A fisherman is holding a fishing rod with a large fish hanging from thee line. Identify the forces acting on the rod and describe the interaction partner of each.
In summary, when a fisherman is holding a fishing rod with a large fish hanging from the line, there are multiple forces acting on the rod. The external forces are the weight of the fish and the force of air resistance, while the internal forces are the tension in the fishing line and the force that the fisherman is exerting on the rod. The interaction partners of these forces are the fishing line, the rod, the fish, and the fisherman's hand.
When a fisherman is holding a fishing rod with a large fish hanging from the line, the following forces act on the rod:
- Tension force: This is the force that is pulling on the line that is attached to the fish. The line is creating a tension force in the rod as it tries to pull the rod downwards.
- Weight force: This is the force that is acting on the rod and the fish due to gravity. The weight force is directed downwards towards the earth.
- Normal force: This is the force that is exerted by the fisherman on the rod. The normal force acts perpendicular to the surface of the rod and prevents the rod from falling down.
The interaction partner of each force acting on the rod is as follows:
- Tension force: The interaction partner of the tension force is the fish. The line is pulling on the fish and the fish is exerting a force back on the line that is equal in magnitude and opposite in direction. This is the principle of Newton's third law of motion.
- Weight force: The interaction partner of the weight force is the earth. The earth is exerting a force back on the rod and the fish that is equal in magnitude and opposite in direction. This is also the principle of Newton's third law of motion.
- Normal force: The interaction partner of the normal force is the fisherman. The fisherman is holding the rod and is exerting a force on the rod that is perpendicular to its surface. This force prevents the rod from falling down and is equal in magnitude and opposite in direction to the weight force acting on the rod.
In summary, the forces acting on the rod when a fisherman is holding a fishing rod with a large fish hanging from the line are tension force, weight force, and normal force. The interaction partners of these forces are the fish, the earth, and the fisherman, respectively.
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as a 4.4-kg object moves from (2 i 5 j) m to (6 i - 2 j) m, the constant resultant force acting on it is equal to (4 i - 3 j) n. if the speed of the object at the initial position is 4.9 m/s, what is the work done by the force, and what is its kinetic energy at its final position? as your answer in canvas, write the kinetic energy in joules.\
The kinetic energy of the object at its final position is 90.98 J.Given,Mass, m = 4.4 kg Initial position, r1 = (2 i + 5 j) m, Final position, r2 = (6 i − 2 j) m ,Initial velocity, u = 4.9 m/s ,Constant resultant force, F = (4 i − 3 j) N .To find the work done by the force,First, we need to find the displacement vector = r2 - r1= (6 i − 2 j) - (2 i + 5 j)= (6 - 2) i + (-2 - 5) j= 4 i - 7 j
Magnitude of the displacement vector,= √(4² + (-7)²)= √65 m Now, we can find the work done by the force,W = F.s= (4 i - 3 j) . (4 i - 7 j)= 4(4) + 3(7)= 37 J
Therefore, the work done by the force is 37 J.
To find the kinetic energy of the object at its final position,First, we need to find the final velocity of the object by using the work-energy principle.Initial kinetic energy, K1 = (1/2)mu²= (1/2) × 4.4 × (4.9)²= 53.98 J
Work done by the force, W = 37 JFinal kinetic energy, K2 = K1 + W= 53.98 + 37= 90.98 JTherefore, the kinetic energy of the object at its final position is 90.98 J.
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The model for the motion of the pendulum described in the background reading and OpenStax requires that several conditions are met in order to be an appropriate, accurate model. We often assume those conditions are met when we use a model, but, if our assumptions are wrong, the model may not describe what happens. Which of the following conditions, if not true/valid, would explain these experiment results? A. The pendulum is assumed to be swinging without friction. B. The string is assumed to be massless. C. The amplitude of oscillation is assumed to be small. D. All of these assumptions, if wrong, would explain the findings. E. None of these assumptions would explain the findings, regardless of whether they are true.
A, B, and C are all assumptions made in the model for the motion of a pendulum, and if any of them are not valid, the model may not accurately describe the behavior of the pendulum. Therefore, option D is correct.
The model for the motion of a pendulum assumes that the pendulum is swinging without friction, the string is massless, and the amplitude of oscillation is small. These assumptions allow us to use the simple harmonic motion equation to describe the motion of the pendulum. However, if any of these assumptions are not true, the model may not be valid.
Therefore, if any of these assumptions are not valid, the model for the motion of the pendulum may not be accurate, and the results obtained from the model may not describe the actual behavior of the pendulum.
Hence Option d IS CORRECT.
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Which of the following is on the electromagnetic spectrum? (Choose all that apply)
O sound waves
O alpha rays
O invisible light
Omicrowaves
Otonal waves
gamma rays
the options that are on the electromagnetic spectrum are invisible light (including UV radiation, X-rays, and gamma rays) and microwaves.
