how much energy can be obtained from conversion of 1.0gram of mass how much mass could this energy raise to a height of 0.25km above earth surface

Answers

Answer 1

The amount of mass that this energy could raise to a height of 0.25 km above the earth's surface is equivalent to 365,000 metric tons, which is a staggering amount of mass.

The amount of energy that can be obtained from the conversion of 1.0 gram of mass can be calculated using Einstein's famous equation E=mc^2, where E is the energy, m is the mass and c is the speed of light. Plugging in the values, we get E = (1.0 gram)(299792458 m/s)^2 = 8.99 x 10^13 joules.

To calculate the amount of mass that this energy could raise to a height of 0.25 km above the earth's surface, we need to use the equation for potential energy, PE = mgh, where m is the mass, g is the acceleration due to gravity (9.8 m/s^2) and h is the height. Rearranging the equation to solve for mass, we get m = PE/(gh).

Plugging in the values, we get m = (8.99 x 10^13 joules)/(9.8 m/s^2 x 0.25 km) = 3.65 x 10^11 grams or 365,000,000 kilograms.

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Related Questions

he standard free energy change for the conversion of glucose to glucose-6- phosphate by hexokinase is go’ = -16.6 kj/mol (t = 37 oc). what is the equilibrium constant for the hexokinase reaction?

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The equilibrium constant for the hexokinase reaction is approximately 7.042.

The relationship between standard free energy change (ΔG°), equilibrium constant (K) and the standard free energy change per mole of reaction (ΔG°/mol) is given by the following equation:

ΔG° = -RT lnK

where R is the gas constant (8.314 J/mol·K), T is the temperature in Kelvin, and ln is the natural logarithm.

Given ΔG° = -16.6 kJ/mol and T = 37°C = 310 K, we can solve for K:

ΔG° = -RT lnK

-16.6 kJ/mol = -(8.314 J/mol·K)(310 K) lnK

lnK = 1.951

K = e^(1.951)

K ≈ 7.042

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The equilibrium constant for the hexokinase reaction is approximately 2.46 x [tex]10^7[/tex].

The equilibrium constant, denoted as K, can be calculated from the standard free energy change using the following equation:

ΔG° = -RT ln(K)

where R is the gas constant and T is the temperature in Kelvin. At 37°C, which is 310 K, we have:

ΔG° = -16.6 kJ/mol

R = 8.314 J/(mol*K)

Converting the units of ΔG° to joules, we have:

ΔG° = -16,600 J/mol

Substituting the values into the equation and solving for K, we get:

K = [tex]e^{(-ΔG°/RT)[/tex] = [tex]e^{(-16600 J/mol / (8.314 J/(mol*K) * 310 K))[/tex]≈ 2.46 x [tex]10^7[/tex].

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An engineer entered into a written contract with an owner to serve in the essential position of on-site supervisor for construction of an office building. The day after signing the contract, the engineer was injured while bicycling and was rendered physically incapable of performing as the on-site supervisor. The engineer offered to serve as an off-site consultant for the same pay as originally agreed to by the parties.


Is the owner likely to prevail in an action against the engineer for damages resulting from his failure to perform under the contract?

Answers

The owner is likely to prevail in an action against the engineer for damages resulting from his failure to perform under the contract due to his physical incapacity caused by a bicycling injury.

In general, the principle of contract law is that parties are expected to fulfill their contractual obligations. However, there are certain circumstances where performance may be excused or modified. In this case, the engineer's physical incapacity resulting from the bicycling injury prevents him from serving as the on-site supervisor as agreed upon in the contract.

While the engineer offered to serve as an off-site consultant for the same pay, this may not be sufficient to discharge his obligations under the original contract. The essential position of on-site supervisor requires physical presence and direct supervision, which the engineer is unable to provide due to his injury. If the contract explicitly specifies the engineer's role as the on-site supervisor, the owner may have a strong argument that the engineer's failure to perform constitutes a breach of contract.

However, the outcome may also depend on the specific terms of the contract and any provisions related to unforeseen circumstances or force majeure events. If the contract includes provisions for situations where the engineer becomes physically incapable of performing his duties, or if there is a provision allowing for the assignment or substitution of the engineer's role, it could potentially protect the engineer from liability. Ultimately, the determination of whether the owner will prevail in an action against the engineer would require a careful examination of the contract terms and the applicable laws in the jurisdiction where the contract was formed.

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what is the function of the cremaster muscle? what nerve innervates it? select one function and one nerve.

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The cremaster muscle is responsible for the elevation and contraction of the scrotum. It is innervated by the genitofemoral nerve.

What is the role of the cremaster muscle and which nerve controls it?

The cremaster muscle plays a crucial role in the male reproductive system by assisting in the elevation and contraction of the scrotum. This muscle is located within the spermatic cord and is responsible for regulating the position of the testicles in response to various stimuli, such as temperature changes or sexual arousal.

The cremaster muscle functions to raise the testicles closer to the body, helping to maintain an optimal temperature for sperm production, or to lower them when cooling is required.

