How have glider pilots learned to use convection currents to stay in the sky and travel long distances?.

Answers

Answer 1

The air at ground level rises to form convection currents.

It creates lift upon collision with the glider's wing allowing it to stay in the air or even rise to higher altitudes. Thermals occur when the sun heats the ground and the ground warms the air above. As small plumes of warm air rise, they gather together to form thermals, the perfect place for gliders to fly and stay airborne. So the density of nearby air decreases.

This less dense air rises and helps birds fly farther. Dense air replaces this space. This movement is known as convective air currents. We know that draft is the movement of air uplifted by temperature differences between rising strata. Therefore, when a bird flies over this updraft column, this convective air current allows the bird to reach higher altitudes without additional effort.

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Related Questions


A football player runs directly down the field for 35 m before turning to the right at
an angle of 25 from his original direction and running an additional 15 m before
getting tackled. What is the magnitude and direction of the runner's total
displacement?

Answers

The displacement is 56.54 m in size.

The displacement is moving in the direction of the line that connects the two vectors.

What is a displacement example?

For instance, if an object shifts from location A to position B, its position changes. Displacement is the term used to describe this shift in an object's position.

The line that connects the beginning and final positions of the vectors is always the resultant displacement.

Formula yields the resultant vector.

AB^2 = BC^2 + 2ABBC Cos∅

the equations' values are substituted,

AC^2 = 35^2 + 15^2 x 35 15 x Cos 25' = 56.54

Consequently, the displacement's size is 56.54 m.

The displacement is moving in the direction of the line that connects the two vectors.

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calculate the capacitance in a system with a cross-sectional area of 150 mm2 , a dielectric constant of 8, and a dielectric thickness of 0.2 mm

Answers

The Capacitance is 1.41x10^-11 farad


What is capacitance?

The ability of a material object or device to store electric charge is referred to as capacitance. It is defined as the change in charge as a result of a difference in electric potential, expressed as a ratio of those quantities.

Given;

A = 150mm2

= 150 x(10^-3)2

= 150x10^-6

Eo= 8.854x10^12 f/m

Dielectric constane, K =8

thickness, d = 0.2 mm

= 0.2 x 10^-3

Capacitance ,

C = KAEo/d

= 8x 150 10^-6x 8.854x10^-12/0.2x10^-3

= 1.41x10^-11 farad

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Which of the following units is a derived si unit (not one of the si base units)?

a. meter
b. kilogram
c. second
d. (newton)

Answers

Kilogram is the derived SI unit. Mole is NOT a subunit. Mole is one of the seven fundamental units. It is the SI base unit of substance amount.

The remaining six units are the second (time), the metre (length), the kilogram (mass), the ampere (current), the kelvin (temperature), and the candela (luminous intensity). The derived units are named after scientists, such as the hertz, watt, and coulomb. These units are denoted by the letters Hz, W, and C. Aside from meters per second, derived units include cubic meters and joules per kelvin. SI has seven base units upon which all others are based. The fundamental units are mass, length, time, temperature, substance amount, electric current, and luminous intensity.

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Which of the following scenarios would result in a more reliable scientific claim?

Testing a question multiple times and obtaining the same results.
Testing a question multiple times and obtaining different results.
Testing a question once, and having another scientist replicate your experiment.
Testing a question multiple times, and having another scientist replicate your experiment.

Answers

Testing a question multiple times and obtaining the same results. Option A.

Researchers justify their claims by reviewing the scientific literature and assessing the weight of evidence. Scientific claims are based on systematic observations and evidence. This is designed to be far more reliable than any other type of claim. One of his ways of assessing scientific credibility is to examine the logical structure of the arguments that scientists present for scrutiny.

Without drowning in this data we can determine whether the arguments are correctly related to the empirical data. Claims define the goal direction, and scope of an article. It is backed by evidence. Assertions must be discursive. A good claim is a focused argument on primary school because of the growing obesity epidemic. The bolder the claim the greater the risk. However, when conveying content that implies a claim.

