Part a)The total distance covered is, D = 2dThe average velocity is given byvavg = D / ttotal= 2d / (2d / v1 + d / v2)= (2v1v2) / (v1 + v2)= (2 × 0.75 × 0.76) / (0.75 + 0.76)≈ 0.757 m/s.Part b)The net displacement is given byx = d1 - d2= 22.5 - 15.2= 7.3 m. Partc).The magnitude of the student's average acceleration during that time is 0.15 m/s².
Part a) Let the distance traveled in each direction be d.The time taken to travel in each direction is given by:t = d / v1 for the northward directiont = d / v2 for the southward direction.The total time taken is, ttotal = 2t = 2d / v1 + v2The total distance covered is, D = 2dThe average velocity is given byvavg = D / ttotal= 2d / (2d / v1 + d / v2)= (2v1v2) / (v1 + v2)= (2 × 0.75 × 0.76) / (0.75 + 0.76)≈ 0.757 m/s.
Part b)The distance covered in each direction is given byd1 = v1t1 = 0.75 × 30 = 22.5 md2 = v2t2 = 0.76 × 20 = 15.2 mThe net displacement is given byx = d1 - d2= 22.5 - 15.2= 7.3 m.
Part c)Initial velocity, u = 0; Final velocity, v = v1 = 0.75 m/sThe time taken to reach the final velocity is, t = 5 s Average acceleration is given byaavg = (v - u) / t= 0.75 / 5= 0.15 m/s²Therefore, the magnitude of the student's average acceleration during that time is 0.15 m/s². The answer is 0.15 m/s².
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The student's overall average velocity for the trip is zero. The net displacement during the trip is 7.3 meters. The magnitude of the student's average acceleration during the time it took to reach speed v1 from rest is 0.15 m/s².
Explanation:Part (a): To find the student's overall average velocity, we can use the formula average velocity = total displacement / total time. Since the student spent equal times at speeds v1 and v2, the total displacement is zero. Therefore, the overall average velocity is also zero.
Part (b): To find the net displacement, we need to calculate the distance traveled at each speed and the direction. In the north direction, the student travels for 30.0 seconds at a speed of v1 = 0.75 m/s, so the northward displacement is 30.0 s × 0.75 m/s = 22.5 m. In the south direction, the student travels for 20.0 seconds at a speed of v2 = 0.76 m/s, so the southward displacement is 20.0 s × (-0.76 m/s) = -15.2 m. The net displacement is the sum of the displacements, which is 22.5 m - 15.2 m = 7.3 m.
Part (c): Average acceleration is given by the formula average acceleration = final velocity - initial velocity / time taken. The initial velocity is 0 m/s, the final velocity is 0.75 m/s, and the time taken is 5.0 seconds. Plugging in these values, we get average acceleration = (0.75 m/s - 0 m/s) / 5.0 s = 0.15 m/s².
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A spherical liquid drop of radius R has a capacitance of C = 4me,R. If two such drops combine to form a single larger drop, what is its capacitance? A. 2 C B. 2 C C. 2¹3 C D. 2¹3 €
The answer is B. 2 C. The capacitance of the combined drop is twice the capacitance of each individual drop. When two identical spherical drops combine to form a larger drop, the resulting capacitance can be calculated using the concept of parallel plate capacitors.
The capacitance of a parallel plate capacitor is given by the formula:
C = ε₀ * (A / d),
where C is the capacitance, ε₀ is the permittivity of free space, A is the area of the plates, and d is the separation distance between the plates.
In this case, the spherical drops can be approximated as parallel plates, and when they combine, the resulting larger drop will have a larger area but the same separation distance.
Let's assume the radius of each individual drop is R and the radius of the combined drop is R'.
The capacitance of each individual drop is given as C = 4πε₀R.
When the drops combine, the resulting drop will have a larger radius R'. The area of the combined drop will be the sum of the areas of the individual drops, which is given by:
A' = 2 * (πR²) = 2πR².
Since the separation distance remains the same, the capacitance of the combined drop can be calculated as:
C' = ε₀ * (A' / d) = ε₀ * (2πR² / d).
Comparing this with the capacitance of each individual drop (C = 4πε₀R), we can see that the capacitance of the combined drop is:
C' / C = (2πR² / d) / (4πR) = (πR / 2d).
Therefore, the capacitance of the combined drop is given by:
C' = (πR / 2d) * C.
Substituting the given capacitance C = 4me,R, we get:
C' = (πR / 2d) * 4me,R.
Simplifying this expression, we find that the capacitance of the combined drop is:
C' = 2me,R.
Therefore, the answer is B. 2 C. The capacitance of the combined drop is twice the capacitance of each individual drop.
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A different person uses +2.3 diopter contact lenses to read a book that they hold 28 cm from their eyes. (i) Is this person nearsighted or farsighted? JUSTIFY YOUR ANSWER. NO CREDIT WILL BE GIVEN WITHOUT JUSTIFICATION. (ii) Where is this person's near point, in cm? (iii) As this person ages, they eventually must hold the book 38 cm from their eyes in order to see clearly with the same +2.3 diopter lenses. What power lenses do they need in order to hold book back at the original 28 cm distance?
i) The person is using +2.3 diopter contact lenses. Since the person requires positive diopter lenses to read the book, it indicates that they are farsighted.
ii) The person's near point is approximately 43.48 cm.
iii) The person would need approximately +0.0263 diopter lenses to hold the book at the original 28 cm distance.
(i) To determine if the person is nearsighted or farsighted, we need to consider the sign convention for diopters. Positive diopter values indicate that the person is farsighted, while negative diopter values indicate that the person is nearsighted.
Justification: Farsighted individuals have difficulty focusing on nearby objects and require converging lenses (positive diopter lenses) to bring the light rays to a focus on the retina.
(ii) The near point refers to the closest distance at which a person can focus on an object clearly without any optical aid. It is determined by the maximum amount of accommodation of the eye.
Since the person is farsighted and using +2.3 diopter lenses to read the book at a distance of 28 cm, we can use the formula for calculating the near point:
Near point = 100 cm / (diopter value in positive form)
Near point = 100 cm / (2.3 D)
Near point ≈ 43.48 cm
(iii) If the person ages and needs to hold the book 38 cm from their eyes to see clearly with the same +2.3 diopter lenses, we can calculate the power of lenses they would need to hold the book at the original 28 cm distance.