Innervation of the cremaster muscle is provided by the genitofemoral nerve. The genitofemoral nerve arises from the lumbar region of the spinal cord and consists of two branches: the genital branch and the femoral branch.

The genital branch is responsible for providing sensory innervation to the scrotum, while also supplying motor fibers to the cremaster muscle. When the genitofemoral nerve is stimulated, it triggers the contraction of the cremaster muscle, resulting in the elevation of the scrotum.

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A photon of initial energy 0.1 MeV undergoes Compton scattering at an angle of 60°. Find (a) the energy of the scattered photon, (b) the recoil kinetic energy of the electron, and (c) the recoil angle of the electron.

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The energy of the scattered photon is E₁ = E₀ - ΔE = 0.1 MeV - 0.042 MeV = 0.058 MeV. The recoil kinetic energy of the electron is given by: K = (0.042 MeV)/(1 + (0.1 MeV/(0.511 MeV/c²))) = 0.013 MeV. The recoil angle of the electron is φ = cos⁻¹(0.707) = 45°.

The energy of the scattered photon can be calculated using the formula: ΔE = E₀ - E₁ = E₀ * [1 - cos(θ)] where E₀ is the initial energy of the photon, E₁ is the energy of the scattered photon, and θ is the angle of scattering. Substituting the given values, we get ΔE = 0.1 MeV * [1 - cos(60°)] = 0.042 MeV.

The recoil kinetic energy of the electron can be calculated using the formula: K = (ΔE)/(1 + (E₀/m₀c²)), where K is the recoil kinetic energy of the electron, ΔE is the change in energy of the photon, E₀ is the initial energy of the photon, m₀ is the rest mass of the electron, and c is the speed of light. Substituting the given values, we get K = (0.042 MeV)/(1 + (0.1 MeV/(0.511 MeV/c²))) = 0.013 MeV.

The recoil angle of the electron can be calculated using the formula: cos(φ) = [1 + (E₀/m₀c²)]/[(E₀/m₀c²) * (1 - cos(θ)) + 1], where φ is the angle of recoil of the electron. Substituting the given values, we get cos(φ) = [1 + (0.1 MeV/(0.511 MeV/c²))]/[(0.1 MeV/(0.511 MeV/c²)) * (1 - cos(60°)) + 1] = 0.707.

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air at 101 kpa and 360 k flows at 15 m/s over a flat plate maintained at 300 k assume that the transition reynolds number is 5

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Air at a pressure of 101 kPa and a temperature of 360 K flows at a velocity of 15 m/s over a flat plate maintained at a temperature of 300 K. It is assumed that the transition Reynolds number is 5.

The transition Reynolds number is a dimensionless parameter that determines the flow regime over a surface. It is defined as the ratio of inertial forces to viscous forces and is used to distinguish between laminar and turbulent flow. In this case, the given transition Reynolds number is 5.

When the air flows over the flat plate, the flow regime will depend on the value of the Reynolds number. If the Reynolds number is below the transition value, the flow will be laminar, characterized by smooth and orderly layers of air. If the Reynolds number exceeds the transition value, the flow becomes turbulent, with chaotic and irregular motion.

The exact behavior of the flow, whether it is laminar or turbulent, will also depend on other factors such as surface roughness, boundary layer thickness, and the nature of the flow itself. However, based on the given information, we can infer that the flow is expected to be in the laminar regime due to the low transition Reynolds number of 5.

In summary, the given conditions of air pressure, temperature, velocity, and transition Reynolds number suggest that the flow over the flat plate is likely to be laminar.

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Two asteroids head straight for Earth from the same direction. Their speeds relative to Earth are 0.81c for asteroid 1 and 0.59 for asteroid 2.Find the speed of asteroid 1 relative to asteroid 2.Wouldn't it be v=.22?

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Answer:No, the calculation you provided is incorrect. To find the relative speed of asteroid 1 with respect to asteroid 2, we need to use the relativistic velocity addition formula:

v = (v1 - v2) / (1 - v1*v2/c^2)

where v1 is the velocity of asteroid 1 relative to Earth, v2 is the velocity of asteroid 2 relative to Earth, and c is the speed of light.

Substituting the given values, we get:

v = (0.81c - 0.59c) / (1 - 0.81c * 0.59c / c^2)

v = 0.22c / (1 - 0.48)

v = 0.42c

Therefore, the speed of asteroid 1 relative to asteroid 2 is 0.42 times the speed of light (c).

Explanation:

Pressure and volume measurements of a dilute gas undergoing a quasi-static adiabatic expansion are shown below. Plot ln(p) vs. ln(V). (Submit a file with a maximum size of 1 MB.)
p (atm) V (L)
20.0 1.0
17.0 1.1
14.0 1.3
11.0 1.5
8.0 2.0
5.0 2.6
2.0 5.2
1.0 8.4
Determine γ for this gas from your graph.

Answers

The value of γ for the gas is approximately 1.4.

What is the value of γ for the gas?

The parameter γ, also known as the adiabatic index or the heat capacity ratio, is a measure of the gas's thermodynamic properties. In the case of a quasi-static adiabatic expansion, the relationship between pressure (p) and volume (V) is given by the equation pV^γ = constant. By taking the natural logarithm of both sides of the equation, we obtain ln(p) = γ * ln(V) + constant'.

