a brick lies perilously close to the edge of the flat roof of a building. the roof edge is 50 ft above street level, and the brick has 740.0 j of potential energy with respect to street level.a. Someone edges the brick off the roof, and it begins to fall. What is the brick’s kinetic energy when it is 35 ft above street level?b. What is the brick’s kinetic energy the instant before it hits the street surface?

Answers

Answer 1

(a) The brick’s kinetic energy when it is 35 ft above street level is 221.7 J

(b) The brick’s kinetic energy the instant before it hits the street surface is 740 J.

What is the brick’s kinetic energy?

The brick’s kinetic energy when it is 35 ft above street level is calculated by applying the principle of conservation of energy as follows.

P.E = mgh

where;

m is the mass of the brickg is acceleration due to gravityh is the height of the brick above the ground = 50 ft = 15.24 m

m = P.E / gh

m = (740) / (9.8 x 15.24)

m = 4.95 kg

The  brick’s kinetic energy when it is 35 ft above street level is calculated as follows;

K.E  = ΔP.E

K.E = mg(Δh)

K.E = mg(50 ft - 35 ft)

K.E = mg(15 ft)

where;

15 ft = 4.57 m

K.E = 4.95 x 9.8 x 4.57

K.E = 221.7 J

Based on the law of conservation of energy, the brick’s kinetic energy the instant before it hits the street surface will be equal to the initial potential energy of the brick which is equal to 740 J.

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Related Questions

Wire 1 of
50 cm
in length forms a one-turn loop, and a bar magnet is dropped through. Wire 2 of
100 cm
in length forms a two-turn loop, and the same magnet is dropped through. Compare the magnitude of the induced voltages in these two cases.
v 2 =2⋅V 1​
v 1 −v 2 =0
v 1​ −v 2​ +10
v 1 =2+v 2

Answers

Induced Voltage is an electric potential that is created by an electric field, magnetic field, or current. The induced voltage is produced as a result of electromagnetic induction.

How do you get induced voltage?

The induced voltage is produced as a product of electromagnetic induction. Electromagnetic induction is the procedure of producing emf (induced voltage) by exposing a conductor into a magnetic field. The induced voltage is described by making use of Faraday's law of induction.

How is the voltage induced measured?

the voltmeter with the wire ends connected. Connect a 6 V or 12 V AC power source to the primary coil. Add turns to the transformer's secondary side, then gauge the induced voltage.

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131 53i is an artificially made radioactive isotope of iodine, produced during the operation of nuclear power plants and the detonation of nuclear bombs. exposure to high concentrations of 131 53i represents a serious risk for human health. however, small doses of this radioactive isotope are put to good use in medical studies. 131 53i is widely used in treating thyroid cancer and in diagnosis of abnormal liver and kidney function.
Part A
What is emitted when the radioactive nucleus of 131 53I decays to form the stable isotope of xenon 131 54Xe?
part B
What is the energy Q released when 131 53Idecays and 131 54Xe is formed? The atomic mass of 131 53I is 130.906118 u and the atomic mass of 131 54Xe is 130.90508 u.
Part C
The newly formed xenon nucleus is left in an excited state. Thus, when it decays to a state of lower energy a gamma ray is emitted. If the wavelength of the emitted gamma ray is 3.44×10−12 m , what is the decrease in mass, ΔmXe, of the xenon nucleus as a result of this decay?

Answers

A . The emitted particle is β⁻.

The radiactive isotope ¹³¹ I ₅₃ decays into ¹³⁵Xe₅₄ by emitting a beta particle and an information .

¹³¹ I ₅₃ --> ¹³⁵Xe₅₄+ β⁻ +v + Q

Therefore, The emitted particle is β⁻.

B .the energy Q released when 131 53I decays and 131 54 Xe is formed is 0.966MeV

Q= Δmc²

  = (130.906118u - 130.90508u - 0.32*10⁻⁴u)(931.5MeV/c²)

  = 0.966MeV

C .  the decrease in mass, ΔmXe, of the xenon nucleus is 3.87*10⁻⁴ u.

    = hc/λ

    = [tex]\frac{(6.625*10^{-34} )(3*10^{8} m/s)}{3.44*10^{-12} }[/tex]

    = 0.3605 MeVj

Δm = (0.3065)MeV([tex]\frac{1u}{931.5Mev/c^{2} }[/tex])

  =  3.87*10⁻⁴ .