Using the lens formula:
1/f = 1/di + 1/do
Where f is the focal length of the lens, di is the distance of the image (38 cm), and do is the distance of the object (28 cm).
Solving for f, we get:
1/f = 1/38 cm + 1/28 cm
1/f ≈ 0.0263 cm^(-1)
f ≈ 38.06 cm
The power of the lenses required to hold the book at the original 28 cm distance can be calculated as:
Power = 1/f
Power ≈ 1/38.06 D
Power ≈ 0.0263 D
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Find a sinusoidal equation for a 40Kw/m wave energy in the sea.
To find the sinusoidal equation for a 40kW/m wave energy in the sea, we need to use the formula; y = A sin (ωt + Φ)where; A is the amplitude of the wave,ω is the angular frequency of the wave,t is time, andΦ is the phase angle.
The given value is 40kW/m wave energy in the sea. This represents the amplitude (A) of the wave. Therefore, A = 40.We also know that the period of the wave, T = 150m since it takes 150m for the wave to complete one cycle.To find the angular frequency (ω) of the wave, we use the formula;ω = 2π/T= 2π/150 = π/75Therefore, ω = π/75Putting these values in the formula;y = 40 sin (π/75 t + Φ)Where Φ is the phase angle, which is not given in the question.
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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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Write the Lagrange's equation of lagrangian L(x, x, y,ỹ, t) and the constraint force f(x, y). Is the total energy conserved?, explain why. astogint force
The Lagrange's equation for a system described by a Lagrangian function L(x, ẋ, y, ỹ, t) is given by d/dt (∂L/∂ẋ) - (∂L/∂x) = f(x, y), where x and y are the generalized coordinates, ẋ and ỹ are their respective velocities, t is time, and f(x, y) represents the constraint force. The total energy of the system is conserved if the Lagrangian is not explicitly dependent on time (i.e., ∂L/∂t = 0).
Lagrange's equation is a fundamental principle in classical mechanics that describes the dynamics of a system in terms of its Lagrangian function. It states that the time derivative of the momentum (∂L/∂ẋ) minus the derivative of the Lagrangian with respect to the generalized coordinate (x) is equal to the external forces acting on the system, represented by the constraint force f(x, y).
Regarding the conservation of total energy, it depends on the properties of the Lagrangian. If the Lagrangian does not explicitly depend on time (i.e., ∂L/∂t = 0), then the total energy of the system, which is the sum of the kinetic and potential energies, is conserved. This is a consequence of Noether's theorem, which states that if a Lagrangian has a continuous symmetry, such as time translation symmetry, there is a conserved quantity associated with it.
However, if the Lagrangian explicitly depends on time, the total energy may not be conserved, and energy can be transferred into or out of the system. In such cases, the Lagrangian represents a system with time-dependent external forces or dissipative effects.
In summary, the Lagrange's equation describes the dynamics of a system using the Lagrangian function and constraint forces. The conservation of total energy depends on whether the Lagrangian is explicitly dependent on time or not. If it is not, the total energy is conserved; otherwise, energy may be transferred in or out of the system.
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Determine the location and type of image formed by a 4 cm tall object that is located 0.18 m in front of a concave mirror of radius 0.4 m 18.0 cm behind in the mirror, virtual and 2.25x bigger. 180 cm behind in the mirror, virtual and 10.0x bigger. 20.0 cm in front of the mirror, real and 10.0x bigger. 10 cm behind the mirror, virtual and 10.0x bigger.
A concave mirror is also known as a converging mirror since it has the ability to converge parallel light rays that strike it.
The location and type of image formed by a 4 cm tall object that is located 0.18 m in front of a concave mirror of radius 0.4 m are calculated below:The object distance is given by u = -18 cm, and the radius of curvature of the mirror is given by R = -40 cm (since the mirror is concave).The magnification produced by the mirror is given by the formula M = -v/u where M is the magnification, v is the image distance, and u is the object distance.The position of the image is determined using the mirror formula which is 1/f = 1/v + 1/u where f is the focal length of the mirror.
The focal length is determined using f = R/2. The magnification M is given by M = -v/u. We know that the object height h = 4 cm. Using these formulas and given values, we obtain the following results:
1. 18.0 cm behind the mirror, virtual and 2.25x bigger.
2. 180 cm behind the mirror, virtual and 10.0x bigger.
3. 20.0 cm in front of the mirror, real and 10.0x bigger.
4. 10 cm behind the mirror, virtual and 10.0x bigger.The image is virtual, upright, and larger than the object in all the cases except for case 3. The image is also behind the mirror in all the cases except for case 3.
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Design a class A power amplifier using Vcc= 10V,B=100, R = 1k02, Vth = 3V and Vce = 0.3. 1. Calculate values of R₁, R₂ and R. Calculate load power on load resistance, R.. 2. Convert the amplifier to class B amplifier. . Calculate load power on load resistance, Re. Vcc= 10 V V. RS ww HH CC ww www R₁ R₂ www Re o Do
The question involves designing a Class A power amplifier using given parameters such as Vcc (supply voltage), B (beta or current gain), R (collector resistance), Vth (threshold voltage), and Vce (collector-emitter voltage).
The first part requires calculating the values of R₁, R₂, and R, as well as the load power on the load resistance, R. The second part involves converting the amplifier to a Class B amplifier and calculating the load power on the load resistance, Re.
In the first part of the question, the design of a Class A power amplifier is required. The values of R₁, R₂, and R need to be calculated based on the given parameters. These values are important for determining the biasing and operating point of the amplifier. The load power on the load resistance, R, can also be calculated, which gives an indication of the power delivered to the load.
To calculate R₁ and R₂, we can use the voltage divider equation, considering Vcc, Vth, and the desired biasing conditions. The value of R can be determined based on the desired collector current and Vcc using Ohm's law (R = Vcc / Ic).
In the second part of the question, the amplifier is required to be converted to a Class B amplifier. Class B amplifiers operate in a push-pull configuration, where two complementary transistors are used to handle the positive and negative halves of the input waveform. The load power on the load resistance, Re, needs to be calculated for the Class B configuration. To calculate the load power on Re, we need to consider the output voltage swing, Vcc, and the collector-emitter voltage, Vce. The power delivered to the load can be calculated using the formula P = (Vcc - Vce)² / (2 * Re).
