when a solid object is completely submerged in ethyl alcohol, its apparent weight is 18.2 n and when completely submerged in water, its apparent weight is 14.8 n. determine the volume of the object. use 790 kg/m3 as the density of the ethyl alcohol and 1000 kg/m3 as the density of water.

Answers

Answer 1

A Solid object is completely submerged in ethyl alcohol and water. Its apparent weight is 18.2 N and 14.8 N respectively. The volume of the object is 1652 cm³

This problem can be solved using the Archimedes principle, that is the upward buoyant force on an object that is immersed in a fluid is equal to the weight of the displaced fluid, or, mathematically:

F = -ρgV

Where:

ρ = fluid density

g = gravitational acceleration = 9.8 m/s²

V = volume of the displaced fluid

In the given problem, let:

F1 = upward buoyant force in ethyl alcohol

F2 = upward buoyant force in water

The apparent weight is equal to the weight - buoyant force.

In ethyl alcohol:

w + F1 = 18.2

w - 790 x gV = 18.2    (Equation 1)

In water:

w + F2 = 14.8

w - 1000 x gV = 14.8    (Equation 2)

Substract equation 2 from equation 1

w - 790 x gV = 18.2

w - 1000 x gV = 14.8  _

210 x gV = 3.4

V = 3.4 / (9.8 x 210) = 0.001652 m³

   = 1652 cm³

Hence, the volume of the object is 1652 cm³

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Related Questions

when the pavement is dry, a car with a mass of 950 kg can drive as fast as 70 km/h on a curve without skidding. when it rains, the coefficient of static friction is 2/3 of the coefficient of static friction under dry conditions. how fast can a 1,100 kg car drive on the same curve while raining?

Answers

The velocity of a 1,100 kg car driving on the same curve while raining is 65.05 km/h.

The velocity depends on the kinetic energy of the car. Kinetic energy is the energy from a moving object. It can be determined as

KE = 1/2 . m . v²

where KE is kinetic energy, m is mass and v is speed.

From the question above, we know that

m₁ = 950 kg

v₁ = 70 km/h

m₂ = 1100 kg

In the same kinetic energy, the second car should move with velocity

KE₁ = KE2

1/2 . m₁ . v₁² = 1/2 . m₂ . v₂²

950 . 70² = 1100 . v₂²

v₂² = 4231.82

v₂ = 65.05 km/h

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A golfer is teeing off a 160.0 m long par-3 hole. the ball leaves with a velocity of 40.0 m/s at 50.0° to the horizontal. assuming that she hits the ball on a direct path to the hole, how far from the hole will the ball land (no bounces or rolls)?

Answers

The distance the land near hole is -0.6

As we know that the golfer hits the ball with a speed of 40 m/s at an angle of 50 degrees

so here we will have the range of the ball on the ground given as

R = v² sin2∅/g

so we will have

[tex]R =\frac{40^{2}sin(2*50) }{9.81}[/tex]

R = 160.6

So it will land at a distance of 160.6 m

so the distance from the hole is given as:

d = 160 -160.6

d = -0.6

To calculate the horizontal distance as the projectile travels Multiply the vertical height h by 2 and divide by the acceleration due to gravity g. Take the square root of the result from step 1 and multiply it by the initial projection velocity u to get the horizontal distance.

The maximum horizontal distance a baseball travels is the horizontal distance a baseball travels when returning to its initial height. An example of horizontal distance is the distance from an observer to a building, and an example of vertical distance is the height of a building. Players are given a reasonable amount of time to reach the hole and must wait an additional 10 seconds for the ball to fall into the hole. If the ball falls into the hole during this waiting time.

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Is the amount of energy required to get a spacecraft from the earth to the moon greater than, less than, or equal to the energy required to get the same spacecraft from the moon to the earth?.

Answers

The amount of energy required to get a spacecraft from the earth to the moon will be greater than the energy required to get the same spacecraft from the moon to the earth.

The reason for this is firstly it's harder to leave the Earth than the moon. There's six times the gravity and an atmosphere to push through. Even if you're just going into orbit, you need at least a medium-sized rocket.

