in series, and a 50 v applied across the combination. how long does it take the capacitor voltage to reach 200 v?
1.299 seconds is the approximate time for the capacitor voltage to reach 200v.
For a series RC circuit with an uncharged capacitor (10 µF) and a resistor (470 kΩ), when a voltage (50 V) is applied, the voltage across the capacitor can be calculated using the charging equation:
Vc(t) = V * (1 - e^(-t/(R*C)))
Where Vc(t) is the capacitor voltage at time t, V is the applied voltage, R is the resistance, C is the capacitance, and e is the base of the natural logarithm (approximately 2.718).
To find the time it takes for the capacitor voltage to reach a certain percentage of the applied voltage, we can rearrange the equation for t:
t = -R * C * ln(1 - (Vc(t) / V))
Now, let's find the time it takes for the capacitor voltage to reach 90% of the applied voltage, which is 45 V (90% of 50 V):
t = -470,000 * 0.00001 * ln(1 - (45 / 50))
t ≈ 1.299 * 10^6 microseconds
t ≈ 1.299 seconds
So, it takes approximately 1.299 seconds for the capacitor voltage to reach 90% of the applied voltage in this RC circuit.
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It takes approximately 1.33 seconds for the voltage across the uncharged 10 µF capacitor to reach 200V when connected in series with a 470-kΩ resistor and a 50V applied across the combination.
In this situation, we can use the equation:
V = Vmax(1 - e^(-t/RC))
Where V is the voltage across the capacitor at any given time, Vmax is the maximum voltage the capacitor can reach (in this case, 50V), t is the time, R is the resistance of the resistor (470 kΩ), and C is the capacitance of the capacitor (10 µF).
To find how long it takes for the capacitor voltage to reach 200V, we need to solve for t in the above equation when V = 200V:
200V = 50V(1 - e^(-t/(470kΩ*10µF)))
4 = 1 - e^(-t/(4.7s))
e^(-t/(4.7s)) = 0.75
-t/(4.7s) = ln(0.75)
t = -4.7s * ln(0.75)
t ≈ 1.33 seconds
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the fan blades on a jet engine have a moment of inertia 30.0 kg-m 2 . in 10 s, they rotate counterclockwise from rest up to a rotation rate of 20 rev/s. a). What torque must be applied to the blades to achieve this angular acceleration?b). What is the torque required to bring the fan blades rotating at 20 rev/s to a rest in 20 s?
a. A torque of 60 N-m must be applied to the fan blades to achieve the given angular acceleration.
b. A torque of 30 N-m in the clockwise direction must be applied to the fan blades to bring them to rest in 20 s.
a) To calculate the torque required to achieve the given angular acceleration of the fan blades, we need to use the equation:
τ = Iα
Where τ is the torque, I is the moment of inertia and α is the angular acceleration.
Substituting the given values, we get:
τ = (30.0 kg-m^2) x (20 rev/s) / (10 s)
τ = 60 N-m
b) To calculate the torque required to bring the fan blades rotating at 20 rev/s to a rest in 20 s, we need to use the equation:
τ = Iα
Where τ is the torque, I is the moment of inertia and α is the angular deceleration.
As the fan blades are being brought to rest, their angular velocity is decreasing in a clockwise direction. Therefore, we need to use a negative value for α.
Substituting the given values, we get:
τ = (30.0 kg-m^2) x (-20 rev/s) / (20 s)
τ = -30 N-m
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A farsighted eye is corrected by placing a converging lens in front of the eye. The lens will create a virtual image that is located at the near point (the closest an object can be and still be in focus) of the viewer when the object is held at a comfortable distance (usually taken to be 25 cm). 1) If a person has a near point of 63 cm, what power reading glasses should be prescribed to treat this hyperopia? (Express your answer to two significant figures.)
To treat hyperopia with a near point of 63 cm, a converging lens with a power of +1.6 D should be prescribed.
What power reading glasses should be prescribed for hyperopia with a near point of 63 cm?Hyperopia, or farsightedness, can be corrected by using a converging lens that creates a virtual image located at the near point of the viewer. In this case, the near point is given as 63 cm.
The power of the lens can be determined using the lens formula: P = 1/f, where P is the power of the lens and f is the focal length. Since the virtual image is created at the near point, which is the closest an object can be in focus, the focal length of the lens is equal to the near point distance.
Therefore, the power of the lens is 1/63 cm, which is approximately +1.6 D (diopters). Prescribing reading glasses with this power will help treat hyperopia for comfortable near vision.
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early in the history of the solar system, when planets were being assembled, could an jupiter-like planet from where mercury formed?
No, it is highly unlikely that a Jupiter-like planet could have formed from where Mercury formed in the early history of the solar system. The formation and evolution of planets in the solar system are primarily governed by the physical conditions and processes occurring in the protoplanetary disk.
Mercury is an innermost planet in our solar system, located close to the Sun. The protoplanetary disk in this region was characterized by high temperatures, intense radiation, and low availability of solid material. These conditions would not have been conducive to the formation of a massive gas giant like Jupiter.
Jupiter-like gas giants typically form in the outer regions of protoplanetary disks, where there is an abundance of gas and dust. These gas giants undergo a process known as core accretion, where a solid core forms first and then accretes a massive envelope of gas. The presence of a substantial amount of gas in the outer regions allows for the rapid accumulation of material and the formation of massive planets.