What is electromagnetic spectrum?
The electromagnetic spectrum includes all types of electromagnetic radiation, which are waves of energy that travel through space. Sound waves, on the other hand, are not on the electromagnetic spectrum because they are mechanical waves that require a medium to travel through, such as air or water.
Alpha rays, also known as alpha particles, are not on the electromagnetic spectrum either. They are actually particles that consist of two protons and two neutrons and are emitted by some radioactive materials.
Invisible light is a term that refers to electromagnetic radiation that is not visible to the human eye. This includes ultraviolet (UV) radiation, X-rays, and gamma rays, which have shorter wavelengths and higher energy than visible light.
Microwaves are on the electromagnetic spectrum and have longer wavelengths and lower energy than visible light. They are often used for communication and cooking food.
Otonal waves are not a known type of wave and are not on the electromagnetic spectrum.
In summary, the options that are on the electromagnetic spectrum are invisible light (including UV radiation, X-rays, and gamma rays) and microwaves.
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the car passes over the top of a vertical curve at a with a speed of 50 km/hr and then passes through the bottom of a dip at b. the radii of curvature of the road at a and b are both 70 m. find the speed of the car at b if the normal force between the road and the tires at b is twice that at a. the mass center of the car is 1.2 meter from the road.
The speed of the car at b if the normal force between the road and the tires at b is twice that at a is about 44.1 km/h.
What is Speed?Speed of the car at A = 50 km/h
Radius of curvature at A = 70 m
Radius of curvature at B = 70 m
Normal force between the road and the tires at B = 2 × Normal force between the road and the tires at A= 2N
Mass center of the car = 1.2 m
The speed of car at B be v km/h
From the conservation of energy at the point A and B, we get:
1/2 mv² + mgh = 1/2 m(50)² + mg(70 - r)
1/2 mv² + mg(70 + r) = 1/2 m(50²)
1/2 mv² = 1/2 m50² - mg(70 + r) …… equation (1)
From the conservation of energy at point B, we get:
1/2 mv² + mg(2r + 1.2) = 1/2 m(50)² + mg(70 - r)
2× Normal force between the road and the tires at A = Normal force between the road and the tires at B
Normal force between the road and the tires at B = 2 × Normal force between the road and the tires at A
Therefore, mg - 2 × N = mv²/rmg - N = mv²/2r
2mg - 4N = mv²/rmg - 2N = mv²/2r
Subtracting, we get:
N = mg/3
Normal force between the road and the tires at A = mg/3
Normal force between the road and the tires at B = 2mg/3
Normal force between the road and the tires at B = 2(mg/3) = mg/3
From the above equations, we get the value of v. Putting the values, we get:
1/2 mv² = 1/2 m(50)² - mg(70 + r) - mg(2r + 1.2) + mg(70 - r)1/2 v² = 1/2(50)² - g(70 + r) - g(2r + 1.2) + g(70 - r)v = 44.1 km/h
Therefore, the speed of the car at B is 44.1 km/h.
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two wire lie perpendicular to the plane of the paper, and equal electric currents pass through the paper in the directions shown. Point p is equidistance from the two wires.
The direction of the magnetic field produced at point P will be perpendicular to the plane of the paper, as shown in the figure. The magnetic field will be pointing into the paper. We can also determine the magnitude of the magnetic field produced at point P by using the right-hand rule. The magnitude of the magnetic field will depend on the distance of point P from the two wires and the magnitude of the electric currents in the wires.
Two wires lying perpendicular to the plane of the paper and equal electric currents pass through the paper in the directions shown. Point p is equidistant from the two wires. The problem requires us to determine the direction of the magnetic field produced at point P. We will use the right-hand rule to determine the direction of the magnetic field produced at point P.
To use the right-hand rule, we take our right hand and point our fingers in the direction of the current in wire
1. Then, we curl our fingers toward the direction of the current in wire
2. Our thumb will then point in the direction of the magnetic field produced at point P.
We can also use the right-hand rule to determine the direction of the magnetic field produced at a given point in a current-carrying wire. We know that the two wires are carrying equal electric currents, so the magnitude of the magnetic fields produced at point P by each wire will be the same. The magnetic fields produced by the two wires will add together, resulting in a net magnetic field at point P. The magnetic fields produced by the two wires will be perpendicular to each other and also perpendicular to the plane of the paper.
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because the direction of earth's motion around the sun continually changes during the year, the apparent position of a star in the sky moves in a small loop, known as the aberration of starlight. in order to better understand this phenomenon, it is sometimes helpful to use visual analogies. in these visual analogies, the car is analogous to the earth, and the rainfall is analogous to starlight. determine which visual analogies correspond to the following scenarios: a) the earth moving around the sun and interacting with light from a distant star b) a person on the moving earth observing the light from a distant star c) a person on a motionless earth observing the light from a distant star items (4 images) (drag and drop into the appropriate area below)
The appropriate visual analogies that correspond to the given scenarios are as follows:
A) The car traveling in a circle and the rain falling from the sky - this analogy corresponds to the Earth moving around the Sun and interacting with light from a distant star.
