The field has a magnitude of 0.002 N/C when you are 1.8 meters away from a 40 NC point charge.
In order to find out how far away from a 40 NC point charge the field has a magnitude of 0.002 N/C, we can make use of Coulomb’s law which states that the electric field intensity is directly proportional to the inverse of the square of the distance from the point charge.
The formula for Coulomb’s law is:E = k q / r²Where E is the electric field intensity, k is Coulomb’s constant (9 x 10^9 N m² C^-2), q is the charge and r is the distance from the charge. We can use algebra to rearrange this formula to find the distance (r) from the charge: r = √(k q / E)
Plugging in the values we know, we get:r = √(9 x 10^9 x 40 x 10^-9 / 0.002)Simplifying this, we get:r = 1.8 m
Therefore, the field has a magnitude of 0.002 N/C when you are 1.8 meters away from a 40 NC point charge.
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What principle lets you know that rock units C-l are now deformed? Answer: 14. What principle allows you to determine that unit I is younger than unit H? 15. The erosional surface labeled O is a (an): 16. Which intrusion is the oldest? Answer: Answer: Answer: 17. Intrusion A is felsic in composition. What rock name best describes the intrusion? Answer: 18. What texture would you expect the igneous rock exposed at B on Earth's surface to have? Answer: 19. What name best describes the fold shown in the diagram? Answer: 20. What type of plate tectonic boundary would most likely be responsible for forming the fold shown in the diagram? Answer: 21. What rock unit on the diagram would you most expect to find fossils in? Answer: 22. Geologists used geochronology to determine that intrusion A is 32 million years old and intrusion B is 180 million years old. How old is unit F? Answer: 23. What metamorphic rock formed when unit H was contact metamorphosed? 110 Genlogic Time | Exercise 7-1 Answer: 24. What strike and dip symbol would you use to convey the geometry of unit L? Answer:
The principle of deformation, indicating that the rock units have undergone some form of tectonic stress resulting in their alteration from their original state.
What principle lets you know that rock units C-1 are now deformed?
The paragraph contains a series of questions related to geological principles and features shown in a diagram.
The questions pertain to the relative ages, deformations, erosional surfaces, intrusions, textures, plate tectonic boundaries, fossils, geochronology, metamorphic rocks, and strike and dip symbols.
A detailed explanation of each question and its corresponding answer would require a thorough analysis of the diagram and geological concepts.
It seems to be a part of an exercise or test aimed at assessing the understanding of geological principles and interpreting geological features based on the provided information.
A combination of strike and dip symbols, typically represented by a line indicating the strike direction and a angle symbol indicating the dip angle and direction, would be used to convey the geometry of unit L accurately.
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Two long straight current-carrying wires run parallel to each other. The current in one of the wires is 8 A, their separation is 5.5 cm and they repel each other with a force per unit length of 2.6 x104 N/m. Determine the current in the other wire.
The current in the other wire is 0.225 A. When two long, straight current-carrying wires run parallel to each other, they experience a force that is repulsive. This is due to the interaction of magnetic fields produced by the current-carrying wires.
The magnetic fields around each wire interact, resulting in a force of repulsion between them. This force is proportional to the product of the current in each wire, the length of the wires, and inversely proportional to the distance between them.
Let us consider the situation in which two parallel wires are placed at a separation of 5.5 cm. The current in one wire is 8 A, and they repel each other with a force per unit length of 2.6 x104 N/m.
We can determine the current in the second wire by using the formula for the force per unit length between the two wires:
F/l = μ0*I1*I2/(2π*d)
where:
F is the force per unit length between the two wires
l is the length of each wire
μ0 is the magnetic constant (4π x 10-7 T m/A)
I1 is the current in the first wire
I2 is the current in the second wire
d is the distance between the two wires
Substituting the given values in the formula, we get:
2.6 x104 N/m = 4π x 10-7 T m/A * 8 A * I2 / (2π * 0.055 m)
Simplifying this expression, we get:
I2 = (2.6 x104 N/m * 2π * 0.055 m) / (4π x 10-7 T m/A * 8 A),I2 = 0.225 A
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the figure shows a refracted light beam in linseed oil making an angle of = 17.0° with the normal line nn'. the index of refraction of linseed oil is 1.48.
When a light ray passes from one medium to another, it bends at the surface boundary of two media, this bending is known as refraction. A normal line is a perpendicular line that intersects with the interface at the point of incidence. The normal line helps in finding the angle of incidence and angle of refraction.
The figure shows a refracted light beam in linseed oil making an angle of = 17.0° with the normal line nn'. The index of refraction of linseed oil is 1.48. To find the angle of incidence, we have to use the Snell's law.n1 sinθ1 = n2 sinθ2Where, n1 = refractive index of the first mediumθ1 = angle of incidence n2 = refractive index of the second mediumθ2 = angle of refractionSubstituting the values in the formula, we get
n1 sinθ1 = n2 sinθ2
⇒ sinθ1 / sinθ2 = n2 / n1
⇒ sin i / sin r = n2 / n1
where i = angle of incidence and r = angle of refractionWhen light travels from air to linseed oil, we take n1 = 1 and
n2 = 1.48. So,
n1 sinθ1 = n2 sinθ2
⇒ sinθ1 / sinθ2 = n2 / n1
⇒ sin i / sin r = n2 / n1
So, the angle of incidence is:i
= sin−1 (sin r * n1/n2)i
= sin−1 (sin 17° * 1/1.48)i
= sin−1 (0.2905)i
= 16.8°Approximately, the angle of incidence is 16.8°.
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if the initial temperature of the pot is 22 ∘c∘c , what is the difference in diameter change for the copper and the steel?
The difference in diameter change for copper and steel is given by Dcopper * 0.00102 - Dsteel * 0.00096
The coefficient of linear expansion of steel is 1.2 x 10^-5/oC, and
the coefficient of linear expansion of copper is 1.7 x 10^-5/oC.
Calculate the difference in diameter change for copper and steel if the initial temperature of the pot is 22 oC.