In contrast, the inner regions of the protoplanetary disk, where Mercury formed, had a lower density of gas and dust, making it challenging for a gas giant to form. The small amount of material present in that region was more likely to form smaller, rocky planets like Mercury.
Therefore, based on our current understanding of planetary formation and the conditions in the early solar system, it is highly improbable that a Jupiter-like planet could have formed from the region where Mercury formed.
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under ideal conditions, the human eye can detect light of wavelength 550 nm if as few as 100 photons/s are absorbed by the retina. at what rate is energy absorbed by the retina?
To calculate the rate at which energy is absorbed by the retina, we need to use the formula for the energy of a photon:
E = hc/λ
where E is the energy of the photon, h is Planck's constant, c is the speed of light, and λ is the wavelength of the light. We know the wavelength of the light is 550 nm, so we can plug in the values:
E = (6.626 x 10^-34 J s)(3.00 x 10^8 m/s)/(550 x 10^-9 m)
E = 3.61 x 10^-19 J
Now we can calculate the rate at which energy is absorbed by the retina. We know that as few as 100 photons/s are absorbed by the retina, so we can multiply the energy of each photon by the number of photons:
(100 photons/s)(3.61 x 10^-19 J/photon) = 3.61 x 10^-17 J/s
Therefore, under ideal conditions, the human eye can absorb energy at a rate of 3.61 x 10^-17 J/s when detecting light of wavelength 550 nm with as few as 100 photons/s. This shows how sensitive the human eye is to light and how efficiently it can absorb energy.
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a mineral sample from a granitic rock has 50,000 atoms of potassiumm-40 and 150,000 atoms of argon-40. what is the age of the rock
The age of the rock is 1.73 billion years.
The radioactive decay of potassium-40 to argon-40 can be used to determine the age of a mineral sample. The half-life of potassium-40 is 1.25 billion years, meaning that after 1.25 billion years, half of the original potassium-40 atoms in the sample will have decayed into argon-40. By measuring the ratio of potassium-40 to argon-40 in a mineral sample, it is possible to calculate how long ago the sample was formed.
In this case, the mineral sample from the granitic rock contains 50,000 atoms of potassium-40 and 150,000 atoms of argon-40. This means that 50,000 atoms of potassium-40 have decayed into argon-40 since the sample was formed.
To calculate the age of the rock, we can use the following formula:
Age of rock = (ln(2) x half-life) / (ln(R + 1)),
where ln is the natural logarithm, half-life is the half-life of potassium-40 (1.25 billion years), and R is the ratio of argon-40 to potassium-40 in the sample.
R can be calculated by dividing the number of argon-40 atoms by the number of potassium-40 atoms:
R = 150,000 / 50,000 = 3.
Substituting these values into the formula, we get:
Age of rock = (ln(2) x 1.25 billion) / (ln(3 + 1))
= 1.73 billion years.
Therefore, the age of the rock is approximately 1.73 billion years. It is important to note that this age represents the time since the mineral sample was last reset by a thermal or chemical event. This may not necessarily correspond to the age of the entire granitic rock, as different minerals within the rock may have formed at different times.
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What is the significance of the dog's final movement towards civilization at the end of the story? what does this suggest about the dog's relationship to nature? is instinct driving this movement?
In Jack London's "To Build a Fire," the dog's final movement towards civilization is significant because it suggests that the dog recognizes the dangers of the natural world and has a desire to seek safety and security in human civilization.
This movement highlights the dog's intelligence and adaptation to its environment. It also suggests that the dog's relationship to nature is one of survival and instinct.
The dog is not driven by a conscious decision to seek civilization, but rather by a primal instinct to survive. This reinforces the theme of the harsh and unforgiving nature of the Yukon wilderness, where only the strongest and most adaptable can survive.
Overall, the dog's movement towards civilization symbolizes the tension between nature and civilization, and the struggle for survival in a hostile environment.
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In the diagram below, what
season is the Northern
Hemisphere experiencing when
Earth is in the position indicated
by X?
O (A) Fall
(B) Spring
O (C) Summer
O (D) Winter
SUN
The season that the Northern Hemisphere is experiencing when Earth is in the position indicated by X is Summer.
Option C
What season is the Northern Hemisphere experiencing?In the diagram below, the season that the Northern Hemisphere is experiencing when Earth is in the position indicated by X is determined as follows.
Based on the diagram, the northern hemisphere would be in what season at position X, and the options are;
fallWinter summer springGenerally looking at the diagram closely we will notice;
The earth around the sunThe sun hitting some parts of the earth at every intervalAt Position A the Northern hemisphere tilted towards the sunSince the summer occurs when the is more sunshine at the Northern Hemisphere
Therefore, the Northern hemisphere would be in the Summer Season at position X is Summer
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Write the valence molecular orbital configuration of f22-. the fill order for f22- is as follows: σ2s σ*2s σ2p π2p π*2p σ*2p what is the bond order of f22- according to molecular orbital theory?
The bond order of F22- according to molecular orbital theory is 1.
To determine the valence molecular orbital configuration of F22-, we can start by writing the electron configuration of the F2 molecule.
