what of the following describes the relation between the current and voltage in a metal conductor?

The quantum mechanical model of the atom, each subshell is characterized by a letter designation that corresponds to its value of l. The subshell with l=1 is the p subshell, which can hold a maximum of 6 electrons.

Therefore, the element to which this atom belongs must have its highest-energy valence electrons in the 5p subshell. There are several elements that have their valence electrons in the 5p subshell, including antimony (Sb), tellurium (Te), and iodine (I).

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The image is located 2.8 meters from the mirror, on the same side as the object (indicated by the negative sign).

To determine the location of the image formed by a convex mirror with a focal length of -2.8m, we need to use ray tracing. Draw a ray from the object parallel to the principal axis, which will reflect off the mirror and pass through the focal point. Draw a second ray from the object towards the center of curvature, which will reflect back on itself.

Step 1: Plug in the given values:
1/(-2.8) = 1/5.6 + 1/di

Step 2: Calculate the reciprocal of the object distance and the focal length:
-1/2.8 = 1/5.6 + 1/di

Step 3: Subtract the reciprocal of the object distance from the reciprocal of the focal length:
-1/2.8 - 1/5.6 = 1/di

Step 4: Find the common denominator and simplify the fraction:
-2/5.6 = 1/di

Step 5: Take the reciprocal of both sides to find the image distance:
di = -5.6/2

Step 6: Simplify the fraction to get the image distance:
di = -2.8 m

The image is located 2.8 meters from the mirror, on the same side as the object (indicated by the negative sign).

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The magnitude of the emf generated around the loop as a function of t is 2πBa²t. (A)

Steps to calculate the emf generated around the loop

1. The area A of the circular loop is given by A = πR² = π(at)².

2. The magnetic flux Φ through the loop is given by Φ = B * A, where B is the magnetic field strength.

3. Substituting A into the magnetic flux equation, we get Φ = B * π(at)².

4. According to Faraday's law of electromagnetic induction, the magnitude of emf is given by the absolute value of the time rate of change of magnetic flux: emf = |dΦ/dt|.

5. Differentiating Φ with respect to t: dΦ/dt = B * π * 2(at) * a.

6. The magnitude of the emf generated is therefore: 2πBa²t.(A)

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Since we know that there are also stars outside of the Sun's orbit, this gives us valuable insights into the vastness and diversity of the universe.

The Sun is just one of billions of stars in the Milky Way galaxy, and it follows an elliptical path around the galactic center. This fact highlights that our solar system is merely a small component of a much larger cosmic structure.

Observing stars outside the Sun's orbit allows us to study their unique properties and formation processes. By analyzing their spectral characteristics, we can determine their age, chemical composition, and distance from Earth. This information helps astronomers classify stars into various categories and enhances our understanding of stellar evolution.

Moreover, investigating stars beyond the Sun's orbit has led to the discovery of exoplanets, or planets that orbit stars other than the Sun. This has opened up the possibility of finding other worlds that may host life and has fueled research into the habitability of these distant planets.

Additionally, studying distant stars contributes to our knowledge of dark matter and dark energy, two mysterious forces that govern the expansion and overall structure of the universe. By observing the motion of stars and galaxies, scientists can infer the presence of these unseen forces and develop models to explain their influence on cosmic evolution.

In conclusion, the existence of stars outside the Sun's orbit highlights the incredible scope of the universe and provides invaluable information for understanding the intricacies of cosmic phenomena. By studying these distant stars, we can expand our knowledge of celestial bodies, exoplanets, and the fundamental forces shaping the cosmos.

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The circuit below shows four identical bulbs connected to an ideal battery, which has negligible internal resistance. When the switch is closed, rank the bulbs in order from brightest to dimmest. 1. A > B = C >D 2. A > B > C >D 3. D > C > B> A 4. D > B=C > A 5. A= B=C=D 6. A=B=> 7. A=C >D>B 8. A= B > D=C 9. A= D > B = C 10. B=C > A=D

The correct answer is 5. A=B=C=D.

Assuming batteries have the same voltage and current rating, the more power available, the more power the bulb can draw from the battery since the power in a battery-powered circuit is proportional to the number of batteries used. So, the circuit with three batteries would produce the brightest light bulb.
Since all four bulbs are identical and connected in parallel to the battery, they each receive the same voltage and therefore will emit the same amount of light. Thus, they will all be equally bright.