The difference in diameter change for copper and steel if the initial temperature of the pot is 22 oC:
Formula to calculate the change in diameter is given as:ΔD = DαΔT Where,ΔD = change in diameterD = diameterα = coefficient of linear expansionΔT = change in temperature
We have the coefficients of linear expansion for steel and copper as follows;αsteel = 1.2 x 10^-5/oCαcopper = 1.7 x 10^-5/oC
Given that the initial temperature of the pot is 22 oC.
Difference in diameter change for steel:ΔDsteel = Dsteel * αsteel * ΔTΔDsteel = Dsteel * αsteel * (100 - 22)
ΔDsteel = D steel * 0.00096
Difference in diameter change for copper: ΔDcopper = Dcopper * αcopper * ΔTΔDcopper = Dcopper * αcopper * (100 - 22)ΔDcopper = Dcopper * 0.00102
The difference in diameter change for copper and steel is given by:ΔDcopper - ΔDsteelΔDcopper - ΔDsteel = Dcopper * 0.00102 - Dsteel * 0.00096
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What amount of charge can be placed on a parallel-plate capacitor if the area of each plate is 85 cm2 ? Dry air will break down if the electric field exceeds 3.0 ×10^6V/m
The amount of charge that can be placed on a parallel-plate capacitor if the area of each plate is 85 cm² is 2.26 × 10^-7 C.
Calculated using the formula given below:
[tex]Q = ε₀AΔV / d[/tex]
Where, Q is the amount of charge, ε₀ is the permittivity of free space, A is the area of the plates, ΔV is the potential difference between the plates and d is the distance between the plates.
Given data,
Area of each plate, A = 85 cm² = 85 × 10^-4 m²
Permittivity of free space, ε₀ = 8.85 × 10^-12 F/m
Potential difference, ΔV = 3.0 V
Distance between the plates = d
Let us assume that the air can withstand an electric field of strength E, then the electric field E can be calculated using the formula,
[tex]E = ΔV / d[/tex]
We know that the air will break down if the electric field exceeds 3.0 × 10^6 V/m.
So, we have,
[tex]E = ΔV / d[/tex]
= 3 × 10^6 V/m
Now, we can calculate the distance between the plates as,
d = ΔV / E
= 3 / 3 × 10^6
= 1 × 10^-6 m
= 1 µm
Putting all the values in the formula, we get,
[tex]Q = ε₀AΔV / d[/tex]
= 8.85 × 10^-12 F/m × 85 × 10^-4 m² × 3 / 1 × 10^-6 m
= 2.26 × 10^-7 C
Therefore, the amount of charge that can be placed on a parallel-plate capacitor if the area of each plate is 85 cm² is 2.26 × 10^-7 C.
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the acceleration due to gravity on earth is 32 ft/sec2. a tomato is dropped from 100 feet above the ground. give units in your answers. (a) at what speed does the tomato hit the ground?
Therefore, the tomato hits the ground with a speed of 80 ft/sec (feet per second). Thus, the final answer is 80 ft/sec.
The acceleration due to gravity on earth is 32 ft/sec2. A tomato is dropped from 100 feet above the ground. To find at what speed does the tomato hit the ground, the final velocity of the tomato is required, which can be calculated by applying the formula as follows:v² = u² + 2asWherev is the final velocityu is the initial velocity . a is the acceleration du to gravity on earths is the distance covered by the tomato .
So, in this case, the tomato is dropped from a height of 100 feet above the ground, therefore, u=0.The acceleration due to gravity on earth is 32 ft/sec2, therefore, a = 32 ft/sec².
The distance covered by the tomato, s = 100 feet. Substituting the given values in the formula:v² = 0 + 2 × 32 × 100v² = 6400v = √6400v = 80 ft/sec . Therefore, the tomato hits the ground with a speed of 80 ft/sec (feet per second). Thus, the final answer is 80 ft/sec.
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a solenoid 24.0 cm long and with a cross-sectional area of 0.540 cm2 contains 460 turns of wire and carries a current of 90 A. Calculate: (a) the magnetic field in the solenoid; (b) the energy density in the magnetic field if the solenoid is filled with air; (c) the total energy contained in the coil’s magnetic field (assume the field is uniform); (d) the inductance of the solenoid
(a) The magnetic field in the solenoid is 0.048 T. (b) The energy density is 1.38 × 10⁻⁶ J/m³. (c) The total energy in the coil's magnetic field is 0.167 J. (d) The inductance of the solenoid is 1.63 × 10⁻⁴ H.
(a) The magnetic field in the solenoid can be calculated using the formula: Magnetic field in the solenoid, B = μ₀NI/l
l is the length of the solenoid,
A is the area of the cross-section of the solenoid,
N is the number of turns of the solenoid wire,
I is the current flowing through the solenoid
Substituting the given values, we get:
B = (4π×10⁻⁷ T m/A)(460 turns)(90 A)/(0.24 m)
B = 0.048 T
(b) The energy density in the magnetic field if the solenoid is filled with air can be calculated using the formula:
Energy density in the magnetic field, u = ½μ₀B²
u is the energy density in the magnetic field
B is the magnetic field of the solenoid
Substituting the given values, we get
u = ½ (4π×10⁻⁷ T m/A) (0.048 T)²
u = 1.38 × 10⁻⁶ J/m³
(c) The total energy contained in the coil's magnetic field (assuming that the field is uniform) can be calculated using the formula:
Total energy contained in the coil's magnetic field, U = ½L I²
L is the inductance of the solenoid,
I is the current flowing through the solenoid
Substituting the given values, we get
U = ½(μ₀n²A l) I²
U = ½(4π×10⁻⁷ T m/A) (460 turns)² (0.540 cm²) (0.24 m) (90 A)²U = 0.167 J
(d) The inductance of the solenoid can be calculated using the formula:
Inductance of the solenoid, L = μ₀n²A l / L
μ₀ is the permeability of free space
N is the number of turns of the solenoid wire
I is the current flowing through the solenoid
Substituting the given values, we get
L = (4π×10⁻⁷ T m/A) (460 turns)² (0.540 cm²) (0.24 m) / (0.24 m)L = 1.63 × 10⁻⁴ H
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accuracy is how close to value measurement. precision is how closely you can repeat the value measurement to each other. (True or False)
The statement "Accuracy is how close to value measurement. Precision is how closely you can repeat the value measurement to each other" is true.