The F2 molecule has a total of 14 valence electrons (7 from each F atom) and the electron configuration is:
σ2s^2 σ*2s^2 σ2p^5 π2p^2
When F2 gains one additional electron to form F22-, the electron configuration becomes:
σ2s^2 σ2s^2 σ2p^5 π2p^3 σ2p^1
To determine the valence molecular orbital configuration, we can use the Aufbau principle to fill the molecular orbitals with electrons in order of increasing energy:
σ2s^2σ2s^2σ2p^6π2p^4σ2p^2
The valence molecular orbital configuration of F22- is therefore:
σ2s^2σ2s^2σ2p^6π2p^4σ2p^2
The bond order is given by the difference between the number of bonding and antibonding electrons divided by 2. In this case, there are 4 bonding electrons and 2 antibonding electrons, so the bond order is:
Bond order = (number of bonding electrons - number of antibonding electrons) / 2
Bond order = (4 - 2) / 2
Bond order = 1
Therefore, the bond order of F22- according to molecular orbital theory is 1.
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the rate constant for a certain chemical reaction is 0.00327 l mol-1s-1 at 28.9 °c and 0.01767 l mol-1s-1 at 46.9 °c. what is the activation energy for the reaction, expressed in kilojoules per mole?
The activation energy for the reaction is 76.8 kJ/mol.
To calculate the activation energy, we can use the Arrhenius equation: k = A * e^(-Ea/RT), where k is the rate constant, A is the pre-exponential factor, Ea is the activation energy, R is the gas constant, and T is the temperature in Kelvin.
By using the given rate constants at two different temperatures, we can set up two equations and solve for the activation energy.
Taking the natural logarithm of both equations and subtracting them, we get ln(k2/k1) = (-Ea/R)*[(1/T2)-(1/T1)].
Solving for Ea, we get Ea = -slope*R, where the slope is the value obtained by plotting ln(k) against 1/T.
Using the given data and solving for Ea, we get: Ea = (-slope) * R = (-1.967) * (8.314 J/mol.K) = 76.8 kJ/mol. Therefore, the activation energy for the reaction is 76.8 kJ/mol.
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the electric field 20 cm from a small object points away from the object with a strength of 15 kn/c. what is the object's charge?
The object's charge is approximately 0.002 C, given that the electric field 20 cm from the object points away from the object with a strength of 15 kn/c.
To determine the object's charge, we need to use Coulomb's Law which states that the electric field strength is directly proportional to the magnitude of the charge and inversely proportional to the distance squared.
Given that the electric field strength 20 cm away from the object is 15 kn/c, we can use this information to calculate the charge of the object.
We know that the electric field strength (E) is given by E = k * Q / r^2, where k is the Coulomb constant, Q is the charge of the object, and r is the distance from the object.
Substituting the given values, we get 15 kn/c = k * Q / (20 cm)^2.
Solving for Q, we get Q = (15 kn/c) * (20 cm)^2 / k, where k is approximately 9 x 10^9 Nm^2/C^2.
Calculating this expression, we get Q = 0.002 C (approximately). Therefore, the object's charge is 0.002 C, which is positive since the electric field points away from the object.
In conclusion, the object's charge is approximately 0.002 C, given that the electric field 20 cm from the object points away from the object with a strength of 15 kn/c.
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an 8.70-cm-diameter, 320 gg solid sphere is released from rest at the top of a 1.80-m-long, 20.0 ∘∘ incline. it rolls, without slipping, to the bottom.
a) What is the sphere's angular velocity at the bottom of the incline?
b) What fraction of its kinetic energy is rotational?
(a) The sphere's of the angular velocity at bottom of the incline will be 54.0 rad/s. (b) the fraction of the sphere's kinetic energy that is rotational is; 8.45%.
To solve this problem, we use the conservation of energy. At the top of the incline, the sphere has only potential energy, which is converted to kinetic energy as it rolls down the incline.
The potential energy of sphere at the top of incline is given by;
PE = mgh = (0.320 kg)(9.81 m/s²)(1.80 m) = 5.56 J
At the bottom of incline, the sphere having both translational and rotational kinetic energy. The translational kinetic energy is;
KE_trans = (1/2)mv²
where v is velocity of the sphere at bottom of the incline. To find v, we will use conservation of energy;
PE = KE_trans + KE_rot
where KE_rot is the rotational kinetic energy of the sphere. At the bottom of the incline, the sphere is rolling without slipping, so we have:
v = Rω
where R is radius of the sphere and ω is its angular velocity. Therefore, we can write;
PE = (1/2)mv² + (1/2)Iω²
where I is moment of inertia of the sphere. For a solid sphere, we have;
I = (2/5)mr²
where r is the radius of the sphere. Substituting the given values, we have;
5.56 J = (1/2)(0.320 kg)v² + (1/2)(2/5)(0.320 kg)(0.0435 m[tex])^{2ω^{2} }[/tex]
where we have converted the diameter of the sphere to meters. Solving for v, we get;
v = 2.35 m/s
To find the angular velocity ω, we can use the equation v = Rω;
ω = v/R = v/(d/2) = (2v)/d
Substituting the given values, we get;
ω = (2)(2.35 m/s)/(0.087 m) = 54.0 rad/s
Therefore, the sphere's angular velocity at the bottom of the incline is 54.0 rad/s.
