c) The rubber band is stretched under a constant tension. when you warm the rubber band under the constant tension it will expand instead of shrinking.
If you warm the rubber band while keeping it under constant tension, it will expand instead of shrinking. This occurs due to the fact that the rubber band's atoms begin to vibrate more as a result of the heat. This vibrating motion produces more space between the atoms, causing the rubber band to expand.
The original condition of the rubber band under constant tension is when a rubber band is stretched, it has an intrinsic tendency to restore its original size and shape when the tension is released. It implies that if the rubber band is heated, it will also restore its original size and shape once the tension is released. It will take the same size as it had before being stretched.
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How much heat will be released when 6.44 g of sulfur reacts with excess O2 according to the following equation? 2 S + 3O2 → 2SO3 ∆H = -791.4 kJ
When 6.44 g of sulfur reacts with excess O2 according to the given equation 2 S + 3O2 → 2SO3 ∆H = -791.4 kJ, 252.7 kJ of heat will be released.
To find the amount of heat released in the given reaction, we need to find the number of moles of sulfur and then use the balanced chemical equation to find the amount of heat released.
Moles of sulfur = Mass of sulfur/Molar mass of sulfur
= 6.44 g/32.06 g/mol = 0.201 mol
From the balanced chemical equation, it is clear that 2 moles of sulfur reacts with 3 moles of O2 to produce 2 moles of SO3. In this case, we have enough O2. So, sulfur is the limiting reactant. Number of moles of sulfur = 0.201 mol, Number of moles of SO3 produced = 2 × 0.201 mol/2 = 0.201 mol.
According to the balanced chemical equation, 2 moles of SO3 is produced with the release of 791.4 kJ of heat.So, for 0.201 mol of SO3 produced, the amount of heat released = 791.4 kJ/2 mol × 0.201 mol = 79.14 kJ
Thus, the amount of heat released when 6.44 g of sulfur reacts with excess O2 is 79.14 kJ (approx).
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The amount of heat released when 6.44 g of sulfur reacts with excess O₂ is 79.14 kJ (approx.).
When 6.44 g of sulfur reacts with excess O₂ according to the given equation 2 S + 3O₂ → 2SO₃ ∆H = -791.4 kJ, 252.7 kJ of heat will be released.
To find the amount of heat released in the given reaction, we need to find the number of moles of sulfur and then use the balanced chemical equation to find the amount of heat released.
Moles of sulfur = Mass of sulfur/Molar mass of sulfur
= 6.44 g/32.06 g/mol = 0.201 mol
From the balanced chemical equation, it is clear that 2 moles of sulfur reacts with 3 moles of O₂ to produce 2 moles of SO₃. In this case, we have enough O₂. So, sulfur is the limiting reactant. Number of moles of sulfur = 0.201 mol, Number of moles of SO₃ produced = 2 × 0.201 mol/2 = 0.201 mol.
According to the balanced chemical equation, 2 moles of SO₃ is produced with the release of 791.4 kJ of heat.So, for 0.201 mol of SO₃ produced, the amount of heat released = 791.4 kJ/2 mol × 0.201 mol = 79.14 kJ
Thus, the amount of heat released when 6.44 g of sulfur reacts with excess O₂ is 79.14 kJ (approx).
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if three bulbs 30 w, 40 w, and 110 w are connected in parallel to each other and to a 120-v source, calculate the current through each bulb.
The current through each bulb when three bulbs 30 W, 40 W, and 110 W are connected in parallel to each other and to a 120 V source can be calculated by dividing the total power output of the three bulbs by the voltage supplied. The total power output of the three bulbs is 180 W (30 + 40 + 110). Therefore, the current is calculated as 1.5 A (180 W / 120 V).
The current through each bulb can also be calculated individually by dividing the power output of each bulb by the voltage supplied. For the 30 W bulb, the current is 0.25 A (30 W / 120 V). For the 40 W bulb, the current is 0.33 A (40 W / 120 V). For the 110 W bulb, the current is 0.92 A (110 W / 120 V).
To summarize, the current through each bulb when three bulbs 30 W, 40 W, and 110 W are connected in parallel to each other and to a 120 V source is 0.25 A, 0.33 A, and 0.92 A, respectively.
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a large piece of debris that only partially burns up in the atmosphere, leaving a fragment to hit the surface, is called a
A large piece of debris that only partially burns up in the atmosphere, leaving a fragment to hit the surface is called: a meteorite
When an asteroid or comet fragment encounters the Earth's atmosphere, it is called a meteor. A meteor is a visual phenomenon that occurs when a meteoroid enters the Earth's atmosphere at high speeds and burns up due to friction with the atmosphere.