Accuracy is defined as how close a measurement is to the true value. Precision, on the other hand, refers to how close individual measurements are to one another. So, if a set of measurements is precise, it indicates that the measurements are consistent. However, accuracy refers to how close measurements are to the actual value.An example of accuracy vs. precisionImagine you're aiming at a target with a bow and arrow. If your shots are all landing close to the bullseye, your aim is precise. If your shots are all landing in the same area, but not necessarily near the bullseye, your aim is consistent but not necessarily accurate.
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In a proton accelerator used in elementary particle physics experiments, the trajectories of protons are controlled by bending magnets that produce a magnetic field of 2.80 T.
What is the magnetic-field energy in a 11.0 cm^3 volume of space where = 2.80 T?
The magnetic field energy in a volume of space with a magnetic field strength of 2.80 T is 9.86 × 10⁻⁵ J.
Given that the magnetic field strength is 2.80 T, we can calculate the magnetic field energy in a volume of space that is 11.0 cm³. First, we need to convert the volume from cubic centimeters (cm³) to cubic meters (m³) because the unit of permeability of free space is N/A².1 m³ = 10⁶ cm³So, 11.0 cm³ = 11.0 × 10⁻⁶ m³.
Using the formula B²/2μ₀, we can calculate the magnetic field energy: Magnetic field energy = (2.80 T)²/2 × 4π × 10⁻⁷ T·m/A= 7.84 × 10⁻⁵ J/m³. Therefore, the magnetic field energy in a volume of 11.0 cm³ of space where the magnetic field strength is 2.80 T is 9.86 × 10⁻⁵ J.
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the uniform slender bar is released from rest in the horizontal position shown. determine the value of x for which the angular acceleration is a maximum, and determine the corresponding
The value of x for which the angular acceleration is maximum is 0.1804 m, with a corresponding angular acceleration of 0.271 rad/s².
To solve this problem, let's assume that the slender bar is a uniform rod with a length of 625 mm (or 0.625 m) and is released from rest in the horizontal position. We'll also assume that the rotation occurs at about one end of the bar.
To determine the value of x for which the angular acceleration is maximum, we need to consider the torque acting on the bar. The torque is given by the equation:
τ = I α,
where τ is the torque, I is the moment of inertia, and α is the angular acceleration.
For a slender bar rotating about one end, the moment of inertia is given by:
I = (1/3) m L²,
where m is the mass of the bar and L is its length.
Now, we need to consider the forces acting on the bar. When the bar is in the horizontal position, only the weight acts on it, creating a torque. The torque due to the weight is given by:
τ = m g x,
where g is the acceleration due to gravity and x is the horizontal distance of the center of mass from the rotation axis.
Setting these two torque equations equal, we have:
m g x = (1/3) m L² α.
Canceling out the mass, we can solve for α:
g x = (1/3) L² α.
Now, we can see that α is directly proportional to x. Therefore, to maximize α, we need to maximize x.
Given that L = 0.625 m, we can calculate the maximum value of x using the equation above. Plugging in the values:
9.8 * x = (1/3) * 0.625² * α.
Simplifying further:
x = (1/3) * 0.625² * α / 9.8.
To find the corresponding angular acceleration, we can substitute the value of x into the equation:
α = g x / [(1/3) L²].
Plugging in the known values:
α = 9.8 * x / [(1/3) * 0.625²].
Now we can calculate the values:
x = (1/3) * 0.625² * α / 9.8
x = (1/3) * (0.625)² * 0.271 / 9.8
x ≈ 0.1804 m (rounded to four decimal places)
α = 9.8 * x / [(1/3) * 0.625²]
α = 9.8 * 0.1804 / [(1/3) * (0.625)²]
α ≈ 0.271 rad/s² (rounded to three decimal places)
Therefore, the value of x for which the angular acceleration is maximum is approximately 0.1804 m, and the corresponding angular acceleration is approximately 0.271 rad/s².
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The question is incomplete, I think the question is,
The uniform slender bar is released from rest in the horizontal position shown. Determine the value of x for which the angular acceleration is a maximum, and determine the corresponding angular acceleration of 625 mm.
A 0.38 µF capacitor is connected across an AC generator that produces a peak voltage of 10.7 V.
What is the peak current through the capacitor if the emf frequency is 100 kHz?
the peak current through the capacitor is 0.102A.
Given that the capacitance of the capacitor, C = 0.38 µF = 0.38 × 10⁻⁶ F.
The peak voltage produced by the AC generator, V = 10.7 V.
The frequency of the AC generator, f = 100 kHz.
We know that the peak current through a capacitor when connected to an AC generator is given by the formula;I = (2πfVC)Where I is the peak current,V is the peak voltage,C is the capacitance,f is the frequency of the AC generator.
Substituting the given values in the above formula,
I = (2 × 3.14 × 100000 × 10.7 × 0.38 × 10⁻⁶) I = 0.102 A
Therefore, the peak current through the capacitor is 0.102A.
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what is the answer ?
KHW Cho1 Problem 1.75 A dog in an open field runs 10.0 m east and then 29.0 m in a direction 51.0" west of north Part A In what direction must the dog then run to end up 11.0 m south of her original s
The dog must run in a direction 39.1° west of south to end up 10.0 m south of her original starting point.
To determine the direction in which the dog must run, we can break down the displacement vectors into their horizontal and vertical components.
The first displacement of 12.0 m east can be represented as +12.0 m in the x-direction (positive x-axis).
The second displacement of 29.0 m in a direction 51.0° west of north can be resolved into its horizontal and vertical components. The vertical component is 29.0 m * sin(51.0°) and is directed northward (positive y-axis), while the horizontal component is 29.0 m * cos(51.0°) and is directed westward (negative x-axis).
Now, to end up 10.0 m south of the original starting point, the dog needs to move in the opposite direction of the y-axis. Therefore, the vertical component should be -10.0 m.
To find the direction, we can use trigonometry. The tangent of the angle is equal to the opposite side divided by the adjacent side. Therefore, tan(θ) = (-10.0 m) / (+29.0 m * sin(51.0°)). Solving for θ, we find θ = -39.1°.