The total kinetic energy of the sphere at the bottom of the incline is:
KE = (1/2)mv² + (1/2)Iω²
Substituting the given values, we have;
KE = (1/2)(0.320 kg)(2.35 m/s)² + (1/2)(2/5)(0.320 kg)(0.0435 m)²(54.0 rad/s)²
Simplifying, we get;
KE = 4.31 J
The rotational kinetic energy of the sphere is;
KE_rot = (1/2)Iω² = (1/2)(2/5)(0.320 kg)(0.0435 m)²(54.0 rad/s)² = 0.364 J
Therefore, the fraction of the sphere's kinetic energy that is rotational is;
KE_rot/KE = 0.364 J / 4.31 J = 0.0845
So, about 8.45% of the kinetic energy is rotational.
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A flat coil of wire has an inductance of 40.0 mH and a resistance of 5.00 Ω. It is connected to a 22.0-V battery at the instant t = 0. Consider the moment when the current is 3.00 A. (a) At what rate is energy being delivered by the battery? (b) What is the power being delivered to the resistance of the coil? (c) At what rate is energy being stored in the magnetic field of the coil? (d) What is the relationship among these three power values? (e) Is the relationship described in part (d) true at other instants as well? (f) Explain the relationship at the moment immediately after t = 0 and at a moment several seconds later.
A coil with an inductance of 40.0 mH and a resistance of 5.00 linked to a 22.0-V battery can be used to study the relationship between the energy supplied by the battery, the power supplied to the resistance, and the energy stored in the magnetic field at t = 0 when the coil's current is 3.00 A.
Answers to the given questions are as follows :
(a) The rate at which energy is being delivered by the battery is given by the product of the battery voltage and the current, so it is P = VI = (22.0 V)(3.00 A) = 66.0 W.
(b) The power being delivered to the resistance of the coil is given by P = I²R = (3.00 A)²(5.00 Ω) = 45.0 W.
(c) The rate at which energy is being stored in the magnetic field of the coil is given by P = 1/2 LI² (where L is the inductance of the coil), so it is P = (1/2)(40.0 mH)(3.00 A)² = 1.08 W.
(d) The sum of the power being delivered to the resistance and the power being stored in the magnetic field must be equal to the power being delivered by the battery, so 66.0 W = 45.0 W + 1.08 W + [tex]P_{\text{magnetic}}[/tex], where [tex]P_{\text{magnetic}}[/tex] is the power being stored in the magnetic field.
(e) The relationship described in part (d) is true at all instants, since energy cannot be created or destroyed.
(f) Immediately after t = 0, all of the power delivered by the battery is being used to build up the magnetic field of the coil, so the power being stored in the magnetic field is equal to the power being delivered by the battery. Several seconds later, when the current has stabilized, the power being stored in the magnetic field is zero, and all of the power delivered by the battery is being dissipated as heat in the resistance of the coil.
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a spaceship of proper length 300 m takes 0.75 μs to pass an earth observer. determine the speed of this spaceship as measured by the earth observer.
The speed of the spaceship as measured by the earth observer is 0.4c.
To determine the speed of the spaceship, we can use the time dilation formula:
Δt' = Δt/√(1-v²/c²)
where Δt is the time interval measured by the earth observer, Δt' is the time interval measured by an observer on the spaceship, v is the velocity of the spaceship, and c is the speed of light.
In this case, Δt' = 0.75 μs and the proper length of the spaceship, L, is 300 m.
Using the equation for proper length contraction, we can find L' = L/√(1-v²/c²)
Solving for v in both equations and equating them, we get:
v = (L/L') * c * √(1-((Δt/Δt')²))
Plugging in the values, we get v = 0.4c, where c is the speed of light. Therefore, the speed of the spaceship as measured by the earth observer is 0.4 times the speed of light.
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What is the universal gas constant for calculating osmotic pressure of sea water
The universal gas constant, R, is a constant used in many calculations in physics and chemistry, including the calculation of osmotic pressure. Its value is 8.314 J/mol•K (joules per mole Kelvin).
However, to calculate the osmotic pressure of seawater, additional factors such as the concentration of solutes and temperature must also be taken into account.
The osmotic pressure of seawater is typically calculated using the van 't Hoff equation, which relates the osmotic pressure to the concentration of solutes, temperature, and the gas constant.
So, while the universal gas constant is an important factor in calculating osmotic pressure, it is not the only factor and must be used in conjunction with other variables.
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a laser beam with wavelength λ = 650 nm hits a grating with n = 4250 grooves per centimeter. Part (a) Calculate the grating spacing, d, in centimeters. Part (b) Find the sin of the angle, θ2, at which the 2nd order maximum will be observed, in terms of d and λ. Part (c) Calculate the numerical value of θ2 in degrees.
The 2nd order maximum will be observed at an angle of approximately 33.8 degrees.
Part (a):
To calculate the grating spacing (d), we'll use the formula d = 1/n, where n is the number of grooves per centimeter.
1. n = 4250 grooves per centimeter
2. d = 1/n = 1/4250
3. d ≈ 0.000235 cm
Part (b):
To find the sin(θ2) at which the 2nd order maximum will be observed, we'll use the grating equation: mλ = d(sinθ), where m is the order number, λ is the wavelength, and θ is the angle.