In conclusion, the question involves designing a Class A power amplifier by calculating the values of R₁, R₂, and R, as well as the load power on the load resistance, R. It also requires converting the amplifier to a Class B configuration and calculating the load power on the load resistance, Re. These calculations are important for determining the biasing, operating point, and power delivery characteristics of the amplifier.
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A particle is moving along a circle of radius r such that it complete 1 rev in 40 sec. What will be the displacement after 2 mint 20sec?
The displacement of the particle after 2 minutes 20 seconds cannot be determined without knowing the radius of the circle.
To find the displacement of a particle moving along a circle, we need to determine the angle it has covered in a given time.
Given:
Time taken to complete one revolution (T) = 40 seconds
Radius of the circle (r) = r (not provided)
Time for which we need to find the displacement (t) = 2 minutes 20 seconds = 2 * 60 + 20 = 140 seconds
To find the displacement after 2 minutes 20 seconds, we need to calculate the angle covered by the particle during this time.
One revolution (360 degrees) is completed in T seconds. Therefore, the angle covered in 140 seconds can be calculated as follows:
Angle covered = (Angle covered in one revolution) * (Number of revolutions)
Angle covered = (360 degrees) * (Number of revolutions)
To find the number of revolutions in 140 seconds, we can divide 140 by the time taken for one revolution (40 seconds):
Number of revolutions = 140 / 40 = 3.5
Substituting this value into the equation for the angle covered:
Angle covered = (360 degrees) * (3.5) = 1260 degrees
Now, the displacement of the particle can be found using the formula:
Displacement = 2 * pi * r * (Angle covered / 360 degrees)
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How much energy must be removed from the system to turn liquid copper of mass 1.5 kg at 1083 degrees celsius to solid copper at 1000 degrees celsius? Watch Another a) −278×10 ∧
3 J b) −2.49×10 ∧
5 J c) 2.25×10 ∧
3 J d) −3.67×10 ∧
4 J e) 9.45×10 ∧
4 J A concrete brick wall has a thickness of 6 cm, a height of 3 m, and a width of 6 m. The rate at which energy is transferred outside through the wall is 160 W. If the temperature inside is 22 degrees C. What is the temperature outside? a) 5.67 degrees C b) 15.2 degrees C c) −19.8 degrees C d) 23.8 degrees C e) 21.4 degrees C
To turn liquid copper of mass 1.5 kg at 1083 degrees Celsius to solid copper at 1000 degrees Celsius, approximately -2.49×10^5 J of energy must be removed from the system. For the concrete brick wall, the temperature outside is approximately 5.67 degrees Celsius.
When a substance undergoes a phase change, energy needs to be removed or added to the system to facilitate the transition. In the case of turning liquid copper to solid copper, we need to calculate the energy that must be removed. The amount of energy can be calculated using the equation:
Q = mcΔT,
where Q represents the energy, m is the mass of the substance, c is the specific heat capacity, and ΔT is the change in temperature. Since copper has a specific heat capacity of approximately 390 J/kg·°C, we can calculate the energy required as follows:
Q = (1.5 kg) × 390 J/kg·°C × (1083 °C - 1000 °C) = -2.49×10^5 J.
Hence, approximately -2.49×10^5 J of energy must be removed from the system to turn liquid copper at 1083 degrees Celsius to solid copper at 1000 degrees Celsius.
For the concrete brick wall, the rate of energy transfer through the wall is given as 160 W. We can use the formula:
P = kA(ΔT/Δx),
where P is the power, k is the thermal conductivity of the material, A is the area, ΔT is the temperature difference, and Δx is the thickness. Rearranging the equation, we have:
ΔT = (PΔx)/(kA).
Plugging in the values, where the thickness (Δx) is 6 cm (or 0.06 m), the height (A) is 3 m × 6 m = 18 m², the power (P) is 160 W, and the thermal conductivity of concrete is approximately 1.7 W/(m·°C), we can calculate the temperature difference:
ΔT = (160 W × 0.06 m)/(1.7 W/(m·°C) × 18 m²) ≈ 5.67 °C.
Therefore, the temperature outside is approximately 5.67 degrees Celsius.
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The meridional flux of heat is 10 K m/s. The effective diffusivity is 5 m2/s. What is the magnitude of the temperature gradient in K/m?
The meridional flux of heat is 10 K m/s. The effective diffusivity is 5 m2/s. The magnitude of the temperature gradient is 2 K/m.
To find the magnitude of the temperature gradient in K/m, we can use Fourier's law of heat conduction. This law states that the heat flux is proportional to the temperature gradient. Let's go through the calculations step by step.
Given:
Meridional flux of heat (q) = 10 K m/s
Effective diffusivity (k) = 5 m²/s
According to Fourier's law of heat conduction:
q = -k (ΔT/Δx)
We want to find the magnitude of the temperature gradient (ΔT/Δx). Rearranging the equation, we have:
ΔT/Δx = -q/k
Substituting the given values:
ΔT/Δx = -10/5
ΔT/Δx = -2
Since we are interested in the magnitude of the temperature gradient, we take the absolute value:
|ΔT/Δx| = |-2|
|ΔT/Δx| = 2
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A train decelerates uniformly at a rate of 2 m/s2 and comes to a stop in 10 seconds. Find the initial velocity of the train.
The initial velocity of the train is 20m/s when the train decelerates uniformly at a rate of 2m/s2. It means that initially, at time = 0 seconds, the train was moving with a velocity of 20m/s.
We know that,
v = u +at
where, v = final velocity
u = initial velocity
a = acceleration
t = time taken
In this case, as the train is decelerating we will use a negative sign with acceleration.
Substituting the values we get,
v = u + (-2)(10)
v will be equal to zero, as the train comes to a stop.
0 = u - 20
u = 20 m/s
Hence, the initial velocity of the train is 20m/s when the train decelerates uniformly at a rate of 2m/s2 and comes to a stop in 10 seconds.
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A long straight wire carries a current of 5 A. What is the magnetic field a distance 5 mm from the wire? 1. 2.0 x 10-7 T B) 2.0 × 10-¹ T C) 6.3 x 10-¹ T D) 6.3 x 10-7 T
The magnetic field generated by a long straight wire carrying a current of 5 A at a distance of 5 mm from the wire is [tex]2.0 * 10^-^7[/tex] T.