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a spaceman of mass 80 kg is sitting in a spacecraft near the surface of the earth. the spacecraft is accelerating upward at five times the acceleration due to gravity. what is the force of the spaceman on the spacecraft?

Answers

Force of the spaceman on the spacecraft is calculated to be 4800 N.

According to Newton's 3rd law, the force of the spaceman on the spacecraft is equal and opposite to the force of the spacecraft on the spaceman.

Newton's second law of motion states that : Force is equal to the rate of change of momentum or we can say that acceleration occurs when force acts on a mass. When the mass is constant, force is equal to mass times acceleration

By Newton's 2nd law,

F= m*a

Given, a= five times the acceleration due to gravity

m= 80 kg

F = Fₙ - mg = ma =m (5g)

Fₙ = 6mg

F  = 6*80kg*9.8m/s² = 4800N

Force of the spaceman on the spacecraft = 4800 N.

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84 g of a metal at an initial temperature of 72°c releases 553 j of heat. Calculate the final temperature of the metal if its specific heat capacity is 0. 13 j/g⋅k.

Answers

The final temperature of a 84.0g metal with an initial temperature of 72°C releases 553J of heat is 395.6K.

How to calculate final temperature?

The temperature of a substance can be calculated by using the following formula:

Q = mc∆T

Where;

Q = quantity of heat absorbed or releasedm = massc = specific heat capacity∆T = change in temperature

Initial temperature in Kelvins = 72°C + 273 = 345K

The final temperature is calculated as follows;

553 = 84 × 0.13 × (T - 345)

553 = 10.92T - 3767.4

10.92T = 4320.4

T = 395.6K

Therefore, 395.6K is the final temperature of the metal.

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How is kinetic energy different from potential energy? akinetic energy is stored energy that has the capacity to do work, and potential energy is the energy of motionbkinetic energy is energy that an object possesses as a result of its location, and potential is the same as heat energyckinetic energy is energy of a moving object, whereas potential energy is energy possessed by matter as a result of its location or structuredkinetic energy can be created or destroyed, while potential energy cannot be created and destroyed

Answers

We will have that kinetic energy is different from potential energy as follows:

Kinetic energy is energy of a moving object, whereas potential energy is energy possessed by matter as a result of its location or structure. [Option C]

the power has gone out in your facility. you have a ups (uninterruptible power source) that protects your system and provides enough power to allow you to shut down safely. in this lab, your task is to immediately shut down the system using the command line.

Answers

Answer: Sorry I'm 5 days late but if you haven't gotten it, the answer is

shutdown -h now

Explanation:

-h specifies that the system halt or power off after shutdown

now forces the system to shut down without delay

(according to "4.5.4 Shutdown Facts")

What other objects in our solar systems might influence etiams movement as it travels through space? Why?

Answers

Our solar system consists of our star, the Sun, and everything bound to it by gravity – the planets Mercury, Venus, Earth, Mars, Jupiter, Saturn, Uranus, and Neptune; dwarf planets such as Pluto; dozens of moons; and millions of asteroids, comets, and meteoroids hope that helps

What are the two main differences between extrasolar planetary systems discovered to date and our solar system?.

Answers

The lack of planets in extrasolar systems is the most significant difference. The second is that relatively few of them are in an area that is conducive to living.

What is extrasolar system?

Any planetary object beyond the solar system that typically orbits a star other than the Sun is referred to as an extrasolar planet, often known as an exoplanet. Initially identified in 1992, extrasolar planets. Nearly 9,000 are awaiting additional confirmation, while more than 5,000 are known.

Interest in planetary systems derives from the potential for colonisation or possibly the emergence of life beyond what we currently understand to exist on Earth.

A first step is having planets, and thus far the systems that have been discovered do not have many. A planet must then be in an energy region that can support life as the next phase (as we know it). Earth is the only planet so far!

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Think about the jack and blake example. If you were blake, what would your reaction be and what would you have done differently?.