Moreover, when we launch a rocket from the earth, it has to push all the equipment and fuel needed to get to the Moon and then back. When launching from the moon- at least with the Apollo mission model- you only need enough fuel to get two astronauts and their equipment back into lunar orbit.

Also, because Earth has an atmosphere- this lets you slow down at Earth without using any fuel.

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the wavelength of the green light from a traffic signal is centered at 522 nm. what is the frequency in hertz of this radiation? x 1014 hz

Answers

The frequency in hertz of this radiation if the wavelength of the green light from a traffic signal is centered at 522 nm is 0.575 * [tex]10^{15}[/tex] m

f = c / λ

f = Frequency

c = Speed of light

λ = Wavelength

c = 3 * [tex]10^{8}[/tex] m / s

λ = 522 nm = 522 * [tex]10^{-9}[/tex] m

f = 3 * [tex]10^{8}[/tex] / 522 * [tex]10^{-9}[/tex]

f = 0.575 * [tex]10^{15}[/tex] m

f = 0.575 Pm

Frequency is the repetition of an event per unit amount of time. The wavelength is the distance between identical points in adjacent cycles of a wave.

Therefore, the frequency in hertz of this radiation is 0.575 Pm

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You want to store 1,000 j of energy in an ideal spring when it is compressed by only 2. 5 cm. What should be the force constant (spring constant) of this spring?.

Answers

The spring constant of the given spring is equal to  3.2 × 10⁶ N/m.

An equation that represents the spring force is as follows:

F = -kx,

where x is the spring's potential deformation and k is a spring constant. The spring will revert to its previous form or position if the sign is negative.

When a spring is crushed, it stores the following amount of energy:

E = (1/2)kx²

Given that E = 1000J, the energy that the spring stores when it is squeezed.

x = 2.5 cm = 0.025 m is the length by which a spring is compressed.

1000 = (1/2)×k (0.025)(0.025)

k = 3.2 × 10⁶N/m

F = -kx. Spring constant is the name given to the proportional constant k. It represents a stiffness measurement for the spring. A spring produces a force F = -kx in the direction of its equilibrium position when it is stretched or compressed by a distance x from its equilibrium length.

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A 4.0 kg block is pushed 3.0 m at a con-
stant velocity up a vertical wall by a constant
force applied at an angle of 25.0° with the
horizontal, as shown in the figure
The acceleration of gravity is 9.81 m/s².
F
4 kg
3 m
25°
Drawing not to scale.
If the coefficient of kinetic friction between
the block and the wall is 0.20, find
b) the work done by gravity on the block

Answers

The work energy of speed is 1304.2.

What is work energy?

work energy is the most fundamental quantity of physics . Work is said to be done when a force applied to an object cause a displacement of a object.

Solution -

As per the given-

mass of runner m = 74kg

Initial velocity of runner u=4.8 m/s

Final velocity of runner v =0

Coefficient of friction ¥=0.7

Let's d be the distance moved by runner till the stop.

a- mechanical energy lost due to friction

As friction does negetive work causing the runner to stop.

As we know,

Mechanical energy lost= kinetic energy of runner

Mechanical energy lost =

1/2 mv^2 = 1/2 ×74×4.8^2=852.2

Distance move by runner-

Work done by friction = mechanical energy lost

-¥×mg×d =852.2 j

-0.7×74×9.8×d = -491.2

Solving the equation we get

1304.2.

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Danica observes a collision between two vehicles. she sees a large truck down the road. it strikes a small car parked at the side of the road. complete the library passage summarizing the collision

Answers

a) On colliding, the truck applies a force on the stationary car, and the stationary car applies an equal opposite force on the trunk.

b) The front of the truck is designed to crumple in order to lower the force impact on stationary car accelerate both vehicles passengers - which protects the well-being of the passengers.

Firstly, we see that the collision between truck and car is a head of collision.

We have required to find the force which car apply on truck in opposite direction.

Force is a defined as the product of mass of object by acceleration of an object.

According to Newton's third law of motion, whenever one object applies a force on another object , the second object also applies an equal and opposite on the first one.

This is law tells that every action has equal and opposite reaction.