1. m = 2 (for the 2nd order maximum)
2. λ = 650 nm = 650 x 10^(-7) cm
3. sinθ2 = (mλ) / d
Part (c):
To calculate the numerical value of θ2 in degrees, we'll first find the sin(θ2) using the formula from Part (b) and then use the inverse sin function.
1. sinθ2 = (2 x 650 x 10^(-7)) / 0.000235
2. sinθ2 ≈ 0.5523
3. θ2 = sin^(-1)(0.5523)
4. θ2 ≈ 33.8 degrees
So, the 2nd order maximum will be observed at an angle of approximately 33.8 degrees.
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The 2nd order maximum will be observed at an angle of approximately 0.317 degrees.
Part (a): To calculate the grating spacing, we can use the formula:
d = 1/n
where n is the number of grooves per unit length (in this case, per centimeter). Substituting n = 4250 grooves/cm, we get:
d = 1/4250 cm/groove = 2.35 × 10^-4 cm/groove
Therefore, the grating spacing is 2.35 × 10^-4 cm.
Part (b): To find the sin of the angle θ2 at which the 2nd order maximum will be observed, we can use the formula:
sin θ2 = (m λ)/d
sin θ2 = (2 × 650 nm)/(2.35 × 10^-4 cm) = 0.223
Therefore, the sin of the angle θ2 is 0.223 in terms of d and λ.
Part (c): To calculate the numerical value of θ2 in degrees, we can use the formula:
θ2 = sin^-1 (sin θ2)
Substituting the value of sin θ2 that we calculated in Part (b), we get:
θ2 = sin^-1 (0.223) = 12.9°
Therefore, the numerical value of θ2 is 12.9°.
Hello! I'd be happy to help you with your question.
Part (a) To calculate the grating spacing, d, we can use the formula:
d = 1/n
where n is the number of grooves per centimeter. In this case, n = 4250 grooves/cm. So,
d = 1/4250
d ≈ 0.000235 cm
sin(θ2) = (2 * 650 * 10^(-9)) / (0.000235)
sin(θ2) ≈ 0.005529
θ2 = arcsin(0.005529)
θ2 ≈ 0.317 degrees
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3. An object of mass 2kg has a position given by = (3+7t2+8t³) + (6t+4); where t is the time in seconds and the units on the numbers are such that the position components are in meters.
What is the magnitude of the net force on this object, to 2 significant figures?A) zero
B) 28 N
C) 96 N
D) 14 N
E) The net force is not constant in time
The main answer is E) The net force is not constant in time.
To determine the net force on the object, we need to find its acceleration. We can do this by taking the second derivative of the position function with respect to time:
a(t) = d²/dt² [(3+7t²+8t³) + (6t+4)]
a(t) = d/dt [14t+24]
a(t) = 14 m/s²
Since the net force on an object is equal to its mass multiplied by its acceleration, we can find the net force on this object by multiplying its mass (2 kg) by its acceleration (14 m/s²):
F = ma
F = 2 kg × 14 m/s²
F = 28 N
However, the question asks for the magnitude of the net force, which implies a scalar quantity. Since force is a vector quantity and its direction is not given, we cannot give a single numerical value for its magnitude. Additionally, since the acceleration of the object is not constant in time (it depends on the value of t), the net force on the object is also not constant in time. Therefore, the correct answer is E) The net force is not constant in time.
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Determine the normal force, shear force, and moment at point C. Take that P1 = 12kN and P2 = 18kN.
a) Determine the normal force at point C.
b) Determine the shear force at point C.
c) Determine the moment at point C.
Answer:
12×8=848
Explanation:
repell forces
A novelty clock has a 0.0185-kg mass object bouncing on a spring which has a force constant of 1.45 N/m.
a) What is the maximum velocity of the object, in meters per second, if the object bounces 3.35 cm above and below its equilibrium position?
b) How much kinetic energy, in joules, does the object have at its maximum velocity?
The object is approximately 0.862 m/s, and its corresponding kinetic energy is approximately 0.0077 J.
What is the kinetic energy of the object at its maximum velocity?The maximum velocity, we need to determine the amplitude of the oscillation first. Since the object bounces 3.35 cm above and below its equilibrium position, the total displacement is 2 * 0.0335 m = 0.067 m.
Using the equation for the maximum velocity of a mass-spring system, v_max = A * ω, where A is the amplitude and ω is the angular frequency, we can calculate ω. The angular frequency is given by ω = √(k / m), where k is the force constant and m is the mass.
Plugging in the values, ω = √(1.45 N/m / 0.0185 kg) ≈ 12.87 rad/s. Now we can calculate the maximum velocity: v_max = 0.067 m * 12.87 rad/s ≈ 0.862 m/s.
b) The kinetic energy at the maximum velocity, we use the formula KE = (1/2) * m * v^2, where m is the mass and v is the velocity. Plugging in the values, KE = (1/2) * 0.0185 kg * (0.862 m/s)^2 ≈ 0.0077 J.
The maximum velocity of the object is approximately 0.862 m/s, and its corresponding kinetic energy is approximately 0.0077 J.
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A plane travels N20 W at 360 mph and encounters a wind blowing due west at 25 mph Round to 2 decimal places. a. Express the velocity of the plane vp relative to the air in terms of i and i b. Express the velocity of the wind vw in terms of i and c. Express the true velocity of the plane vr in terms of i and j and find the true speed of the plane.
