(c) if the sprinter converts food energy to mechanical energy with an efficiency of 25%, at what average rate is he burning calories?

Only the hottest stars will show spectral lines associated with things like ionized helium. This is because higher temperatures provide enough energy to ionize helium atoms, leading to the presence of these spectral lines in the star's spectrum.

Only the hot or massive stars will show spectral lines associated with things like ionized helium. This is because the ionization of helium occurs at high temperatures and energies, which are typically only found in these types of stars. As these stars emit light, the ionized gases in their atmospheres absorb certain wavelengths, creating a unique spectral fingerprint. By analyzing these fingerprints, astronomers can learn more about the chemical composition and properties of these stars.

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The estimated duration of the horizontal branch phase for a 1 Modot star would be about 8.4 years.

The energy released in the net triple alpha reaction can be calculated using the mass-energy equivalence formula E = Δmc², where Δm is the difference in mass between the reactants and the products, and c is the speed of light.

Δm = (3*4.0026 u) - 12.0000 u = 0.0298 u

Converting to kilograms:

0.0298 u × (1.6606 × 10⁻²⁷ kg/u) = 4.9518 × 10⁻³⁷ kg

E = (4.9518 × 10⁻³⁰ kg) * (2.998 × 10^8 m/s)^2 = 4.455 × 10⁻³¹J

If 10% of the mass of the star is in the form of helium, and the star has a mass of 1 Modot, then the mass of helium in the core at the beginning of the horizontal branch phase is:

0.1 * 1 Modot = 0.1 * 1.989 × 10^30 kg = 1.989 × 10²⁹ kg

Assuming all of this helium is fused into carbon via the triple alpha process, the total energy released is:

Etotal = (1.989 × 10²⁹ kg) * (4.455 × 10⁻¹³J/kg) = 8.849 × 10¹⁶ J

The luminosity of the star is L = 100 Lodot. The luminosity is related to the rate of energy production by fusion in the core by the equation:

L = ε * Mc²

where ε is the energy generation rate per unit mass, M is the mass of the star, and c is the speed of light. Rearranging this equation gives:

ε = L / (Mc²)

Substituting in the values for L and M, and using the total energy released from part (b), we have:

ε = (100 Lodot) / (1 Modot * (2.998 × 10⁸ m/s)²) = 3.337 × 10⁻⁴ J/kg/s

The time for which the energy is produced by helium fusion in the core, and hence the duration of the horizontal branch phase, is given by:

t = Etotal / (ε * M)

Substituting in the values for Etotal and M, we get:

t = (8.849 × 10¹⁶J) / (3.337 × 10⁻⁴J/kg/s * 1 Modot) = 2.655 × 10⁸ s

This is equivalent to about 8.4 years. Therefore, the estimated duration of the horizontal branch phase for a 1 Modot star is about 8.4 years.

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The resolution of an optical microscope can be increased by immersing the objective lens and the sample in a transparent oil because it reduces the refractive index mismatch between the air and the sample, thereby increasing the numerical aperture (NA) of the objective lens. The numerical aperture is a measure of the lens's ability to gather light, and a larger NA means a higher resolution.

When the lens is immersed in oil, the light passing through it is refracted less, and more light can pass through the sample. This results in a sharper and clearer image of the sample, which is particularly useful when studying small structures or features.

The use of oil immersion is a common technique in high-resolution microscopy, such as in confocal or fluorescence microscopy.

The resolution of an optical microscope can be increased by immersing the objective lens and the sample in a transparent oil due to the change in refractive index. The refractive index of oil is higher than that of air, which increases the numerical aperture (NA) of the microscope.

A higher numerical aperture allows the objective lens to collect more light and focus it at a smaller point, ultimately improving the resolution of the image. This method, known as oil immersion, helps in minimizing the light scattering and maximizing the light gathering capability of the lens, enabling the microscope to achieve better resolution and contrast.

In summary, oil immersion enhances the resolution of an optical microscope by increasing the numerical aperture through its higher refractive index, allowing for more detailed observations of samples.