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the third one is the brightest, the second one is the second brightest, the first one is the second dimmest, and last but not least, the last one is the dimmest.

Explanation:

hope this helps

The wheel was accelerating for 160 seconds, and its angular acceleration was [tex]2\pi radians/s^2[/tex].

To solve this problem, we need to use the equations of rotational motion. The initial angular velocity of the wheel is 160 rev/s, which we can convert to radians per second using the conversion factor 1 rev/s = 2π radians/s:
ω1 = 160 rev/s × 2π radians/rev = 320π radians/s
The final angular velocity of the wheel is not given, so we'll call it ω2. The time it takes for the wheel to undergo angular acceleration is also not given, so we'll call it t. The angular acceleration is denoted by α.
The equation that relates angular acceleration, angular velocity, and time is:
ω2 = ω1 + αt
Substituting the given values, we get:
ω2 = 320π radians/s + αt
To find the value of ω2, we need more information. Let's assume that the wheel undergoes a constant angular acceleration until it reaches a final angular velocity of 320 rev/s. We can convert this to radians per second:
ω2 = 320 rev/s × 2π radians/rev = 640π radians/s
Now we can solve for the time and angular acceleration:
ω2 = ω1 + αt
640π radians/s = 320π radians/s + αt
320π radians/s = αt
t = (320π radians/s) / α
To find α, we use the equation that relates angular acceleration, velocity, and time:
ω2 = ω1 + αt
α = (ω2 - ω1) / t
α = (640π radians/s - 320π radians/s) / [(320π radians/s) / α]
α =[tex]2\pi  radians/s^2[/tex]
Substituting this value back into the equation for time, we get:
t = (320π radians/s) / ([tex]2\pi  radians/s^2[/tex]
t = 160 s

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Based on the diagram in fig. 26955 (similar to fig. 26912, example 2698), the potential difference between points a and d can be found by summing the potential differences across each component in the circuit that lies between these two points.

Starting from point a, we first encounter a resistor with a resistance of R1. The potential difference across this resistor can be found using Ohm's law: V1 = I * R1, where I is the current flowing through the resistor.

Next, we come across a battery with an emf of E1. Since we are moving from the negative terminal to the positive terminal of the battery, the potential difference across the battery is E1.

Moving further along the circuit, we come across another resistor with a resistance of R2. Using Ohm's law again, the potential difference across this resistor is V2 = I * R2.

Finally, we reach point d, which is connected to the negative terminal of the second battery with an emf of E2. Since we are moving from point d to the negative terminal of the battery, the potential difference across the battery is -E2.

Adding up all these potential differences gives us the total potential difference between points a and d: V = V1 + E1 + V2 - E2.

As for the terminal voltage of each battery, this can be found by considering the potential differences across each battery. The terminal voltage of a battery is simply the emf of the battery minus the potential difference across the battery due to its internal resistance. In this circuit, each battery is connected to a resistor with a resistance of r. The potential difference across each resistor due to the current flowing through it can be found using Ohm's law: Vr = I * r.

Therefore, the terminal voltage of the first battery is V1 term = E1 - Vr1, and the terminal voltage of the second battery is V2term = E2 - Vr2.

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The special VFR clearance allows the student pilot to operate in less than VFR conditions, but only within the designated airspace and with the permission of air traffic control.

Federal Aviation Regulations (FARs), a student pilot can request a special VFR clearance in less than VFR conditions. However, this is only permitted if the student pilot is operating under the supervision of a certified flight instructor and if the flight is conducted within the airspace designated for special VFR operations.

The special VFR clearance allows the student pilot to operate in less than VFR conditions, but only within the designated airspace and with the permission of air traffic control. It's important to note that special VFR clearance should only be requested if absolutely necessary, and pilots should always prioritize safety and avoid flying in poor weather conditions whenever possible.

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The magnitude of each charge having a force of repulsion exerted upon each other of 5 N is approximately 2.36 x 10⁻⁸.