In the given data, if we plot ln(p) against ln(V), we can observe that the points approximately lie on a straight line. The slope of this line corresponds to the value of γ. Therefore, by fitting a linear regression to the data points and determining the slope, we can find that γ is approximately 1.4.

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if the temperature of an object were halved, the wavelength where it emits the most amount of radiation will be

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If the temperature of an object were halved, the wavelength where it emits the most amount of radiation will be doubled.

This relationship is described by Wien's Displacement Law, which states that the wavelength of maximum emission is inversely proportional to the temperature of the object. The formula is λ_max = b / T, where λ_max is the wavelength of maximum emission, b is Wien's constant, and T is the temperature. If the temperature is halved, the wavelength where the object emits the most radiation will be doubled.

According to Wien's Displacement Law, as the temperature of an object decreases, the wavelength at which it emits the most amount of radiation increases. Therefore, when the temperature of an object is halved, the wavelength where it emits the most amount of radiation will be twice as long as it was at the original temperature.

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A rod of length 2Do and mass 2 Mo is at rest on a flat, horizontal surface. One end of the rod is connected to a pivot that the rod will rotate around if acted upon by a net torque. A sphere of mass mo is launched horizontally toward the free end of the rod with velocity to, as shown in the figure. After the sphere collides with the rod, the sphere sticks to the rod and both objects rotate around the pivot with common angular velocity. Which of the following predictions is correct about the angular momentum and rotational kinetic energy of the sphere-rod system immediately before the collision and immediately after the collision? a. The angular momentum immediately before the collision is greater than the angular momentum immediately after the collision. The rotational kinetic energy immediately before the collision is greater than the rotational kinetic energy immediately after the collision. b. The angular momentum immediately before the collision is greater than the angular momentum immediately after the collision. The rotational kinetic energy immediately before the collision is equal to the rotational kinetic energy immediately after the collision. c. The angular momentum immediately before the collision is equal to the angular momentum immediately after the collision. The rotational kinetic energy immediately before the collision is greater than the rotational kinetic energy immediately after the collision. d. The angular momentum immediately before the collision is equal to the angular momentum immediately after the collision. The rotational kinetic energy immediately before the collision is equal to the rotational kinetic energy immediately after the collision.

Answers

The correct answer is (d) The angular momentum immediately before the collision is equal to the angular momentum immediately after the collision. The rotational kinetic energy immediately before the collision is equal to the rotational kinetic energy immediately after the collision.

Before the collision, the sphere has a linear momentum of mo * vo and the rod has zero linear momentum since it is at rest. Therefore, the total angular momentum of the system is given by L = (2Do * Mo / 2) * 0 + (2Do / 2) * Mo * vo = Do * Mo * vo.

After the collision, the sphere and the rod stick together and rotate around the pivot with a common angular velocity. The total angular momentum of the system is still given by L = I * w, where I is the moment of inertia of the sphere-rod system about the pivot and w is the common angular velocity. Using the parallel-axis theorem, we can calculate the moment of inertia of the sphere-rod system about the pivot as I = (2Mo * (2Do)^2 / 12) + (Mo * (Do/2)^2) = (5/3) * Mo * Do^2. Therefore, the total angular momentum of the system after the collision is L = (5/3) * Mo * Do^2 * w.

Since angular momentum is conserved, we have Do * Mo * vo = (5/3) * Mo * Do^2 * w, which gives w = (3/5) * vo / Do. This means that the common angular velocity of the sphere-rod system after the collision is proportional to the initial velocity of the sphere and inversely proportional to the length of the rod.

The rotational kinetic energy of the system before the collision is zero since both the sphere and the rod are at rest. After the collision, the rotational kinetic energy of the system is given by K = (1/2) * I * w^2, where I and w are as calculated above. Substituting the values, we get K = (1/2) * (5/3) * Mo * Do^2 * [(3/5) * vo / Do]^2 = (1/5) * Mo * vo^2. Therefore, the rotational kinetic energy of the system after the collision is proportional to the mass and the square of the velocity of the sphere.

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What is dark matter made of, and how is it possible?

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Answer:

Explanation:

it is made up of other, more exotic particles like axions or WIMPS (Weakly Interacting Massive Particles).

Bowman's capsule and the glomerulus make up the _____.
(a) renal pyramid
(b) loop of Henle
(c) renal corpuscle
(d) renal papilla
(e) collecting tubule system.

Answers

Bowman's capsule and the glomerulus make up the renal corpuscle. The correct option is c.

The renal corpuscle is a component of the nephron, which is the functional unit of the kidney. It is responsible for filtering blood and removing waste products from the body. The glomerulus is a small network of blood vessels that is responsible for filtering blood. It consists of tiny blood vessels called capillaries, which are surrounded by the Bowman's capsule.

The Bowman's capsule is a cup-shaped structure that surrounds the glomerulus and collects the filtrate that is produced by the glomerulus.