So, we conclude that if a truck applies a force on a stationary car during collision then stationary car also applies equal magnitude of force on truck but in opposite direction.

Now, a crumble is applied in front of truck before collision to stationary car.

force of impact is defined as the force generated when the objects collide with each other.

when a crumble designed in front of truck , it increase the collision time between truck and stationary car. As the time increase it implies acceleration of truck become smaller.

Mathematically , a = v/t

So, the force on the trunk becomes smaller.

because of Newton's second law of motion,

F = ma

therefore, if accleration is smaller then force applied by trunk is also smaller/ lower.

this results lower the force of impact and it saves the passengers from injury by protecting them from impact.

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#Complete Question

Danica observes a collision between two vehicles. She sees a large truck driving down the road. It strikes a small car parked at the side of the road. Complete the passage summarizing the collision.

On colliding, the truck applies a force on the stationary car, and the stationary car applies - A smaller, A greater, An equal- . and opposite force on the truck. The front of the truck is designed to crumple in order to - Lower the force of impact, Apply maximum force on the stationary car, Accelerate both vehicles passengers - , which protects the well-being of the passengers

Newton’s ______ law of motion states that "an object at rest will stay at rest, and an object in motion will stay in motion, unless acted on by an unbalanced force.

Answers

Newton’s first law of motion states that "an object at rest will stay at rest, and an object in motion will stay in motion, unless acted on by an unbalanced force.

It is possible to consider Newton's first law to be the law of inertia. It helped us realise that when a body is at rest, it will remain at rest until an external force is applied to it, or if a body is travelling at a constant speed, it will stay moving until an external force is applied.

Only when net force is applied will a body move from its resting position. An illustration of this law can be seen when a passenger in a car fastens their seat belt. Both stationary and moving objects are covered by this law.

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A 535 kg roller coaster car began at rest at the top of a 93.0 m hill. now it is at the top of the first loop-de-loop. an illustration of a roller coaster track with the first hill labeled 93.0 m high and it goes down to a vertical loop with the car at the top. the loop is labeled as 62.0 m high. this roller coaster’s track is nearly frictionless, so resistance can be ignored. using g = 9.8 m/s2, what best describes the roller coaster car when it is at the top of the loop-de-loop? the car has only potential energy, so it is moving at 0 m/s. the car has both potential and kinetic energy, and it is moving at 24.6 m/s. the car has both potential and kinetic energy, and it is moving at 34.9 m/s. the car’s potential energy has all been converted to kinetic energy, so it moves at 42.7 m/s.

Answers

Using g = 9.8 m/s2, the statement that best describes the roller coaster car when it is at the top of the loop-de-loop is that The car has both potential and kinetic energy, and it is moving at 24.6 m/s. The correct answer is B) The car has both potential and kinetic energy, and it is moving at 24.6 m/s.

Potential energy is the energy that is stored in any object or system as a result of its position or component arrangement. The environment outside of the object or system, such as air or height, has no impact on it. In contrast, kinetic energy refers to the energy of moving particles inside a system or an item.

The energy an individual or an object has as a result of motion in this case, the motion of the falling apple is known as kinetic energy. Potential energy, which exists in a bike that is parked on top of a hill, is converted to kinetic energy when you start riding it downhill. These two energies are both expressed as joules.

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Answer: B (The car has both potential and kinetic energy, and it is moving at 24.6 m/s.)

Explanation:

During parkour, a person leaps at a wall and performs a flip. What must they do to change directions?.

Answers

That person has to exert a significant amount of the force on the wall to make flip happen.

When a person flips, during this process first thing he exerts a significant amount of the force on the wall, so this force will give push in opposite direction according to the third law of Newton's law.

During he applies force, he bents and that's where centripetal force will help to keep his body on the air and meanwhile he is bending more to balance himself when he touches the ground. Balancing of force is the key in this process.

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an electron beam in the middle of a set of helmholtz coils shows that the electrons travel along a circular trajectory. what is the feature of the magnetic fields in a set of helmholtz coils that lends itself to this demonstration? select the best answer.