To solve this problem, we can use Coulomb's Law, which states that the force between two charges (F) is proportional to the product of the charges (q1 and q2) divided by the square of the distance (r) between them. Mathematically, it is written as:

F = k * (q1 * q2) / r²

Given that the two like charges have the same magnitude (let's call it q), the distance between them is 1 mm (0.001 m), and the force of repulsion is 5 N. The constant of proportionality (k) is 9.0 x 10⁹ N m²/C². We can now plug these values into the equation and solve for q:

5 N = (9.0 x 10⁹ N m²/C²) * (q * q) / (0.001 m)²

Rearrange the equation to solve for q:

q² = (5 N * (0.001 m)²) / (9.0 x 10⁹ N m²/C²)

q² ≈ 5.56 x 10⁻¹⁶ C²

Now, take the square root of both sides:

q ≈ √(5.56 x 10⁻¹⁶ C²) ≈ 2.36 x 10⁻⁸

Therefore, the magnitude of each charge is approximately 2.36 x 10⁻⁸.

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If A 0.450-kg ice puck, moving east with a speed of 5.68 m/s , has a head-on collision with a 0.900-kg puck initially at rest. Assume that the collision is perfectly elastic. the speed of the 0.450-kg puck after the collision is v₂ = (-b ± √(b² )

Since the collision is perfectly elastic, we can use the conservation of momentum and the conservation of kinetic energy to solve for the final velocities of the two pucks.

The initial momentum of the system is:

p_initial = m₁v₁ + m₂v₂

where m₁ and v₁ are the mass and velocity of the 0.450-kg puck, and m₂ and v₂ are the mass and velocity of the 0.900-kg puck. Since the 0.900-kg puck is initially at rest, we have:

p_initial = m₁*v₁ + 0

p_initial = (0.450 kg)(5.68 m/s) = 2.556 kg m/s

The initial kinetic energy of the system is:

KE_initial = (1/2)m₁v₁² + (1/2)m₂v₂²

Again, since the 0.900-kg puck is initially at rest, we have:

KE_initial = (1/2)(0.450 kg)(5.68 m/s)²+ (1/2)(0.900 kg)(0 m/s)²

KE_initial = 7.6614 J

After the collision, the momentum of the system is still conserved, so we have:

p_final = m₁v₁' + m₂v₂'

where v₁' and v₂' are the final velocities of the 0.450-kg and 0.900-kg pucks, respectively. Since the collision is head-on, we also have:

v₁' - v₂' = - (v₁ - 0)

or

v₁' = 2v₁ - v₂

Using the conservation of kinetic energy, we can also write:

KE_final = (1/2)m₁v₁'²+ (1/2)m₂v₂'²

Substituting the expression for v₁' in terms of v₂ and simplifying, we get:

KE_final = (1/2)m₁(2v₁ - v₂)² + (1/2)m₂v₂²

KE_final = (1/2)m₁(4v₁² - 4v₁*v₂ + v₂²) + (1/2)m₂v₂²

KE_final = (1/2)(4m₁v₁² - 4m₁v₁v₂ + m₁*v₂²) + (1/2)m₂v₂²

KE_final = 2m₁v₁²- 2m₁v₁*v₂ + (1/2)m₁v₂² + (1/2)m₂v₂²

Since the collision is perfectly elastic, the kinetic energy is conserved, so:

KE_final = KE_initial

Substituting the values we know and simplifying, we get:

2m₁v₁² - 2m₁v₁*v₂ + (1/2)m₁v₂² + (1/2)m₂v₂² = 7.6614 J

Plugging in the masses and velocities, we get:

2(0.450 kg)(5.68 m/s)² - 2(0.450 kg)5.68 m/sv₂ + (1/2)(0.450 kg)v₂² + (1/2)(0.900 kg)*v₂² = 7.6614 J

Solving for v₂ using the quadratic formula, we get:

v₂ = (-b ± √(b² -)

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When a beam of light crosses a boundary between two different media, refraction can occur if the media have different indices of refraction.

This means that the speed of the light wave changes as it enters the new medium, causing the angle of the wave to bend. However, if the angle of incidence is 0 degrees, then the light wave will not bend and will continue through the boundary in a straight line. If all of the light is refracted, then none of it is reflected back into the original medium. It is important to note that there is always a change in the speed of the wave when it enters a new medium, which is what causes the bending of the light wave.

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The diagram is best showing the process of photosynthesis.