As it enters the atmosphere, the meteor heats up and begins to glow, producing a streak of light across the sky. Most meteors burn up completely in the atmosphere, but occasionally, a large piece of debris may only partially burn up, leaving a fragment to hit the surface. This is what is referred to as a meteorite.
Meteorites are valuable to scientists because they provide important information about the origins and evolution of our solar system. They can also give insights into the conditions that existed on early Earth and provide clues to the formation of planets.
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calculate the original charge on the capacitor plates. express your answer with the appropriate units.
The original charge on a capacitor plate can be calculated using the formula Q = CV, where C is the capacitance and V is the voltage across the capacitor.
The steps to be followed to calculate the capacitor plates as
To use this formula, you will need to know the values of C and V. Capacitance is measured in farads (F) and voltage is measured in volts (V).If you are given the capacitance and voltage values, simply substitute them into the formula and solve for Q.Therefore, the original charge on the capacitor plates is equal to (capacitance * voltage)/number of plates, expressed in Coulombs.To learn more about the capacitor plates :
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a child rocks back and forth on a porch swing with an amplitude of 0.204 m and a period of 2.80 s.assuming the motion is approximately simple harmonic, find the child's maximum speed.
The child's maximum speed is 0.459 m/s
Step by step explanation:
Amplitude = 0.204 m
Period = 2.80 s
We know that the speed is maximum when the displacement is zero.
Therefore, the maximum speed is given by v max = 2πAf (where A is the amplitude and f is the frequency).
We know that
f= 1/T
⇒ f=1/2.8
⇒ f=0.357 Hz
Now, we can find the maximum speed of the child
vmax=2πAf
⇒vmax=2π × 0.204 × 0.357
⇒vmax=0.459 m/s
Therefore, the child's maximum speed is 0.459 m/s.
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a flywheel has a radius of 0.40 m. what is the speed of a point on the edge of the flywheel if it experiences a centripetal acceleration of 15 m/s2
The speed of a point on the edge of a flywheel with a radius of 0.40 m that experiences a centripetal acceleration of 15 m/s² is 2.45 m/s.
A flywheel is a type of mechanical device that stores energy and is used to smoothen the output of a rotational system. It is a rotating mechanical device that acts as a reservoir for energy storage and a system energy stabilizer. It also aids in the maintenance of a constant rotational speed in a machine.
The following are the formulas used to determine the speed of a point on the edge of a flywheel and its centripetal acceleration:
v = rω
where v = linear velocity; r = radius; ω = angular velocity;
a = rω²
where a = centripetal acceleration; r = radius; ω = angular velocity
Therefore, if a flywheel has a radius of 0.40 m and it experiences a centripetal acceleration of 15 m/s², the speed of a point on the edge of the flywheel is:
v = rωv = 0.40ωω = √(a/r)ω = √(15/0.40)ω = 6.12 rad/sv = rωv = 0.40 x 6.12v = 2.45 m/s
Therefore, the speed of a point on the edge of a flywheel that experiences a centripetal acceleration of 15 m/s² is 2.45 m/s.
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a cable with 19.01 n of tension pulls straight up on a 1.79 kg block that is initially at rest. what is the block's speed after being lifted 1.62 m?
When a cable with 19.01 N of tension pulls straight up on a 1.79 kg block that is initially at rest, the block's speed after being lifted 1.62 m is 3.01 m/s.
What is tension?
Tension is the force experienced by an object that is pulled or stretched.
When a cable with 19.01 N of tension pulls straight up on a 1.79 kg block that is initially at rest, the tension in the cable balances the weight of the block, which is 1.79 kg multiplied by the acceleration due to gravity of 9.8 m/s² or 17.542 N.
So, tension = 19.01 N (since the cable tension is the only force acting on the block).
Therefore, using the work-energy theorem,
W = ∆K,
where W is the work done on the block,
∆K is the change in the block's kinetic energy,
K = 1/2 m(v²).
Since the block begins at rest, K = 0 Joules when it starts moving upward, and it has some final velocity when it reaches 1.62 m.
So, W = 1/2 m(v²).
From the given data, the work done on the block is F∆y, where F is the force on the block, and ∆y is the distance the block has been lifted up to reach 1.62 meters of height.