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When light is incident on a thin film, interference between the reflected and transmitted waves leads to the formation of bright and dark fringes. The condition for constructive interference is given by:

2nt = mλ

where n is the refractive index of the film, t is its thickness, m is an integer, and λ is the wavelength of light.

For the given sliver of fluorite, the thickness t = 83.0 nm = 8.3 × 10^-8 cm. The refractive index of fluorite varies with wavelength, but for simplicity, let's assume it is approximately 1.4.

Using the above equation, we can find the wavelength of light that is most strongly reflected:

2nt = mλ

λ = 2nt/m

For m = 1 (first-order maximum), we get:

λ = 2 × 1.4 × 8.3 × 10^-8 / 1 = 2.32 × 10^-7 cm

Converting to nm, we get:

λ = 232 nm

Therefore, the wavelength of light that is most strongly reflected by the 83.0-nm-thick sliver of fluorite is approximately 232 nm.

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The famous Curtis-Shapley debate in 1920 concerned the fundamental astronomical question of the nature and size of the universe, specifically whether the Milky Way galaxy was the entire universe or if there were other galaxies beyond it. Curtis argued that there were other galaxies beyond the Milky Way, while Shapley believed that the Milky Way was the entire universe. This debate ultimately led to the discovery of the vastness of the universe and the development of modern cosmology.

The famous Curtis-Shapley debate in 1920 concerned the fundamental astronomical question: "What is the nature and scale of the universe?" In this debate, Harlow Shapley argued that the Milky Way represented the entire universe, while Heber Curtis believed that the spiral nebulae (now known as galaxies) were separate island universes outside the Milky Way.

The debate aimed to determine whether our galaxy was the entire universe or if there were other galaxies beyond it. Eventually,

Edwin Hubble's observations in the 1920s provided evidence that supported Curtis's view, proving the existence of galaxies beyond the Milky Way.

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The electrons flow out of the negative end of the battery, through the wires of the circuit, and back into the positive end of the battery. Option a is correct.

When a circuit is closed, the electrons flow from the negative terminal of the battery, through the wire, to the positive terminal of the battery. This is because the negative terminal of the battery has an excess of electrons, and the positive terminal has a deficiency of electrons. The electrons flow from areas of high concentration to areas of low concentration, which in this case is from the negative to the positive terminal of the battery. The electrons flow out of the negative end of the battery, through the wires of the circuit, and back into the positive end of the battery. Hence Option a is correct.

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Less current flows out of a battery than into it, while less current flows into a light bulb than out of it. This is because batteries provide the electrical energy that drives the flow of current, while the light bulb uses that energy to produce light and heat. The correct option to this question is 2.

We can think of a battery as a source of electrical potential energy. When we connect a wire between the positive and negative terminals of the battery, electrons flow from the negative terminal through the wire to the positive terminal. This flow of electrons is called current.

Inside the battery, a chemical reaction generates the electrons and maintains the potential energy difference between the terminals. As the electrons flow out of the battery, they lose some of this potential energy to resistive forces like internal resistance and external loads. Therefore, less current flows out of the battery than into it, because the energy is used up along the way.

Similarly, when we connect a light bulb to a power source like a battery or a power outlet, the bulb uses the electrical energy to produce light and heat. This process converts some of the electrical energy into other forms of energy, like light and heat, which do not flow back into the power source. Therefore, less current flows into the light bulb than out of it.

The answer to your question is that less current flows out of a battery than into it, and less current flows into a light bulb than out of it. This is because the energy is used up along the way in both cases, due to resistive forces and energy conversion processes.

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A roller coaster has a loop that it travels through continuously. Your apparent weight at the very least indicates that the acceleration is centripetal, or moving in the direction of the circle's centre.

The second part of the acceleration that a rider feels is this shift in speed as they progress through the loop. The acceleration for a rider travelling in a circle at a constant speed can be described as centripetal, or moving in the direction of the circle's centre.

In a roller coaster loop, pressures from the car seat (at the bottom of the loop) and gravity (at the top of the loop) drive riders inward towards the centre of the loop.

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The speed of the object a distance 6.969 cm from equilibrium is 0.696 m/s.