According to Ampere's law, the magnetic field around a long straight wire is inversely proportional to the distance from the wire. The formula to calculate the magnetic field produced by a current-carrying wire is given by
[tex]B = (\mu_0 * I) / (2\pi * r)[/tex]
where B is the magnetic field, μ₀ is the permeability of free space[tex](4\pi * 10^-^7 T.m/A)[/tex], I is current, and r is the distance from the wire.
Plugging in the values,
[tex]B = (4\pi * 10^-^7 T.m/A * 5 A) / (2\pi * 0.005 m),[/tex]
which simplifies to:
[tex]B = 2.0 * 10^-^7 T[/tex].
Therefore, the magnetic field at a distance of 5 mm from the wire is [tex]2.0 * 10^-^7 T[/tex].
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What does it cost to cook a chicken for 1 hour in an oven that operates at 20 Ampere Ter 220 Volt if the electric company charge 60 fils per kWh A. 264 Fils B. 528 Fils C. 352 Fils D. 176 Fils through a surface varies with time 1 Ibr
The cost to cook a chicken for 1 hour in the given oven is 264 fils. Option A: 264 Fils. Voltage is the pressure from an electrical circuit's power source that pushes charged electrons (current) through a conducting loop, enabling them to do work such as illuminating a light. In brief, voltage = pressure, and it is measured in volts (V).
To calculate the cost of cooking a chicken for 1 hour in the given oven, we need to determine the total energy consumed by the oven during that time and then calculate the cost based on the electric company's charge.
The power consumed by the oven can be calculated using the formula:
Power (P) = Voltage (V) x Current (I)
Given:
Voltage (V) = 220 Volts
Current (I) = 20 Amperes
Using the values, we can calculate the power consumed by the oven:
P = 220 V x 20 A
P = 4400 Watts
To calculate the energy consumed, we need to convert the power from Watts to kilowatts and then multiply it by the time in hours:
Energy (E) = Power (P) x Time (t)
Given:
Time (t) = 1 hour
Converting the power from Watts to kilowatts:
Power (P) = 4400 Watts = 4.4 kilowatts
Calculating the energy consumed:
E = 4.4 kW x 1 hour
E = 4.4 kilowatt-hours (kWh)
Now we can calculate the cost using the electric company's charge:
Cost = Energy (E) x Cost per kWh
Given:
Cost per kWh = 60 fils
Calculating the cost:
Cost = 4.4 kWh x 60 fils/kWh
Cost = 264 fils
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A neutron (mass = 1.0088u) decays into a proton (mass = 1.0072u) and electron (mass = 0.00055u) and some more particles. How much energy will be contained in all the particles produced. 1u = 931.5 MeV/c².
The total energy contained in all the particles produced is 2.225 MeV.
The mass defect (Δm) of the neutron is equal to the sum of the mass of the proton and electron minus the mass of the neutron:
Δm = (1.0072 + 0.00055) u - 1.0088 u= 0.00095 u
Now, the energy released (E) is obtained by using the formula:
E = Δm × c²= 0.00095 u × (931.5 MeV/c²/u) × c²= 0.885925 MeV
To find the total energy contained in all the particles produced, add the rest mass energies of the proton and electron to the energy released:
E_total = E + (m_proton × c²) + (m_electron × c²)
= 0.885925 MeV + (1.0072 u × 931.5 MeV/c²/u) + (0.00055 u × 931.5 MeV/c²/u)
= 2.225 MeV
Therefore, the total energy contained in all the particles produced is 2.225 MeV.
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How long it takes for the light of a star to reach us if the star is at a distance of 8 x 1010km from Earth.
When a star is at a distance of 8 × 1010 km from Earth, it takes about 4.47 years for the light of that star to reach us.
What is light?
Light is electromagnetic radiation visible to the human eye and responsible for sight. Light is electromagnetic radiation, which means that it is a type of energy that travels in waves. When a light wave travels, it carries energy with it. The speed of light is the highest speed in the universe, and nothing travels faster than it. The distance light travels in one year is called a light-year.
What is a star?
A star is a massive, luminous ball of plasma held together by gravity. Stars are essentially self-luminous, producing light through a process known as nuclear fusion, which is the process of combining atomic nuclei to form heavier nuclei. The vast majority of stars are located within galaxies like the Milky Way, and they are responsible for the formation of m
any of the elements found in the universe.
What is the distance of the star from Earth?8 x 1010 km is the distance of the star from Earth. It takes about 4.47 years for the light of that star to reach us.
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Blocks of mass m 1
=2.6 kg and m 2
=1.4 kg are attached as shown by a massless inelastic cord over identical massless frictionless pulleys. Consider the pulley attached to m 2
as being part of m 2
. Block m 1
is released from rest and allowed to accelerate downward. Find the acceleration of Block 2. Enter your answer in m/s 2
.
The acceleration of Block 2 is approximately 3.92 [tex]m/s^2[/tex]. The tension in the cord is the same for both blocks. The acceleration of Block 2, we apply Newton's second law to each block individually and consider the tension in the cord.
For Block 1:
The net force acting on Block 1 is the force of gravity acting downward ([tex]m_1[/tex] * g) minus the tension in the cord.
The equation of motion for Block 1 is given by:
[tex]m_1[/tex] * a = [tex]m_1[/tex] * g - T
For Block 2:
The net force acting on Block 2 is the tension in the cord minus the force of gravity acting downward ([tex]m_2[/tex] * g).
The equation of motion for Block 2 is given by:
[tex]m_2[/tex] * a = T - [tex]m_2[/tex] * g
Since the pulley is massless and frictionless, the tension in the cord is the same for both blocks.
We can solve these equations simultaneously to find the acceleration of Block 2.
From the equation for Block 1:
[tex]m_1[/tex] * a = [tex]m_1[/tex] * g - T
T = [tex]m_1[/tex] * g - [tex]m_1[/tex]* a
Substituting T into the equation for Block 2:
[tex]m_2[/tex] * a = ([tex]m_1[/tex] * g - [tex]m_1[/tex] * a) - [tex]m_2[/tex] * g
[tex]m_2[/tex] * a = [tex]m_1[/tex] * g - [tex]m_1[/tex] * a - [tex]m_2[/tex] * g
[tex]m_2[/tex] * a + [tex]m_1[/tex] * a = [tex]m_1[/tex] * g - [tex]m_2[/tex] * g
a * ([tex]m_2[/tex] + [tex]m_1[/tex]) = g * ([tex]m_1[/tex] - [tex]m_2[/tex])
a = g * ([tex]m_1[/tex] - [tex]m_2[/tex]) / ([tex]m_2[/tex] + [tex]m_1[/tex])
Substituting the given values:
a = 9.8 * (2.6 - 1.4) / (1.4 + 2.6)
a ≈ 3.92 [tex]m/s^2.[/tex]
The acceleration of Block 2 is approximately 3.92 [tex]m/s^2.[/tex]
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An RC circuit has an unknown resistance and an initially uncharged capacitor of 666 x 10F When connected to a source potential, it takes the capacitor 27.6 s to become 85.6 % fully charged. What is the resistance of the circuit? Enter a number rounded to the nearest 100 place.