Mass is a quantitative measure of inertia in physics and a fundamental property of all matter. In effect, it is the resistance that an object offers to changes in velocity or position when a force is applied. The greater the mass of an object, the smaller the change caused by an applied force.

Mass can be experimentally defined as the inertia of a body, a measure of its resistance to acceleration (change in velocity) when a net force is applied. An object's mass also determines the strength of its attraction to other bodies. size. A 2kg cast iron weight used for scales. The decrease in mass, ΔmXe, of the xenon nucleus is 3.87*10⁻⁴ u

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in comparing two unequal forces on a rigid body, is it possible to have the larger force produce less torque than the smaller force?

Answers

It is not possible to have the larger force produce less torque than the smaller force for a rigid body because they will produce the same zero torque.

What is torque?

Torque can be defined as a rotational effect caused by an applied force on an object.

In other words torque refers to the twisting force that causes motion or the the turning effect of an applied force.

Mathematically, the formula for an applied torque is given as;

τ = Fr

where;

F is the applied forcer is the perpendicular distance of the object

For a rigid body, the resultant torque applied to such body will be zero. Hence, both large force and small force will produce the same torque (twisting effect).

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Seperate visual images may appear continues due to

Answers

Separate visual images may appear continuous due to iconic memory.

option A is the correct answer.

What is Iconic memory?

Iconic memory is the visual sensory memory register which stores visual images after the extinction of a physical stimulus.

Iconic memory is part of the visual memory system, which includes long-term memory and visual short-term memory.

Images are processed in the iconic memory in the following ways. Once the stimulus of a perceived image is seen or perceived, iconic memory begins.

The automatic recognition of the visual stimulus display is processed by the occipital lobe and transferred to iconic memory, where it remains for only milliseconds before being transferred to visual working memory or being discarded.

The persistence of vision in known to be caused by iconic memory.

Thus, we can conclude that separate visual images may appear continuous due to persistence in vision caused iconic memory. So option A is the correct answer.

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the state of stress on a thin-walled cylindrical vessel can be found through equilibrium equations and the assumption that the stresses in the wall thickness have a uniform distribution. summing the forces in the longitudinal direction can obtain the axial stress. this axial stress can be represented by which of the following equations?

Answers

In a thin wall pressure vessel, two stresses exist: the longitudinal stress and the hoop stress .

A cylinder is said to be "thin walled" if its radius to thickness (r/t) ratio is at least 10. The internal pressure that is still present in this region of the cylinder is depicted by the pressure field below. The pressure remains steady during the whole cut of the cylinder. Thick wall pressure vessels are determined by the relationship between the mean radius of the vessel and the wall thickness. If this ratio is greater than 10, the vessel is categorized as a thin wall pressure vessel.

A pressure vessel with a thick wall is one in which the ratio is less than 10.

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a small block with mass 0.390 kg is attached to a string passing through a hole in a frictionless, horizontal surface (figure 1). the block is originally revolving in a circle with a radius of 0.800 m about the hole with a tangential speed of 4.00 m/s. the string is then pulled slowly from below, shortening the radius of the circle in which the block revolves. the breaking strength of the string is 30.0 n.

Answers

The radius of the circle when  stringe break is 6.93×10^-2.

What is radius?

The radius is the distance from the centre of a circle.

When finding the radius of the string at the point it breaks, the tangential

velocity is assumed to be constant.

The radius when the string breaks is 6.9.3×10^-3m

Reasons:

The mass of the small block, m = 0.130 kg

Initial radius of the circle of rotation = 0.800 m

Tangential velocity, v = 4.00 m/s

The radius of the path of rotation is reduced as the string is pulled

Breaking strength of the string = 30.0 N

Required:

The radius of the circle when the string brakes

Solution:

centripetal force =m.v^2/r

Where;

r = The radius of the circle of rotation

When the string brakes, w have;

Centripetal force = Breaking strength of the string = 30.0 N

Which gives;

r=m.v^2/centrigual force =6.93×10^-2

The radius of the circle when, the string breaks r = =6.93×10^-2.

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The distance around Earth's equator is about 24,000 miles. Use the formula in Question 4 to calculate the approximate rotational velocity at Earth's equator mph (using the fellowing formula: Velocity = Distance/Time miles/hour)

Answers

The distance around Earth's equator is about 24,000 miles. Thus, rotational velocity at Earth's equator is 1000 miles/hour.