Answers

If one was Blake, they are bound to be surprised at the difference in their investment returns if they didn't do the math already. The differences in the results they got were due to the principles of compound interest. To do things differently would be to increase the amount invested per month and to start much earlier.

What is compound interest?

Compound interest is the adding of interest to the principal sum of a loan or deposit, or interest on interest plus interest.

When you let money collect at compound interest for an extended length of time, it grows faster than you can conceive. You may use the Rule of 72 to calculate how long it will take for your investment to double at any interest rate. Divide the interest rate by 72 to get the answer.

Compound interest accelerates the growth of your money since interest is computed on both the cumulative interest over time and the original principal. Compounding can cause a snowball effect, in which the initial investments and the income derived from those assets expand in tandem.

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Full Question:

When Jack turned 21, he decided to start investing $200 a month every year for nine years. At age 30, he decided to stop investing altogether. But his friend Blake started when Jack stopped, investing $200 a month every month starting at age 30, all the way until the ripe old age of 68.

So at age 68, who do you think had more money in their account? Let’s do the math.

At the end of nine years, Jack invested $21,600, didn’t invest another dime, and ended up with close to $2.35 million at age 68. Let’s say that again—$2.35 million! That’s the power of compound growth, friends.

And Jack’s friend Blake invested a whopping $91,200 over the course of 38 years. At age 68, he had built up $1.3 million, but he never caught up with Jack.

So how did Jack do it? He didn’t invest nearly as much as Blake did but ended up with over $1 million more. Compound growth can turn more than $20,000 invested in nine short years into almost $2.35 million over 38 years! Try our compound interest calculator which will do the calculations for you.

Question:

Think about the jack and blake example. If you were blake, what would your reaction be and what would you have done differently?.

How much work is done by a crane that lowers a 500.0 newtons of material a distance of 250.0 meters?

Answers

W= (500.0N)(250 m) =125000 J.

Newton is the international metric unit of force. A Newton is a force required to accelerate an object of mass 1 kilogram at 1 meter per second. Simply put, 1 newton is equivalent to 1-kilogram meter per square second. Newton is defined as 1 kg m/s2 this is a derived unit defined with respect to the SI base unit.

1 Newton is the force required to accelerate a mass of 1 kilogram at a speed of 1 meter per square second in the direction of the applied force. Mass is an intrinsic property of matter and is measured in kilograms. The mass of a bird is constant. A 15-gram bird is 15 grams, whether measured on the Earth, the Moon, or Mars. Weight is a measure of the force of gravity on a physical object and is measured in newtons.

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Two force sensors are connected together. One sensor is attached to a wall and the second sensor is pulled with a force of 100 N. What would the total force measured by the second force be?

Answers

The total force will be 100 N .

This is a use of Newton's Third Law, which states that "there is an equal and opposite reaction to every action." Only if the other end of the string applies a force of 100 N in the opposite direction can someone at one end of the string apply a force of 100 N to the other end.

Imagine that If suspend a 1 kilogram load from a spring scale. This has a pulling force of about 100 N. Next, take the weight off the spring scale and fasten it to a wall. Pull the scale until 1 kilogram is displayed. The weight and gravity's downward force of 100 N was the same when it was dangling. Consider what would happen if the end of the thread was linked to one spring scale and a second spring scale was attached to the wall. The spring scale on the other end will display 1 kg when you pull one of them firmly enough to get it to register that weight. They represent equal forces acting in opposition to one another.

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if you weigh 660 n on the earth, what would be your weight on the surface of a neutron star that has the same mass as our sun and a diameter of 16.0 km ? take the mass of the sun to be ms

Answers

The weight on neutron star is 5.27N


What is neutron?
The neutron is indeed a subatomic particle with the symbol n or n0 that is slightly heavier than a proton and has a neutral charge (one that is neither positive nor negative). Atomic nuclei consist of protons and neutrons. Protons and neutrons are both referred to as "nucleons" because of how similarly they behave inside the nucleus and because they both have masses that are roughly equal to one atomic mass unit. Nuclear physics explains their interactions and characteristics. Each proton and neutron is made up of three quarks, so they are not fundamental particles. The arrangement of electrons around an atom's heavy nucleus largely determines its chemical properties. The number of protons, or atomic number, determines the charge of a nucleus, which determines the electron configuration.