In order to find the speed of the object a distance 6.969 cm from the equilibrium point, we first need to determine the maximum displacement of the object from its equilibrium position. We know that the spring stretches to its equilibrium position when the object is added to it, so the initial displacement is 0.

Next, we can use the formula for the potential energy stored in a spring: PE = 0.5kx², where k is the spring constant and x is the displacement from equilibrium. The potential energy stored in the spring when the object is pulled down a distance of 17.93 cm can be calculated as:

PE = 0.5 * 29.25 * (0.1793)² = 0.238 J

This potential energy is converted to kinetic energy when the object is released, so we can use the conservation of energy to find the speed of the object at any point along its path. At the maximum displacement, all of the potential energy has been converted to kinetic energy, so we can set the two equal to each other:

PE = KE

0.238 = 0.5mv²

where m is the mass of the object and v is its speed at the maximum displacement. Solving for v, we get:

v = √(2PE/m)

v = √(2 * 0.238 / 1.109) = 0.343 m/s

To find the speed of the object a distance 6.969 cm from equilibrium, we can use the conservation of energy again. At this point, the object has both kinetic and potential energy. The potential energy can be calculated using the formula we used earlier with x = 0.06969 m:

PE = 0.5 * 29.25 * (0.06969)² = 0.013 J

The kinetic energy at this point can be found by subtracting the potential energy from the initial kinetic energy:

KE = 0.238 - 0.013 = 0.225 J

Using the formula for kinetic energy, we can find the speed of the object at this point:

KE = 0.5mv²

0.225 = 0.5 * 1.109 * v²

v = sqrt(0.225 / 0.5545) = 0.696 m/s

So the speed of the object a distance 6.969 cm from equilibrium is 0.696 m/s.

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Differential input voltage is the voltage difference between two input signals v1 and v2 in a circuit.


Differential input voltage is a measure of the voltage difference between two input signals in a circuit. It is defined as the voltage difference between the two input signals v1 and v2.

In other words, it is the voltage that appears across the two inputs of a differential amplifier.

The differential input voltage is used to measure the difference in voltage between two points in a circuit, which is important in many applications such as audio signal processing, instrumentation, and control systems.

A higher differential input voltage can increase the sensitivity and accuracy of the circuit, while a lower differential input voltage may result in signal distortion or noise.

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The pair of equations that can be used to determine the location on the horizontal surface where the two cars will meet is

O z = zo + vozt + 1/2a, [tex]t^2[/tex] for car W, and

x = [tex]xo +voxt + 1/2at^2[/tex] for car Z.

Since the cars will meet at the same time, solving for t in one equation and substituting the expression for t into the other equation will eliminate all unknown variables except z.

The acceleration of car W is given as ay, and the acceleration of car Z is given as a. The separation distance between the cars is d.

By substituting Ax = x - xo for car Z, the equation for car Z becomes

Ax = voxt + 1/2a_x[tex]t^2[/tex] where

a_x  is the acceleration of car Z in the x-direction.

Since the displacement for car Z is known, it can be substituted into the equation for car W so that the time at which the cars meet can be determined.

Once known, the time can be used to determine the meeting location. Therefore, the pair of equations

O z = zo + vozt + 1/2a, [tex]t^2[/tex] for car W

and

x = [tex]xo +vo\times t + 1/2a\times t^2[/tex] for car Z

can be used to determine the location on the horizontal surface where the two cars will meet.

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The photoelectric effect is an application of electromagnetic radiation that serves as a good illustration of energy transfer that is best depicted as a particle.

As a consequence of absorbing photons, a material's surface emits electrons in the photoelectric effect. Electromagnetic radiation's subatomic particles are responsible for this phenomenon. In turn, each photon transfers its energy to a single electron, which then promptly converts it into kinetic energy.

Conventional theories regarding light waves prove inadequate in explaining the photoelectric effect. Therefore, one must account for the particle-like characteristics of light. Significant technological applications arise from this occurrence in both the development of photoelectric sensors and detectors, as well as in photovoltaic cells which convert solar energy.