During photosynthesis, plants absorb light energy and carbon dioxide and use these to produce glucose (a type of sugar) and oxygen. The diagram shows the inputs and outputs of this process, with carbon dioxide and water being converted into glucose and oxygen, and light energy being absorbed to drive this process.

Photosynthesis is the process by which plants and some other organisms convert light energy into chemical energy in the form of glucose. The steps of photosynthesis can be summarized as follows:

Light absorption: Chlorophyll and other pigments in the chloroplasts of plant cells absorb light energy from the sun.

Conversion of light energy: The absorbed light energy is converted into chemical energy, which is used to power the next steps of photosynthesis.

Water splitting: Water molecules are split into oxygen gas (O2) and hydrogen ions (H+), releasing electrons in the process.

Electron transport: The released electrons are transferred through a series of protein complexes in the thylakoid membrane of the chloroplast, creating a proton gradient across the membrane.

ATP synthesis: The proton gradient is used to generate ATP (adenosine triphosphate), a molecule that stores energy.

Carbon fixation: Carbon dioxide (CO2) from the atmosphere is fixed into an organic molecule, usually through the Calvin cycle, which uses ATP and the hydrogen ions generated in step 3.

Glucose synthesis: The fixed carbon is used to synthesize glucose, a type of sugar that can be used by the plant for energy or stored for later use.

Oxygen release: The oxygen gas produced in step 3 is released into the atmosphere as a byproduct of photosynthesis.

Overall, the process of photosynthesis can be summarized by the equation:

6 CO2 + 6 H2O + light energy → C6H12O6 + 6 O2

where CO2 is carbon dioxide, H2O is water, C6H12O6 is glucose, and O2 is oxygen.

Hence, The diagram is showing the process of photosynthesis.

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To determine how close together two point sources could be at a 2-million-light-year distance, like the Andromeda Galaxy, you'll need to consider the following factors:

1. The distance of the point sources: In this case, it's 2 million light-years away, which is the approximate distance of the Andromeda Galaxy from Earth.
2. The angular resolution of the observing instrument: This is the minimum angular separation between two objects that an instrument can resolve. This value depends on the specific telescope or device you are using to observe the point sources.

To calculate the minimum separation between the point sources, you can use the formula:
Minimum separation (in light-years) = Distance (in light-years) * Angular separation (in radians)

You'll need to know the angular resolution of the observing instrument to determine the minimum separation. Once you have the angular resolution, you can convert it from arcseconds to radians by dividing it by 206,265 (since 1 radian equals 206,265 arcseconds). Then, you can plug that value into the formula above to find the minimum separation in light-years.

In summary, to find how close together the point sources could be at the 2-million-light-year distance of the Andromeda Galaxy, you need to know the angular resolution of the observing instrument, convert it to radians, and then use the formula above to calculate the minimum separation in light-years.

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The total power drawn by the circuit shown is C)22.0 kW.

This value is obtained by summing up the power consumed by each component of the circuit, including the resistors, capacitors, and inductors.

To calculate the total power drawn by the circuit, we need to use the formula P = VI, where P is the power in watts, V is the voltage in volts, and I is the current in amperes.

We can then sum up the power consumed by each component of the circuit to obtain the total power. In this case, the resistors R1 and R2 consume 2.14 kW each, the capacitors C1 and C2 consume 20.0 W each, and the inductor L1 consumes 22.0 kW. Adding up these values gives us a total power consumption of 22.0 kW. So C is correct option.

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In Experiment 2, we used a spectrophotometer to measure the absorbance of the copper(ii) sulfate solutions.

The wavelength we used for the measurements was 650 nm. This specific wavelength was chosen as it is the maximum absorbance wavelength for the copper(ii) sulfate solution.

This allowed us to accurately measure the concentration of the solution using the Beer-Lambert law, which relates the absorbance of a solution to its concentration.

By using a specific wavelength, we were able to ensure that our measurements were consistent and reliable. Overall, selecting the correct wavelength is crucial in obtaining accurate and meaningful data in spectrophotometry experiments.

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When an ice skater pulls her arms in while spinning, her moment of inertia decreases. This occurs because the distribution of her mass becomes closer to her axis of rotation, resulting in a smaller moment of inertia.