What is rotational velocity?

Every point on an object that is revolving about an axis has the same angular velocity. The tangential velocity of points distant from the axis of rotation is, nevertheless, different from that of points closer to the axis of rotation. Rotational velocity and an angular frequency vector are other names for angular velocity.

Given that,

The distance around Earth's equator is about 24,000 miles.

Time to complete one Rotation = 24 hours.

Thus, velocity = distance/time

or, velocity = 24,000 miles / 24 hours

or, velocity = 1000 miles/hour.

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The jumper has a mass of 55 kg, and the bridge's height above the river is 150 m. The rope has an unstretched length of 8 m and stretches a distance of 5 m before bringing the jumper to a stop. Determine the maximum speed of the jumper and the spring constant of the rope. In your calculation, use g 10 N/kg. m/s Vmax k = N/m E.
Now suppose the jumper has a mass of 80 kg. Do you think the maximum speed of the jumper will increase, decrease, or stay the same? Will the rope need a larger, smaller, or the same spring constant to bring the jumper to a stop in the same distance as part D?

Answers

The speed of jumper is 54.22 m/s and spring constant of the rope is 6468N/m.

Given data:

The mass of jumper is, m = 55 kg.

The height of bridge above the river is, h = 150 m.

The length of unstretched rope is, L = 8m.

The stretched length is, L' = 5m.

In this problem, when the jumper will jump then the only potential energy of the jumper will get converted into the spring potential energy of the rope. So we can say that the relation will be,

potential energy of jumper = spring potential energy of rope.

Here, k is the spring constant.

Solving as,

mgh = 1/2 KI²

55 × 90.8 × 150 = 1/2 × k × 5 × 5k

k = 6468 N/m

Now, apply the third kinematic equation of motion to calculate the final speed of jumper as,

v² = U² + 2as

We get U= 54.22 m/s.

Thus, we can conclude that the speed of jumper is 54.22 m/s and the spring constant of the rope is 9187.5 N/m.

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if two resistors (10 ohm and 20 ohm) are connected in series, the total resistance will be less than lease one (10 ohm).

Answers

The equivalent resistance of the circuit is 30 ohms. The circuit currently has a current of 0.2 A. The potential difference across a 10 ohm resistor measures at 2 V.

Two resistors with resistances of 10 and 20 ohms are linked together in series. As a result, the equivalent resistance of the circuit is equal to the sum of the resistance of the two resistors, which is 10 ohms plus 20 ohms, or 30 ohms.

Currently, based on assertion 2;

The circuit's equivalent resistance is equal to the voltage supply across the circuit times the circuit's current, which equals the circuit's current = V/R = (6 v)/(30 ohms) = 1/5 A = 2 V.

Currently, based on assertion 2;

V/R = (voltage supplied across the circuit)/(equivalent resistance of the circuit) = (6 v)/(30 ohms) = 1/5 A = 0.2 A is the formula for the current flowing through the circuit.

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The complete question is -

If two resistors 10 ohm and 20 ohm are connected in series to a 6V battery. Calculate the current flowing through the circuit and the potential difference across 10 ohm resistor.

of the following options, which is not one of the temperaments first proposed by thomas and chess (1977)? a. the easy babyb. the difficult babyc. the slow to warm up babyd. the secure baby

Answers

The following options, the secure baby is not one of the temperaments first proposed by Thomas and chess (1977)

Thomas and Chess said that there are three general types of temperaments in children:

• Easy,

• Slow-to-warm

• Difficult.

1. Easy children are generally happy, active children from birth and adjust easily to new situations and environments.

2. Slow-to-warm children are generally mellow, less active babies from birth, and can have some difficulty adjusting to new situations.

3. Difficult children do have not regular habits and biological routines (examples-eating, sleeping), have difficulty adjusting to new conditions, and often show negative moods very intensely. As the category name suggests, these children are the most difficult for caregivers to satisfy and maintain the energy and happiness to care for on a daily basis.

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fgure 24-30 shows a system of three charged particles. if you move th particle of charge from pooint a to point d

Answers

A) Moving the three-particle system from A to D has no effect on its electric potential energy.

B) When a particle is transferred from A to D, the total electric force exerted on it produces negative work.

C) When your force is shifted from A to D, it does not produce any work.