The resistance of the RC circuit is approximately 267 Ω, rounded to the nearest hundredth.
To find the resistance of the RC circuit, we can use the time constant formula for charging a capacitor in an RC circuit:
τ = RC
where τ is the time constant, R is the resistance, and C is the capacitance.
We are given that it takes the capacitor 27.6 s to become 85.6% fully charged. In terms of the time constant, this corresponds to approximately 1 time constant (τ):
t = 1τ
27.6 s = 1τ
Since the capacitor is 85.6% charged, the remaining charge is 14.4%:
Q = 0.144Qmax
Now we can rearrange the time constant formula to solve for the resistance:
R = τ / C
Substituting the given values:
R = 27.6 s / (0.144 × 666 × 10^-6 F)
R = 27.6 s / (0.144 × 666 × 10^-6 F)
R = 27.6 s / (0.144 × 666 × 10^-6 F)
R = 27.6 s / (0.144 × 666 × 10^-6 F)
R = 27.6 s / (0.144 × 666 × 10^-6 F)
R = 27.6 s / (0.144 × 666 × 10^-6 F)
R = 27.6 s / (0.144 × 666 × 10^-6 F)
R = 27.6 s / (0.144 × 666 × 10^-6 F)
R ≈ 267 Ω
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A train of mass 2 x 10^5 kg moves at a constant speed of 72 kmh-¹ up a straight inclined against a frictional force of 1.28 × 10^4N. The incline is such that the train rises vertically 1.0 m for every 100 m travelled along the incline. Calculate the necessary power developed by the train.
Answer:
100×1.28
Explanation:
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Answer:
Approximately [tex]6.5 \times 10^{5}\; {\rm W}[/tex] (assuming that [tex]g = 9.81\; {\rm N\cdot kg^{-1}}[/tex].)
Explanation:
Refer to the diagram attached (not to scale.) Let [tex]\theta[/tex] denote the angle of elevation of the incline. Sine the incline rises [tex]1.0\; {\rm m}[/tex] (opposite) for every [tex]100\; {\rm m}[/tex] along the incline (hypotenuse):
[tex]\displaystyle \sin(\theta) = \frac{(\text{opposite})}{(\text{hypotenuse})} = \frac{1.0}{100}[/tex].
Let [tex]m = 2\times 10^{5}\; {\rm kg}[/tex] denote the mass of the train. Decompose the weight [tex]m\, g[/tex] of the train into two components: along the incline and perpendicular to the incline. Refer to the diagram attached (not to scale):
Weight along the incline: [tex]m\, g\, \sin(\theta)[/tex].Weight perpendicular to the incline: [tex]m\, g\, \cos(\theta)[/tex].Hence, forces on the train along the incline are:
Weight along the incline, [tex]m\, g\, \sin(\theta)[/tex],Friction, andForce driving the train forward.Since the train is moving at a constant velocity, forces on the train should be balanced- both along the incline and perpendicular to the incline.
For forces to be balanced in the component along the incline, the force driving the train upward should be equal to [tex]m\, g\, \sin(\theta) + (\text{friction})[/tex].
Since [tex]\sin(\theta) = (1.0 / 100)[/tex] and [tex](\text{friction}) = 1.28 \times 10^{4}\; {\rm N}[/tex]:
[tex]\begin{aligned} & m\, g\, \sin(\theta) + (\text{friction}) \\ =\; & (2 \times 10^{5})\, (9.81)\, (1.0 / 100) + (1.28 \times 10^{4}) \\ \approx\; & 32420\; {\rm N}\end{aligned}[/tex].
Apply unit conversion and ensure that velocity of the train is in standard units:
[tex]\begin{aligned} v &= 72\; {\rm km\cdot h^{-1}} \times \frac{1000\; {\rm m}}{1\; {\rm km}} \times \frac{1\; {\rm h}}{3600\; {\rm s}} \\ &= 20\; {\rm m\cdot s^{-1}}\end{aligned}[/tex].
Power [tex]P[/tex] is the dot product of force [tex]F[/tex] and velocity [tex]v[/tex]. Since the force driving the train forward along the slope is in the same direction as velocity, the power of this force would be:
[tex]\begin{aligned} P &= F\, v \\ &= (32420 \; {\rm N})\, (20\; {\rm m\cdot s^{-1}}) \\ &\approx 6.5 \times 10^{5}\; {\rm W}\end{aligned}[/tex].
In Circuit 64 your voltmeters were accurate in the sense that they (more or less) correctly read the actual voltages in the circuits, but they were inaccurate (for very large resistors) in that these readings are NOT the true voltage across the second resistor when the meter is not there. Now suppose you are in a different setting, with two voltmeters and a high resistance circuit. If meter A "correctly" reads 6.70 volts across a resistor in a circuit and meter B "correctly" reads 6.90V across the same resistor in the same circuit, which meter is giving you the value closest to the true value with no meters present? Explain. (4) 6. The last line of the first column (V1 reading WITHOUT the Simpson) is for the 4.7MQ. Take the value you have and use it to solve for the actual resistance of the Fluke meter. How? Suppose the resistors are both 4.70MQ and use your voltage of the power supply (if you did not write it down, use 3.00V). Remember the question that asked you to find the AV of R* when you knew IR of the other resistor? Well, here you know AV of the parallel combination of R₂ and the meter. "Reverse engineer" things to find the total current from the power supply, then the total resistance (and or you can go directly to find the Reg of the parallel combination, then solve for the meter resistance.
In the given scenario, if meter A correctly reads 6.70 volts across a resistor in a circuit and meter B correctly reads 6.90 volts across the same resistor in the same circuit, meter A is providing a value closer to the true voltage with no meters present.