We know;

W = m.gn

g = Gm/r^2

= 6.674/m^3kg/s^2

Wn = 6.674(6.674x1.944/660)

= 5.27N

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after falling from rest from a height of m, a -kg ball rebounds upward, reaching a height of m. if the contact between ball and ground lasted ms, what average force was exerted on the ball?

Answers

An object is said to get an impulse when a force is delivered to it over a predetermined amount of time. Where J is the impulse, F is the force, and t is the time, the formula for the impulse's magnitude is:

An object's momentum will vary when it receives an impulse, as in: where m is the mass and v is the velocity.

We'll start by figuring out the ball's speed shortly before it bounced, assuming it fell 27 meters.

Next, given that the ball will climb 17 m, we determine the ball's velocity immediately following the bounce.

The impulse momentum theorem is now applied.

Consequently, the average force used .

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please help thanks :)

Answers

The distance travelled by the car after the first four hours of the trip is 370 km and the average speed for the first four hours of the trip is 92.5 kmph

v ( t ) = d ( t ) / t

v ( t ) = Velocity with respect to time

d ( t ) = Distance with respect to time

t = Time

For the first four hours, the following details are taken from the graph shown.

d ( 4 ) = 370 km

t = 4 hr

v ( 4 ) = 370 / 4

v ( 4 ) = 92.5 kmph

Average velocity can also be calculated using the formula V = ( u + v ) / 2 if the initial and final velocities are given. u represents initial velocity and v represents the final velocity.

Therefore,

Distance travelled in first 4 hours = 370 km

Average speed in first four hours = 92.5 kmph

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a potential difference of 2.0 v is applied across a wire of cross-sectional area 2.5 mm2. the current which passes through the wire is 3.2 x 10-3 a. what is the resistance of the wire?

Answers

The wire has a resistance of 635 ohm.

Describe resistance.

A force that opposes the flow of current is known as electrical resistance, also known as resistance to electricity. It serves as a barometer for how challenging current flow is in this way. Resistance values are expressed in ohms ().

When there is an electron difference between two terminals, electricity will flow from high to low. In opposition to that flow is resistance. As resistance rises, the current declines. The current rises as the resistance falls, which is also true.

1. V = 2 V, I = 3.2 * 10-3 A, and area = 2.5 mm2 are all possible differences.

Resistance is calculated by dividing the potential difference across the wire by the current flowing through it, which results in a value of 2/(3.2*10-3) = 625 ohm.

2. Two resistors R linked in parallel have an equivalent value of R2/2R, or R.

The net equivalent resistance is equal to 2R + R/2 = 5R/2 when this is connected in series with a resistor of resistance 2R.

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13. Look at the photo of the penguins sliding on the frozen ground. Use Newton's first law of motion to explain the motion of the penguins. Emperor penguins slide on the frozen ground in An ​

Answers

      The sum of the forces exerted on an object must be zero since, in accordance with Newton's first law of motion, an object moving at a constant speed experiences no net external force. F net = 0 F net = 0 or F = 0 are two ways to express mathematically that an object is not being affected by any net external forces.

What is the first law of motion, according to Newton?

First Law of Newton: Inertia

According to Newton's first law, unless pushed to alter its condition by the operation of an external force, every object will continue to be at rest or in uniform motion in a straight line. Inertia is the propensity to resist changes in a condition of motion.

He second equation swaps out p for mv since p=mv. V stands for the object's speed, t stands for time, and F stands for force.

Newton's second law of motion uses the inertia formula "Force = Mass * Acceleration" to describe this phenomena and property. According to the formula, heavier objects need greater force to modify their acceleration.