D) The values will be zero, negative, and zero if the particle is transferred from B to C.

comprehension of the potential energy idea.

The total energy resulting because of all the charges present in the system determines the total potential energy for moving a charge from one location to another. Therefore, total potential energy is positive for two positive charges.

recognizing the idea of completed work.

or work done, we just take into account the polarity of charges. The effort completed for equal polarity is found to have a positive regardless of its value. Our force's course determines the job that is accomplished by our force. The work done will be negative for the opposing path and force direction.

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The complete question is -

The figure shows a system of three charged particles. If you move the particle of charge from point A to point D, are the following quantities positive, negative, or zero: (a) the change in the electric potential energy of the three-particle system, (b) the work done by the net electric force on the particle you moved (that is, the net force due to the other two particles), and (c) the work done by your force? (d) What are the answers to (a) through (c) if, instead, the particle is moved from B to C?

a bat flies towards a moth at 8.0 m/s while the moth is flying towards the bat at 4.6 m/s. the bat emits a sound wave of 50.4 khz. ef picup part description answer save status a. what is the frequency of the wave detected by the bat after the wave reflects off the moth? (include units with answer) format check click here to check your answer 9.09 pts.100% 2% try penalty 1 hint available

Answers

the frequency of the wave detected by the bat after the wave reflects off the moth is 54.24 KHz .

Calculation :

given ,

speed of sound(v) = 343 m/s

speed of bat(v bat) = 8.0 m/s

speed of moth (V moth) = 4.6 m/s

real frequncy of moth = 50.4 KHz

the first apparent heard by moth is :

f moth = [tex]\frac{V+Vmoth}{V-Vbat}*f[/tex]

apparent frequently heard by the bat when the sound is reflected from the moth :

fbat  :  [tex](\frac{V+Vbat}{V-Vmoth}) (\frac{V+Vmoth}{V-Vbat} )f[/tex]

f bat = [tex](\frac{343+8}{343-4.6} )(\frac{343+4.6}{343-8} )(50.4)[/tex]

= 54.24

Frequency is the number of occurrences of a repeating event per unit time. [1] For clarity, also called temporal frequency, which is different from angular frequency. Frequency is measured in Hertz (Hz) and corresponds to one event per second. Duration is the reciprocal of frequency because duration is the time interval between events. [2]

For example, if the heart beats 120 times per minute (2 hertz), the period T (the interval between repeated beats) is 0.5 seconds (60 seconds divided by 120 beats). value). Frequency is an important parameter used in science and engineering to describe the speed of vibrations and vibrational phenomena such as mechanical vibrations, audio signals (sound), radio waves, and light.

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if you were drawing an imaginary solar system which of the following would most likely be best to use to determine which planet has the most moons revolving about it?

Answers

Mass and distance between planets

The acceleration of a planet in its orbit around the Sun depends upon the mass of the Sun and the inverse square of the planet's distance from the Sun. As the planet moves further away in its orbit around the Sun, the gravitational force exerted by the Sun on the planet decreases.But a planet's size is not necessarily proportional to its mass. In the end, how massive a planet is has more to do with its composition and density. So while a planet like Mercury may be smaller in size than Jupiter's moon Ganymede or Saturn's moon Titan, it is more than twice as massive than they are.

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At temperatures near room temperature, the temperature dependence of the conductivity for intrinsic germanium is found to be given by o = CT-3/2 exp(- 2KT where C is a temperature-independent constant and T is in Kelvins. Using the above equation to calculate the intrinsic electrical conductivity of germanium at 175 °C

Answers

Df/dp<0 means rate of change of decomposition with respect to pressure increase with increasing pressure.

4f^2p/(1-f^2)= k

4f^2p=k(1-f^2)

Taking derivative with respect to p

D/dp(4f^2p)=d/dp(k(1-f^2))

4f^2+8fpdf/dp=-2kfdf/dp

(K+4p)df/dp=-2f

Df/dp=-2f/k+4p

Form eq 4f^2p/1-f^2=k

4f^2p=k(1-f^2)

F^2= k/4p+k

Put it in last eq we can say that df/dp <0

Step 1: Calculate the temperature in Kelvins. To do this, add 273.15 to the given temperature in Celsius:

T = 175 + 273.15 = 448.15 K

Step 2: Calculate the temperature-independent constant C. This can be found by plugging in the given temperature (in Kelvins) and conductivity (o) into the equation:

o = CT-3/2 exp(- 2KT

C = o / (T-3/2 exp(- 2KT))

Step 3: Plug in the values for T and C into the equation and solve for the conductivity (o):

o = CT-3/2 exp(- 2KT

o = (C)(448.15)-3/2 exp(- 2K(448.15))

o = (C)(448.15)-3/2 exp(- 896.3K)

o = (C)(448.15)-3/2 (5.5 x 10-395)

o = (C)(2.48 x 10-397)

Therefore, the intrinsic electrical conductivity of germanium at 175 °C is

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when zero external work is being done on a system, which of the following statements are necessarily true about that system?