When using voltmeters in high-resistance circuits, the presence of the voltmeter can affect the actual voltage across the resistor being measured. In this case, we have two voltmeters, A and B, both reading the voltage across the same resistor. If meter A reads 6.70 volts and meter B reads 6.90 volts, we need to determine which value is closer to the true voltage.
Since the voltmeters are accurate in the sense that they correctly read the actual voltages in the circuits, we can infer that the true voltage across the resistor lies between the readings of meters A and B. Considering that meter A reads 6.70 volts and meter B reads 6.90 volts, we can conclude that meter A provides a value closer to the true voltage. This is because the actual voltage is likely slightly lower than the reading on meter B, making meter A's reading more accurate in this case.
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A battery-operated car utilizes a 12.0 V system. Find the charge (in C) the batteries must be able to move in order to accelerate the 790 kg car from rest to 25.0 m/s, make it climb a 2.10 ✕ 10^2 m high hill, and then cause it to travel at a constant 25.0 m/s by exerting a 4.20 ✕ 10^2 N force for an hour.
The charge the batteries must be able to move in order to accelerate the 790 kg car from rest to 25.0 m/s, make it climb a 2.10 ✕ 10^2 m high hill, and then cause it to travel at a constant 25.0 m/s by exerting a 4.20 ✕ 10^2 N force for an hour is 2.3 x 10^5 C.
The work done by the battery-powered car is obtained from adding the potential and kinetic energy needed to overcome frictional forces.
W= ∆PE + ∆KE + W_friction
(1)Initial potential energy is 0. ∆PE = mgh = (790 kg)(9.8 m/s²)(210 m) = 1.64 x 10^6 J
(2)Final kinetic energy is 0.5mv² = 0.5(790 kg)(25 m/s)² = 4.94 x 10^5 J. ∆KE = 4.94 x 10^5 J
(3)Power is force times velocity.
Power = (4.20 ✕ 10² N)(25 m/s) = 1.05 x 10^4 W
(4)Time is one hour or 3600 s.
(5)The total work is the sum of ∆PE, ∆KE, and work from friction. Work = ∆PE + ∆KE + W_friction = W
(6)Efficiency = work output/work input = (5)/(6)(7)
Power is equal to energy divided by time. P = E/t
(8)Current is power divided by voltage. P = IVI = P/V
(9)Charge is current times time. Q = ItCharge (Q) = Current (I) × time (t) = Power (P) / Voltage (V) × time (t)Charge = 1.05 x 10^4 W / 12.0 V × 3,600 s
Charge = 2.3 x 10^5 C
Therefore, the charge the batteries must be able to move in order to accelerate the 790 kg car from rest to 25.0 m/s, make it climb a 2.10 ✕ 10^2 m high hill, and then cause it to travel at a constant 25.0 m/s by exerting a 4.20 ✕ 10^2 N force for an hour is 2.3 x 10^5 C.
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Calculate the following quantities and write their units in terms of basic units: a) The density when the mass is 2.532 kg and the volume is 162 cm3. b) The volume of a container has a capacity of 2.5 liters. c) The area of a pool has 2km long by 4 km wide.
a) Density is calculated by dividing mass by volume. Density = Mass / Volume = 2.532 kg / 162 cm³. Convert cm³ to m³. Since 1 m = 100 cm, 1 m³ = (100 cm)³ = 1,000,000 cm³.
Density = 2.532 kg / (162 cm³ * (1 m³ / 1,000,000 cm³)) = 15,629.63 kg/m³
b) The volume of the container is given as 2.5 liters. To express it in basic units,Since 1 liter = 0.001 m³, the volume of the container in cubic meters is: Volume = 2.5 liters * 0.001 m³/liter = 0.0025 m³
c) The area of the pool is given as 2 km by 4 km. To express it in basic units, Since 1 km = 1000 m, the area of the pool is:
Area = 2 km * 4 km * (1000 m/km) * (1000 m/km) = 8,000,000 m²
In physics, volume is a fundamental quantity that measures the amount of three-dimensional space occupied by an object or a substance. It is typically measured in cubic units such as cubic meters (m³) or cubic centimeters (cm³), and is an important parameter in various physical calculations and equations.
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A magnetic force is measured to be F=(1.70×10−5N)^−(3.70×10−5)^ acts on a particle that has a charge of −2.75nC. The particle is moving in a uniform magnetic field 2.35 T that has its direction in −Z direction. Calculate the velocity of the particle.
Given that,
The magnetic force on a particle is F = 1.70 × 10⁻⁵ N
The charge on the particle is q = -2.75 nC
The magnetic field intensity is B = 2.35 T
The direction of the magnetic field is in the -z direction
The force on a charged particle moving in a magnetic field is given by F = qvB sinθ
where v is the velocity of the particle, B is the magnetic field, q is the charge on the particle, and θ is the angle between v and B
Further, sinθ = 1 as the velocity is perpendicular to the magnetic field.
So, F = qvB
Also, F = m × a (where m is the mass of the particle and a is the acceleration)
We can substitute a/v with v/dt, where dt is the time taken to cross a distance d.
Then F = m × v/dt × Bqvd/dt
= mv²/dt
= Bqm/dt
So, v = Bqm/F = 2.35 × 2.75 × 10⁻⁹/1.70 × 10⁻⁵
= 3.81 × 10⁴ m/s
Therefore, the velocity of the particle is 3.81 × 10⁴ m/s.
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A 3-phase electrical device connected as a Y circuit with each phase having a resistance of 25 ohms. The line voltage is 230 volts.
b. How much power does each phase of the circuit consume?
A 3-phase electrical device connected as a Y circuit with each phase having a resistance of 25 ohms. The line voltage is 230 volts. The power consumed by each phase of the circuit is 3.99 kW.
Given that a 3-phase electrical device connected as a Y circuit with each phase having a resistance of 25 ohms. The line voltage is 230 volts. We are to calculate the power consumed by each phase of the circuit.
The power consumed by each phase of the circuit is given by;P= (3VL²)/ (RL) where; P= power consumed by each phase VL = line voltage = 230VRL = resistance of each phase = 25Ω Substituting the values above in the formula; P = (3 × (230V)²) / (25Ω)P = 3.99 kW (approx). Therefore, the power consumed by each phase of the circuit is 3.99 kW.
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Part C
Just like in the diagram, when Earth was primarily liquid, it separated into layers. What prediction can you make about the
densities of Earth's different layers?