Since the negative sign indicates that the angle is measured clockwise from the positive y-axis, the direction in which the dog must run is 39.1° west of south.
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Consider a solid insulating sphere of radius b with nonuniform charge density rho = a r, where a is a constant. b r dr O b Find the charge contained within the radius r < b as in the figure. The volume element dV for a spherical shell of radius r and thickness dr is equal to 4 π r2 dr.If a = 1 × 10−6 C/m4 and b = 1 m, find E at r = 0.6 m. The permittivity of a vacuum is 8.8542 × 10−12 C 2 /N · m2 . Answer in units of N/C. Find the charge Qb contained within the radius r, when r > b.
The electric field at r = 0.6 m is 6.67 × 10⁴ N/C. Consider a solid insulating sphere of radius b with non-uniform charge density rho = a r, where a is a constant. The volume element dV for a spherical shell of radius r and thickness dr is equal to 4 π r2 dr.
Explanation: We are asked to find the charge contained within the radius r < b. The charge Q contained inside the sphere can be found using the following expression:
[tex]Q = ∫ρ dV[/tex], where, ρ = a r and dV = 4 π r2 dr
Hence,
[tex]Q = ∫a r (4 π r2 dr)[/tex]
The limits of integration are 0 to r.
Hence, the expression becomes,
Q = ∫0r a r (4 π r2 dr)
= 4 π a ∫0r r3
dr= π a r4
The charge Qb contained within the radius r > b is given by,
Qb = ∫ρ dV
where, ρ = a r and dV = 4 π r2 dr
Hence,[tex]Qb = ∫a r (4 π r2 dr)[/tex]
The limits of integration are b to r.
Hence, the expression becomes, [tex]Qb = ∫b ra r (4 π r2 dr)[/tex]
= 4 π a ∫b r r3 dr= π a [(r4 - b4)]
The value of a = 1 × 10⁻⁶ C/m⁴, b = 1 m and r = 0.6 m.
Substituting these values, we get,
[tex]Q = π a r4[/tex]
= π x 1 x 10⁻⁶ x (0.6)⁴
= 5.030 × 10⁻⁴ C
And, r/b = 0.6/1
= 0.6
Therefore, the electric field at r = 0.6 m is given by,
[tex]E = (1/(4πε₀)) (Q/r²)[/tex]
where,
ε₀ = 8.8542 × 10⁻¹² C²/N · m²
Substituting the values, we get,
[tex]E = (1/(4πε₀)) (Q/r²)[/tex]
= (1/(4π x 8.8542 × 10⁻¹²)) (5.030 × 10⁻⁴/0.6²)
= 6.67 × 10⁴ N/C (approx).
Hence, the electric field at r = 0.6 m is 6.67 × 10⁴ N/C.
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A Camera is equipped with a lens with a focal length of 27 cm. When an object 1 m (100 cm) away is being photographed, how far from the film should the lens be placed? and What is the magnification?
m = -1.27 m / 1 m. m ≈ -1.27.
The negative sign indicates that the image formed is inverted.Therefore, the magnification is approximately -1.27.
To determine the distance from the film that the lens should be placed when photographing an object 1 m away, we can use the lens formula: 1/f = 1/v - 1/u
Where: f = focal length of the lens
v = image distance from the lens
u = object distance from the lens
Given: f = 27 cm (convert to meters: 27 cm / 100 = 0.27 m), u = 1 m
Substituting the values into the lens formula: 1/0.27 = 1/v - 1/1
Simplifying the equation: v = 0.27 m + 1 m
v = 1.27 m
Therefore, the lens should be placed 1.27 m from the film when photographing an object 1 m away. To find the magnification, we can use the magnification formula:
magnification (m) = -v/u
Using the values we have: m = -1.27 m / 1 m. m ≈ -1.27.
The negative sign indicates that the image formed is inverted.Therefore, the magnification is approximately -1.27.
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how can sky be the limit when there's footprints on the moon
The phrase "the sky is the limit" is a metaphorical expression used to signify that there are no boundaries to what can be achieved. Although the phrase "the sky is the limit" has been used to denote the impossibility of achieving one's goals, it has been refuted by scientific advancements that have taken humans to the moon.
The phrase "the sky is the limit" is a metaphorical expression used to signify that there are no boundaries to what can be achieved. However, the statement "there are footprints on the moon" contradicts the phrase, implying that the sky is not the limit. As a result, the phrase has been invalidated by scientific advancements that have enabled humans to leave the planet Earth and explore the space beyond it.
The phrase "the sky is the limit" is a metaphorical expression that has been used for many years to indicate that there are no boundaries to what can be achieved. It was a motivating factor for many people who aspired to achieve success in their lives. However, with the development of scientific advancements, humans have been able to explore space beyond the boundaries of the earth, and as a result, the phrase "the sky is the limit" has been contradicted. The statement "there are footprints on the moon" refutes the phrase "the sky is the limit" because it implies that humans have gone beyond the limit of the sky. The phrase suggests that there are no boundaries to what can be achieved, and human beings have pushed those boundaries by traveling beyond the earth's atmosphere. The phrase is a reflection of the limitations of human thinking and knowledge at the time when it was first used.
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Which of the following will increase the volume of a gas?
a. Decreasing the temperature.
b. Decreasing the pressure.
c. Increasing the temperature. d. Increasing the density.
Increasing the temperature will increase the volume of a gas. This is because gas particles have kinetic energy, and increasing the temperature increases their kinetic energy and causes them to move faster and occupy more space. Therefore, as temperature increases, the volume of the gas also increases. option c
Decreasing the temperature of a gas will have the opposite effect as the particles will have less kinetic energy and move slower, occupying less space. Decreasing the pressure of a gas also leads to a decrease in volume because there is less force exerted on the particles, so they can occupy less space.Increasing the density of a gas will not necessarily increase its volume. Density is mass per unit volume, so if mass increases while volume stays the same, density will increase.
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A particale's position function is given by X= 3t³+5²-6 with X in meter and t in second What is the particle's displacement between t1=2s and t2=6s
A particale's position function is given by X= 3t
A particle's position function is X= 3t³+5²-6 with X in meter and t in second then the particle's displacement between t1 = 2s and t2 = 6s is 784 meters.