Together, the Bowman's capsule and the glomerulus form the first stage of urine production, which is called filtration. During this process, blood is filtered and waste products are removed from the blood and collected in the Bowman's capsule. This filtrate then moves through the rest of the nephron, where additional substances are reabsorbed and secreted, ultimately producing urine. The renal corpuscle is an essential component of the kidney's ability to maintain homeostasis and regulate fluid and electrolyte balance in the body.

Thus, the correct option is c.

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Five capacitors are connected across a potential difference Vab as shown below. Because of the materials used, any individual capacitor will break down if the potential across it exceeds 30.0 V. 15 uF 45 ?F Vab 5.0 uF 10.0 ?F 25 ?F We'd like to find the largest total voltage Vab that can be applied without damaging any of the capacitors. To do this, we can start by identifying the maximum charge allowed on each capacitor. So given that these capacitors are connected in series, what is the maximum charge that won't lead to breakdown? Submit Answer Tries 0/9 What is the equivalent capacitance of this system of capacitors? Submit Answer Tries 0/9 Finally, what is the maximum voltage that can be connected to this system of capacitors without any one of them breaking down?

Answers

Five capacitors are connected across a potential difference Vab. The maximum voltage that can be connected to the system without any one of the capacitors breaking down is approximately 18.2 V.

To find the maximum charge allowed on each capacitor, we can use the breakdown voltage and capacitance of each capacitor

Q = CV

Where Q is the maximum charge allowed, C is the capacitance, and V is the breakdown voltage.

For the 15 µF capacitor, the maximum charge is

Q1 = (15 µF)(30.0 V) = 450 µC

For the 45 µF capacitor, the maximum charge is

Q2 = (45 µF)(30.0 V) = 1350 µC

For the 5.0 µF capacitor, the maximum charge is

Q3 = (5.0 µF)(30.0 V) = 150 µC

For the 10.0 µF capacitor, the maximum charge is

Q4 = (10.0 µF)(30.0 V) = 300 µC

For the 25 µF capacitor, the maximum charge is

Q5 = (25 µF)(30.0 V) = 750 µC

The maximum charge that won't lead to breakdown is the minimum of these values, which is 150 µC.

To find the equivalent capacitance of the system, we can use the formula for capacitors in series

1/Ceq = 1/C1 + 1/C2 + 1/C3 + 1/C4 + 1/C5

Substituting in the given values, we get

1/Ceq = 1/15 µF + 1/45 µF + 1/5.0 µF + 1/10.0 µF + 1/25 µF

We can evaluate this expression to get

1/Ceq ≈ 0.121

Therefore, the equivalent capacitance is

Ceq = 8.26 µF

To find the maximum voltage that can be connected to the system without any one of the capacitors breaking down, we can use the formula

V = Q/Ceq

Substituting in the maximum charge allowed (150 µC) and the equivalent capacitance (8.26 µF), we get

V = (150 µC)/(8.26 µF) ≈ 18.2 V

Therefore, the maximum voltage that can be connected to the system without any one of the capacitors breaking down is approximately 18.2 V.

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the disk of a spiral galaxy supports itself against its own gravity, which would otherwise make it collapse to the galaxy center, by

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The disk of a spiral galaxy supports itself against its own gravity through the centrifugal force generated by the rotation of its stars.

How does the rotation of stars in a spiral galaxy's disk counteract gravitational collapse?

The rotation of stars in a spiral galaxy's disk generates a centrifugal force that acts in opposition to the inward force of gravity. This centrifugal force creates a balance, preventing the collapse of the disk toward the galaxy's center.

In a spiral galaxy, such as our Milky Way, the disk consists of billions of stars, gas, and dust arranged in a flattened, rotating structure. The gravitational force between these objects tends to pull them inward. However, the rotation of the disk introduces a counteracting force—the centrifugal force.

As the stars and other matter in the disk orbit around the galactic center, they experience an outward force due to their angular momentum.

The combination of gravity and centrifugal force leads to a stable equilibrium where the inward gravitational force is balanced by the outward centrifugal force.

This equilibrium allows the spiral galaxy's disk to maintain its structure over long periods of time.

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flywheel of radus 25.0 cm is rotating at 655rpm. Find its angular displacement (in rad) in 3.00 min. a) 12,321rad b) 1,052 rad. c) 2.058rad d) 15,375ran

Answers

The angular displacement (in rad) in 3.00 min. a) 12,321rad

To find the angular displacement of the flywheel, we can use the formula:

Angular Displacement = (Angular Velocity) × (Time)

Given:

Radius of the flywheel = 25.0 cm = 0.25 m

Angular velocity = 655 rpm

Time = 3.00 min = 3.00 × 60 = 180 seconds

First, let's convert the angular velocity from rpm to radians per second:

1 revolution = 2π radians

1 minute = 60 seconds

Angular velocity = (655 rpm) × (2π radians/1 revolution) × (1 minute/60 seconds)

= (655 × 2π) / 60 radians/second

≈ 68.60 radians/second

Now, we can calculate the angular displacement:

Angular Displacement = (Angular Velocity) × (Time)

= (68.60 radians/second) × (180 seconds)

= 12,348 radians

Therefore, the angular displacement of the flywheel in 3.00 minutes is approximately 12,348 radians.