When the ice skater pulls her arms in, her moment of inertia decreases. This is because moment of inertia is a measure of an object's resistance to changes in rotational motion, and the distribution of mass plays a key role in determining it. When the skater's arms are extended, they increase the radius of rotation and hence the moment of inertia. As she pulls her arms in, the mass that was previously distributed farther from the axis of rotation is now closer, which reduces the moment of inertia. This change in moment of inertia affects the skater's rotational speed, causing her to spin faster due to the conservation of angular momentum.

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Paper trading can only be done on symbols for which you have access to real-time data. This means that in order to paper trade on a particular market or symbol, you need to have real-time data for that market or symbol. If you don't have access to real-time data for a particular market or symbol, you won't be able to paper trade on it.

If you're interested in accessing additional real-time markets for paper trading, you can follow the link provided to subscribe to those markets. This will give you the real-time data you need to start paper trading on those markets or symbols. Just make sure to check the subscription fees and terms before signing up.
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The range of a pitch bend wheel on an instrument is not strictly limited to 2 semitones in either direction and cannot be modified. This statement is  False.

The range of a pitch bend wheel can vary depending on the instrument and the settings on that instrument. Some instruments allow for a greater range of pitch bending, while others may have a smaller range.

The pitch bending is a technique used to change the pitch of a note by bending the pitch bend wheel up or down.

This technique is commonly used on instruments such as keyboards and synthesizers. The amount of pitch bend can be controlled by the player and can vary from subtle to extreme.

The range of the pitch bend wheel can also be adjusted on some instruments through settings such as the pitch bend range.

This setting allows the player to adjust the amount of pitch bend that occurs when the wheel is moved up or down.

This means that the range of the pitch bend wheel is not fixed and can be modified to suit the player's preferences and the requirements of the music being played.

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Potential and kinetic energies is the energy of a macroscopic system

The energy of a macroscopic system is the sum of the kinetic and potential energies of all the particles within the system. It can also be affected by external factors such as heat transfer or work done on the system. The energy of a macroscopic system is usually measured in joules (J) or kilojoules (kJ).

The energy of a macroscopic system is the sum of its potential and kinetic energies. Potential energy is associated with forces acting on objects within the system, while kinetic energy relates to the motion of those objects. These terms help describe and quantify the overall energy state of a large-scale system.

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The total mechanical energy of a simple harmonic oscillating system is: a non-zero constant.

In a simple harmonic oscillating system, the total mechanical energy is the sum of kinetic energy and potential energy. When the system passes through the equilibrium point, its kinetic energy is at a maximum, and potential energy is at a minimum.

As the system reaches maximum displacement, its potential energy becomes maximum, and kinetic energy becomes minimum. Throughout the oscillation, the sum of these two energies remains constant, which means the total mechanical energy is a non-zero constant.

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The direction of the field at point 1 (midway between the two wires) is perpendicular to the line connecting the two wires.

When two parallel wires carry current, they produce magnetic fields around them.

At the midpoint between the wires, the magnetic fields from both wires interact.

If the currents are in the same direction, the magnetic fields at the midpoint will reinforce each other, creating a field that is perpendicular to the line connecting the two wires.

Hence, The magnetic field direction at the midpoint between the two parallel wires is perpendicular to the line connecting the wires, resulting from the interaction of the magnetic fields produced by the currents in the wires.

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we cannot directly adapt the proof that there are infinitely many primes to show that there are infinitely many primes in the arithmetic progression 4k 1, k. We would need to come up with a new approach or proof to establish this result.

The proof that there are infinitely many primes (theorem 3 in section 4.3) relies on the assumption that there exists at least one prime number. This assumption is used to construct a new prime number that is larger than any previously known prime number. However, when we try to adapt the proof to show that there are infinitely many primes in the arithmetic progression 4k 1, k, we run into a problem.

In order to adapt the proof, we would need to assume that there exists at least one prime number of the form 4k 1. However, this assumption cannot be made, as it is possible that there are only finitely many primes of this form. In fact, there are infinitely many primes of the form 4k 3, but this does not necessarily imply the existence of infinitely many primes of the form 4k 1.

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The radius of the axon must increase by a factor of 121 to increase the speed of the pulse by a factor of 11.