B) The car traveling in a straight line and the rain falling from the sky - this analogy corresponds to a person on the moving Earth observing the light from a distant star.
C) The car is stationary and the rain falls from the sky - this analogy corresponds to a person on a motionless Earth observing the light from a distant star.
What is a star?
As we know that the direction of the earth's motion around the sun continually changes during the year, and the apparent position of a star in the sky moves in a small loop, known as the aberration of starlight. Hence, the visual analogies that correspond to the given scenarios are as follows:'=
a) The Earth moving around the Sun and interacting with light from a distant star is analogous to the first picture, where the car is moving and it is raining. This visual analogy explains that when the Earth moves around the Sun and interacts with light from a distant star, it results in a small loop of light in the sky.
b) A person on the moving Earth observing the light from a distant star is analogous to the second picture, where a person is sitting inside the moving car and looking at the rain. This visual analogy explains that when a person is on the moving Earth and observes the light from a distant star, it creates an illusion in the sky.
c) A person on a motionless Earth observing the light from a distant star is analogous to the third picture, where a person is standing outside the car and looking at the rain. This visual analogy explains that when a person is on a motionless Earth and observes the light from a distant star, it appears as if the star is moving in a small loop in the sky.
Therefore, the appropriate visual analogies that correspond to the given scenarios are as follows: Image 1: The Earth moving around the Sun and interacting with light from a distant star image 2: A person on the moving Earth observing the light from a distant star image 3: A person on a motionless Earth observing the light from a distant star.
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Una pelota de golf sale del punto de partida, al ser golpeada, con una velocidad de 40 m/s a 65°. Si cae sobre un green ubicado 10 m mas arriba que el punto de partida, ¿cual fue el tiempo que permaneció en el aire y cuál fue la distancia horizontal recorrida respecto al palo?
We can use the motion equations to calculate how long the golf ball stayed in the air for and how far it travelled horizontally. Then, we break down the initial speed into its horizontal and vertical components:
Vx = 40 m/s times cos(65°) yields 16.94 m/s. Vy is 40 m/s times sin(65°) to get 35.59 m/s. All throughout the peloton's flight, the horizontal component of the speed remains constant, but the vertical component is affected by the peloton's acceleration because of its seriousness. We can use the following equation to determine how long the peloton stays in the air: h=Vy*t + (1/2)gt2 Where h is the highest height the peloton has ever reached (10 m), Vy is the vertical component of initial velocity (35.59 m/s), and g is the acceleration as a result of The gravity (-9.8 m/s2) and the amount of time the pelota is in the air. Taking t out of this equation gives us: g = t = (Vy sqrt(Vy2 + 2gh)) The positive solution must be used in order to determine the total amount of time the peloton is in the air: T is equal to (35.59 m/s + sqrt((35.59 m/s)2 + 2*(-9.8 m/s)*(10 m)) / (-9.8 m/s2). t = 4.03 s (aproximadamente) (aproximadamente) We can now calculate the horizontal distance travelled by the pelota during that time using the horizontal component of the initial speed: d = Vx * t d = (16.94 m/s) * (4.03 s) (4.03 s) d = 68.3 m As a result, the ball remained in the air for 4.03 seconds while travelling a horizontal distance of 68.3 metres with regard to the target.
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Riders on the Power Tower are launched skyward with an acceleration of 4g, after which they experience a period of free fall. (Figure 1)What is a 60 kg rider's apparent weight during the launch?What is a 60 kg rider's apparent weight during the period of free fall?
1.) The rider's apparent weight during the launch (launched skyward with an acceleration of 4g, after which they experience a period of free fall) = 2400 N
2.) The rider's apparent weight during the period of free fall = zero / 0
How does Power Tower operate?The Power Tower ride is an amusement ride that launches passengers high up in the air before letting them freefall down towards the ground. The ride's name is derived from the tower structure, which is used to store the ride's energy before propelling passengers skyward. After a brief period of freefall, the ride decelerates passengers and gently lowers them back to the ground. The ride is designed to provide a thrilling experience while maintaining passenger safety.
For the Power Tower ride, a 60 kg rider's apparent weight is 2400 N during the launch:
(4g x 60 kg x 9.8 m/s²
= 2400 N
And it is zero during the free fall period (due to the absence of a supporting force).
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waves of which wavelength would have the hardest time diffracting through the doorway into the room? a. 5 centimeters b. 2 meters c. 100 meters d. all of the above would easily diffract.
The waves of which wavelength would have the hardest time diffracting through the doorway into the room is 100 meters. The correct answer is Option C.