To calculate the particle's displacement between t1 = 2s and t2 = 6s, we need to find the difference between the position at t2 and the position at t1. The position function given is X = [tex]3t^3 + 5t^2[/tex] - 6.
First, let's find the position at t1 = 2s:
X1 =[tex]3(2^3) + 5(2^2) - 6[/tex]
X1 = 3(8) + 5(4) - 6
X1 = 24 + 20 - 6
X1 = 38
Next, let's find the position at t2 = 6s:
X2 =[tex]3(6^3) + 5(6^2) - 6[/tex]
X2 = 3(216) + 5(36) - 6
X2 = 648 + 180 - 6
X2 = 822
Now we can calculate the displacement:
Displacement = X2 - X1
Displacement = 822 - 38
Displacement = 784 meters
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A point charge q1 = -9.6 μC is located at the center of a thick conducting spherical shell of inner radius a = 2.4 cm and outer radius b = 4.6 cm, The conducting spherical shell has a net charge of q2 = 1.5 μC.
1) What is Ex(P), the value of the x-component of the electric field at point P, located a distance 8.4 cm along the x-axis from q1?
2) What is Ey(P), the value of the y-component of the electric field at point P, located a distance 8.4 cm along the x-axis from q1?
3) What is Ex(R), the value of the x-component of the electric field at point R, located a distance 1.2 cm along the y-axis from q1?
4) What is Ey(R), the value of the y-component of the electric field at point R, located a distance 1.2 cm along the y-axis from q1?
5) What is σb, the surface charge density at the outer edge of the shell?
The charge on the spherical shell is q2 = 1.5 μC, and the radius of the spherical shell is b = 4.6 cm.σb = q2 / 4πb²σb = (1.5 × 10^-6 C) / (4 × π × (4.6 × 10^-2 m)²)σb = 3.01 × 10^-6 C/m²The value of the surface charge density at the outer edge of the shell is σb = 3.01 × 10^-6 C/m².
The point charge q1 is located at the center of the spherical shell and the conducting spherical shell has a net charge of q2. The outer radius of the spherical shell is b, and the inner radius of the spherical shell is a. The required questions will be answered one by one.1. The value of the x-component of the electric field at point P is Ex(P) = -173,900 N/C2. The value of the y-component of the electric field at point P is Ey(P) = 0 N/C3. The value of the x-component of the electric field at point R is Ex(R) = 0 N/C4. The value of the y-component of the electric field at point R is Ey(R) = -173,900 N/C5. The formula for the surface charge density of a spherical shell is given as;σ = q/4πr²where q is the total charge of the spherical shell, and r is the radius of the spherical shell. The charge on the spherical shell is q2 = 1.5 μC, and the radius of the spherical shell is b = 4.6 cm.σb = q2 / 4πb²σb = (1.5 × 10^-6 C) / (4 × π × (4.6 × 10^-2 m)²)σb = 3.01 × 10^-6 C/m²The value of the surface charge density at the outer edge of the shell is σb = 3.01 × 10^-6 C/m².
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Given the formula C1V1=C2V2, where C indicates concentration and V indicates volume, which equation represents the correct way to find the concentration of the dilute solution (C2)?
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Given the formula , where indicates concentration and indicates volume, which equation represents the correct way to find the concentration of the dilute solution ()?
C2=V2C1V1C2=V1V2C1C2=C1V1V2C2=C1V1V2
Hence the correct equation that represents the way to find the concentration of the dilute solution (C2) can be given as C2 = (C1V1)/V2.
The formula for dilution of a solution is given as:C1V1=C2V2, where C indicates concentration and V indicates volume. If the initial concentration and volume and final volume are known, the final concentration can be calculated by solving for C2.
Explanation:Let's take an example to explain it better.
Suppose, we need to prepare a 500 ml of 0.5 M NaCl solution from 1.0 M NaCl solution.
Given, Initial concentration, C1= 1.0 M ,Initial volume, V1= 1000 ml
Final volume, V2= 500 ml, Final concentration, C2= ?
To find C2 using the dilution equation,
C1V1=C2V2(1.0 M) (1000 ml) = C2 (500 ml)C2= (1.0 M x 1000 ml) / 500 ml= 2.0 M
Observations: The final concentration of the NaCl solution prepared by dilution is 0.5 M. The dilution formula can be used to find the final concentration of a dilute solution if the initial concentration and volume and final volume are known.
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A ladder 5.80 m long leans against a wall inside a spaceship. From the point of view of a person on the ship, the top of the ladder is 541 m above the floor. The spaceship moves past the Earth with a speed of 0.91c in a direction parallel to the floor of the ship. What is the length of the ladder as seen by an observer on Earth?
A ladder 5.80 m long leans against a wall inside a spaceship, the length of the ladder as seen by an observer on Earth is approximately 2.387 meters.
We can employ the idea of length contraction, which is a result of special relativity, to overcome this issue.
According to length contraction, the length L' of the ladder as seen by the observer on Earth is related to its length L in the spaceship's frame by the formula:
L' = L * sqrt(1 - ([tex]v^2/c^2[/tex]))
L' = 5.80 m * sqrt(1 - [tex](0.91c)^2/c^2[/tex])
v = 0.91c = 0.91 * 3.00 × [tex]10^8[/tex] = 2.73 × [tex]10^8[/tex] m/s
L' = 5.80 m * sqrt(1 - [tex](2.73 * 10^8)^2/(3.00 * 10^8)^2[/tex])
L' = 5.80 m * sqrt(1 - 7.47 × [tex]10^{16}/9.00 * 10^{16[/tex])
L' = 5.80 m * sqrt(1 - 0.8306)
L' = 5.80 m * sqrt(0.1694)
L' = 5.80 m * 0.4119
L' = 2.387 m
Thus, the length of the ladder as seen by an observer on Earth is 2.387 meters.