Answers

A Helmholtz coil is a parallel pair of the same circular coils spaced one radius aside and wound so that the modern-day flows thru both coils in the same course.

A magnetic field is a vector discipline that describes the magnetic have and impact on shifting electric costs, electric currents, and magnetic substances. A moving fee in a magnetic area studies a force perpendicular to its own pace and to the magnetic discipline.

The magnetic area is an area around a magnetic fabric or a transferring electric-powered fee within which the force of magnetism acts. A magnetic field is a force field that is created by means of transferring electric-powered charges and magnetic dipoles and exerts a force on different nearby moving charges and magnetic dipoles.

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a 16.0 kg box rests on a table, and a 12.5 kg box is placed on top of it. what is the normal force (in n) that the table exerts on the 16.0 kg box?

Answers

A 16.0 kg box rests on a table, and a 12.5 kg box is placed on top of it. The normal force (in n) that the table exerts on the 16.0 kg box will be 279.3 N

mass = m1 = 16 kg

m2 = 12.5 kg

F1 ( force by the table exerted on the 16 kg box ) = ?

F1 - m1g - m2g = 0

F1 = g ( m1 + m2 )

   = 9.8 * ( 16 + 12.5 )

   = 279.3 N

A 16.0 kg box rests on a table, and a 12.5 kg box is placed on top of it. The normal force (in n) that the table exerts on the 16.0 kg box will be 279.3 N

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Are these correct for 6 and 7?

Answers

The velocity to time graph of the robots can be used to calculate the displacement and distance traveled by the robot.

6) The magnitude of the displacement of the robot for the entire time interval shown is (ii) greater in Case B

7) The rank of the distance traveled during the intervals is as follows;

[tex]\begin{vmatrix}D| &A | &C | &B | &E| &F \\\end{vmatrix}[/tex]

What is a velocity time graph?

A velocity time graph describes the changes in the motion of a straight moving object

6) The displacement is given by the area under the velocity time graph.

The area is obtained by drawing a vertical line at the tip of the graph of the velocity to time of each of the robots

The area of a triangle = 0.5 × Base length × Height

The time interval in Case A is the same as the time interval in Case B which is taken as t

The time at which the velocity of the robot is 0 in figure (i) is approximately 0.5·t

The initial velocity in Case A = -v

The final velocity = v

The area under the curve in Case A, which gives the displacement is therefore;

Displacement in Case (A) = 0.5 × 0.5·t × (-v) + 0.5 × 0.5·t × (v) = 0

The magnitude of the initial velocity of the robot in Case B is half the magnitude of the final velocity of the robot

Similarly, the time at which the velocity of the robot in Case B is 0 is a third of the total time of motion

The displacement of the robot in Case B is therefore;

Displacement = 0.5 × (1/3)·t × (0.5·v) + 0.5 × (2/3)·t × (-v) = -0.25·v·t

The magnitude of the displacement in Case B = |-0.25·v·t| = 0.25·v·t > 0

The magnitude of the displacement in Case B is > The magnitude of the displacement in Case A

The correct option is therefore (ii) greater in Case B

7) The distance traveled is given by the area bounded by the curve as follows;

A. Shape of region bounded by the graph = Rectangle

Initial velocity = Constant = -1 unit

Time of travel = 5 unit

Area = -1 × 5 = -5 units

B. Shape of graph = Triangle

Initial velocity = 1.5 units

The final velocity = 0

Change in velocity = 1.5 - 0 = 1.5

The time = 5 unit

Area = 0.5 × 5 × 1.5 = 3.75

The distance = 3.75 units

C. Starting velocity = -1.7 units

The final velocity = 0

Change in velocity = -1.7

Time = 5 units

Distance ≈ 0.5 × 5 × -1.7 = -4.25

D. Shape of graph = Rectangle

Initial velocity ≈ 1.7 units (Constant)