What is Diffraction?Diffraction is the spreading of waves when they pass through a gap or go around the edge of an obstacle. Diffraction occurs when a wavefront interacts with an obstacle, such as a gap or edge, and the wavefront bends around it or spreads out. This occurs for any wave, such as light waves or sound waves, and may be observed in various natural and everyday occurrences.
Diffraction of waves:
It is directly proportional to the wavelength and inversely proportional to the size of the obstacle. When the width of an obstacle is similar to the wavelength of the wave, the amount of diffraction is the highest.
What is Wavelength?Wavelength, also known as lambda, is a concept in physics that refers to the distance between two adjacent peaks or troughs of a wave. It is usually given the symbol λ and is measured in meters. The distance between two wave crests or troughs is the wavelength of a wave. Waves of varying wavelengths are present in our environment. Waves with shorter wavelengths, such as gamma rays, X-rays, and UV radiation, are high in energy but have a low range, while waves with longer wavelengths, such as radio waves and microwaves, are low in energy but have a longer range.
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1) A white dwarf is
A) a precursor to a black hole.
B) an early stage of a neutron star.
C) what most stars become when they die.
D) a brown dwarf that has exhausted its fuel for nuclear fusion.
White dwarfs are the result of the evolution of stars that are not massive enough to become neutron stars or black holes when they die and are what most stars become when they die. Option C) is correct.
A white dwarf is the final stage of evolution for low to intermediate-mass stars, including our Sun, after they have exhausted their nuclear fuel and shed their outer layers as a planetary nebula. The core of the star collapses to a very small, hot, and dense object that is supported against further collapse by electron degeneracy pressure. White dwarfs are not massive enough to become black holes or neutron stars, and they are not the same as brown dwarfs, which are failed stars that never ignited nuclear fusion in the first place. Therefore the correct answer is option C).
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In outer space will a liquid in a beaker exert a pressure on the bottom or on the sides of a beaker?
Answer:
Yo dude, if you had a beaker of liquid in outer space, it wouldn't push down on the bottom or the sides of the beaker like it would on Earth. In space, there's no gravity to make the liquid settle down, so it forms a round shape because of surface tension. So basically, the liquid would just float around in a ball inside the beaker. If you moved the beaker around, the liquid would just roll around with it like a bouncy ball.
the ball is initially accelerated downward by the gravitational force. when it reaches the floor, its quickly changes in direction, and the ball heads back upward.
When the ball is initially dropped, it is accelerated downward by gravitational force.
When the ball is released, it has potential energy that is transformed into kinetic energy as it accelerates downwards under the gravitational force.
At the moment the ball hits the ground, the kinetic energy is converted into elastic potential energy due to the compression of the ball's material.
As a result of this compression, the ball's motion is reversed, and the elastic potential energy is converted back into kinetic energy, which causes the ball to rise again.
This process of energy transformation continues until the ball reaches its maximum height, where its kinetic energy has been transformed back into potential energy.
Overall, the gravitational force plays a critical role in this process by providing the initial acceleration that allows the ball to fall toward the ground. Without this force, the ball would remain stationary in the air, unable to move in any direction.
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Mean arterial pressure within the circulatory system is constantly monitored by: a. endothelial cells
b. heart sensors
c. baroreceptors
d. ganglions
e. pressure sinuses
Mean arterial pressure within the circulatory system is constantly monitored by (c) baroreceptors.
The mean arterial pressure (MAP) refers to the average blood pressure during a single cardiac cycle. This value is vital for determining a patient's cardiovascular health and monitoring their recovery. Baroreceptors are specialized nerve cells found in the walls of some arteries that monitor blood pressure and help regulate blood flow by responding to changes in arterial pressure.
The baroreceptor system is critical for maintaining blood pressure levels within a healthy range. Baroreceptors in the arterial system constantly monitor blood pressure and respond by stimulating the sympathetic nervous system if the blood pressure is too low. They also work in conjunction with chemoreceptors in the cardiovascular system to maintain blood pressure levels within a healthy range.
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What is advantage and disadvantage of horizontal and vertical axis turbine?
Answer:
Horizontal-axis (HAWT) pros
It is more effective than vertical-axis turbines, usually, vertical-axis turbines are lower to the ground, so they can't utilize the higher wind speed that is found higher above sea level.Higher efficiency: every mechanical machine will always convert its fuel into useless energy, (i.e. sound energy). They can convert more wind power into electricity than VAWTs. This is due to the blades being perpendicular to the wind.Cons
Transportation: Due to the masts and blades being taller than VAWTs, its transportation can occasionally cost up to 25% of the equipment's price.They need a yaw control: A yaw system is the component that will be required for the direction of the rotor towards the wind.Vertical-axis (VAWT) pros
Unlike HAWTS, a yaw system is not a necessity, nor do they even need it.The turbines can be closer together.Cheaper: As they are not as elevated as their HAWT counterparts, they do not need as much money.Do not need to be pointy towards the wind: this benefit is most prominent in places where wind direction varies frequently.Cons
Decreased level of efficiency: In VAWTs, there will be more drag that will occur inside the blades when they rotate.Jake runs at 4 m/s along a train flatcar that moves at 10 m/s in the opposite direction. What is Jake's speed relative to the ground?