The true speed of the plane is 362.95 mph and the velocity of the plane relative to the air is [tex]v_p[/tex] = -122.79i + 339.21j, the true velocity of the plane is [tex]v_r[/tex] = -147.79i + 339.21j mph .
a. To express the velocity of the plane (vp) relative to the air in terms of i and j, we first break down the velocity into its components. The plane travels N20W, which means 20° west of due north. We have:
[tex]v_p_x[/tex] = -360 * sin(20°) = -122.79i (westward component)
[tex]v_p_y[/tex]= 360 * cos(20°) = 339.21j (northward component)
So, the velocity of the plane relative to the air is vp = -122.79i + 339.21j.
b. The velocity of the wind (vw) is blowing due west at 25 mph. There is no northward or southward component, so the expression is:
[tex]v_w[/tex] = -25i
c. To find the true velocity of the plane ( [tex]v_r[/tex] ), we add the velocity of the plane ( [tex]v_p[/tex] ) and the velocity of the wind ( [tex]v_w[/tex] ):
[tex]v_r_x = v_p_x + v_w_x[/tex]= -122.79i - 25i = -147.79i
[tex]v_r_y = v_p_y[/tex]= 339.21j
So, the true velocity of the plane is [tex]v_r[/tex] = -147.79i + 339.21j.
To find the true speed of the plane, we calculate the magnitude of [tex]v_r[/tex] :
True speed = [tex]sqrt((-147.79)^2 + (339.21)^2)[/tex]≈ 362.95 mph (rounded to 2 decimal places).
Therefore, the velocity of the plane relative to the air is [tex]v_p[/tex] is -122.79i + 339.21j and true speed of the plane is 362.95 mph
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A transmitter has an output of 2 W at a carrier frequency of 2 GHz. Assume that the transmitting and receiving antennas are parabolic dishes each 3 ft in diameter Assume that the efficiency of each antenna is 0.55. (a) Evaluate the gain of each antenna. (b) Calculate the EIRP of the transmitted signal in units of dBW. (c) If the receiving antenna is located 25 miles from the transmitting antenna over a free-space path, find the available signal power out of the receiving antenna in units of dBW.
The gain of each antenna is 75.045.
The EIRP of the transmitted signal is 21.77 dBW.
The available signal power out of the receiving antenna is -67.12 dBW.
(a) To evaluate the gain of each antenna, we can use the formula:
Gain = (4 * π * Efficiency * (D/λ)^2),
where Efficiency is the efficiency of each antenna, D is the diameter of the antenna, and λ is the wavelength.
Given:
Efficiency = 0.55,
Diameter (D) = 3 ft = 0.9144 m,
Carrier Frequency (f) = 2 GHz = 2 * 10^9 Hz.
The wavelength (λ) can be calculated using the formula:
λ = c / f,
where c is the speed of light.
c = 3 * 10^8 m/s.
Substituting the values into the formulas:
λ = (3 * 10^8 m/s) / (2 * 10^9 Hz) = 0.15 m.
For each antenna:
Gain = (4 * π * 0.55 * (0.9144 m / 0.15 m)^2).
Calculating the gain for each antenna:
Gain = 75.045
The gain of each antenna is 75.045.
(b) EIRP (Equivalent Isotropically Radiated Power) can be calculated using the formula:
EIRP = Transmitter Power (in watts) * Antenna Gain (in linear scale).
Given:
Transmitter Power = 2 W,
Antenna Gain = 75.045 (in linear scale).
EIRP = 2 W * 75.045 = 150.09 W.
To convert EIRP to dBW:
EIRP (dBW) = 10 * log10(EIRP) = 10 * log10(150.09) = 21.77 dBW.
The EIRP of the transmitted signal is 21.77 dBW.
(c) The available signal power out of the receiving antenna can be calculated using the Friis transmission equation:
Pr = Pt * (Gt * Gr * λ^2) / (16 * π^2 * R^2),
where Pr is the received power, Pt is the transmitted power, Gt and Gr are the gains of the transmitting and receiving antennas respectively, λ is the wavelength, and R is the distance between the antennas.
Given:
Pt = 2 W,
Gt = Gr = 75.045 (in linear scale),
λ = 0.15 m,
R = 25 miles = 40.2336 km.
Converting R to meters:
R = 40.2336 km * 1000 = 40233.6 m.
Substituting the values into the formula:
Pr = (2 W * (75.045 * 75.045 * (0.15 m)^2)) / (16 * π^2 * (40233.6 m)^2).
Calculating Pr:
Pr = 4.0004e-6 W.
To convert Pr to dBW:
Pr (dBW) = 10 * log10(Pr) = 10 * log10(4.0004e-6) = -67.12 dBW.
The available signal power out of the receiving antenna is -67.12 dBW.
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light of wavelength 600 nm passes through a slit of width 0.170 mm. (a) the width of the central maximum on a screen is 8.00 mm. how far is the screen from the slit?
The screen is 2.28 mm far from the slit.
Width of central maximum = (wavelength * distance to screen) / width of slit
We are given the wavelength (600 nm = 0.6 μm),
the width of the slit (0.170 mm = 0.17 mm = 0.00017 m),
and the width of the central maximum (8.00 mm = 0.008 m).