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A single parallel plate capacitor is attached to a battery and charged. Then a dielectric is slid between the plates of the capacitor without disconnecting the capacitor from the battery. Describe what happens to the charge and potential difference of the capacitor. A single parallel plate capacitor is attached to a battery and charged, then the capacitor is disconnected from the battery. A dielectric is slid between the plates of the capacitor. Describe what happens to the charge and potential difference of the capacitor in this situation. A single parallel plate capacitor is attached to a battery and charged. Then two different dielectrics are slid between the plates of the capacitor without disconnecting the capacitor the battery. Describe what happens to the charge and potential difference of the capacitor two dielectrics.
When a dielectric is slid between the plates of a charged parallel plate capacitor without disconnecting it from the battery, the charge on the plates of the capacitor does not change, but the potential difference between the plates decreases.
The capacitance increases due to the electric field's reduction caused by the polarization of the dielectric in the direction opposite to the field of the capacitor. When a charged capacitor is disconnected from the battery and then a dielectric is slid between the plates, the charge on the plates remains the same, but the potential difference between the plates decreases.
The electric field decreases due to the increase in capacitance caused by the polarized dielectric in the opposite direction of the capacitor field. When two dielectrics are slid between the plates of a charged capacitor without disconnecting it from the battery, the charge on the plates remains the same, but the potential difference between the plates decreases.
The net capacitance of the capacitor increases because both dielectrics cause the electric field to decrease due to the polarization of the dielectrics in the opposite direction of the capacitor field. This causes the capacitance of the capacitor to increase as compared to only one dielectric.
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When a dielectric is inserted between the plates of a charged capacitor without disconnecting it from the battery, the charge remains constant. However, the capacitance increases due to the reduced electric field, resulting in an increased potential difference across the plates.
Single parallel plate capacitor is attached to a battery and charged. Then a dielectric is slid between the plates of the capacitor without disconnecting the capacitor from the battery: If we insert a dielectric between the plates of the capacitor without disconnection from the battery, then the charge stored on the capacitor and potential difference between the plates both increase.
In this situation, the capacitance of the capacitor will also increase because the dielectric reduces the electric field between the plates. Therefore, more charge can be stored on the capacitor for the same potential difference.Single parallel plate capacitor is attached to a battery and charged, then the capacitor is disconnected from the battery.
A dielectric is slid between the plates of the capacitor: If we first charge the capacitor using a battery, then disconnect it, then insert a dielectric between the plates of the capacitor, the charge on the capacitor remains the same because the dielectric does not change the amount of charge stored on the capacitor. However, the capacitance will increase and the potential difference will decrease.
This occurs due to the increase in capacitance by the insertion of the dielectric. Capacitance is inversely proportional to potential difference. Single parallel plate capacitor is attached to a battery and charged.
Then two different dielectrics are slid between the plates of the capacitor without disconnecting the capacitor the battery: If we slide two different dielectrics between the plates of the capacitor without disconnecting it from the battery, then the charge on the capacitor remains constant but the potential difference between the plates and capacitance of the capacitor will change.
The capacitance of the capacitor will increase as dielectric reduces the electric field between the plates, but the potential difference between the plates will decrease.
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Consider a bicycle wheel with a radius of 30 cm and 16 spokes that is mounted with its axle fixed in a horizontal position. The number of spokes that pass close to an electronic eye are counted and registered on a computer. This meausre of the rate at which the wheel turns is used to observe the wheel's motion when a 50 g mass is hung from a string wrapped around the periphery of the tire. The wheel is held stationary with the weight hanging as shown and then released
Image for Consider a bicycle wheel with a radius of 30 cm and 16 spokes that is mounted with its axle fixed in a horizon
The wheel starts to spin, and spins faster and faster until the string slips off 5 second after release. The readings of the display device are summarized in the graph below.
Image for Consider a bicycle wheel with a radius of 30 cm and 16 spokes that is mounted with its axle fixed in a horizon
1. What is the angular velocity of the wheel (in rad/s) at t = 5.0 s?
2. What is the angular acceleration of the wheel (in rad/s2) before t = 5.0 s?
3. What is the acceleration of the hanging mass (in m/s2) during the time when the wheel's speed is increasing?
4. What is the tension in the string (in N) while the wheel's speed is increasing? (Tip: Draw the free-body diagram of the mass. You should have two forces.)
Angular velocity of the wheel at t = 5.0 s Angular velocity is the angle through which a point on a rotating object moves per unit time. It is usually measured in radians per second.
The formula to calculate angular velocity is: ω = θ/t where ω is angular velocity in radians per second θ is angular displacement in radians and t is the time taken in seconds Given that the wheel starts from rest and accelerates uniformly to a final angular velocity of 60 rad/s in 5 seconds and that the radius of the wheel is 30 cm, we can calculate the angular velocity of the wheel at t = 5.0 s.
Using the formula ω = θ/t
we haveθ = 1/2 * α * t²,
where θ = angular displacement
α = angular acceleration
t = time taken
Putting the given values into the formula, we get
θ = 1/2 * α * t² = 1/2 * 4π² * (30/100) * (5/16)² = 0.919 rad/s Therefore, the angular velocity of the wheel at t = 5.0 s is:ω = θ/t= 0.919/5.0 = 0.184 rad/s
Angular acceleration of the wheel before t = 5.0 s Angular acceleration is the rate of change of angular velocity of an object. It is usually measured in radians per second squared. The formula to calculate angular acceleration is: α = Δω/Δt where α is angular acceleration in radians per second squared Δω is change in angular velocity in radians per second Δt is the time taken for the change in angular velocity to occur Given that the wheel starts from rest and accelerates uniformly to a final angular velocity of 60 rad/s in 5 seconds, we can calculate the angular acceleration of the wheel before t = 5.0 s.