Answers

Since there was no work done, there was also no applied force. Given that Force = Mass × Acceleration and that the mass is still not zero, the acceleration must be zero.

Describe a force:

Any action that modifies or sustains an object's motion is referred to as a force. 2) Describe how Newton's laws of motion relate to force. Newton's laws of motion are frequently used to explain the concept of force.

How does the magnitude of the force relate to the object's weight?

The weight of a item determines the size of the force. When dragged or pushed by hand, flexible materials can alter their form. When opposed to pulling, pulling a empty sledge took less force.

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this is the distance from the peak to a peak of a successive wave.; this the bottom, or lowest point, of a wave.; this is the material in which a mechanical wave travels; this is the constructive or destructive overlap of waves.; a rhythmic disturbance that carries energy through matter or space.; the point where a sound or other wave originates.; the complete range of light waves organized by wavelength/frequency.; this is the peak, or highest point, of a wave.

Answers

The peak to peak distance of successive wave is the wavelength, trough is the bottom of the wave, the wave travels in a medium, the constructive or destructive overlap of the Waves is interference, disturbance in space is called wave, the point where the wave originate is called source, the complete range of the light wave is called electromagnetic spectrum and the peak of the wave is called crest.

A wave carries a lot of information about itself.

The peak to peak distance between the two successive wave is called the wavelength of the wave.

The material in which the mechanical wave travels is called medium.

The interference of two waves can be constructive or destructive overlap of the waves.

A wave is basically a rhythmic disturbance that carries energy through matter or space where a sound or other waves originate is called a source while the complete range of light wave which when organised in a complete manner on the basis of wavelength and the frequency is said to be a electromagnetic spectrum the peak what the highest point of a wave is called the crest of the wave.

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which of the following is not a vector? the diameter of earth the force that represents your weight the unbalanced force from two people pushing a cart in opposite directions your displacement from walking five blocks to the north the velocity of a baseball in flight

Answers

The earth's diameter is not a vector.

Weight: Is it a vector quantity?

A body's weight is a measurement of the gravitational force acting on it. Given that a force has both magnitude and direction, and since we refer to such a quantity as a vector quantity, we can infer that weight is also a vector quantity.

Which of the following is not a vector object?

Response and Justification: All other quantities, with the exception of mass, have both a magnitude and a direction. Mass, however, only has a magnitude. Therefore, mass is not an illustration of a vector quantity but rather a scalar number.

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a radioactive material produces 1390 decays per minute at one time, and 4.1 h later produces 150 decays per minute. What is its half-life?

Answers

The half-life of the radioactive material is about 2.75 hours.

To determine the half-life of a radioactive substance, we need to determine the time it takes for the number of decays per minute to decrease by a factor of two.

You can set up an expression that relates decays per minute at two time points.

1390 decays/min ×(1/2)^(t/(half-life)) = 150 decays/min

where t is the elapsed time between two measurements (4.1 hours) and (1/2)^(t/(half-life)) is the decay factor, dividing the number of decays per minute by half. reduce to

By rearranging the equation, we can solve for the half-life.

half-life = t ×log(2) / log((1390/150)^(1/t))

Substituting the values ​​of t and the number of decays per minute at the two time points, we get

half-life = 4.1 ×log(2) / log((1390/150)^(1/4.1))

This simplifies to:

half-life = 4.1 × 0.693 / log (9.27)

=2.747 hours.

Therefore, the half-life of the radioactive material is about 2.75 hours.

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Which of the following experiments could be used to determine the inertial mass of a block? A. Place the block on a rough horizontal surface. Lift one end of the surface up and measure the angle the surface makes with the horizontal at the moment the block begins to slide. B. A Drop the block from different heights and measure the time of fall from each height. C. Place the block on a rough horizontal surface. Give the block an initial velocity and then let it come to rest. Measure the initial velocity and the distance the block moves in coming to rest. D. Use a spring scale to exert a force on the block. Measure the acceleration of the block and the applied force.