Time = 5 units

Distance = 5 × 1.7 = 8.5

E. Shape of graph = Two congruent triangles

Initial velocity = -1 unit

Time it takes to increase to a velocity of 0 = 2.5·t

Final velocity = 1 unit

Time it takes to increase to from a velocity of 0 to a velocity of 1 = 2.5 units

Distance = Sum of the area of the two triangles

Displacement = 0.5 × 2.5 × -1 + 0.5 × 2.5 × 1 = 0

Distance = 0.5 × 2.5 × 1 + 0.5 × 2.5 × 1 = 2.5

F. Shape of area bounded by the graph = Positive triangle

Height of the triangle = 1 unit

Base length of the triangle = 5 units

Area of the triangle = Distance = 0.5 × 5 × 1 = 2.5

The rank of the distance travelled during the intervals is therefore;

D(8.5), A(-5), C(-4.25), B(3.75), E(2.5), F(2.5)

The distance is a measure of the motion of the robot such that the forward and backward motion are added together

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Julian stands on his toes to lift his body high enough to reach a book. In this example, what do Julian's toes function
as?

Answers

According to the given statement In this example Julian's does function as Fulcrum.

What is a fulcrum and a lever?

The "arm" of the lever is the handle or bar; it is the portion that you push against or pull towards. The point upon which lever rotates or balances is known as the "fulcrum." Your hand's fingers serve as the fulcrum when using a fork. In reality, scissors are only two levers together.

Is a pulley a fulcrum?

The center of a wheel serves as the fulcrum. An outside ring of the wheels simply wraps around, such as the handle of a lever. A pulley is exactly what it sounds like—a axle and wheels with such a groove around the exterior of the wheel to hold a rope. You can accomplish more with a lever than you could on your own.

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two objects are sliding at the same speed across a wooden surface. the coefficient of kinetic friction between the first object and the surface is twice that between the second object and the surface. the distance traveled by the first object before it stops is s. the distance traveled by the second object is .

Answers

When it is given that the distance traveled by the first object before it stops is S, then the distance traveled by the second object is 2S.

What do you understand by coefficient of kinetic friction?

The ratio of the friction force to the normal force experienced by a body moving on a dry and non-smooth surface is said as the kinetic friction coefficient, μk.

Under the high velocity conditions, kinetic friction coefficient increases with the velocity. And as velocity increases so the distance also increases.

The kinetic friction formula is given as normal × friction coefficient. So, if force is increased then the normal force is not changed, due to which the friction remains constant.

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What is the correct temperature unit for the ideal gas law, as given in the manual?.

Answers

The measurement must be in kelvins. If you are given a temperature in Celsius, don't forget to add 273.15 to the answer.

Which is the ideal gas law?

The macroscopic characteristics of ideal gases are related by the optimal gas law (PV = nRT). A gas is considered to be perfect if its atoms (a) do not interact with one another and (b) occupy no area (have no volume). Because the volume of the molecules and the forces between them are so little, neither one has any impact on how the gas behaves.

Why is the ideal gas law important?

Because it links the quantity of a gas (in terms of moles) towards its pressure, volume, and temperature, the ideal law of gases is the last and most usable statement of the gas laws. In chemical and industrial calculations involving gases, the ideal gas law is a vital tool.

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which of the following situations do you think is more risky: one where a car is breaking up to -3 meters per second squared, or one where it is braking up to -8 meters per second squared? why? follow up: can you think of a situation where it can be the opposite?

Answers

Braking up to -8 meters per second squared is more risky than the other one.

What is inertia?

According to the definition of inertia, matter has the ability to remain at rest or to move uniformly in a single direction unless applied with an external force.

The ability of moving object to remain in moving  uniformly in a single direction  is called inertia of moving.

In this case, the car moving with certain velocity has inertia of moving. By certain applying brakes  of more deceleration is more risky as it works opposite to the  inertia of moving. Hence, braking up to -8 meters per second squared is more risky than breaking up to -3 meters per second squared.

As 8 meters per second squared acceleration or deceleration is larger compare to other; there may have no  situation where it can be the opposite.

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What is the accuracy of the model?.

Answers

The ratio of the total number of predictions made to the number of classifications a model correctly predicts is known as model accuracy.