Jake's speed relative to the ground along a train flatcar which is moving in the opposite direction with 10m/s is 14 m/s.
What is Jake's speed?Relative motion refers to the movement of an object with respect to some other object, point, or medium, rather than measuring it in isolation.
The train flatcar moves in the opposite direction to Jake, and the question asks for Jake's speed with respect to the ground. So, by using vector subtraction the relative velocity of Jake with respect to the ground can be determined. The relative velocity can be calculated using the formula:
Relative velocity = velocity of object A - velocity of object B
here, A is Jake, and B is the train flatcar. Therefore, the relative velocity of Jake with respect to the ground is:
Relative velocity of Jake = Jake's speed - Velocity of train flatcar
The velocity of the train flatcar is given as 10 m/s, but we need to use its opposite direction as the train is moving in the opposite direction. So, the velocity of the train flatcar is -10 m/s.
By substituting the values, we get:
Relative velocity of Jake = 4 m/s - (-10 m/s)
Relative velocity of Jake = 4 m/s + 10 m/s
Relative velocity of Jake = 14 m/s
Therefore, Jake's speed relative to the ground is 14 m/s.
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A car airbag will increase the time of a collision compared to a collision where the person hits the steering wheel. In both cases (airbag and steering wheel) the person comes to rest. The advantage of the airbag is that the on the person by the airbag is less than the steering wheel would generate, and thus less injury will occur. [insert one word in the blank]
A car airbag will increase the time of a collision compared to a collision where the person hits the steering wheel. In both cases (airbag and steering wheel), the person comes to rest. The advantage of the airbag is that the force on the person by the airbag is less than the steering wheel would generate, and thus less injury will occur.
The concept of force is related to the acceleration of the body it acts on in classical mechanics. When a force is applied to an object, it alters its motion and causes it to speed up, slow down, or change direction.
Car crashes have become increasingly prevalent due to the increasing number of automobiles on the road. Car accidents are caused by a variety of factors, including distracted driving, speeding, and driving under the influence. It is crucial to follow traffic laws and drive safely to prevent car accidents.
During a car collision, the car comes to a halt due to the impact. The individuals inside the car experience a sudden deceleration. The deceleration may result in bodily harm because the occupants' bodies come to a halt at the same rate as the car. The amount of force generated is determined by the mass and velocity of the car.
An airbag is an important safety feature in automobiles that prevents injuries during a car collision. An airbag slows the vehicle occupants' motion by increasing the time of impact. This reduces the impact of the collision, which reduces injuries.
Hence, the advantage of the airbag is that the force on the person by the airbag is less than the steering wheel would generate, and thus less injury will occur.
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PLEASE HELP ME
2A
2B
2C
PLEASE
Answer:
Explanation:
no
the amount of work (in j) an external agent must do to stretch the spring 7.40 cm from its unstretched position (in joule)
The external agent must do 0.037 J of work to stretch the spring 7.40 cm from its unstretched position.
To calculate the amount of work an external agent must do to stretch a spring 7.40 cm from its unstretched position, we need to use the formula:
[tex]W = (1/2) kx^2[/tex]
where:
W = work done by the external agent (in joules)
k = spring constant (in newtons/meter)
x = displacement from the unstretched position (in meters)
First, we need to convert the displacement from centimeters to meters:
x = 7.40 cm = 0.0740 m
Let us assume the spring constant is [tex]k[/tex].
Now, we can substitute the values into the formula:
[tex]W = (1/2) kx^2[/tex]
[tex]W = (1/2) (k \ N/m) (0.0740\ m)^2[/tex]
[tex]W = 0.037k \ J[/tex]
Hence work done by the external agent is [tex]0.037k\ J[/tex].
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A simple pendulum on earth has a period of 1.00 s where theacceleration due to gravity is g = 9.81 m/s2.The pendulum is then taken to themoon, where the acceleration due to gravity is 0.17g.
(a) Would its period increase, decrease, orstay the same?
(b) Calculate the period of the pendulum on the moon.
(a) The period of the pendulum on the moon would increase. (b) The period of the pendulum on the moon can be calculated using the formula [tex]T=2\pi\sqrt\dfrac{l}{g}[/tex] where T is the period, L is the length of the pendulum, and g is the acceleration due to gravity. In this case, the period of the pendulum on the moon is approximately 8.12 times greater than the period of the pendulum on the earth..