So,∆K = F∆y∆K
= (19.01 N)(1.62 m)∆K
= 30.8182 J
The block's kinetic energy after reaching 1.62 meters of height is the same as the work done on it since no other external forces acted on it.
Therefore,
1/2 m(v²)
= 30.8182 J1/2 (1.79 kg)(v²)
= 30.8182 Jv²
= 34.31 v = 3.01 m/s
Therefore, the block's speed after being lifted 1.62 meters is 3.01 m/s.
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TRUE or FALSE – Energy can be transferred from Kinetic Energy (KE) to Potential Energy (PE) and vice versa.
True, energy can be transferred from kinetic energy (KE) to potential energy (PE) and vice versa
Can energy be transferred from Kinetic Energy (KE) to Potential Energy (PE) and vice versa?The principle of the conservation of energy states that energy cannot be created or destroyed but can only transferred or transformed from one form to another.
When an object is in motion, it has kinetic energy, and when it is at rest, it has potential energy.
When the object moves from a stationary position to a position in motion, some of its potential energy is converted into kinetic energy.
Conversely, when the object moves from a position in motion to a stationary position, some of its kinetic energy is converted into potential energy.
Hence, the statement is TRUE.
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Find the change in temperature of each sample after the hot water was added. Fill in the table with the data you collected in parts C and D. To find the change in a sample’s temperature, subtract the starting temperature from the ending temperature.
Sample Starting Temperature Ending Temperature Change in Temperature
50 g sand
50 g water
100 g water
The change in temperature of 50 g sand :50 g water and 100 g water is
10°C ;15°C and 15.1°C
The change in temperature of each sample after the hot water was added can be found by subtracting the starting temperature from the ending temperature. For the 50 g sand sample, the starting temperature was 23.4°C and the ending temperature was 33.4°C, so the change in temperature was 10°C. For the 50 g water sample, the starting temperature was 22.7°C and the ending temperature was 37.7°C, so the change in temperature was 15°C. For the 100 g water sample, the starting temperature was 21.5°C and the ending temperature was 36.6°C, so the change in temperature was 15.1°C.
Sample Starting Temp Ending Temp Change in Temp
50 g sand 23.4°C 33.4°C 10°C
50 g water 22.7°C 37.7°C 15°C
100 g water 21.5°C 36.6°C 15.1°C
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when the ball is at its lowest point, is the tension in the string greater than, less than, or equal to the ball's weight? when the ball is at its lowest point, is the tension in the string greater than, less than, or equal to the ball's weight? the tension in the string is less than the ball's weight. the tension in the string is greater than the ball's weight. the tension in the string is equal to the ball's weight. it is impossible to determine.
The ball is at its lowest point, which means that the tension in the string is greater than the ball's weight.
Tension is defined as the force in a stretched object that is pulling against the force that is causing the stretch. The magnitude of the force that is pulling on an object is the tension in the object.
The tension in a string is the force that is pulling on the string. When the string is pulled, the tension increases. The tension in a string depends on the force that is pulling on the string.
The weight of the ball is the force that is pulling on the string. When the ball is at its lowest point, the tension in the string is greater than the ball's weight.
This is because the force of gravity pulling down on the ball is greater than the tension in the string which is causing the ball to move up.
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. Lin cooked a pot of soup, then put half the soup in the freezer for a while. Now the soup in the pot is hot, and the soup in the freezer is cold. What is the difference between the molecules of the soup in the pot and the molecules of the soup in the freezer
Answer:
The molecules of the soup in the pot move faster than those in the freezer.
Explanation:
The soup in the freezer is closer to being a solid than that in the pot. Therefore, it has more energy which will make the molecules move faster.
an audio speaker producing a steady sound at an outdoor concert is 18 ft away from you. if you move to a position where the speaker is 78 ft distant, by what factor will the amplitude of the sound change?
The amplitude of the sound from the speaker at the outdoor concert will change by a factor of 4.2 (78 ft/18 ft) when you move from 18 ft away to 78 ft away.
This is because sound intensity decreases as the distance from the source increases, following an inverse square law. The inverse square law states that the intensity of a sound source is inversely proportional to the square of the distance from the source.
Mathematically, the formula is: I = I0 / (r^2), where I is the intensity at a distance r from the source of intensity I0. This means that when you move from 18 ft away to 78 ft away, the intensity of the sound decreases by a factor of 4.2 ((78 ft/18 ft)^2).
Therefore, the amplitude of the sound from the speaker at the outdoor concert will change by a factor of 4.2 when you move from 18 ft away to 78 ft away.
determine the intensity of electromagnetic waves from the sun just outside the atmospheres of the earth.