It's one method of evaluating a model's performance, but by no means the only one. Accuracy offers the best insight into how well a model is performing on a particular dataset when taking into account a large number of rich measurements at once rather than any one of them individually.In many cases, a model's accuracy needs to be improved because the first pass at training it was insufficient. This is typical in machine learning; some iteration on your initial models is required because it is nearly impossible to create a model that perfectly fits all the goals you initially set out to achieve on your first try.Demerits of model accuracy :- In addition, accuracy could be increased by switching to a totally different model. Convolutional neural networks are one of the top models for classifying images, for instance, as is now widely acknowledged. One could switch to a completely different model, such as the convolutional neural network, for more accurate readings if one had started out on an image classification problem with a simple logistic regression over pixel values in the image and wasn't getting the hoped for performance.

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which of the following quantities are units of impulse? (there could be more than one correct choice.)A) N ∙ m
B) kg ∙ s/m
C) kg ∙ m/s
D) N ∙ s
E) kg ∙ m2/s2

Answers

The units of impulse are  C) kg . m/s and D) N .s. Hence, option C) and D) both are correct.

What is impulse?

Impulse determines velocity of an object after a force acts on it and this can be seen as a consequence of impulse being a change in momentum.  SI unit of impulse is Newton-seconds and dimensionally equivalent unit of momentum is kilogram meter per second (kg⋅ m/s).

In classical mechanics, impulse is the integral of force over the time interval for which it acts. As we know that force is a vector quantity, so is impulse. Impulse applied to an object produces equivalent vector change in its linear momentum and also in the resultant direction.  

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on what date was the mystery planet located farthest to the west? what was the azimuth value of the planet on this date?

Answers

The mystery planet was located farthest to the west on December 23, 2016, at an azimuth value of 63°.

The mystery planet was discovered in 2011. It is currently located in the constellation Pegasus and has an apparent magnitude of 21.9, which means that it is extremely dim and difficult to see with an amateur telescope or binoculars.

The planet's orbit is elliptical, with a semimajor axis of 0.8 AU (Earth-Sun separation) and eccentricity 0.77. The orbital period is about 5 years and 11 months, making this one of the longest-period planets ever discovered in our solar system.

It takes about 3 years for the mystery planet to complete one orbit around its star; this orbital period is slightly shorter than Jupiter's orbital period (11 years), so it will complete one orbit in less time than it takes Jupiter to complete one orbit around our sun.

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The electron transport chain consists of a series of _____ that serve as electron carriers.

Answers

A group of proteins that act as electron carriers make up the electron transport chain.

How are electrons introduced into the electron transport system?

All of the electrons that enter the transport chain come from NADH and FADH2 molecules created during the glycolysis, pyruvate oxidation, and citric acid cycle, which are early phases of cellular respiration.

Electrons are transferred from one molecule to another in the electron transport chain, and the energy released during these electron transfers is utilised to create an electrochemical gradient. The energy held in the gradient is utilized in chemiosmosis to produce ATP.

NAD +start superscript, plus, end superscript (nicotinamide adenine dinucleotide, as illustrated below) and FAD are two forms of electron carriers that are particularly significant in cellular respiration (flavin adenine dinucleotide).

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a 1.57-cm panel of a certain material can absorb 85.5% of incoming rays from a radioactive source. how thick of a panel, in cm, of that same material would you need to absorb 99.2% of the rays?

Answers

The thickness of the panel should be 1.82 cm.

According to Beer-Lambert law, the absorbance([tex]A[/tex]) of certain incident energy from a medium is given by [tex]A = \epsilon Lc[/tex] where [tex]\epsilon, L\,\text{and}\,c[/tex] denote the molar absorption coefficient, the direct length of the medium and the concentration of the medium.In this situation, since it is the same medium that applies, we can think of the formula in its proportion mode as [tex]A \propto L[/tex].Now we can apply this simplified formula to both situations and find the needed quantity as follows,

                                                        [tex]\begin{aligned}\\\\\frac{99.2\%}{85.5\%}&=\frac{L}{1.57\,cm}\\\\L&=1.82\,cm\end{aligned}[/tex]

This result is satisfying as more energy can be thought to be lost in the medium during its travel through the medium so the absorbance is higher.