The formula of the period of a simple pendulum is given as:
[tex]T=2\pi\sqrt\dfrac{l}{g}[/tex]
Where T is the time period of the pendulum, l is the length of the pendulum, and g is the acceleration due to gravity
.From the above formula, we can see that the period of a pendulum is inversely proportional to the square root of acceleration due to gravity.
Therefore, the period of the pendulum will be increased when the acceleration due to gravity decreased from earth to moon. The period of the pendulum on the moon would increase.
(b) The acceleration due to gravity on the moon is 0.17g. Therefore, the period of the pendulum on the moon can be determined by using the formula of the period of a simple pendulum.
[tex]T=2\pi\sqrt{\dfrac{l}{g}}\\T=2\pi\sqrt{\dfrac{l}{0.17g}[/tex]
Now, substituting the given values in the above equation:
[tex]T=2\pi\sqrt{\dfrac{l}{(0.17\times9.81)}}\\T=2\pi\sqrt{1.67l}\\T=2\pi\times1.29\sqrt{l}\\T=8.12\sqrt{l}[/tex]
Therefore, the period of the pendulum on the moon is 8.12 times greater than the period of the pendulum on the earth.
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At a major league baseball game, a pitcher delivers a 45 m/s (100.7 mph) fastball to the first player at bat, who bunts (meets the pitch with a loosely held stationary bat) so that the ball leaves the bat at only 5 m/s (11.2 mph) directly back towards the pitcher. The second player at bat also receives a 45 m/s fastball from the pitcher, but he swings his bat hard and sends the ball in a fast line drive directly back towards the pitcher at 50 m/s (111.8 mph). The mass of a standard baseball is 0.145 kg.
Calculate the impulse delivered to the baseball by the baseball bat for the first player (who bunts the ball). Assume the initial pitch is in the positive x-direction, and the ball moves in the negative x-direction after it strikes the bat.
Calculate the impulse delivered to the baseball by the baseball bat for the second player (who hits the fast line drive). Assume the initial pitch is in the positive x-direction, and the ball moves in the negative x-direction after it strikes the bat.
Calculate the magnitude of the work done by the baseball bat on the baseball for the first player (who bunts the ball). Report your answer as a positive number for positive work done on the ball or a negative number for negative work done on the ball.
Calculate the work done by the baseball bat on the baseball for the second player (who hits the fast line drive). Report your answer as a positive number for positive work done on the ball or a negative number for negative work done on the ball.
1) The impulse delivered to the baseball by the baseball bat is 40 kg-m/s.
2) The impulse delivered to the baseball by the baseball bat is 5 kg-m/s.
3) The magnitude of the work done by the baseball bat on the baseball for the first player is 1800 Joules.
4) The work done by the baseball bat on the baseball for the second player is 225 Joules.
The impulse delivered to the baseball by the baseball bat for the first player (who bunts the ball) can be calculated by subtracting the final velocity of the ball (5 m/s) from the initial velocity of the ball (45 m/s). The impulse delivered to the baseball by the baseball bat is 40 kg-m/s.
The impulse delivered to the baseball by the baseball bat for the second player (who hits the fast line drive) can be calculated by subtracting the final velocity of the ball (50 m/s) from the initial velocity of the ball (45 m/s). The impulse delivered to the baseball by the baseball bat is 5 kg-m/s.
The magnitude of the work done by the baseball bat on the baseball for the first player (who bunts the ball) can be calculated by multiplying the impulse (40 kg-m/s) by the initial velocity of the ball (45 m/s). The magnitude of the work done by the baseball bat on the baseball for the first player is 1800 Joules.
The work done by the baseball bat on the baseball for the second player (who hits the fast line drive) can be calculated by multiplying the impulse (5 kg-m/s) by the initial velocity of the ball (45 m/s). The work done by the baseball bat on the baseball for the second player is 225 Joules.
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ASTRONOMY!!
During her presentation on exoplanets, Johana explains to the class that while Proxima-b and TRAPPIST-1e may
potentially be able to support life, with each of these planets, one side of the planet always faces the sun, making that
side perpetually hot and the dark side eternally cool. What term does Michelle use to describe this?
extinguishable
tidally unlocked
tidally locked
bipolar
The term that Johana uses to describe the phenomenon where one side of the planet always faces the sun is "tidally locked".
What is TRAPPIST-1e?
TRAPPIST-1e is an exoplanet located in the TRAPPIST-1 system, which is a small, ultra-cool dwarf star located about 40 light-years away from Earth in the constellation Aquarius. TRAPPIST-1e is believed to be a rocky planet with a size and mass similar to Earth, and it orbits its star within the habitable zone, which is the region around a star where temperatures are just right for liquid water to exist on the surface. Because of these properties, TRAPPIST-1e is considered a potential candidate for the presence of life.