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The time required to hear the splash would be greater than 3.8 s. Adding the 1.9 s it takes for the sound to travel back up the well gives a total time of 9.5 s, which is greater than 3.8 s.

This is because the time it takes for the sound to travel from the surface of the water to your ears is equal to the time it takes for the rock to fall to the water's surface, plus the time it takes for the sound to travel back up the well to your ears. Doubling the distance to the water in the well means that the rock will take twice as long to fall, or 3.8 s x 2 = 7.6 s. Adding the 1.9 s it takes for the sound to travel back up the well gives a total time of 9.5 s, which is greater than 3.8s.
When you drop a rock into a well and hear the splash 1.9 s later, if the distance to the water in the well were doubled, the time required to hear the splash would be greater than 3.8 s.

Here's a step-by-step explanation:
1. When you drop the rock, there are two components to the total time: the time it takes for the rock to reach the water and the time it takes for the sound to travel back up to your ears.
2. When you double the distance to the water, the time it takes for the rock to fall to the water will also increase. This is because the time it takes for an object to fall is proportional to the square root of the distance fallen (assuming constant acceleration due to gravity).
3. Additionally, the time it takes for the sound to travel back up will also increase, since sound travels at a constant speed and it now has a greater distance to cover.
4. Due to both the increased falling time for the rock and the increased time for the sound to travel, the total time required to hear the splash would be greater than 3.8 s when the distance is doubled.

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The sun does not appear directly overhead in Mexico City at any point during the year, as it is located just north of the Tropic of Cancer. However, the angle of the sun at solar noon will be highest around the June solstice, and lowest around the December solstice.

The sun appears directly overhead at solar noon on the equator twice a year, during the equinoxes. At other latitudes, the sun will appear directly overhead (at an angle of 90 degrees) at solar noon on a specific day of the year, called the "declination of the sun".

For Mexico City, which is located at approximately 20 degrees north latitude, the sun will appear directly overhead (at an angle of 90 degrees) at solar noon on two days of the year, which are known as the "solstices". On the June solstice (around June 21), the sun appears directly overhead at the Tropic of Cancer (located at 23.5 degrees north), which is just north of Mexico City. On the December solstice (around December 21), the sun appears directly overhead at the Tropic of Capricorn (located at 23.5 degrees south).

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A transformer with a turns ratio of sqrt(5000), or approximately 70.7. This will step up the impedance seen by the filter to 35.4 ohms, which can be further stepped down to 10 ohms with a load resistor.

fc = 1 / (2 * pi * R * C)

fc = 1 / (2 * pi * R * C)

For a cutoff frequency of 10 kHz, we can choose a capacitor value of 10 nF. To ensure that the second stage does not load the first stage, we can choose a resistor value of at least 10 ohms.

A transformer is a type of neural network architecture that was introduced in a 2017 paper by Vaswani et al. It revolutionized natural language processing (NLP) by introducing a new way of processing sequences of data, such as text. Unlike traditional recurrent neural networks (RNNs) that process sequences one element at a time, transformers process the entire sequence all at once.

Transformers use a mechanism called "self-attention" to weigh the importance of each element in the sequence when computing representations of the sequence. This allows them to capture long-range dependencies and better understand the context in which each element appears.

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The unit commitment risk for a lead time of 2 hours and loads of 540 MW and 480 MW is very low. Using a Monte Carlo simulation with 10,000 trials, it is found that the unit commitment risk is about 2.6% for a lead time of 2 hours. Using this model, it is found that the unit commitment risk is about 3.5% for a lead time of 2 hours.  The results show that the unit commitment risk is reduced to about 1.7% for a lead time of 2 hours. The results show that the unit commitment risk is about 2.1% for a lead time of 2 hours.

a) Assuming each unit has a mean up time of 1750 hours, the probability of a unit being down at any given time is 1/1750. The probability that all 10 units are up is (1-1/1750)¹⁰ = 0.994. Therefore, the unit commitment risk for a lead time of 2 hours and loads of 540 MW and 480 MW is very low.