The intensity of the electromagnetic radiation from the Sun just outside the atmosphere of the Earth is 1.55 x 10-9 W/m2.
The intensity of electromagnetic waves from the sun just outside the atmosphere of the Earth can be calculated using the inverse-square law.
This law states that the intensity of the radiation decreases with the square of the distance from the source. Thus, the intensity of the radiation at the edge of the atmosphere will be lower than that at the surface of the Sun.
The intensity of the radiation, we need to know the distance from the Sun to the Earth. This distance is approximately 93 million miles (150 million kilometers).
The intensity of the radiation at the edge of the atmosphere by taking the inverse-square of this distance, which is approximately 1.55 x 10-9 W/m2.
This is the intensity of the electromagnetic radiation from the Sun just outside the atmosphere of the Earth.
The intensity of the electromagnetic radiation from the Sun just outside the atmosphere of the Earth is 1.55 x 10-9 W/m2.
This is due to the inverse-square law, which states that the intensity of radiation decreases with the square of the distance from the source.
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how might we experience the universe differently if the speed of light were much slower? much faster? what if the speed of light were not constant? construct the correct description.
The speed of light plays a significant role in the functioning of the universe. It is responsible for the formation of stars, galaxies, and planets. Without the speed of light, the universe would be entirely different from what we know it to be.
If the speed of light were slower, it would have a considerable impact on the way we view the universe. The universe would seem much larger than it currently appears. The sun would appear much smaller than it does now because it would appear to be much further away from the Earth. The universe's shape, as well as its size, would be affected if the speed of light were slower.
The universe might even appear to be smaller and less complex than it currently does. If the speed of light were much faster than it is now, we would be able to see much more of the universe than we currently can. The universe would be more significant than it is now, and we would be able to see more distant stars and galaxies. The universe would appear more substantial and more complex than it currently appears.
If the speed of light were not constant, it would have a considerable impact on the universe. The universe's shape, as well as its size, would be affected. The universe might even appear to be smaller and less complex than it currently does.
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What arguments did he use to prove that he was right?did be used experiments, logic, finding of other scientists or other approaches
In science, arguments to prove a hypothesis or theory can be supported by various approaches such as experiments, logic, findings of other scientists, and other approaches.
Experiments are a common method used to support arguments in science. They involve carefully designed procedures to test a hypothesis or theory and collect data that can be analyzed to support or refute the hypothesis or theory. The data collected can be used to provide evidence for the argument being made.
Logic is also used in science to support arguments. Logical reasoning involves using a set of premises or assumptions to arrive at a conclusion. Scientists often use logic to develop hypotheses and theories that can be tested through experiments or other means.
Findings of other scientists can also be used to support arguments. When multiple studies or experiments have been conducted on a particular topic, scientists may review and analyze the findings to arrive at a conclusion. The consensus among the scientific community can lend weight to an argument.
Other approaches to support arguments in science may include mathematical models, simulations, and observations. In general, scientists use a variety of approaches to support their arguments and conclusions in order to ensure that their findings are as accurate and reliable as possible.
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bioelectrical impedance analysis is a commercially available method used to estimate body fat percentage. the device applies a small potential between two parts of the patient's body and measures the current that flows through. with an estimate of the resistance individually of the muscle and fat between the two points, the composition of the tissue can be estimated. assume that the muscle and fat tissue can be modeled as resistors in parallel. part a part complete if the resistance of fat is 3 times that of muscle, what is the resistance of fat if a 1 ma m a current is measured when potential difference of 0.5 v v is applied to the patient's arm?
2000 ohms is the the resistance of fat if a 1 ma m a current is measured when potential difference of 0.5 v v is applied to the patient's arm.
How to solve for the resistancewe have r = resistance of the muscle
R = fat resistance
we are given R = 3r
such that the R total would be solved using ohms law:
We would have 3r² / 4r
= 0.75r
when we use the Ohm's law we would have the follwoing calculation
0.5 = 0.001 * 0.75 r
we are to solve for the value of r
0.5 = 0.00075r
divide through by:
r = 0.5 / 0.00075
= 666.667
Remember that R = 3r
R = 3 * 666.667
R = 2000 ohms
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the paper dielectric in a paper-and-foil capacitor is 8.10*10^-2 mm thick. it's dielectric constant is 2.10, and it's dielectric strength is 50.0 MV/m. assume that the geometry is that of a parallel-plate capacitor, with the metal foil serving as the plates.