Newton's first law is demonstrated by the motion of a ball falling through the atmosphere or by the firing of a miniature rocket into the atmosphere. The first law can also be used to explain how a kite moves as the wind changes.

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A model airplane with mass 1.3 kg hangs from a rubber band with spring
constant 20 N/m. How much is the rubber band stretched when the model
hangs motionless?
A. 0.64 m
B. 0.082 m
C. 0.23
OD. 0.78 m
SUBMIT

Answers

When pulled, springs apply a restoring force, according to Newton's Third Law of Motion. Hooke's Law governs the relationship between the spring force, spring constant, and spring displacement.

Rubber band stretched  x = F/k = 12.74 / 20 =0.64 m

What is the Hooke's law ?Hooke's law is a law of elasticity discovered by the English scientist Robert Hooke in 1660 that states that the displacement or size of a deformation is directly proportional to the deforming force or load for relatively small deformations of an object.It is the fundamental principle underlying the manometer, spring scale, and clock balance wheel. Hooke's law is the underlying principle of seismology, acoustics, and molecular mechanics.When pulled, springs apply a restoring force, according to Newton's Third Law of Motion. Hooke's Law governs the relationship between the spring force, spring constant, and spring displacement.

The weight of the airplane hanging from the rubber band is given by the product between its mass (1.3 kg) and the acceleration due to gravity (g=9.8 m/s^2):

W = mg = 1.3* 9.8 = 12.74 N

This is the force that stretches the rubber band, according to Hooke's law:

F= kx

where

k = 20 N/m is the spring constant

x is the stretching of the spring with respect to its equilibrium position

Substituting F = 12.74 N and re-arranging the formula, we get:

x = F/k = 12.74 / 20 =0.64 m

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What is the best book about Mars?

Answers

Answer: The case of mars

Explanation: i would like you to read the case of mars as it explains everything about the planet and their livelihood and if humans can live there

Answer:

Mars: Our Future on the Red Planet

Explanation:

good book should read

a block of mass m is on a rough horizontal surface and is attached to a spring with spring constant k. the coefficient of k. the coefficient of kinetic friction between the surface and the block is mu.

Answers

The question is incomplete, however [tex]1/2\kappa (\mu^2 m^2g^2/k)[/tex] is  the potential energy stored in the spring.

of spring F=−kx

coefficient of kinetic friction F=μmg

At equilibrium, the mass and spring will both revert to their average positions.

so,−kx=μmg [tex]x=-\mu mg/k[/tex]

the potential energy stored the spring is

[tex]1/2kx^2=1/2k-\mu mg/k^2=1/2k(\mu^2m^2g^2/k)[/tex]

For short lengths, the force needed to extend a metal spring or other elastic item is exactly proportional to the length of the spring. Hooke's law describes the force the spring applies in reverse.Because the force applied by the spring is always in the opposite direction of the displacement, this force is known as a restoring force. The equation for Hooke's law contains a negative sign because of this. When a spring is pulled downward, it is stretched downward and produces an upward force.

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a carpenter tosses a shingle off a 9.4 m high roof, giving it an initial horizontal velocity of 7.2 m/s. what is the final vertical velocity of the ball? use g

Answers

The final vertical velocity of the ball is -13.7m/s

a 100kg crate is set on a 30 degree ramp that possesses some friction. How much friction is required to cause the crate to stick and not slide?

Answers

Answer: 490 N

Explanation:

a hand lens could be used to examine a(n)

Answers

Geologists use a tiny magnifying glass to examine rocks up close. In most cases, hand lenses have a 10x magnification and fold into sturdy metal housing.

Geologists can better see the textures and structures of rocks as well as minerals and fossils within them by using magnifying glass. In order to create a magnified image of an item, a magnifying glass is a convex lens. Usually, the lens is housed in a frame with a grip. A magnifying glass can be used to concentrate light and used by geologists, such as the sun's rays to produce a hot spot at the focal for lighting a fire.