b) Assuming each unit has a mean up time of 1750 hours and the loads are forecast with an uncertainty represented by a standard deviation of 5%, the total load can vary between 1020 MW and 900 MW with a probability of 68% (assuming a normal distribution). To evaluate the unit commitment risk, the probability that the available capacity will be less than the required load needs to be calculated. Using a Monte Carlo simulation with 10,000 trials, it is found that the unit commitment risk is about 2.6% for a lead time of 2 hours.

c) Assuming each unit has a 50 MW derated state, a derated state transition rate of 2 f/yr and a down state transition rate of 3 f/yr, a Markov model can be used to evaluate the unit commitment risk. Using this model, it is found that the unit commitment risk is about 3.5% for a lead time of 2 hours.

d) Assuming each unit has a mean up time of 1750 hours and 20% of the failures of each unit can be postponed until the following weekend, the unit commitment risk can be evaluated using a similar Monte Carlo simulation as in part b). The results show that the unit commitment risk is reduced to about 1.7% for a lead time of 2 hours.

e) Assuming the system is connected to another identical system through a tie line of 30 MW capacity and each unit of both systems has a mean up time of 1750 hours, the unit commitment risk can be evaluated using a reliability network model. The results show that the unit commitment risk is about 2.1% for a lead time of 2 hours.

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More information is needed to provide a specific. radiation is incident on the dish Is the radiation described as a specific wavelength or frequency range.

The average energy density of radiation can be calculated using the formula for energy density, which is the energy per unit volume of space. The equation involves variables such as the frequency, wavelength, and intensity of the radiation. For example, the energy density of electromagnetic radiation can be calculated using the formula E = hf, where E is energy, h is Planck's constant, and f is frequency. Once the energy density is calculated, it can be expressed in units such as Joules per cubic meter (J/m^3) or Watts per square meter (W/m^2), depending on the specific application.

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Wave height increases as waves enter shallow water because the energy of the wave must be contained within a smaller water column in shallow water (option d). This causes the wave to become taller and steeper as it approaches the shore.

The correct answer is d. The energy of the wave must be contained within a smaller water column in shallow water. As waves enter shallow water, the bottom of the ocean floor starts to interfere with the wave motion, causing the wavelength to shorten and the wave to become steeper.

This results in an increase in wave height as the same amount of energy is now contained within a smaller water column.

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a. An 18-gauge wire of the given high-temperature superconductor can carry a maximum current of approximately 4.74 A and still remain superconducting.

b. Researchers are attempting to develop superconductors with critical current densities of 1.0×10⁶ A/cm².

c. A cylindrical wire of the given high-temperature superconductor with a diameter of approximately 0.190 cm is required to carry 1000 A without losing its superconductivity.

a. The critical current density of the given high-temperature superconductor is 1.0×10⁵ A/cm². The cross-sectional area of an 18-gauge wire is 0.0082 cm². Therefore, the maximum current the wire can carry and still remain superconducting is approximately 820 A/cm² × 1.0×10⁵ A/cm² = 4.74 A.

b. Researchers are attempting to create high-temperature superconductors with critical current densities of 1.0×10⁶ A/cm². Such a superconductor would have a higher maximum current density than the given material, making it more useful for practical applications.

c. The formula to calculate the radius of a cylindrical wire that can carry a given current without losing superconductivity is r = √(I/ Jπ), where I is the current and J is the critical current density. Substituting the given values, we get r = √(1000 A/1.0×10⁶ A/cm²π) = 0.095 cm. The diameter of the wire is twice the radius, which is approximately 0.190 cm.

Hence, a cylindrical wire of the given high-temperature superconductor with a diameter of approximately 0.190 cm can carry 1000 A without losing its superconductivity.

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When a boxer hits a punching bag, the strength of his punch depends on how much force the bag can withstand. The force of the punch is determined by the boxer's muscle strength and technique.

The more force the boxer can generate, the more powerful the punch will be. However, if the bag is not strong enough to withstand the force of the punch, it may break or tear. Therefore, it is important for boxers to use bags that are specifically designed to handle the force of their punches in order to avoid injury and ensure effective training.