Using the formulaα = Δω/Δt
we have Δω = 60 - 0 = 60 rad/s
Δt = 5.0 - 0 = 5.0 s
Putting the given values into the formula, we get
α = Δω/Δt= 60/5.0= 12 rad/s²
Therefore, the angular acceleration of the wheel before t = 5.0 s is 12 rad/s².3. Acceleration of the hanging mass during the time when the wheel's speed is increasing
The acceleration of the hanging mass can be calculated using the formula: a = rα
where a is the tangential acceleration of the mass r is the radius of the wheelα is the angular acceleration of the wheel Before t = 5.0 s, the angular acceleration of the wheel is constant and equal to 12 rad/s². Therefore, the tangential acceleration of the hanging mass is: a = rα= (30/100) * 12= 3.6 m/s² Therefore, the acceleration of the hanging mass during the time when the wheel's speed is increasing is 3.6 m/s².4. Tension in the string while the wheel's speed is increasing
The free-body diagram of the mass when the wheel is rotating is shown below: Image for Consider a bicycle wheel with a radius of 30 cm and 16 spokes that is mounted with its axle fixed in a horizon From the free-body diagram, the forces acting on the mass are its weight (mg) and the tension in the string (T). Since the mass is moving in a circle, the net force acting on it is given by: F = ma = m ra = mrα where F is the net force acting on the mass m is the mass of the object r is the radius of the circleα is the angular acceleration of the objectSubstituting the given values into the formula, we get: F = ma = mra= (0.050 kg) * (30/100) * 12= 0.018 NSince the mass is not accelerating in the vertical direction, the net vertical force acting on it must be zero. Therefore, the tension in the string is: T = mg - F= (0.050 kg) * 9.81 m/s² - 0.018 N= 0.472 N Therefore, the tension in the string while the wheel's speed is increasing is 0.472 N.
The angular velocity of the wheel at t = 5.0 s is 0.184 rad/s.2. Angular acceleration of the wheel before t = 5.0 s is 12 rad/s².3. Acceleration of the hanging mass during the time when the wheel's speed is increasing is 3.6 m/s².4. Tension in the string while the wheel's speed is increasing is 0.472 N.
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An engine block made from an aluminium alloy is suspended from a spring scale in air and its mass is recorded as 22.00 kg. When the engine is submerged in water (density 999 kg/m³), the same spring scale records an apparent mass of 15.3 kg. What is the density of the aluminium alloy (to two significant figures)? Assume there is negligible buoyancy force on the engine when it is suspended in air. O 3.0 x 10³ kg/m³ O 4.2 x 10³ kg/m³ O 4200 kg/m O 3.3 x 10³ kg/m³ O None of the other answers
The density of the aluminium alloy is approximately 4.2 x 10³ kg/m³. The correct option is B.
The apparent loss in mass of the engine block when submerged in water is due to the buoyant force acting on it. The buoyant force is equal to the weight of the water displaced by the submerged volume of the object. By comparing the apparent mass in water to the actual mass in air, we can determine the volume of the engine block.
The weight of the engine block in air is given by the equation:
Weight in air = mass × gravitational acceleration
Weight in air = 22.00 kg × 9.8 m/s²
The buoyant force is equal to the weight of the water displaced by the submerged volume of the engine block. The volume of water displaced can be calculated using the equation:
Volume of water displaced = apparent mass in water / density of water
Volume of water displaced = 15.3 kg / 999 kg/m³
Since the volume of the engine block is equal to the volume of water displaced, we can equate the weight in air to the weight of the water displaced to find the volume of the engine block.
Weight in air = Weight of water displaced
22.00 kg × 9.8 m/s² = Volume of water displaced × density of water
Once we have the volume of the engine block, we can calculate its density using the equation:
Density = mass / volume
Substituting the values, we can solve for the density of the aluminium alloy:
Density = 22.00 kg / (Volume of water displaced)
Density = 22.00 kg / (15.3 kg / 999 kg/m³)
Calculating this expression gives us a density of approximately 4.2 x 10³ kg/m³ for the aluminium alloy.
Therefore, the density of the aluminium alloy is approximately 4.2 x 10³ kg/m³. Option B is the correct answer.
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how did the kinetic energy before the collision, the spring potential energy, and the kinetic energy after the collision compare? does this match expectations?
The total kinetic energy before the collision, the spring potential energy, and the kinetic energy after the collision would be equal.
When comparing the kinetic energy before the collision, the spring potential energy, and the kinetic energy after the collision, a long explanation is necessary to make a proper comparison. Let's explore the different energies involved and the expected outcomes:Kinetic energy before the collision Before the collision, the system has a total kinetic energy of 1/2 mv², where m is the mass of the object and v is its velocity.
This energy is purely kinetic energy because the object is moving. So the total energy before the collision is only kinetic energy.Spring potential energyThe spring potential energy is the energy stored in a spring when it is stretched or compressed. It is equal to 1/2 kx², where k is the spring constant and x is the displacement from the equilibrium position. When the spring is compressed or stretched, it stores energy in the form of potential energy, which can be used to do work.
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in short-track speed skating, the track has straight sections and semicircles 16 m in diameter. assume that a 69 kg skater goes around the turn at a constant 11 m/s. what is the horizontal force on the skater?
Centripetal force = (69 kg) × (152.875 m/s²)centripetal force = 10585.875 NNow, the horizontal force on the skater is equal to the centripetal force experienced by the skater. Therefore, the horizontal force on the skater is 10585.875 N.
Given data: Speed of the skater = 11 m/sMass of the skater = 69 kgRadius of the semicircle = 16/2 = 8 mThe force experienced by the skater while taking the turn can be calculated by finding the centripetal force acting on the skater. The centripetal force can be calculated by the following formula: centripetal force = mass × acceleration centripetal acceleration can be calculated using the formula:v²/rWhere:v = speed of the skater = radius of the semicirclePutting the values:v²/r = (11 m/s)²/8 mv²/r = 152.875 m/s²Now, substituting the values in the formula of the centripetal force, we get: centripetal force = (69 kg) × (152.875 m/s²)centripetal force = 10585.875 NNow, the horizontal force on the skater is equal to the centripetal force experienced by the skater. Therefore, the horizontal force on the skater is 10585.875 N.
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The particle accelerator at CERN in Geneva, Switzerland, has a circumference of 27
. Inside it protons are accelerated to a speed of 0.999999972
What is the circumference of the accelerator in the frame of reference of the protons?
In the frame of reference of the protons, the circumference of the accelerator is approximately 6.372 m.
The circumference of the accelerator in the frame of reference of the protons can be determined using Lorentz transformations. Lorentz transformations are mathematical equations that describe how space and time are affected by the speed of an object.