Part A: What area of each plate is required for for a 0.300 uF capacitor? In m^2
Part B: If the electric field in the paper is not to exceed one-half the dielectric strength, what is the maximum potential difference that can be applied across the compactor? In V
a. Part A: The area of each plate is required for for a 0.300 uF capacitor is 1.56 × [tex]10^{-4}[/tex] m².
b. Part B: If the electric field in the paper is not to exceed one-half the dielectric strength, the maximum potential difference that can be applied across the compactor is 2025 V.
To find the area of each plate required for a 0.300 uF capacitor, use the formula:
C = ε₀εrA/d
where C is the capacitance, ε₀ is the vacuum permittivity (8.85 × [tex]10^{-12}[/tex] F/m), εr is the relative permittivity (dielectric constant), A is the area, and d is the distance between the plates. In this case,
C = 0.300 uF
εr = 2.10
d = 8.10 × [tex]10^{-5}[/tex] m.
Rearrange the formula to find A:
A = Cd / (ε₀εr)
A = (0.300 × [tex]10^{-6}[/tex] F)(8.10 × [tex]10^{-5}[/tex] m) / (8.85 × [tex]10^{-12}[/tex] F/m × 2.10)
A ≈ 1.56 × [tex]10^{-4}[/tex] m²
Thus, the area of each plate required for a 0.300 uF capacitor is approximately 1.56 × [tex]10^{-4}[/tex] m².
To find the maximum potential difference that can be applied across the capacitor, use the formula:
V = Ed
where E is the electric field and d is the distance between the plates. In this case, E is half the dielectric strength (50.0 MV/m / 2 = 25.0 MV/m), and d = 8.10 × [tex]10^{-5}[/tex] m:
V = (25.0 × 10^6 V/m)(8.10 × 10^-5 m)
V ≈ 2025 V
Thus, the maximum potential difference that can be applied across the capacitor without exceeding one-half the dielectric strength is approximately 2025 V.
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pleases can someone help me with this question
Physiological fitness, body circumference fitness and bone strength fitness comes under nonperformance-related fitness while health-related fitness and skill related fitness comes under performance-related fitness.
Physiological Fitness refers to the ability of the body to meet the demands of physical activity and exercise also includes factors such as aerobic and muscular strength, endurance, and flexibility. Skill Related Fitness refers to physical abilities that are related to performance of sports, such as agility, coordination, balance, power, speed, and reaction time. Health-Related Fitness refers to the components of physical fitness related to health, such as cardiorespiratory fitness, body composition, and muscular strength and endurance. Bone Strength Fitness refers to the strength of the bones and how well they can withstand force and protect from injury. Body Circumference Fitness refers to the circumference of the body and how well it is proportioned to support physical activities.
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The absolute brightness of a star depends on its _____.
a. size and temperature
b. distance an temperature
c. color and temperature
d. distance and color
Option A. The absolute brightness of a star depends on its size and temperature
What is the absolute brightness of a star
The absolute brightness of a star is the amount of light it emits at a standard distance from Earth, regardless of how far away it actually is.
The size and temperature of a star are the primary factors that determine its absolute brightness. The size of the star affects the amount of light it emits, with larger stars emitting more light. The temperature of a star affects the color of the light it emits, with hotter stars emitting bluer light and cooler stars emitting redder light. Both of these factors play a significant role in determining a star's absolute brightness.
Distance and color can also affect a star's brightness, but in different ways. The distance of a star affects its apparent brightness as seen from Earth, but not its absolute brightness. The color of a star can provide information about its temperature and composition, but does not directly determine its absolute brightness.
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how to know the minimum force a third vector should exert to bring the two other vectors to equilibrium
In order to determine the minimum force that a third vector should exert to bring two other vectors to equilibrium, we will use the concept of vector addition.
Here is some steps:
Draw two vectors (force) that are not in equilibrium, let's call them Vector A and Vector B.Draw a third vector (force) acting in the opposite direction to Vector A or Vector B.Measure the magnitude of Vector A and Vector B.To bring the two vectors to equilibrium, the third vector should have the same magnitude as Vector A + Vector B.This is because the third vector must be strong enough to cancel out the net force acting on the system. If the third vector has a magnitude less than Vector A + Vector B, then the system will not be in equilibrium.
For example, suppose Vector A has a magnitude of 5 N and Vector B has a magnitude of 3 N.