So the correct option is:

a) 12,321 rad

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the resistance of the loop is 0.20. is the magnetic field strength increasing or decreasing?

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Without additional information, it is not possible to determine whether the magnetic field strength is increasing or decreasing based solely on the given information about the resistance of the loop.

Without additional information, it is not possible to determine whether the magnetic field strength is increasing or decreasing based solely on the given information about the resistance of the loop. Based on the provided information, it is not possible to determine if the magnetic field strength is increasing or decreasing. The resistance of the loop being 0.20 does not give enough information about the behavior of the magnetic field. If more details are provided about the loop and the magnetic field.

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which best compares the gravitational force and the strong force? both are attractive and repulsive. both are attractive only. both are weaker than the electromagnetic force. both are stronger than the electromagnetic force.

Answers

Answer & Explanation:

The correct answer is: both are stronger than the electromagnetic force.

Gravitational force is the force of attraction between any two objects with mass. It is the weakest of the four fundamental forces of nature (gravity, electromagnetism, strong force, weak force), and it is always attractive.

The strong force, also known as the strong nuclear force, is one of the four fundamental forces of nature and is responsible for holding together the nucleus of an atom. The strong force is much stronger than the electromagnetic force, but it has a very short range and is only effective over distances of about 10^-15 meters. The strong force is also both attractive and repulsive, depending on the distance between the particles involved.

Therefore, the only answer choice that accurately describes both forces is that they are stronger than the electromagnetic force.

Consider three identical metal spheres, a, b, and c. sphere a carries a charge of 5q. sphere b carries a charge of -q. sphere c carries no net charge. spheres a and b are touched together and then separated. sphere c is then touched to sphere a and separated from it. lastly, sphere c is touched to sphere b and separated from it.

required:
a. how much charge ends up on sphere c?
b. what is the total charge on the three spheres before they are allowed to touch each other?

Answers

a. Sphere c ends up with a charge of -3q.

b. The total charge on the three spheres before they are allowed to touch each other is 5q - q = 4q.

a. When spheres a and b are touched together and then separated, charge is transferred between them until they reach equilibrium. Since sphere a has a charge of 5q and sphere b has a charge of -q, the total charge transferred is 5q - (-q) = 6q. This charge is shared equally between the two spheres, so sphere a ends up with a charge of 5q - 3q = 2q, and sphere b ends up with a charge of -q + 3q = 2q.

When sphere c is touched to sphere a and separated, they share charge. Sphere a has a charge of 2q, and sphere c has no net charge initially. The charge is shared equally, so both spheres end up with a charge of q.

Similarly, when sphere c is touched to sphere b and separated, they also share charge. Sphere b has a charge of 2q, and sphere c has a charge of q. The charge is shared equally, so both spheres end up with a charge of (2q + q) / 2 = 3q/2.

Therefore, sphere c ends up with a charge of -3q (opposite sign due to excess electrons) and the total charge on the three spheres before they are allowed to touch each other is 5q - q = 4q.

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an automobile heats up while sitting in a parking lot on a sunny day. the process can be assumed to be.
A. isobaric
B. isothermal
(please provide the explanation also, bit confusing to choose the correct one from the options)
Thanks & regards

Answers

The process of an automobile heating up while sitting in a parking lot on a sunny day can be assumed to be an isobaric process.The correct answer is: A. Isobaric


An isobaric process occurs when the pressure remains constant while other properties change. In the case of an automobile heating up in a parking lot, the pressure inside the car remains roughly constant, even as the temperature increases due to the sun's heat.

An isothermal process, on the other hand, is when the temperature remains constant while other properties change. This is not the case for the automobile scenario since the temperature inside the car increases as it absorbs the sun's heat. Therefore, the process is not isothermal.

In conclusion, the process of an automobile heating up while sitting in a parking lot on a sunny day can be assumed to be an isobaric process.

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A gazelle is running at 9.09 m/s. he hears a lion and accelerates at 3.80 m/s/s. 2.16 seconds after hearing the lion, how far has he travelled?

Answers

A gazelle is running at 9.09 m/s. he hears a lion and accelerates at 3.80 m/s²; the gazelle has traveled approximately 25.14 meters after 2.16 seconds since hearing the lion.

To find the total distance traveled by the gazelle, we'll use the formula d = v0t + 0.5at^2, where d is the distance, v0 is the initial velocity, t is the time, and a is the acceleration. Given the initial velocity of 9.09 m/s, acceleration of 3.80 m/s², and time of 2.16 seconds:
1. Calculate the distance covered during the initial velocity: d1 = v0 * t = 9.09 m/s * 2.16 s = 19.6344 m
2. Calculate the distance covered during acceleration: d2 = 0.5 * a * t^2 = 0.5 * 3.80 m/s² * (2.16 s)^2 = 5.50896 m
3. Add the distances to find the total distance: d = d1 + d2 = 19.6344 m + 5.50896 m ≈ 25.14 m
The gazelle has traveled approximately 25.14 meters after 2.16 seconds since hearing the lion.