When the Earth was primarily liquid, it separated into layers. The density of Earth's different layers may be predicted. For instance, it is assumed that the outermost layer, or crust, is less dense than the inner layers.
The Earth's crust is mostly composed of silicates (such as quartz, feldspar, and mica) and rocks, which are less dense than the mantle, core, or outer core.
The mantle is composed of solid rock, which is denser than the Earth's crust.
The core is the most dense layer, and it is composed of a liquid outer core and a solid inner core.
Most of the Earth's layers are composed of different types of rock and minerals.
The layers were formed from the molten material that cooled and solidified.
The Earth's layers are divided into four groups, or spheres, that represent different levels of density.
The lithosphere is the outermost layer, which includes the crust and upper mantle.
The asthenosphere is the soft layer beneath the lithosphere.
The mantle is a solid layer that surrounds the core.
The core is the Earth's central layer, consisting of a liquid outer core and a solid inner core.
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A steel ball with mass 1.00 kg and initial speed 1.00 m/s collides head-on with another ball of mass 7.00 kg that is initially at rest. Assuming that the collision is elastic and one-dimensional, find final speed of the ball that was initially at rest. O 0.29 m/s 0,25 m/s 0.40 m/s O 0.33 m/s 0.22 m/s Three identical masses are located in the (x,y) plane, and have following coordinates: (3.0 m, 3.0 m), (2.0 m, 3.0 m). (3.0 m, 5.0 m). Find the center of mass of the system of these masses. (3.0 m, 4.0 m) (3.3 m, 4.3 m) 1 pts (2.3 m, 3.3 m) O (2.7 m, 3.7 m) O (2.0 m, 3.0 m)
The center of mass of the system of masses is approximately (2.7 m, 3.7 m).
In an elastic collision, both momentum and kinetic energy are conserved. Using the principle of conservation of momentum, we can write the equation: m₁ * v₁i + m₂ * v₂i = m₁ * v₁f + m₂ * v₂f, where m₁ and m₂ are the masses of the two balls, v₁i and v₂i are their initial velocities, and v₁f and v₂f are their final velocities.
In this case, the mass of the first ball is 1.00 kg and its initial velocity is 1.00 m/s. The mass of the second ball is 7.00 kg and its initial velocity is 0 m/s (at rest). Let's assume the final velocity of the second ball is v₂f.
Applying the conservation of momentum equation, we have 1.00 kg * 1.00 m/s + 7.00 kg * 0 m/s = 1.00 kg * v₁f + 7.00 kg * v₂f. Simplifying the equation, we get v₁f + 7v₂f = 1.00 m/s.
Since the collision is elastic, the total kinetic energy before and after the collision remains the same. The kinetic energy before the collision is (1/2) * 1.00 kg * (1.00 m/s)² = 0.50 Joules.
Using the conservation of kinetic energy equation, we can write (1/2) * 1.00 kg * (v₁f)² + (1/2) * 7.00 kg * (v₂f)² = 0.50 Joules. Substituting the values, we have (1/2) * 1.00 kg * (v₁f)² + (1/2) * 7.00 kg * (v₂f)² = 0.50 Joules.
From these equations, we can solve for v₁f and v₂f. The final speed of the ball that was initially at rest (v₂f) is approximately 0.29 m/s.
Moving on to the center of mass calculation, we can find it by taking the average of the x-coordinates and the average of the y-coordinates of the masses.
x-coordinate of the center of mass = (3.0 m + 2.0 m + 3.0 m) / 3 = 2.67 m ≈ 2.7 m
y-coordinate of the center of mass = (3.0 m + 3.0 m + 5.0 m) / 3 = 3.67 m ≈ 3.7 m
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Predict/Calculate Figure 23-42 shows a zero-resistance rod sliding to the right on two zero- resistance rails separated by the distance L = 0.500 m. The rails are connected by a 10.0Ω resistor, and the entire system is in a uniform magnetic field with a magnitude of 0.750 T. (a) Find the speed at which the bar must be moved to produce a current of 0.175 A in the resistor. (b) Would your answer to part (a) change if the bar was moving to the left instead of to the right? Explain.
(a) The bar must be moved at a speed of approximately 0.467 m/s to produce a current of 0.175 A in the resistor. (b) The answer to part (a) would not change if the bar was moving to the left instead of to the right
To find the speed at which the bar must be moved to produce a current of 0.175 A in the resistor, we can use the formula for the induced electromotive force (emf) in a moving conductor within a magnetic field. The induced emf is given by the equation:
emf = B * L * v,
where B is the magnetic field strength, L is the length of the conductor, and v is the velocity of the conductor. In this case, the emf is equal to the voltage across the resistor, which is given by Ohm's law as:
emf = I * R,
where I is the current flowing through the resistor and R is the resistance. By equating the two expressions for emf, we have:
B * L * v = I * R.
Substituting the given values, we have:
(0.750 T) * (0.500 m) * v = (0.175 A) * (10.0 Ω).
Simplifying the equation, we find:
v = (0.175 A * 10.0 Ω) / (0.750 T * 0.500 m).
Evaluating the right-hand side of the equation gives us the speed:
v ≈ 0.467 m/s.
The answer to part (a) would not change if the bar was moving to the left instead of to the right. This is because the magnitude of the induced emf depends only on the relative velocity between the conductor and the magnetic field, not the direction of motion. As long as the velocity of the bar remains constant, the induced emf and the resulting current will be the same regardless of whether the bar is moving to the left or to the right. The direction of the current, however, will be reversed if the bar moves in the opposite direction, but the magnitude of the current will remain the same. Therefore, the speed required to produce the desired current will be the same regardless of the direction of motion.
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A dolly speeds up from rest to 3.03 m/s in 3.72 s. The radius of its tires is 0.133 m. How many degrees off from their original angle of rotation are the tires after exactly two seconds of motion? The answer must be an angle in degrees.
The angle of rotation of the tires after two seconds of motion is approximately: Δθ ≈ 45.714 rad * (180° / π) ≈ 261.803°. To determine the angle of rotation of the tires after two seconds of motion, we can first calculate the angular velocity of the tires at that time.
The angular velocity, ω, is given by the formula:
ω = Δθ / Δt,
where Δθ is the change in angle and Δt is the change in time.
Since the dolly starts from rest, its initial angular velocity is 0. Therefore, the change in angle can be found by multiplying the angular velocity by the time:
Δθ = ω * t.