Then the minimum force that the third vector should exert to bring the two vectors to equilibrium would be
5 N + 3 N⇒8 N
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on a day when there is no wind, you are moving toward a stationary source of sound waves. compared to what you would hear if you were not moving, the sound that you hear has
The sound that you hear has a higher frequency and a shorter wavelength.
When you move towards a stationary source of sound waves, the wavelength is shortened and the frequency is increased. This is due to the Doppler Effect, which states that a wave's frequency increases as the source and observer come closer together.
The Doppler effect is a phenomenon when there is a change in the frequency of the wave due to a displacement of the source and detector/listener.
In summary, when you move towards a stationary source of sound waves, the sound you hear has a higher frequency and a shorter wavelength.
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a rifle is fired with angle of elevation . what is the muzzle speed if the maximum height of the bullet is ft?
The muzzle speed of the bullet fired from the rifle is approximately 1349.1 ft/s.
When a rifle is fired with an angle of elevation, the muzzle speed can be determined if the maximum height of the bullet is known.
The formula for finding the muzzle speed of a bullet fired from a rifle is given by;v = sqrt((gH) / sin(2θ))
where;v = Muzzle speed of the bulletg = Acceleration due to gravityH = Maximum height of the bulletθ = Angle of elevation.
Thus, the muzzle speed of the bullet can be found.SolutionIn the given problem, the angle of elevation of the rifle is not given, but we have been given the maximum height of the bullet.
Muzzle speed of,
v = sqrt((gH) / sin(2θ)) , We have been given that the maximum height of the bullet is 375 ft.
Therefore, H = 375 ft.We are supposed to find the muzzle speed of the bullet. Therefore, we will represent the muzzle speed of the bullet by v.
We have been given the value of the acceleration due to gravity, which is;g = 32 ft/s²Now, we have to find the value of θ, which is the angle of elevation of the rifle.
The value of θ, we will use the formula for finding the maximum height of a projectile given by;H = (v²sin²θ) / (2g)We have been given that H = 375 ft, g = 32 ft/s².
Rearrange the formula for H to get;θ = sin⁻¹(2gH / v²)θ = sin⁻¹((2×32×375) / v²)θ = sin⁻¹(24000 / v²)Using a scientific calculator, we will find thatθ ≈ 21.37°
The muzzle speed;v = sqrt((gH) / sin(2θ))v = sqrt((32 × 375) / sin(2 × 21.37)), v ≈ 1349.1 ft/s. Therefore, the muzzle speed of the bullet fired from the rifle is approximately 1349.1 ft/s.
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A typical neutron star may have a mass equal to that of the sun but a radius of only 10.0 km.
a. What is the gravitational acceleration at the surface of such a star?
b. How fast would an object be moving if it fell from rest through a distance of 1.20 m on such a star?
a.The gravitational acceleration at the surface of a neutron star is 1.32 × 10¹⁴ m/s².
b.an object would be moving at a velocity of 7.76 × 10⁶ m/s if it fell from rest through a distance of 1.20 m on such a neutron star.
a. The gravitational acceleration at the surface of a neutron star can be calculated using the formula for acceleration due to gravity:g=GM/r²
where g is the acceleration due to gravity,
G is the gravitational constant,
M is the mass of the neutron star, and r is the radius of the neutron star.
Substituting the given values,M = Mass of neutron star = Mass of Sun = 1.99 × 10³⁰ kg
r = Radius of neutron star = 10 km = 10,000 m
G = Gravitational constant = 6.67 × 10⁻¹¹ N m²/kg²
g= GM/r²= (6.67 × 10⁻¹¹ N m²/kg²) (1.99 × 10³⁰ kg) / (10,000 m)²= 1.32 × 10¹⁴ m/s²
Therefore, the gravitational acceleration at the surface of a neutron star is 1.32 × 10¹⁴ m/s².
b. The formula for velocity, v of a falling object under gravity can be given as v = √2gh
where g is the gravitational acceleration, h is the height fallen through, and v is the velocity of the object.
Substituting the given values,h = 1.20 mg = 1.32 × 10¹⁴ m/s²
v = √2gh= √(2 × 1.32 × 10¹⁴ m/s² × 1.20 m)= 7.76 × 10⁶ m/s
Therefore, an object would be moving at a velocity of 7.76 × 10⁶ m/s if it fell from rest through a distance of 1.20 m on such a neutron star.
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a compound machine used to raise heavy boxes consists of a ramp and a pulley. the efficiency of pulling a 100 kg box up the ramp is 50%. if the efficiency of the pulley is 90%, what is the overall efficiency of the compound machine?