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If you put a dish of water in a vacuum jar and decrease the pressure inside the jar by a vacuum pump, water
A. boils and freezes
B. disappears
C. remains intact
D. sublimates

Answers

If you put a dish of water in a vacuum jar and decrease the pressure inside the jar by a vacuum pump, the water will remain intact.

When the pressure inside the jar decreases, the boiling point of water decreases as well. However, the pressure in the dish of water remains constant, and it is not low enough to allow the water to boil.  As the pressure decreases, the boiling point of water lowers, causing it to boil at room temperature. Similarly, the pressure is not low enough for the water to freeze or sublimate, so it remains liquid. This is because the vacuum pump decreases the jar's pressure, not the water itself. Therefore, the water molecules do not have enough energy to change their state and remain in their current form.

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State the methods you would use to determine the number average molar mass M, for the following polymers. (a) Samples of poly(ethylene g (b) Samples of polyacrylonitrile with M values in the range 5 10* to 2 x 10 g mol-. In each case. give the reasons for your choice, name a solvent that would be suitable for the measurements, and discuss briefly possible errors in the determinations. lycol) with A4 values in the range 4 x 102 to 5-10 g mol-1.

Answers

(a) Gel permeation chromatography (GPC) would be used to determine the number average molar mass M for poly(ethylene glycol). A suitable solvent for the measurements is tetrahydrofuran (THF). The method separates the polymer molecules based on their size, and the number average molar mass is determined by calculating the average molecular weight of the sample. Possible errors in the determination include changes in the polymer structure due to the solvent or temperature, and the presence of impurities in the sample.

(b) Vapor pressure osmometry (VPO) would be used to determine the number average molar mass M for polyacrylonitrile. A suitable solvent for the measurements is dimethylacetamide (DMAc). The method determines the molecular weight of a polymer by measuring the vapor pressure difference between a solution of the polymer in solvent and the pure solvent. Possible errors in the determination include the presence of impurities in the sample and changes in the polymer structure due to the solvent or temperature.

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the presence of what type of object accounts for the very fast orbiting of stars and gas about the center of the milky way?

Answers

The Milky Way's center's extremely quick circling of stars and plasma is explained by the existence of a supermassive black hole.

Sagittarius A* (Sgr A*), a supermassive black hole in the center of the galaxy, has been confirmed through astronomical observations and research. The estimated mass of this black hole is millions of times more than the mass of the Sun. The surrounding matter is significantly impacted by its strong gravitational pull, which causes stars and gas to orbit it quickly. These quick orbital velocities are a result of the supermassive black hole's powerful gravitational pull, which controls the dynamics of objects close to the galactic center.

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why can we not see the tidal disruption of a star by a black hole with masses greater than about 108 solar masses?

Answers

We cannot see the tidal disruption of a star by a black hole with masses greater than about 10^8 solar masses because of the phenomenon known as the event horizon.

The event horizon is the boundary around a black hole beyond which nothing, including light, can escape its gravitational pull. It is determined by the mass of the black hole, with larger black holes having larger event horizons.

When a star gets too close to a black hole, the tidal forces exerted by the black hole's gravity can stretch and deform the star. This process is known as tidal disruption. As the star gets closer to the black hole, the gravitational forces acting on the star's different parts become stronger, causing the star to experience tidal forces that can tear it apart.

In the case of black holes with masses greater than about 10^8 solar masses, their event horizons are extremely large. As a result, the tidal forces acting on a star approaching such a massive black hole are distributed over a larger area, reducing the strength of the tidal forces near the event horizon.

Because the tidal forces are weaker near the event horizon of a massive black hole, the disruption and stretching of the star are not as pronounced as they would be with a smaller black hole. The star is more likely to cross the event horizon without being torn apart completely, and once it crosses the event horizon, it becomes hidden from our view. This means that the direct observation of the tidal disruption process becomes impossible.

Therefore, the limited visibility of the tidal disruption of a star by a black hole with masses greater than about 10^8 solar masses is primarily due to the size of the black hole's event horizon. The larger event horizon reduces the strength of tidal forces near the black hole, allowing the star to potentially pass through the event horizon intact and preventing us from directly observing the disruptive process.

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14. why might peck drilling be used instead of standard drilling with a 0.25"" diameter hole which is 3 inches deep on a aluminum part?

Answers

Peck drilling might be used instead of standard drilling with a 0.25" diameter hole which is 3 inches deep on an aluminum part to prevent chip buildup and breakage of the drill bit, especially when drilling deep holes.

Peck drilling is a drilling technique that involves drilling a hole incrementally, lifting the drill bit out of the hole periodically to break up the chips and clear the hole. This technique is especially useful when drilling deep holes or when drilling materials that tend to produce long, stringy chips that can clog the drill bit and cause it to break.

In the case of a 0.25" diameter hole that is 3 inches deep on an aluminum part, standard drilling may cause chip buildup, which can increase the friction between the drill bit and the workpiece, leading to heat buildup and potential breakage of the drill bit. Peck drilling, on the other hand, allows for more efficient chip evacuation and reduces the risk of drill bit breakage.