Answers

Parallel to the ground or to the bottom or top edge of something:

What is a perfectly horizontal surface called?The experiment that could be used to determine the inertial mass of a block is ; ( D ) Using a spring scale to exert a force on the block. Measure the acceleration of the block and the applied force.Inertial mass is the mass of a body that poses an inertial resistance to the acceleration of a body when forces are applied to it. before you inertial mass can be determined, force must be applied to the body at rest .The experiment that is suitable to determine the inertial mass is using a spring scale to apply a force on the block, then take measurement of the acceleration experienced by the block and amount of force applied.=Inertial mass =  acceleration / net force appliedHence we can conclude that The experiment that could be used to determine the inertial mass of a block is  Using a spring scale to exert a force on the block. Measure the acceleration of the block and the applied force.

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when a car moves towards a listener, the sound of its horn seems relatively group of answer choices low pitched (low frequency) high pitched (high frequency) normal (no change in frequency)

Answers

When an automobile approaches a listener, the noise of its horn appears to be somewhat higher in pitch than usual.

When someone hears the horn of an approaching automobile, the frequency you hear is higher than the frequency heard by a passenger in the car because the sound you hear has wave crests that are wider apart due to the distance that the car covers in one period.

The Doppler effect is a shift in sound wave frequency that happens when the originator of the sound waves moves relative to a motionless listener. As the generator of sound waves gets closer to the listener, the frequency & pitch of the sound increase.

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if you wanted to observe the center of our galaxy, you would need to point a telescope in the direction of the constellation. Aquarius Sagitarius

Answers

You would be required to focus a telescope towards the general direction of a constellation "Sagittarius." in order to see the galactic center.

Explain the function of telescope?

Astronomers use a telescope to observe distant things.

Curved mirrors are used by the majority of telescopes, including all large telescopes, to collect and concentrate light from of the night sky. The original telescopes employed lenses, which are simply curved pieces of clear glass, to focus light.

The two most crucial tasks of a telescope are-

(1) gathering the weak light coming from such an astronomical source and (2) concentrating all of the light into a single point or image.

The majority of astronomical objects of interest are quite dim; more the light we can gather, the better we can examine such objects.

As the galactic center is located in the direction of the Sagittarius constellation. That is why the name of the main item (Sagittarius A*) contains the word "Sagittarius".

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The complete question -

if you wanted to observe the center of our galaxy, you would need to point a telescope in the direction of the constellation.

The correct option is-

Aquarius Sagitarius

A venturi meter is measuring the flow of water in a pipe having cross-sectional area
of 0.0038 m², a throat with cross-sectional area of 0.00031 m² is connected to it.
If the pressure difference is measured to be 2.4 kPa, what is the speed of the water
in the pipe?

Answers

The speed of the water is 0.069 m/s

How do you determine the speed of the water?

To determine the speed of the water in the pipe, you can use the Bernoulli equation, which relates the pressure, velocity, and height of a fluid in a system. In this case, the Bernoulli equation can be written as:

P + 1/2*rho*v^2 + rho*g*h = constant

where P is the pressure, rho is the density of the water, v is the velocity of the water in the pipe, g is the acceleration due to gravity, and h is the height of the fluid above a reference point.

Since the pressure difference between the two points in the pipe is known, you can rearrange the Bernoulli equation to solve for the velocity of the water in the pipe:

v = √((2*(P1 - P2))/rho)

where P1 is the pressure at the throat and P2 is the pressure at the cross-sectional area of the pipe.

Plugging in the values given in the question, we have:

v = √((2*(2.4 kPa - 0))/1000 kg/m^3)

= √(4.8 kPa/1000 kg/m^3)

= √(0.0048 Pa/kg/m^3)

= 0.069 m/s

Therefore, the speed of the water in the pipe is approximately 0.069 m/s.

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Can someone help solve this, and explain if you're able to.

Answers

The net electric force on particle q₂ is determined as 27.94 N.

What is the net force of particle q₂?

The net force of particle q₂ is determined by applying Coulomb's law of electrostatic force.