The overall efficiency of the compound machine is 116.7%
Efficiency = (output work/input work) x 100%
Total output work = 500 J + 900 J = 1400 J
Total input work = 1000 J + 200 J = 1200 J
Efficiency = (output work/input work) x 100%
Efficiency = (1400 J / 1200 J) x 100%
Efficiency = 116.7%
Efficiency is a measure of how well a system or process converts energy or resources into useful output. It is usually expressed as a percentage of the input energy or resources that are effectively utilized to produce the desired output.
In thermodynamics, efficiency is often used to describe the ratio of useful work output to the total energy input in a process, such as in a heat engine. In electrical engineering, efficiency can refer to the amount of electrical power that is delivered to a load compared to the total power consumed by a system. Efficiency is an important concept in many areas of physics and engineering, as it allows us to evaluate the performance of systems and devices, and to identify areas where improvements can be made.
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when 115 v is applied across a wire that is 10 m long and has a 0.30 mm radius, the magnitude of the current density is 1.4 108 a/m2 . find the resistivity of the wire.
The resistivity of the wire when a voltage of 115 V is applied across a wire that is 10 m long and has a 0.30 mm radius is: [tex]2.33 x 10-15 ohm-m[/tex]
The resistivity of the wire can be determined from the magnitude of the current density. Using Ohm's law, the current density can be calculated as follows:
I = V/R
Where, I = current density (A/m2)
V = Voltage (V)
R = Resistance (ohms)
Therefore, the resistance of the wire can be determined as:
R = V/I
[tex]R = 115 V/1.4 x 108 A/m2[/tex]
[tex]R = 8.21 x 10-9 ohms[/tex]
The resistivity of the wire is equal to the resistance of the wire multiplied by the cross-sectional area of the wire, A. Since the wire has a radius of 0.30 mm, the cross-sectional area is equal to the area of a circle:
A = pi x r2
[tex]A = 3.14 x (0.30 x 10-3)2[/tex]
[tex]A = 2.83 x 10-7 m2[/tex]
Therefore, the resistivity of the wire can be determined as:
ρ = R x A
[tex]ρ = 8.21 x 10-9 x 2.83 x 10-7[/tex]
[tex]ρ = 2.33 x 10-15 ohm-m[/tex]
This is the resistivity of the wire when a voltage of 115 V is applied across a wire that is 10 m long and has a 0.30 mm radius.
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how far will a rock travel if it is thrown upward at an angle of 35.00 with respect to the horizontal and with a speed of 21.3 m/s? what is the maximum range that can be achieved with the same initial speed?
The maximum range that can be achieved with the same initial speed is 69.6 m.
The distance that a rock will travel when thrown upward at an angle of 35.00 with respect to the horizontal and with a speed of 21.3 m/s is determined by the equations of projectile motion.
The maximum range that can be achieved is calculated by using the equation for the range of a projectile, which is R = (V2sin2θ)/g,
where V is the initial speed (21.3 m/s in this case), θ is the angle with respect to the horizontal (35.00 in this case), and g is the acceleration due to gravity (9.8 m/s2). The range can be calculated to be 69.6 m.
The motion of the rock can be broken down into two components:
the vertical component, which is determined by the equation h = (Vsinθ)t - ½gt2, and the horizontal component, which is determined by the equation x = Vcost.
The maximum height that the rock reaches is calculated by substituting t = (Vsinθ)/g into the equation for the vertical component, resulting in hmax = (V2sinθ)/2g.
As the rock falls back to the ground, the time taken for it to reach the ground is calculated by substituting hmax into the equation for the vertical component, resulting in ttotal = 2(Vsinθ)/g.
The range of the projectile is then calculated by substituting ttotal into the equation for the horizontal component, resulting in the equation for the range of a projectile given above.
The distance that a rock will travel when thrown upward at an angle of 35.00 with respect to the horizontal and with a speed of 21.3 m/s is determined by the equations of projectile motion,
and the maximum range that can be achieved with the same initial speed is 69.6 m.
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a particle passes through the point at time , moving with constant velocity . find the position vector of the particle at an arbitrary time .
The position vector of the particle at an arbitrary time is vt.
Step by step explanation:
The position vector of the particle at an arbitrary time is a vector that has both direction and magnitude.
It is defined by its starting point and its endpoint.