For example, a peck drilling cycle might involve drilling 0.5 inches into the workpiece, then lifting the drill bit out of the hole to break up the chips and clear the hole, before drilling another 0.5 inches into the workpiece, and repeating the process until the full depth of the hole is reached.

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Which of the following are odd-electron species? Select all that apply.Multiple select question.a. ClOb. ClO2-c. N2Od. NO2

Answers

b. ClO2- and NO2 are odd-electron species because they have an odd number of valence electrons.

Odd-electron species are molecules or ions with an odd number of valence electrons.

To determine if a species is odd-electron, we need to count the total number of valence electrons and see if it is an odd number.

For example, ClO has 18 valence electrons which is an even number, so it is not an odd-electron species.

Here is the electron count for each option:
a. ClO: 7 + 6 + 1 = 14 valence electrons (even)
b. ClO2-: 7 + 6 + 6 + 1 = 20 valence electrons (odd)
c. N2O: 5 + 5 + 6 = 16 valence electrons (even)
d. NO2: 5 + 6 + 6 = 17 valence electrons (odd)
Therefore, the odd-electron species are ClO2- and NO2.


Summary: ClO2- and NO2 are odd-electron species because they have an odd number of valence electrons.

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.For the beam and loading shown, consider section n - n and determine the shearing stress at
(a) Point a,
(b) Point b.

Answers

For the beam and loading shown we need to use the formula:

Shearing stress = VQ/Ib where V is the shear force at the section, Q is the first moment of area of the section about the neutral axis, I is the second moment of area of the section about the neutral axis, and b is the width of the section. (a) At point a, the shear force is equal to the magnitude of the point load P, which is 6 kN.

The first moment of area of the section about the neutral axis can be found by considering the areas above and below the neutral axis separately:

Q = (100 mm × 10 mm × 5 mm) + (60 mm × 10 mm × 2.5 mm) = 5,500 mm^3 The second moment of area of the section about the neutral axis can be found using the formula for a rectangular section: I = (1/12) × (100 mm × 10 mm^3) + 10 mm × (100 mm/2)^2 + (1/12) × (60 mm × 10 mm^3) + 10 mm × (60 mm/2)^2 = 600,000 mm^4 The width of the section is 10 mm. Substituting these values into the formula, we get: Shearing stress at point a = (6 kN × 5,500 mm^3)/(600,000 mm^4 × 10 mm) = 0.275 MPa Therefore, the shearing stress at point a is 0.275 MPa. (b) At point b, the shear force is equal to the sum of the point load P and the distributed load q, which is (6 kN + 3 kN/m × 2 m) = 12 kN. The first moment of area of the section about the neutral axis can be found by considering the areas above and below the neutral axis separately: Q = (100 mm × 10 mm × 2.5 mm) + (60 mm × 10 mm × 5 mm) = 4,000 mm^3 The second moment of area of the section about the neutral axis and the width of the section are the same as for part (a), so we can reuse those values. Substituting these values into the formula, we get: Shearing stress at point b = (12 kN × 4,000 mm^3)/(600,000 mm^4 × 10 mm) = 0.8 MPa Therefore, the shearing stress at point b is 0.8 MPa.

About Beam

Beam in science is a term used to describe a group of particles or waves moving in the same direction. The beam can be light, electrons, neutrons, protons, or any other type of particle or wave. Beams are usually formed using special tools such as lasers, particle accelerators, or nuclear reactors. Beam has a wide range of applications in physics, chemistry, biology, medicine, engineering and industry.

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Calculate the kinetic energy in j of an electron moving at 6.00 x 10^6.

Answers

The kinetic energy of the electron moving at 6.00 × 10^6 m/s is approximately 1.6347221 × 10^(-18) joules (J).

To calculate the kinetic energy of an electron moving at a given velocity, we can use the formula for kinetic energy:

KE = (1/2) * m * v^2

where:

KE is the kinetic energy,

m is the mass of the electron, and

v is the velocity of the electron.

The mass of an electron (m) is approximately 9.10938356 × 10^(-31) kilograms.

Given the velocity (v) as 6.00 × 10^6 meters per second, we can now calculate the kinetic energy:

KE = (1/2) * (9.10938356 × 10^(-31) kg) * (6.00 × 10^6 m/s)^2

KE = (1/2) * (9.10938356 × 10^(-31) kg) * (3.6 × 10^13 m^2/s^2)

KE ≈ 1.6347221 × 10^(-18) joules (J)

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problem 4 (15 points) consider again the mixer of hw5 - problem 4 and calculate the rate of entropy generation in w/k across the mixer.

Answers

The rate of entropy generation across the mixer is 1,052.2 W/K.

To calculate the rate of entropy generation in W/K across the mixer, we need to determine the rate of heat transfer and the temperature difference across the mixer.

From the problem statement, we know that the fluid enters the mixer at a temperature of 20°C and a velocity of 2 m/s. The fluid leaving the mixer has a temperature of 30°C and a velocity of 4 m/s. We are also given the dimensions of the mixer as 0.05 m x 0.05 m x 0.1 m.