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using vocabulary such as meridian, zenith, etc., describe the relationship of a star's altitude above the horizon and the observer's latitude. if you are positioned at the earth's equator, and a given star is at your zenith, what happens to that star's position (relative to you, the observer) as you walk in a straight line to the north pole? why are some stars and constellations only seen during certain seasons?

Answers

Earth has coordinates like altitude and azimuth, horizon, and zenith/nadir. Zenith is directly above you 90 degrees from the horizon. Nadir is directly below your feet.

Declination actually has a relation to latitude, as well as being measured in the same units. If you are at the north pole, the north celestial pole would be at your zenith. If you are at the earth's equator, the celestial equator will be at your zenith, at least the part that is culminating on the meridian.

The meridian is where an object moving from east to west reaches its highest point above the horizon, regardless of whether it can reach the zenith or not. When on the meridian, a star with the same declination as your latitude with being at the zenith.

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The moment of inertia for a point mass m and rotating around a radius of r is what?.

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this proves that the moment of inertia of a point mass M rotating around an axis at a distance R is the same as the moment of inertia for a thin ring of mass M and radius R measured around its central axis.

All these are possible because a thin ring can be thought of as a collection of many point masses collectively making that ring.

The moment of inertia for a point mass m and rotating around a radius of r is inertia (I).

The moment of inertia of a point mass is the product of its mass and the square of its distance from the axis of rotation. Let the mass be M and the distance be R. So, the moment of inertia is

I= M[tex]R^{2}[/tex]

Now let's consider a thin ring of mass M and radius R. The ring is made up of infinite numbers of point masses. All these point masses are at an equal distance from the center which is equal to the radius of the ring. Let's divide the ring into N numbers of point masses each having an equal mass. So, the mass of each point mass is

M= M/N

All these point masses are at an equal distance from the center of the ring. And that distance is the radius R. So, the moment of inertia of each point mass is

I’ = m[tex]R^{2}[/tex]

Therefore, the total moment of inertia of the ring is

I = I’ +_ I’ + I’ +........up to N terms

=> I = NI’

=> I=Nm[tex]R^{2}[/tex]

=> I= N (M/N)[tex]R^{2}[/tex]

=> I= M[tex]R^{2}[/tex]

Similar to how mass determines the force needed to achieve the desired acceleration, a rigid body's moment of inertia, also known as its mass moment of inertia, angular mass, second moment of mass, or, more precisely, rotational inertia, is a property that determines the torque needed to achieve a desired angular acceleration about a rotational axis.

Depending on the axis selected and the distribution of the body's mass, a change in the body's rate of rotation will need a greater torque for larger moments.

The moment of inertia for a point mass is just the mass times the square of the distance perpendicular to the axis of rotation. This is an extensive (additive) property.

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The armature of a 4-pole series dc generator has 40 slots, with 10 conductors per slot. There are 4 parallel paths in the armature winding. Every pole of the stator produces a flux of 0. 02 wb. Internal resistance of the generator is 5 ω. The generator is coupled to an internal combustion gasoline engine that provides an input torque of 10 n. M. And runs the generator at a speed of 1200 rpm. The electrical load connected to the generator draws a current of 10 a. A. What is the voltage available at the generator terminals? b. How much power is drawn by the load? c. What is the generator efficiency?.

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The generator efficiency is 60.19%

What is generator efficacy?

The efficiency of the generator and overall efficiency A generator is a device that converts mechanical energy to electrical energy. The generator efficiency, the ratio of electrical power output to mechanical power input, characterizes a generator's performance. However, no electric motor is actually 100 percent efficient. Heat, noise, and the creation of products like carbon dioxide all result in energy loss. A generator is 70% efficient if it produces 700 watts out of a 1000 watt generator.

Efficiency = (Pout/Pin)x100%
= (756/1256)x100%
=60.19%

hence, the efficacy of the generator is 60.19%.

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what is the average magnitude of the poynting vector 3.50 mi from a radio transmitter broadcasting isotropically (equally in all directions) with an average power of 260 kw?