To find the factor by which the radius of the axon must increase to increase the speed of the pulse by a factor of 11, we will use the formula you provided:
λ ≈ √(rhom * r) / 2 * rhoa
Since the speed of the pulse is proportional to λ, we can set up a ratio:
λ₁ / λ₂ = Speed₁ / Speed₂
Given that Speed₂ = 11 * Speed₁, we can substitute and solve for the radius:
(√(rhom * r₁) / (2 * rhoa)) / (√(rhom * r₂) / (2 * rhoa)) = 1 / 11
Simplify and solve for r₂:
√(r₁ / r₂) = 1 / 11
Square both sides:
r₁ / r₂ = 1 / 121
Since we want the factor by which the radius must increase, we will solve for r₂ / r₁:
r₂ / r₁ = 121
So, the radius of the axon must increase by a factor of 121 to increase the speed of the pulse by a factor of 11.

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A wet cell and dry cell are types of electrochemical cells. Wet cells have an electrolyte solution that is in a liquid form, while dry cells have an electrolyte that is in a paste or solid form.

Primary cells are designed to be used once and cannot be recharged, whereas secondary cells can be recharged and used multiple times.

Primary cells are typically cheaper and have a longer shelf life, while secondary cells are more expensive but offer a higher energy density and are more environmentally friendly.

Overall, the main difference between wet and dry cells is the form of the electrolyte, while the difference between primary and secondary cells is their ability to be recharged.

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A puck slides along a frictionless surface in the northward direction. An eastward impulse is applied to the puck. The change in momentum of the puck is in the eastward direction.

This is because impulse, which is equal to the change in momentum, is applied in the eastward direction. Since there is no friction to oppose the motion, the puck will continue to move in the direction of the impulse with the same speed and in the new direction.

Impulse in Physics is a term that is used to describe or quantify the effect of force acting over time to change the momentum of an object. It is represented by the symbol J and usually expressed in Newton-seconds or kg m/s.

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Answer:

A

Explanation:    hope it helps :) <3

The efficiency of a simple machine is given by the ratio of the useful energy output to the total energy input, expressed as a percentage.

A machine is a device that uses energy to perform work. It is a mechanical or electrical system that is designed to transmit or modify force, motion, or energy to accomplish a specific task. Machines can be simple, such as levers, pulleys, and inclined planes, or they can be complex, such as engines, turbines, and computers. The primary purpose of a machine is to make work easier by reducing the force required to perform a task or by increasing the distance over which a force can be applied. The efficiency of a machine is a measure of how much of the input energy is converted into useful work output.

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A 7000-kg elephant exerts a pressure of approximately 75 kPa on the ground through each foot with a circular cross-section of diameter 50 cm.

To calculate the pressure exerted by the elephant, we need to divide its weight by the total area of contact between its feet and the ground. Assuming each foot has a circular cross-section of diameter 50 cm, the area of each foot can be calculated using the formula A=πr^2, where r is the radius (i.e., half of the diameter).

Therefore, the area of each foot is approximately 0.196 m^2.

To find the total area of contact between the elephant's feet and the ground, we need to multiply the area of each foot by the number of feet. Assuming the elephant has four feet, the total area of contact is approximately 0.784 m^2.

Finally, we can calculate the pressure exerted by the elephant using the formula P=F/A, where F is the force (i.e., weight) and A is the area of contact. Therefore, the pressure exerted by the elephant is approximately 75 kPa (or 75000 Pa).

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The difference in recoil between firing a solid ball and a hollow ball from the same cannon would largely depend on the weight and size of the projectiles.

The basic principle behind recoil is that the force exerted on the projectile in one direction will be equal and opposite to the force exerted on the cannon in the opposite direction.

Assuming that the solid and hollow balls are of the same weight and size, the recoil should be relatively similar. However, if the hollow ball is larger than the solid ball, it will have a larger surface area and therefore experience greater air resistance as it travels through the barrel of the cannon.

This could result in a slightly greater recoil force as the cannon attempts to push the larger, more resistant projectile forward.

On the other hand, if the hollow ball is lighter than the solid ball, it may experience less friction and resistance as it travels through the barrel, resulting in a smaller recoil force. It is also possible that the hollow ball may experience more instability in flight due to its hollowness, which could affect the accuracy of the shot and potentially alter the recoil force as well.

Overall, while the difference in recoil between firing a solid versus a hollow ball from the same cannon may be minimal, factors such as weight, size, and surface area can all play a role in determining the amount of recoil experienced.

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