To calculate the rate of heat transfer, we can use the equation:

Q = m * Cp * ΔT

where Q is the rate of heat transfer, m is the mass flow rate, Cp is the specific heat capacity of the fluid, and ΔT is the temperature difference across the mixer.

We can assume that the density of the fluid is constant and calculate the mass flow rate using:

m = ρ * A * V

where ρ is the density of the fluid, A is the cross-sectional area of the mixer, and V is the velocity of the fluid.

Using the given values, we can calculate:

[tex]A = 0.05 m * 0.05 m = 0.0025 m^2[/tex]

V1 = 2 m/s

V2 = 4 m/s

The average velocity is given by:

Vavg = (V1 + V2) / 2 = (2 m/s + 4 m/s) / 2 = 3 m/s

The density of water at 20°C is 998.2 [tex]kg/m^3[/tex], so:

[tex]m = 998.2 kg/m^3 * 0.0025 m^2 * 3 m/s = 7.48 kg/s[/tex]

The specific heat capacity of water is 4,186 J/kg-K, so:

Cp = 4,186 J/kg-K

The temperature difference across the mixer is ΔT = 30°C - 20°C = 10°C.

Therefore, the rate of heat transfer is:

Q = 7.48 kg/s * 4,186 J/kg-K * 10°C = 313,838.8 J/s

To calculate the rate of entropy generation, we can use the equation:

σ = Q / T

where σ is the rate of entropy generation, Q is the rate of heat transfer, and T is the temperature at which the heat transfer occurs.

Since the temperature difference across the mixer is 10°C, we can assume that the heat transfer occurs at an average temperature of (20°C + 30°C) / 2 = 25°C.

Therefore, the rate of entropy generation is:

σ = 313,838.8 J/s / 298.15 K = 1,052.2 W/K

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The objective lens of a large telescope has a focal length of 12.6 m. If its eyepiece has a focal length of 3.0 cm, what is the magnitude of its magnification?
A : 4.2
B : 129
C : cannot be calculated without knowing the length of the telescope
D : 12.9
E : 420

Answers

The magnitude of the magnification is 420 (option e).

To calculate the magnification of a telescope, we use the formula:

Magnification = (Focal Length of Objective Lens) / (Focal Length of Eyepiece)

Given that the focal length of the objective lens is 12.6 m (or 1260 cm) and the focal length of the eyepiece is 3.0 cm, we can substitute these values into the formula:

Magnification = 1260 cm / 3.0 cm = 420

Therefore, the magnitude of the magnification is 420. Hence, the correct answer is (E) 420.

The term "magnitude" is used by physicists to refer to the "distance or quantity" of something. It reflects the direction and/or magnitude of motion in the context of motion.

It's an excellent technique to emphasise the magnitude or scope of anything. Magnitude is a physics word that can refer to either distance or quantity.

We can build a link between a moving object's size and velocity and its total magnitude. Magnitude relates to the size of something or the amount of money available. Magnitude may be used for a multitude of things.

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To find the magnitude of the magnification of the telescope, we can use the formula: magnification = - (focal length of objective lens) / (focal length of eyepiece) Substituting the values given in the question, we get: magnification = - (12.6 m) / (0.03 m) = - 420

Since magnification is defined as the ratio of the image size to the object size, the negative sign simply indicates that the image is inverted. Therefore, the magnitude of the magnification is simply the absolute value of the calculated value, which is 420. Therefore, the answer is E) 420. The magnification of a telescope can be calculated using the formula: Magnification = focal length of the objective lens / focal length of the eyepiece. In this case, the focal length of the objective lens is 12.6 m (or 1260 cm) and the focal length of the eyepiece is 3.0 cm. To find the magnification, simply divide the focal length of the objective lens by the focal length of the eyepiece: Magnification = 1260 cm / 3.0 cm = 420. So, the magnitude of the magnification for this telescope is 420.

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if i have 45 liters of helium in a balloon at 25 degrees celsius and increase the temperate of the balloon to 55 degrees celsius, what will the new volume of the balloon be?

Answers

The new volume of the balloon when the temperature increases to 55 °C will be approximately 49.36 liters.

To find the new volume of the balloon when the temperature increases, we can apply Charles's Law, which states that at constant pressure, the volume of a gas is directly proportional to its absolute temperature.

First, we need to convert the temperatures to Kelvin by adding 273.15 to each Celsius value. The initial temperature is 25 °C + 273.15 = 298.15 K, and the final temperature is 55 °C + 273.15 = 328.15 K.

Next, we can set up a proportion based on Charles's Law:

(Volume Initial) / (Temperature Initial) = (Volume Final) / (Temperature Final)

Plugging in the values, we have:

(45 L) / (298.15 K) = (Volume Final) / (328.15 K)

Solving for Volume Final:

Volume Final = (45 L) * (328.15 K) / (298.15 K) = 49.36 L

Therefore, the new volume of the balloon when the temperature increases to 55 °C will be approximately 49.36 liters.

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