The electric force between particle q₁ and q₂ is the attractive force and the magnitude is calculated as;

F₁₂ = kq₁q₂ / r²

where;

K is the Coulomb's constantq₁ is the magnitude of charge 1q₂ is the magnitude of charge 2r is the distance between charge 1 and charge 2

F₁₂ = (9 x 10⁹ x 18.1 x 10⁻⁶ x 11.2 x 10⁻⁶) / (0.28²)

F₁₂ = 23.27 N

The electric force between particle q₃ and q₂ is the attractive force and the magnitude is calculated as;

F₂₃ = kq₃q₂ / r²

F₂₃ = (9 x 10⁹ x 5.67 x 10⁻⁶ x 11.2 x 10⁻⁶) / (0.35²)

F₂₃ = 4.67 N

The net force on the particle q₂ is calculated as;

F (net) = F₁₂ + F₂₃

F (net) = 23.27 + 4.67

F (net) = 27.94 N

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9.4 the average pressure and shear stress acting on the surface of the 1-m-square flat plate are as indicated in fig. p9.4. determine the lift and drag generated. determine the lift and drag if the shear stress is neglected. compare these two sets of results.

Answers

The lift and drag if the shear stress is neglected, than the values of forces F0 = 1.1955 KN & F1 = 8.014 KN.

The average pressure and shear stress acting on the surface of the 1-m-square flat plate.

P1 = 2.3 * 3 = 6.9 KN/m^2

P2 = -1.2 KN/m^2

T1 = 7.6 * 10^-2 * 2 = 0.152 KN/m^2

T2 = 0.058 KN/m^2

Now,

Drag force

F0 = F1sinα - F2sinα + FS1cosα+FS2cosα

= P1Asinα - P2sinα + T1Acosα + T2Acosα

= Asinα(P1-P2) + Acosα(T1 + T2)

= 1.sin(T)[6.9-(-1.2)] + 1. cos (T)[0.152 + 0.058]

= 0.98714 + 0.20843

= 1.1955 KN

Lift force

F1 = F1cosα - F2cosα - FS1sinα - FS2sinα

= P1cosα - P2Acosα - T1Asinα - T2Asinα

= Acosα(P1 - P2) - A.sinα(T1 + T2)

= 1. cos(T)(6.9 - (-1.2)) - 1. sin(T)(0.152 + 0.058)

= 8.014 KN

Therefore, the lift and drag if the shear stress is neglected, than the values of forces F0 = 1.1955 KN & F1 = 8.014 KN.

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using energy considerations, calculate the average force (in n) a 60.0 kg sprinter exerts backward on the track to accelerate from 2.00 to 5.00 m/s in a distance of 25.0 m, if he encounters a headwind that exerts an average force of 30.0 n against him. (enter a number.)

Answers

The average force is 55.62 Newtons

If acceleration from 2 meters per second to 5 meters per second is necessary within 25 meters against an average force of 30 Newtons, the sprinter must exert the force of approximately 55.62 Newtons.

Force:

A force is an influence that can alter an object's motion according to physics. A force can cause an object with mass to accelerate when it changes its velocity, such as when it moves away from rest. An obvious way to describe force is as a push or a pull. A force is a vector quantity since it has both magnitude and direction. It is calculated using the newton SI unit (N). Force is denoted by the letter F.Since forces are perceived as pushes or pulls, this can offer a simple explanation of how forces are described.

Complete question:

Using energy considerations, calculate the average force (in N) a 61.0 kg sprinter exerts backward on the track to accelerate from 2.00 to 5.00 m/s in a distance of 25.0 m, if he encounters a headwind that exerts an average force of 30.0 N against him. (Enter a number.)

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light with a wavelength of 360 nm shines on a metal surface, which emits electrons. the stopping potential is measured to be 1.15 v.What is the maximum speed of emitted electrons?
Calculate the work function?
Identify the metal.

Answers

Maximum speed of emitted electrons is [tex]5.51 * 10^{-19} m/s[/tex] and work function is [tex]1.84 * 10^{-19}[/tex]eV.

We know that maximum speed of emitted electrons is given by: [tex]\frac{hc}{\alpha }[/tex]

where, h = planck's constant = [tex]6.62* 10^{-34}[/tex]

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

           [tex]\alpha[/tex] = wavelength = 360 nm = [tex]3.6 * 10^{-9} m[/tex]

Putting these values in above equation we get E = [tex]5.51 * 10^{-19} m/s[/tex] .