Johana is describing a phenomenon called "tidal locking" when she talks about Proxima-b and TRAPPIST-1e. Tidal locking occurs when a celestial object's rotation and revolution periods are equal, resulting in one side always facing the parent object. This happens because of the gravitational interaction between the two objects. In the case of planets orbiting their star, the gravitational forces of the star acting on the planet cause it to slow down its rotation over time until one side of the planet faces the star.
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Complete the following ---
Area of piston A: 0.01m^2
Force applied on piston A: 6N
Pressure in the liquid: ?
Area of piston B: 0.1cm^2
Force produced by piston B: ?
(note: there's a difference of m^2 and cm^2 in the areas so it's difficult for me...)
Answer: The force produced by piston B is 0.006 N.
Explanation:
No problem! We can convert the area of piston B to square meters to make the units consistent:
Area of piston B = 0.1 cm^2 = 0.1 x (0.01 m/cm)^2 = 0.00001 m^2
Now we can use the formula:
pressure = force/area
For piston A, we have:
pressure = 6 N / 0.01 m^2 = 600 Pa
So the pressure in the liquid is 600 Pa.
To find the force produced by piston B, we rearrange the formula:
force = pressure x area
Using the pressure we just found and the area of piston B, we get:
force = 600 Pa x 0.00001 m^2 = 0.006 N
So the force produced by piston B is 0.006 N.
The odometer on an automobile actually counts axle turns and converts the number of turns to miles based on knowledge that the diameter of the tires is 0.62m.How many turns does the axle make when traveling 10miles?
The axle makes 8302 turns when traveling 10 miles.
If the diameter of the tires is 0.62m, then the radius would be 0.31m (half of the diameter). The circumference of the tire is 2πr, which would be 1.94m (approx) here.
Since each revolution of the tire would make the car travel a distance equal to the circumference of the tire, we can say that each revolution would make the car travel 1.94m. Thus, to travel 10 miles (16093.44 m), the number of revolutions would be:
Number of revolutions = Distance traveled / Distance covered in one revolution= 16093.44 / 1.94= 8302 (approx)Therefore, the axle makes 8302 turns when traveling 10 miles.
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Which is a correct statement of the second law of thermodynamics? Entropy of the universe is constantly increasing. Nature allows the conversion of potential energy into kinetic energy, but not vice versa. Heat is the only form of energy that can be converted into work with 100% efficiency. Energy cannot be created or destroyed, but it can change form
The correct statement in regard to second law of thermodynamics is in any natural process, the entropy of the universe must increase, which means option A is the right answer.
Thermodynamics is the study of motion of thermal energy. The second law of thermodynamics states that entropy of any system in universe either increase or remains constant. It cannot be negative because when energy is transferred from one system to another or it transforms its nature, some part of it is supposed to be lost. This happens in the form of heat or light energy.
Entropy is defined as the system's thermal energy per unit temperature that is now not available for doing useful work. It can also be defined as the measure of disorderliness and randomness.
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Listed following are characteristics that can identify a planet as either terrestrial or jovian. Match these to the appropriate category. Consider only the planets of our own solar system.
Terrestrial planets are those within our Solar System composed of silicate rocks or metals, while Jovian planets are gas giants composed mainly of hydrogen and helium.
Terrestrial Planets:
- Small size
- High density
- Rocky or metallic composition
- Solid surfaces
Jovian Planets:
- Large size
- Low density
- Gas and liquid composition
- No solid surfaces
The four terrestrial planets in our Solar System are Mercury, Venus, Earth, and Mars. They have small sizes and high densities, and are composed mainly of silicate rocks or metals, with solid surfaces.
The four jovian planets are Jupiter, Saturn, Uranus, and Neptune. They have large sizes and low densities, and are composed mainly of hydrogen and helium gas and liquid. They do not have solid surfaces.
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Complete question:
identify a planet as either terrestrial or jovian. Match the planet to the appropriate category. Consider only the planets of our own solar system.
two identical point charges q 7.20 x 10 6 c are fixed at diagonally opposite corners of a square with sides of length 0.480 m a negative test charge q0 2.40 x 10 8 c with a mass of 6.60 x 10 8 kg is released from rest at an empty corner of the square determine the speed of the test charge when it reaches the center of the square use conservation of energy
Therefore, the speed of the test charge when it reaches the center of the square is 50.14 m/s
To find the speed of the test charge when it reaches the center of the square, use conservation of energy. The initial potential energy (PE) of the test charge is 0 as it is released from rest. The total energy (E) of the test charge is conserved as it moves towards the center of the square. Therefore, the initial kinetic energy (KE) of the test charge must equal the PE of the test charge when it reaches the center of the square.
The PE of the test charge at the center of the square is the sum of the electrostatic potential energy between the test charge and the two point charges, which is given by:
PE = (q0)(q1)/(4πɛ0L) + (q0)(q2)/(4πɛ0L)
Where L is the length of the side of the square and q1 and q2 are the charges of the two point charges.