Given that a particle passes through the point at time t, moving with constant velocity v, the position vector of the particle at an arbitrary time is given by the formula;
Position vector of the particle = Position vector of the particle at time t + velocity x (time taken to reach the arbitrary time from time t)
Therefore, the position vector of the particle at an arbitrary time is given as r = [tex]r_0[/tex] + vt where:
[tex]r_0[/tex] is the position vector of the particle at time t. v is the velocity of the particle. t is the time taken to reach the arbitrary time from time t.
For instance, if the particle passes through the origin at time t, moving with constant velocity v, the position vector of the particle at an arbitrary time will be given as;
r = 0 + vt = vt
Hence, the position vector of the particle at an arbitrary time is vt.
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To determine the location of her center of mass, a physics student lies on a lightweight plank supported by two scales 2.50m apart, as indicated in the figure . If the left scale reads 290 N, and the right scale reads 112 N. What is the student's mass and find the distance from the student's head to her center of mass.
The location of her centre of mass, a physics student lies on a lightweight plank supported by two scales 2.50m apart, as indicated in the figure. If the left scale reads 290 N and the right scale reads 112 N The student's mass is approximately 41 kg, and the distance from her head to her centre of mass is approximately 0.696 m.
To determine the student's mass, we can sum up the readings from both scales, which are measures of force (Newtons) and then convert it to mass using the gravitational acceleration (g = 9.81 m/s²).
Step 1: Calculate the total force acting on the plank:
Total Force = Force_left_scale + Force_right_scale
Total Force = 290 N + 112 N
Total Force = 402 N
Step 2: Convert the total force to mass using gravitational acceleration:
Mass = Total Force / g
Mass = 402 N / 9.81 m/s²
Mass ≈ 41 kg
Now, to find the distance from the student's head to her centre of mass, we'll use the principle of torque equilibrium.
Step 3: Set up the torque equation:
Torque_left_scale = Torque_right_scale
Force_left_scale × Distance_left_scale = Force_right_scale × Distance_right_scale
Let x be the distance from the student's head to her centre of mass. Then, the distance from the left scale to the centre of mass is x, and the distance from the right scale to the centre of mass is (2.50 - x).
Step 4: Plug in the known values and solve for x:
290 N × x = 112 N × (2.50 - x)
Step 5: Simplify the equation and solve for x:
290x = 112(2.50) - 112x
290x + 112x = 112(2.50)
402x = 280
x ≈ 0.696 m
The student's mass is approximately 41 kg, and the distance from her head to her centre of mass is approximately 0.696 m.
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a spring has a mass of 2kg attached to it, and the spring constant is 8n /m. the mass is set in motion from the rest position with an initial velocity of 2m/s. assuming that there is no damping, find the subsequent motion of the mass. (you do not need to use the phase shift)
The subsequent motion of the mass attached to the spring with a spring constant of 8n/m and a mass of 2kg, is an oscillatory motion with a frequency of 1 radian/s. This means that the mass will move with a sinusoidal motion between its equilibrium point and the maximum displacement of 4m. The amplitude of the motion will remain constant, and the mass will reach its equilibrium position twice in each cycle.
The motion is determined by the spring constant (k) and the mass (m). As the spring constant is high, the mass will move with a higher frequency and shorter period, and the amplitude of the oscillatory motion will be higher.
As the mass was initially set in motion with an initial velocity of 2m/s, the mass will continue to move with the same speed and the same direction until it reaches its equilibrium point. The velocity of the mass will be highest at the equilibrium point, and will decrease as it moves away from it.
The motion of the mass will be periodic and repeat itself over time, and it will not be affected by any external forces such as friction or damping. As long as the mass remains at rest at the equilibrium point, the motion of the mass will continue in the same way.
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Choose a correct short description of a real object for which this would be the correct free-body diagram (Figure 1) Check all that apply. a. An object hanging from a rope is moving up with a constant speed. b. An object hanging from a rope is moving down with a constant speed c. An object hanging from a rope is moving down with a constant acceleration d. An object hanging from a rope is moving up with a constant acceleration
The correct short description of a real object for which the given free-body diagram (Figure 1) would be applicable is:
b. An object hanging from a rope is moving down with a constant speed.
This is because the diagram shows the forces acting on an object (in this case, tension and weight) when it is in equilibrium or moving with a constant velocity. In this scenario, the object is hanging from a rope, which means that the tension force and the weight force are in balance, and the object is not accelerating. Since the object is moving down with a constant speed, the forces acting on it are balanced, and the free-body diagram in Figure 1 would be applicable.
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