We can solve for the distance to the screen:
distance to screen = (width of central maximum * width of slit) / wavelength
distance to screen = (0.008 m * 0.00017 m) / 0.6 μm
distance to screen = 0.00228 m = 2.28 mm
Therefore, the screen is 2.28 mm far from the slit.
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the loaded cab of an elevator has a mass of 3000 kg and moves 210 m up the shaft in 23 seconds at constant speed. what is the average power of the force the cable exerts on the cab?
The average power of the force the cable exerts on the cab is approximately 268,450 Watts.
To determine the average power of the force exerted by the cable on the cab, we'll need to consider the work done and the time taken for the process.
The work done (W) can be calculated as the product of the force (F), distance (d), and the cosine of the angle between them (cosθ). Since the force is exerted vertically and the displacement is also vertical, the angle between them is 0 degrees, and cos(0) = 1. In this scenario, the force is equal to the weight of the cab, which is the mass (m) multiplied by the gravitational acceleration (g, approximately 9.81 m/s²):
F = m * g = 3000 kg * 9.81 m/s² ≈ 29430 N
Now we can calculate the work done:
W = F * d * cos(0) = 29430 N * 210 m * 1 ≈ 6174300 J (Joules)
Next, we need to find the average power (P), which is the work done divided by the time (t) taken:
P = W / t = 6174300 J / 23 s ≈ 268450 W (Watts)
So, the average power of the force the cable exerts on the cab is approximately 268,450 Watts.
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a 60.0-kg skater begins a spin with an angular speed of 6.0 rad/s. by changing the position of her arms, the skater decreases her moment of inertia by 50 %. what is the skater's final angular speed?
The skater's initial angular momentum is given by the equation L = Iω, where L is angular momentum, I is moment of inertia, and ω is angular speed. The skater's final angular speed is 12.0 rad/s.
Based on the conservation of angular momentum, we can find the skater's final angular speed.
Initial angular momentum (L1) = Moment of inertia (I1) × Initial angular speed (ω1)
Final angular momentum (L2) = Moment of inertia (I2) × Final angular speed (ω2)
Since angular momentum is conserved, L1 = L2. Given the decrease in moment of inertia by 50%, we can express I2 as 0.5 × I1.
I1 × ω1 = (0.5 × I1) × ω2
Now, we can solve for ω2:
ω2 = (I1 × ω1) / (0.5 × I1)
ω2 = (6.0 rad/s) / 0.5
ω2 = 12.0 rad/s
The skater's final angular speed is 12.0 rad/s.
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A man commutes to work in a large sport utility vehicle (SUV). a. What energy transformations occur in this situation? b. Is mechanical energy conserved in this situatio…A man commutes to work in a large sport utility vehicle (SUV).a. What energy transformations occur in this situation?b. Is mechanical energy conserved in this situation? Explain.c. Is energy of all forms conserved in this situation? Explain.
In the SUV engine chemical energy is stored into kinetic energy. No, mechanical energy is not conserved in this situation. Energy is conserved overall, but not all forms of energy are conserved.
a. In this situation, the SUV's engine converts chemical energy stored in gasoline into kinetic energy, which is then used to move the SUV's wheels and the man inside. The friction between the SUV's wheels and the road also converts some of the kinetic energy into heat energy.
b. No, mechanical energy is not conserved in this situation. Some of the energy is lost due to friction between the SUV's wheels and the road, as well as air resistance.
c. Energy is conserved in this situation overall, but not all forms of energy are conserved. The chemical energy in gasoline is converted into various forms of energy, including kinetic energy, heat energy, and sound energy.
Some of the energy is lost as heat and sound, which are not easily recoverable. However, the total amount of energy in the system remains constant, in accordance with the law of conservation of energy.
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determine the total electric potential energy that can be stored in a 16.00 microfarad capacitor when charged using a potential difference of 206.0 v.
The total electric potential energy that can be stored in a 16.00 microfarad capacitor when charged using a potential difference of 206.0 V is 7.216 J.
The formula to determine the electric potential energy stored in a capacitor is:
Electric Potential Energy = 1/2 x Capacitance x (Potential Difference)^2
Plugging in the given values, we get:
Electric Potential Energy = 1/2 x 16.00 microfarad x (206.0 V)^2
Electric Potential Energy = 1/2 x 16.00 x 10^-6 F x (206.0 V)^2
Electric Potential Energy = 1/2 x 16.00 x 10^-6 F x 42,436 V^2
Electric Potential Energy = 7.216 J
Electric potential energy is the energy that a charged particle or system of charged particles possess by virtue of their position in an electric field. It is the potential energy that exists within a system of electric charges due to their interaction with each other through the electric field.
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A force F of 10 N is applied in the direction indicated, per meter depth (into page). The 300 mm long triangular beam is Aluminum, 1100 series, and extends 2 meters into the page. What is the moment about point A, per meter of depth? The system is on Earth, at sea level, gravity acts in the direction of F.Note: The centroid of a triangle is located at h/3.A) 16 Nm/mB) 19 Nm/mC) 24 Nm/mD) 27 Nm/m
The momentum about point A, per meter of depth, can be calculated using the formula M = F * d * h/3 which is 16 Nm/m. So, the correct answer is A).
To solve the problem, we need to find the moment about point A, which is given by the formula
M = F * d * h/3
where F is the force applied per meter depth, d is the distance from point A to the line of action of the force, and h is the height of the triangular beam.