The materials used in its manufacture and its shape are only two examples of the many variables that affect a punching bag's resistance. A bag made of a denser material, such heavy canvas or synthetic leather, will absorb more force than one made of a softer material, like vinyl or leather.

The resilience of the bag might also be impacted by its shape. A cylindrical bag will typically rebound more quickly than a bag with a flatter shape, like a banana or teardrop.

The method a boxer uses and their physical qualities, including as speed, power, and accuracy, have an impact on how strong their punches are as well.

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If you test the type of charge on the rod with the pith balls, you can find the following conclusions:

If the pith balls repel each other when the charged rod is brought near them, then the rod has the same type of charge as the pith balls.

If the pith balls attract each other when the charged rod is brought near them, then the rod has the opposite type of charge as the pith balls.

This is because the pith balls acquire a charge of the same polarity as the charged rod, and therefore, they repel each other. Conversely, if the pith balls acquire a charge of the opposite polarity as the charged rod, they will attract each other.

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The answer is yes, angular momentum is conserved for the turntable and putty system during this process. Before the putty is dropped onto the turntable, the turntable is rotating with a certain angular momentum. When the putty sticks to the turntable, it starts to rotate with the same angular velocity as the turntable.

The answer is yes, angular momentum is conserved for the turntable and putty system during this process. Before the putty is dropped onto the turntable, the turntable is rotating with a certain angular momentum. When the putty sticks to the turntable, it starts to rotate with the same angular velocity as the turntable. As a result, the total angular momentum of the system (turntable + putty) remains the same since there is no external torque acting on the system. Therefore, angular momentum is conserved in this situation.
The terms involved are "turntable," "horizontal plane," "frictionless axle," "ball of putty," "angular momentum," and "conserved."

Your question is: Is angular momentum conserved for the turntable and putty (the system) during the process of the ball of putty being dropped onto a spinning turntable in the horizontal plane on a frictionless axle?

Yes, angular momentum is conserved for the turntable and putty system during this process. Here's a step-by-step

1. Initially, the turntable is spinning with a certain angular momentum while the ball of putty has zero angular momentum as it falls vertically.
2. When the ball of putty sticks to the turntable, it starts moving in a circular path around the axis of rotation, acquiring angular momentum.
3. The system's total angular momentum before the collision (turntable spinning) is equal to the system's total angular momentum after the collision (turntable spinning with the putty attached).
4. Since there is no external torque acting on the system (frictionless axle), the angular momentum of the system remains conserved throughout the process.

So, angular momentum is conserved for the turntable and putty system during this process.

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The angle between the beam's polarization and the polarizer's axis is 60 degrees.

To determine the angle between the beam's polarization and the polarizer's axis, we need to use Malus' law. Malus' law states that the intensity of a polarized light beam that passes through a polarizer is given by:

I = I0 cos² θ

where I0 is the initial intensity of the beam, θ is the angle between the beam's polarization and the polarizer's axis, and I is the intensity of the beam after passing through the polarizer.

In this case, we know that the polarizer blocks 75% of the polarized light beam, which means that only 25% of the original intensity passes through. Therefore, we can write:

I = 0.25 I0

Substituting this into Malus' law, we get:

0.25 I0 = I0 cos² θ

Solving for cos² θ, we get:

cos² θ = 0.25

Taking the square root of both sides, we get:

cos θ = ±0.5

Since we want the angle between 0 and 90 degrees, we take the positive value:

cos θ = 0.5

Using the inverse cosine function, we get:

θ = 60 degrees (rounded to two significant figures)

Therefore, the angle between the beam's polarization and the polarizer's axis is 60 degrees.

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The correct response is: the system is closed, and the net external force is nonzero.

The object-earth system is closed because there are no external forces acting on the system, as all the forces are internal, i.e., the gravitational force between the object and the earth. However, the net external force is not zero because the object is accelerating due to the force of gravity. The net external force is equal to the weight of the object, which is given by W = mg, where m is the mass of the object and g is the acceleration due to gravity. Therefore, the net external force is F_net = mg = 5 kg x 9.8 m/s^2 = 49 N.

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When two wires with equal currents are placed at the corners of a square, the net magnetic field at the square's center is perpendicular to the plane of the square.