We can find the angular velocity by dividing the linear velocity by the radius of the tires:
ω = v / r,
where v is the linear velocity and r is the radius of the tires.
Given that the linear velocity of the dolly is 3.03 m/s and the radius of the tires is 0.133 m, we can calculate the angular velocity:
ω = 3.03 m/s / 0.133 m ≈ 22.857 rad/s.
Now, we can find the change in angle after two seconds:
Δθ = ω * t = 22.857 rad/s * 2 s = 45.714 rad.
To convert the angle from radians to degrees, we use the conversion factor:
1 rad = 180° / π ≈ 57.296°.
Therefore, the angle of rotation of the tires after two seconds of motion is approximately:
Δθ ≈ 45.714 rad * (180° / π) ≈ 261.803°.
So, the tires are approximately 261.803 degrees off from their original angle of rotation after two seconds of motion.
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A worker drags a crate across a factory floor by pulling on a rope tied to the crate. The worker exerts a force of 450 N on the rope, which is inclined at 38 ∘
to the horizontal, and the floor exerts a horizontal force of 125 N that opposes the motion. Calculate the acceleration of the crate if its mass is 310 kg.
The acceleration of the crate is approximately [tex]2.13 m/s^2[/tex] is calculated by considering the forces acting on it. The worker exerts a force of 450 N on the rope, inclined at 38 degrees to the horizontal, while the floor exerts a horizontal force of 125 N opposing the motion.
To calculate the crate's acceleration, we need to consider the net force acting on it. The net force is the vector sum of the forces acting on the crate. In this case, the force exerted by the worker is directed at an angle of 38 degrees to the horizontal, while the opposing force by the floor is purely horizontal.
We can break down the force exerted by the worker into its horizontal and vertical components. The vertical component does not contribute to the crate's acceleration since it is perpendicular to the motion. The horizontal component of the worker's force is given by[tex]F_h = F * cos(\theta)[/tex], where F is the magnitude of the force (450 N) and θ is the angle (38 degrees).
The net force acting on the crate can be calculated as the difference between the horizontal force exerted by the worker and the opposing force by the floor. Therefore, the net force is [tex]F_{net} = F_h - F_{floor} = F * cos(\theta) - F_{floor}[/tex]r.
Using Newton's second law, [tex]F_{net} = m * a[/tex], where m is the mass of the crate (310 kg) and a is its acceleration, we can solve for the acceleration:
[tex]F * cos(\theta) - F_{floor} = m * a[/tex]
Substituting the given values:
450 N * cos(38 degrees) - 125 N = 310 kg * a
Simplifying and solving for a:
[tex]a = (450 N * cos(38 degrees) - 125 N) / 310 kg =2.13 m/s^2[/tex]
Therefore, the acceleration of the crate is approximately [tex]2.13 m/s^2[/tex].
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A piston cylinder with a cross-sectional size of 0.02 m² and a mass of 100 kg is resting on the stops. With an outside pressure of 140 kPa, what should be the water pressure to lift the piston? (Take g = 9.81 m/s²) O a. 189 kPa O b. 112 kPa O c. 198 kPa O d. 318 kPa
To lift the piston, the water pressure should be 189 kPa.
To solve this problem, we can use the principle of Pascal's law, which states that the pressure applied to a fluid is transmitted uniformly in all directions. Given that the piston cylinder is resting on the stops, it means that the outside pressure (140 kPa) is being applied to the entire cross-sectional area of the piston.
To lift the piston, the water pressure should be equal to or greater than the outside pressure. By applying Pascal's law, we can calculate the water pressure using the formula:
Water Pressure = Outside Pressure + (Weight of the Piston / Area of the Piston)
The weight of the piston can be calculated using the formula:
Weight = Mass * Acceleration due to gravity
Substituting the given values:
Weight = 100 kg * 9.81 m/s² = 981 N
Now, let's calculate the water pressure:
Water Pressure = 140 kPa + (981 N / 0.02 m²) = 140 kPa + 49050 Pa = 140 kPa + 49.05 kPa = 189.05 kPa
Rounded to the nearest whole number, the water pressure required to lift the piston is approximately 189 kPa.
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Both of the following statements apply to Part (a) answers and Part (b) answers: (a) Two protons exert a repulsive force on one another when separated by 6.4 fm. What is the magnitude of the force on one of the protons? (b) What is the magnitude of the electric field of a proton at 6.4 fm? (Enter your answer in calculation notation to 3-sigfigs with appropriate units. Ex: 3.00X10" = 3,00E+8). Answers are to 3SigFigs in calculator notation. Use proper units.
(a) Therefore, the magnitude of the force on one of the protons is 3.62 × 10⁻¹¹ N. (b) Therefore, the magnitude of the electric field of a proton at 6.4 fm is 8.99 × 10⁶ N/C.
(a) Two protons exert a repulsive force on one another when separated by 6.4 fm.
The magnitude of the force on one of the protons can be calculated using Coulomb's law.
Coulomb's law states that the force between two charges is proportional to the product of the charges and inversely proportional to the square of the distance between them.
Mathematically, F = (k * q1 * q2) / r²Where F is the force, k is Coulomb's constant (8.99 × 10⁹ N · m²/C²), q1 and q2 are the charges, and r is the distance between the charges.
The magnitude of the force on one of the protons can be calculated as follows:F = (8.99 × 10⁹ N · m²/C²) * ((+1.6 × 10⁻¹⁹ C)² / (6.4 × 10⁻¹⁵ m)²)≈ 3.62 × 10⁻¹¹ N
Therefore, the magnitude of the force on one of the protons is 3.62 × 10⁻¹¹ N.
(b) The magnitude of the electric field of a proton at 6.4 fm can be calculated using Coulomb's law.
Coulomb's law states that the electric field created by a point charge is proportional to the charge and inversely proportional to the square of the distance from the charge.
Mathematically,E = k * (q / r²)Where E is the electric field, k is Coulomb's constant (8.99 × 10⁹ N · m²/C²), q is the charge, and r is the distance from the charge.
The magnitude of the electric field of a proton at 6.4 fm can be calculated as follows:E = (8.99 × 10⁹ N · m²/C²) * (+1.6 × 10⁻¹⁹ C / (6.4 × 10⁻¹⁵ m)²)≈ 8.99 × 10⁶ N/C
Therefore, the magnitude of the electric field of a proton at 6.4 fm is 8.99 × 10⁶ N/C.
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