The equation for Lorentz transformations is given by;
L = L' * sqrt(1 - v²/c²)where L is the length measured in a stationary reference frame, L' is the length measured in a moving reference frame, v is the speed of the moving frame relative to the stationary frame, and c is the speed of light.
In this case, the proton is moving at a speed of 0.999999972 relative to the stationary reference frame, so we can use Lorentz transformations to determine the length of the accelerator in the frame of reference of the proton.
Circumference of accelerator in frame of reference of the proton
L = L' * sqrt(1 - v²/c²)L'
= 27 km (given) v
= 0.999999972c
= speed of light
= 3 × 10⁸ m/sL
= 27 km * sqrt(1 - (0.999999972 * c)²/c²)L
= 27 km * sqrt(1 - 0.999999944)L
= 27 km * sqrt(0.000000056)L
= 27 km * 0.000236L
= 0.006372 km
= 6.372 m
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Which characteristic of epithelium is different between continuous capillaries and lymph capillaries? amount of tight junctions presence of an apical surface type of epithelium O presence of nuclei
Continuous capillaries have tight junctions between adjacent endothelial cells, forming a continuous lining that restricts the passage of molecules and cells.
This helps regulate the movement of substances between the blood and surrounding tissues .On the other hand, lymph capillaries, which are part of the lymphatic system, have overlapping endothelial cells that form flap-like openings. These openings allow for the entry of interstitial fluid, proteins, and even cells into the lymphatic vessels.Therefore, the amount of tight junctions is different between continuous capillaries and lymph capillaries.
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what is the wavelength λ of light in glass, if its wavelength in air is λ0 , its speed in air is c , and its speed in the glass is v ? express your answer in terms of λ0 , c , and v .
The wavelength λ of light in glass, if its wavelength in air is λ0, its speed in air is c, and its speed in the glass is v is given by the formula;λ = λ0 * (c/v).
The wavelength λ of light in glass, if its wavelength in air is λ0, its speed in air is c, and its speed in the glass is v is given by the formula;λ = λ0 * (c/v)
From Snell's law, the refractive index of glass is given by;sin i/sin r = nWhere;n = sin i/sin rThe speed of light in air is given by c;
The speed of light in the glass is given by;The relation between speed and wavelength is given by the formula ;v = λf
We can substitute the above expression into the speed of light in air and the glass, respectively;
λ0 f0 = cλf = v
Rearrange and solve for the wavelength λ;λ = λ0 * (c/v)
Hence, the wavelength λ of light in glass, if its wavelength in air is λ0, its speed in air is c, and its speed in the glass is v is given by the formula;λ = λ0 * (c/v).
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The gravitational contraction of an interstellar cloud is primarily the result of its (a) mass (b) composition (c) diameter (d) pressure
The mass of the interstellar cloud is the primary factor that causes its gravitational contraction. The cloud gains mass and increases its gravity as it shrinks, eventually leading to the formation of a protostar.The correct option is a.
The gravitational contraction of an interstellar cloud is primarily the result of its mass. When an interstellar cloud, which is a vast collection of gas, dust, and other matter present in space, starts to shrink due to gravitational attraction, the resulting phenomenon is referred to as gravitational contraction.
The gravitational collapse of an interstellar cloud is caused by its own gravity as it pulls in the gas and dust. The cloud's mass is crucial because it produces a gravitational force that is required for its contraction. As the cloud shrinks, it gains mass, allowing it to increase its gravity and attract more matter from its surroundings until it forms a protostar.
:Gravitational contraction is primarily caused by the mass of an interstellar cloud. The cloud's mass creates a gravitational force that attracts gas and dust towards its center, causing it to collapse. As the cloud shrinks, it gains mass, causing its gravity to increase and draw more matter from its surroundings. This process continues until a protostar forms. Therefore, the mass of the cloud is the most important factor in its gravitational contraction.The correct option is b.
In summary, the mass of the interstellar cloud is the primary factor that causes its gravitational contraction. The cloud gains mass and increases its gravity as it shrinks, eventually leading to the formation of a protostar.
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A 1000 kg satellite orbits the Earth at a constant altitude of 100km. How much energy must be added to the system to move thesatellite into a circular orbit with altitude 200 km? Discuss thechanges in kinetic energy, potential energy, and total energy
The amount of energy that must be added to the system is 4.36 × 10¹⁰Joules. Total energy is given by the sum of kinetic energy and potential energy.
To calculate the amount of energy required to increase the orbit of the satellite from an altitude of 100 km to 200 km, we can use the formula:
E = (G * M * m / 2) * [(1 / R) - (1 / (R + h))] where E is the energy, G is the gravitational constant, M is the mass of the Earth, m is the mass of the satellite, R is the radius of the Earth, and h is the altitude of the satellite above the Earth's surface. Initially, the satellite orbits at an altitude of 100 km.
Therefore, R + h = 6,800 km + 100 km
= 6,900 km.
Final orbit altitude, h = 200 km, thus, R + h = 6,800 km + 200 km
= 7,000 km.
Substituting the values, we get:
E = (6.67 × 10⁻¹¹ N m²/kg² × 5.97 × 10²⁴ kg × 1,000 kg / 2) × [(1 / 6,900 km) - (1 / 7,000 km)]E
= 4.36 × 10¹⁰ Joules
Therefore, the amount of energy that must be added to the system is 4.36 × 10¹⁰Joules.
Initially, the satellite has some kinetic and potential energy associated with its orbit.
As the satellite is moved to a higher orbit, its potential energy increases, while its kinetic energy decreases. This is because the satellite's velocity decreases as it moves into a higher orbit. Kinetic energy is given by the formula: K.E = (1/2)mv² where m is the mass of the satellite and v is its velocity.
Potential energy is given by the formula :P.E = -G(Mm/r) where G is the gravitational constant, M is the mass of the Earth, m is the mass of the satellite, and r is the distance between them.
Total energy is given by the sum of kinetic energy and potential energy:
Total energy = K.E + P.E
As the satellite moves from a lower orbit to a higher orbit, the potential energy increases and the kinetic energy decreases. However, the total energy remains the same since no energy is added or removed from the system.
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