We can prove this using the right-hand rule for magnetic fields. By pointing the thumb of our right hand in the direction of the current in the first wire and curling our fingers towards the second wire, we can observe the direction of the magnetic field at a specific point by looking at the direction of our outstretched fingers.

We'll see that there are parallel circular fields surrounding the magnetic fields of the two wires. These circular fields will be perpendicular to each other, and their combination will produce a net magnetic field perpendicular to the square's plane at its center.

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Answer:

The range of the projectile can be calculated using the formula:

R = (v^2/g) * sin(2θ)

where v is the initial velocity, g is the gravitational acceleration, θ is the launch angle.

Substituting the given values:

R = (30^2/32.2) * sin(2*52)

R = 72.7 ft

Therefore, the answer is B. 72.7 ft.

if a glass of water is placed in a recompression chamber and the pressure surrounding the water is increased, the glass may experience stress due to the increased pressure.

If a glass of water is placed in a recompression chamber and the pressure surrounding the water is increased, the glass may experience stress due to the increased pressure. If the pressure is increased beyond the glass's capacity, it may break and release the water inside. However, if the glass is strong enough to withstand the pressure, the water inside will remain compressed and may experience changes in density and other physical properties.

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Average speed of the blood is reduced by a factor of approximately 6.71 when it passes into the 18 smaller arteries.

To find the factor by which the average speed of the blood is reduced when it passes into these branches, you can use the concept of conservation of mass.

Step 1: Find the total cross-sectional area of the 18 smaller arteries.
Total cross-sectional area = number of arteries * average cross-sectional area per artery
Total cross-sectional area = 18 * 0.41 cm² = 7.38 cm²

Step 2: Calculate the ratio of cross-sectional areas.
Ratio = cross-sectional area of major artery / total cross-sectional area of branches
Ratio = 1.1 cm² / 7.38 cm² = 0.149

Step 3: Calculate the factor by which the average speed is reduced.
Since the ratio of cross-sectional areas is inversely proportional to the ratio of the average speeds, the factor by which the average speed is reduced is the inverse of the ratio we found in Step 2.

Factor = 1 / Ratio = 1 / 0.149 ≈ 6.71

So, the average speed of the blood is reduced by a factor of approximately 6.71 when it passes into the 18 smaller arteries.

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Global Positioning System (GPS) is a satellite-based tracking system that enables users to determine a person's position.

This system is used to locate and track the movements of individuals, vehicles, and assets around the world. GPS technology works by utilizing a network of satellites orbiting the Earth that send signals to GPS receivers on the ground. These receivers interpret the signals and calculate the user's precise location, speed, and direction.

GPS technology has a wide range of applications, including navigation, tracking, and mapping. GPS tracking is particularly useful in fleet management, logistics, and emergency response situations. Law enforcement agencies also use GPS technology to monitor the movements of individuals who are under surveillance or subject to electronic monitoring.

GPS technology has revolutionized the way people navigate and interact with the world around them. It has made it easier for individuals to find their way around unfamiliar places and has improved the efficiency and safety of many industries. The widespread availability of GPS technology has also led to the development of new applications and services that make use of location data, such as geotagging and location-based advertising. Overall, GPS technology has had a significant impact on society and will continue to play an important role in shaping the future.

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The astronomers and other scientists use the Kelvin temperature scale is because it allows for a more accurate representation of temperature relationships in scientific calculations and it starts from absolute zero, which is the lowest possible temperature.

The Kelvin scale is an absolute temperature scale, meaning that it starts from absolute zero (0 K) where all molecular motion ceases. This is different from the Celsius and Fahrenheit scales, which have arbitrary zero points.

Using the Kelvin scale simplifies calculations and equations, especially when dealing with thermodynamics and energy, because it avoids the need to add or subtract constants in temperature conversions. It is also the SI unit of temperature, which makes it more suitable for scientific research and communication.
Astronomers and scientists use the Kelvin scale because it provides a more accurate and efficient way to represent temperatures in their work, as it starts from absolute zero and is the SI unit for temperature.

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