First, we need to find d, which is the distance from point A to the line of action of the force. From the diagram, we can see that d is equal to the height of the triangle, which is 300 mm or 0.3 m.
Next, we need to find h, which is the height of the triangular beam. From the diagram, we can see that h is equal to the length of the shorter side of the triangle, which is 40 mm or 0.04 m.
Now we can plug in the values into the formula:
M = 10 N/m * 0.3 m * 0.04 m/3
M = 16 Nm/m
Therefore, the moment about point A, per meter of depth, is 16 Nm/m. The correct answer is A) 16 Nm/m.
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--The given question is incomplete, the complete question is given below " A force F of 10 N is applied in the direction indicated, per meter depth into page). The 300 mm long triangular beam is Aluminum, 1100 series, and extends 2 meters into the page. What is the moment about point A, per meter of depth? The system is on Earth, at sea level, gravity acts in the direction of F. Note: The centroid of a triangle is located at h/3. shorter side of triangle is 40.
O A: 16 Nm/m O B: 19 Nm/m O C: 24 Nm/m OD: 27 Nm/m"--
what is the gradual change in emf and internal resistance of a battery as it is used over time
The electromotive force (emf) of a battery gradually decreases while its internal resistance gradually increases over time as it is used.
How does the electromotive force and internal resistance of a battery change gradually over time as it is being used?Over time, as a battery is used, the electromotive force (emf) and internal resistance experience gradual changes. The emf, which represents the battery's voltage when it is not connected to a load, tends to decrease as the battery undergoes repeated discharge and recharge cycles.
This reduction is primarily caused by chemical reactions within the battery that result in the depletion of active materials and changes in the electrode composition.
Simultaneously, the internal resistance of the battery tends to increase gradually. Internal resistance is the inherent resistance to the flow of current within the battery. Factors such as aging, temperature, and the accumulation of impurities can contribute to this increase.
As internal resistance rises, it leads to voltage drops within the battery during discharge, reducing the available voltage at the terminals and affecting the battery's overall performance.
These gradual changes in emf and internal resistance are natural characteristics of battery operation and are influenced by factors such as battery chemistry, usage patterns, and environmental conditions. Regular maintenance, proper charging practices, and monitoring can help mitigate these effects and prolong the battery's lifespan and performance.
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A transverse wave on a string is described by the following wave function. y = 0.095 sin .( π/11 x + 3πt) where x and y are in meters and t is in seconds. (a) Determine the transverse speed at t = 0.190 s for an element of the string located at x = 1.40 m. ____ m/s (b) Determine the transverse acceleration at t = 0.190 s for an element of the string located at x = 1.40 m. ____ m/s2 (c) What is the wavelength of this wave? ____ m (d) What is the period of this wave? ____ S (e) What is the speed of propagation of this wave? ____ m/s
(a) The transverse speed at t = 0.190 s for an element of the string located at x = 1.40 m is approximately -0.37 m/s.(b)the transverse acceleration at t = 0.190 s for an element of the string located at x = 1.40 m is approximately -6.57 m/s².(c) the wavelength of this wave is 22 m.(d) the period of this wave is 2/3 s.(e) The speed of propagation of a transverse wave on a string is v = √(T/μ)
The given wave function is y = 0.095 sin(π/11 x + 3πt) where x and y are in meters and t is in seconds.
(a) To find the transverse speed at t = 0.190 s for an element of the string located at x = 1.40 m, we need to take the partial derivative of y with respect to t at that particular point. So, we have:
∂y/∂t = 0.095 × 3π cos(π/11 x + 3πt)
At t = 0.190 s and x = 1.40 m, we have:
∂y/∂t = 0.095 × 3π cos(π/11 × 1.40 + 3π × 0.190) ≈ -0.37 m/s
Therefore, the transverse speed at t = 0.190 s for an element of the string located at x = 1.40 m is approximately 0.37 m/s in the negative direction.
(b) To find the transverse acceleration at t = 0.190 s for an element of the string located at x = 1.40 m, we need to take the second partial derivative of y with respect to t at that particular point. So, we have:
∂²y/∂t² = -0.095 × (3π)² sin(π/11 x + 3πt)
At t = 0.190 s and x = 1.40 m, we have:
∂²y/∂t² = -0.095 × (3π)² sin(π/11 × 1.40 + 3π × 0.190) ≈ -6.57 m/s²
Therefore, the transverse acceleration at t = 0.190 s for an element of the string located at x = 1.40 m is approximately 6.57 m/s² in the negative direction.
(c) The wave function is y = 0.095 sin(π/11 x + 3πt), which is of the form y = A sin(kx + ωt), where A is the amplitude, k is the wave number, and ω is the angular frequency. Comparing this with the given equation, we have:
A = 0.095
k = π/11
ω = 3π
The wavelength is given by λ = 2π/k. Therefore, we have:
λ = 2π/(π/11) = 22 m
Therefore, the wavelength of this wave is 22 m.
(d) The period is given by T = 2π/ω. Therefore, we have:
T = 2π/3π = 2/3 s
Therefore, the period of this wave is 2/3 s.
(e) The speed of propagation of a transverse wave on a string is given by v = √(T/μ), where T is the tension in the string and μ is the linear mass density (mass per unit length) of the string. Since these values are not given,
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