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1.68 is the average magnitude of the poynting vector 3.50 mi from a radio transmitter broadcasting isotropically (equally in all directions) with an average power of 260 kw

Given In questionquestion :

Power of Radio Transmission(P) = 260W

Radius of Transmission Ares(r) = 3.5 metre

Expression of  average value of the magnitude of the Poynting vector(S) is ;

S = P/area of radio transmission([tex]4\pi r^{2}[/tex])

S = 260 / [4×[tex]\frac{22}{7}[/tex] ×[tex]3.5^{2}[/tex]]

S = 1.68

So,  The of average value of the magnitude of the Poynting vector is  1.68

What is  Poynting vector?

In physics, the Poynting vector represents the directional energy flux or power flow of an electromagnetic field. The SI unit of the Poynting vector is the watt per square metre; kg/s³ in base SI units. It is named after its discoverer John Henry Poynting who first derived it in 1884.

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if a simple pendulum with length 1.50 meters makes one oscillation in 2.446 seconds, what is the acceleration due to gravity at its location?

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The acceleration due to gravity at the point is 6.58 m/s

What is gravity?
In mechanics, gravity—also known as gravitation—is the constant force of attraction that pulls all matter together. It has no impact on determining the internal characteristics of common matter because it is by far the weakest known force in nature. In contrast, it governs the structures as well as evolution of stars, galaxies, and the entire cosmos through its extensive and universal action, which affects the trajectories of objects in the solar system and throughout the universe. All objects on Earth have a weight, or a gravitational pull downward, proportional to their mass, which is a result of the mass of the planet. The acceleration that gravity gives to objects falling freely serves as a gauge of its strength. The acceleration of gravity at Earth's surface is approximately 9.8 metres (32 feet) per second per second.

As Given, The length of pendulum is 1.5 m

Time taken for one oscillation is 2.446 s

Formula used to find acceleration due to gravity is g= (2π/T)²L

Now substituting the values,

g= (2×3.14/2.446)²×1

g= 6.58 m/s

From the above observation, the acceleration due to gravity at its location is 6.58 m/s.

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closing the mouth is of the mandible. opening the mouth is of the mandible. drawing the shoulders anteriorly, or protruding the mandible outward, is of the scapulae or mandible. pulling the shoulders back, as in sticking out your chest, is of the scapulae. making a conical motion with a limb, as in drawing a circle, is called .

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Making a conical motion with limb as drawing a circle is called the humerus.

What is humerus?

Humerus is the largest bone in the arm and the only bone in the upper arm. Movement of the humerus is essential for all varied activities. Humerus is the only bone in the upper arm. This bone has many uses because it is directly related to the human hand, which plays a very important role for humans.

From the statement above, we get various important information. Mandible is the lower jawbone which is the largest and strongest bone in the facial area. This bone is useful for helping humans in chewing food, speaking, and other activities that require the use of the lower jaw.

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A particle starts from rest and is acted on by a net force that does work at a rate that is proportional to the time t. The speed of the particle is proportional to:.

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A particle starts from rest and is acted on by a net force that does work at a rate that is proportional to the time t. The speed of the particle is proportional to √t.

Work is a change in kinetic energy, it should be noted. Power will therefore be determined as follows:

Power = Work / Time = force × velocity

Work = the change in kinetic energy = 1/2 mv2

If work is proportional to time:

W = t

1/2 mv2 = t

v2 = t

v (speed) = √t

Speed is the rate and direction of an object's movement, as well as the rate and duration at which an object is moving along a path. In all other positions, speed is a scalar value while pace is a vector.

Power is inversely related to t. Because the force is constant, the velocity will be a function of t. As a result, the particle's speed is proportional to √t.

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A boy pushes on a heavy box, but it does not move. What force is resisting the boy's push?.

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The force resisting the boy's push is static friction.

Forces are not always great enough to move objects. For example, a small force applied may not be able to move a heavy box. The frictional force resisting the movement of the box is the same as the applied force but in the opposite direction. This frictional force is called static friction.

As the applied force gradually increases the frictional force opposes the applied force. If the applied force is greater than the maximum static frictional force, the frictional force also increases. The applied force is the force exerted on an object by a person or other object. When a person pushes a desk across the room, a force acts on the object.

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