We can then calculate the initial Kinetic energy of the test charge using the formula:
KE = 1/2mv2
Where m is the mass of the test charge and v is the speed of the test charge. We can equate the PE and KE to find the speed of the test charge:
KE = PE
1/2mv2 = (q0)(q1)/(4πɛ0L) + (q0)(q2)/(4πɛ0L)
v2 = 2(q0)(q1)/(m4πɛ0L) + 2(q0)(q2)/(m4πɛ0L)
v = √(2(q0)(q1)/(m4πɛ0L) + 2(q0)(q2)/(m4πɛ0L))
Substituting the values given in the question, we get:
v = √(2(2.40 x 108 C)(7.20 x 106 C)/(6.60 x 108 kg x 4π x 8.85 x 10-12 C2/Nm2 x 0.480 m) + 2(2.40 x 108 C)(7.20 x 106 C)/(6.60 x 108 kg x 4π x 8.85 x 10-12 C2/Nm2 x 0.480 m))
v = 50.14 m/s
Therefore, the speed of the test charge when it reaches the center of the square is 50.14 m/s.
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What is the electromagnetic force?A. a force that governs how elements break down naturallyB. a force that holds atomic nuclei togetherC. a force that attracts objects with mass towards each otherD. a force that acts on charged particles
Option D. The electromagnetic force is a force that acts on charged particles.
The electromagnetic force is a fundamental force of nature that acts on charged particles. It is one of the four fundamental forces of nature, the other three being the strong nuclear force, the weak nuclear force, and gravity. The electromagnetic force is responsible for all electromagnetic phenomena, including electricity, magnetism, and electromagnetic radiation. Charge is the property of matter that is responsible for the electromagnetic force.
All particles that have a charge, including electrons and protons, interact with the electromagnetic force. The electromagnetic force is mediated by the electromagnetic field, which is created by charged particles. When charged particles move, they create electromagnetic waves, which can travel through space at the speed of light.
The electromagnetic force is responsible for a wide range of phenomena, including the structure of atoms, the behavior of magnets, and the behavior of light. It is a very strong force, much stronger than the weak nuclear force and gravity, but weaker than the strong nuclear force. The electromagnetic force is responsible for the repulsion between like charges and the attraction between opposite charges. It is also responsible for the behavior of magnetic materials, such as iron, which can be magnetized by an external magnetic field.
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A ball of mass, m is thrown straight up and rises h after leaving your hand, it momentarily stops. Acceleration due to gravity g is downward. Ignore air resistance. Part A (5 points): If the ball is the system, and the Earth is the surroundings, what is the change in potential energy, ΔUsys of the system, and what is the work done, Wsurr by the surroundings ? Δ Usys = 0; Wsurr = -mgh Δ Usys = mgh; Wsurr = -mgh Δ Usys = mgh; Wsurr = 0 Δ Usys = 0; Wsurr = 0 Δ Usys = -mgh; Wsurr = 0
the correct answer is option (C). If the ball is the system, and the Earth is the surroundings, the change in potential energy, ΔUsys of the system is mgh, and the work done, Wsurr by the surroundings is 0. Therefore.
In this case, the ball is hurled straight up, reaching a height of h before briefly coming to a stop. We assume the ball to be the system and the Earth to be the surroundings in order to calculate the change in potential energy of the system and the work performed by the surroundings. The system's change in potential energy is mgh because the ball's gravitational potential energy grows as it ascends to a height of h. Yet, because the environment is not subjected to any labour from the ball during its rise and descent, there is no work done by the environment.
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why can't we fall safely with the help of parachute towards the moon?
Answer:
The Moon has no atmosphere so there is no drag on the capsule to slow its descent; parachutes will not work. Lunar landing vehicles were equipped with rocket engines that were fired by the pilot to provide lift — thrust in the opposite direction of descent — during the rapid descent to the Moon's surface.
The moon does not harbor any appreciable atmosphere. Therefore no parachute, no matter how large, will operate properly on the moon. Air is required in order to inflate the parachute and slow down the descending object. Remember geologist Harrison Schmidt, the ONLY scientist to visit the moon? He was one of the last two people to ever touch the lunar surface. (Apollo 17). He demonstrated what would happen when two objects of different masses were dropped simultaneously from about five feet above the moon’s surface. He dropped a hammer and a feather. They fell at the same rate and hit the surface at exactly the same instant! There was no atmosphere to cause the feather to flutter. Note: Careful observers may notice that in videos of the the descending Apollo Lunar Lander (“The Eagle has landed”) lunar dust is kicked up by the craft’s engines. The dust moves out in straight lines, not in billowing clouds! PROOF that the film was made in the airless void of the moon and NOT in some clandestine film studio on Earth. No moon landing hoax!