Geologists are scientists who investigate the solid, liquid, and gaseous components of the planet Earth and other.

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A position versus time graph represents the motion of two objects. The line for object one has a steep slope and the line for object two has a shallow slope. Which object is moving faster?

Answers

Graph - Object one is moving faster than object two.

Graph:
In mathematics, a graph is a visual representation or diagram that shows facts or values in an ordered way. The relationships between two or more items are frequently represented by the points on a graph. Here, for instance, we can plot a graph showing the type and quantity of school supplies used by pupils in a class based on the data provided below. Each supply is first counted, and the data is then shown in a table with specific colours in a logical order.

Object one is moving faster than object two. This can be determined by looking at the slope of the lines on the graph. The steeper the slope, the faster the object is moving. In this case, object one has a steeper slope, meaning it is moving faster.

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Based on the information in the stimulus and Map 1, which statements best explain why opal is found in places such as Australia?

Answers

Opal can only be formed where an ocean comes in contact with land.

Much of the world's precious opal is mined in Australia's rugged hinterland. Here, a unique combination of geological conditions led to the formation of opals near the edge of the ancient Inner Sea. Australia is one of the world's leading opal producers and is considered to be the finest opal in the world. Australia's perfect climatic conditions are responsible for these wonderful stones.

Opal formation dates back millions of years when Australia became a new continent covered by a vast inland sea with sedimentary basins. Australian opal is produced by a chemical reaction between silicon dioxide and water. As water flows through the earth, it picks up silica from sandstone and carries this silica-rich solution into cracks and voids caused by natural faults and the decomposition of fossils.

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If a sample of gas occupies 23. 5 ml at 315 k and 14. 8 atm of pressure, what volume will it occupy at 415 k and 12. 3 atm?.

Answers

The volume occupied by gas is 37.25 ml.

Define ideal gas law?

the rule that states that the sum of the absolute temperature of the gas and the universal gas constant is equal to the product of the pressure and volume of a single gram of an ideal gas.

The ideal gas law will be used for calculation of volume. The law is as follows :

P₁V₁ / T₁ =  P₂V₂ / T₂

Keep the values in mentioned formula to find the value of final volume.

V₂ = (14.8 × 23.5 × 415) ÷ (12.3 × 315)

Performing multiplication in both numerator and denominator on Right Hand Side of the equation

V₂ = 144,337 ÷ 3874.5

Performing division on Right Hand Side of the equation

V₂ = 37.25 ml

Thus, the final volume of given sample of gas is 37.25 ml.

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1. Recall: What happened to the magnets that were brought close to each other. What type of force is this an example of?

Answers

Answer:

Explanation:

When two magnets are brought together, the opposite poles will attract one another, but the like poles will repel one another. This is similar to electric charges. Like charges repel, and unlike charges attract. Since a free hanging magnet will always face north, magnets have long been used for finding direction.

The _____ of an object is the time derivative of _____. Equivalently, it is the second time derivative of _____.

Answers

The acceleration of an object is the time derivative of velocity. Equivalently, it is the second time derivative of displacement.

What is acceleration?

The rate of change of the velocity with respect to time is known as the acceleration of the object.

The acceleration of any object = derivative of the velocity of the object with reference to the time

The velocity of any moving body = derivative of the displacement of the object with reference to the time

Thus, the acceleration of an object is the time derivative of velocity. Equivalently, it is the second time derivative of displacement.

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how do spectra show the difference between a type i supernova and a type ii supernova? why does this difference arise?

Answers

Supernovas are divided into types I and II because of the presence of hydrogen in the spectrum, that is, the light emitted in a given time.

What is a solar system?

It is a system that collection of all the planets and spatial bodies revolving around the sun because of the gravitational pull of the sun.

A type I supernova is one that mostly occurs in binary star systems with a white dwarf star as one of the stars.

Type II supernova: A star must be at least many times as massive as the sun in order to erupt as a Type II supernova.

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