Also work function is given by:  W = eV

where, W = work function

            e = charge of electron = [tex]1.6 * 10^{-19} C[/tex]

            V = stopping potential = 1.15v

Putting these values in above equation we get W = [tex]1.84 * 10^{-19}[/tex] eV.

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the theory that explains why and how continents move is called; the first motion of an earthquake begins at the; tectonic plates are blocks of; the first motion of an earthquake begins at the ______________________; a terrane becomes part of a continent in a process called; why so many earthquakes right now; the most conclusive proof for continental drift was provided by; convection, ridge push, and slab pull work together to produce what?

Answers

The theory that explains about the movement of continents is called continental drift. It states that the earth's continents have moved over time, relative to each other.

Earthquake is one of the major natural disasters. It causes a huge loss of life and property around the world. It occurs due to the shaking of the surface of the earth due to the sudden release of energy in the earth's crust. The first motion of an earthquake begins at the focus. It is the place inside the earth's crust where the earthquake originates.

A terrane becomes a part of a continent in a process called accretion.

Alfred Wegener produced evidence in 1912 that continents are in motion but as he could not explain what forces could move them geologists rejected his ideas. Almost 50 years later, Harry Hess confirmed Wegener's ideas by using the evidence of seafloor spreading to explain his statements.

Convection, ridge push and slab pull work together to produce constant plate tectonic motion.

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please help and explain
King Kong carries Fay Wray up the 321-meter high Empire State Building. At the top of the skyscraper, Fay Wray’s shoe falls from her foot.

Neglecting air resistance, how long does it take for the shoe to reach the ground?

Answers

The time taken for the shoe to reach the ground is 8.1 seconds.

What is the time of motion of the shoe?

The time taken for the shoe to reach the ground is known as the time of motion of the shoe.

The value of the time of motion of the shoe is calculate using the following kinematic equation.

h = vt + ¹/₂gt²

where;

h is the height of fall of the shoev is the initial vertical velocity of the shoeg is acceleration due to gravityt is the time taken for the shoe to hit the ground

The initial vertical velocity of the shoe = 0

The new equation becomes;

h = 0 + ¹/₂gt²

t = √(2h/g)

t = √(2 x 321 / 9.8)

t = 8.1 seconds

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all points in a rigid body move with the same velocity and acceleration if the rigid body is subjected to all points in a rigid body move with the same velocity and acceleration if the rigid body is subjected to general plane motion translation rotation about a fixed axis none of the above

Answers

All points in a rigid body move with the same velocity and acceleration if the rigid body is subjected to general plane motion.

The general plane motion refers to the movement of a rigid body in two dimensions, where the body can translate (move in a straight line) and rotate about a fixed axis. When a rigid body is subjected to general plane motion, all points on the body will move with the same velocity and acceleration, as the body is rigid and does not deform.

This is in contrast to translation, which refers to movement in a straight line, and rotation about a fixed axis, which refers to rotation around a fixed point. In these cases, the points on the body will not necessarily move with the same velocity and acceleration, as the body is able to deform and rotate.

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astronomers observe galaxies and categorize them according to four different kinds of shapes: elliptical, spiral, barred-spiral, and irregular. in addition to shape, each of the four different galaxy types can be described by other common characteristics. match the following characteristics with their corresponding galaxy type.

Answers

Matching of the characteristics with their corresponding galaxy type is as follows.

Elliptical galaxy (E): Round, no disk, very little gas and dust, only old stars.

Spiral galaxy (S): Central bulge, flattened disk, spiral arms, gas, dust, young stars.

Barred-spiral galaxy (SB): Elongated central structure, flattened disk, spiral arms, gas and dust, young stars.

Irregular galaxy (Irr): Asymmetric, often with gas, dust, and young stars.

Galaxies are huge collections of gas, dust, and stars. Gravity and dark matter shape and held them together. Scientists have segmented galaxies into 4 main types. These are of spiral, elliptical, peculiar, and irregular shape.

In the given question two columns of matching are not given. The rest part of the question is

Drag the appropriate items to their respective bins.

-Round, no disk, very little gas and dust, only old stars.

-Central bulge, flattened disk, spiral arms, gas, dust, young stars.

-Elongated central structure, flattened disk, spiral arms, gas and dust, young stars.

-Asymmetric, often with gas, dust, and young stars.

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