The conversion of 17 degrees The conversion of 17 degrees Celsius to Fahrenheit is 62.6 degrees Fahrenheit.
The equation F = 9/5C + 32 relates temperature measured in degrees Celsius (C) to degrees Fahrenheit (F). The formula is used to convert temperatures from Celsius to Fahrenheit , and vice versa. To use the formula, you simply plug in the known temperature in Celsius (or Fahrenheit), and then solve for the unknown temperature in Fahrenheit (or Celsius).
To convert Celsius to Fahrenheit, you would use the formula F = 9/5C + 32, where C is the temperature in Celsius and F is the temperature in Fahrenheit. Thus, for 17 degrees Celsius, the formula would be F = 9/5(17) + 32 = 62.6 F.
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the number of times the heart beats in a minute
Adults typically have a resting heart rate between 60 and 100 beats per minute. A lower resting heart rate typically indicates improved cardiovascular fitness and more effective cardiac function.
What use does it serve to keep your heart rate between 60 and 100 beats per minute?Depending on the individual, a typical resting heart rate ranges from 60 to 100 beats per minute. Your heart can pump more blood with each contraction when it is healthy and functioning at a lower resting heart rate since it doesn't have to work as hard to keep a regular beat.
What is the typical resting heart rate, and why does it drop significantly when you sleep?Your heart rate changes throughout the day depending on your degree of activity and your mood. While sleep can lower heart rate, stress and activity can boost it. When sleeping, a typical heart rate is frequently between 40 and 50 beats per minute (bpm),
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Identify the type of particle that would be given off by each of the following nuclear reactions:
Americium-241 (Am-241) → Neptunium-237 (Np-237) +____
a. Alpha (2p, 2n)
b. None
c. Beta (1 e-)
d. Gamma (1n)
The type of particle that would be given off by the nuclear reaction
Americium-241 (Am-241) → Neptunium-237 (Np-237) + option (a) Alpha (2p, 2n)
Nuclear reactions involve changes in the nucleus of an atom, which can result in the emission of different types of particles. In this case, Americium-241 undergoes alpha decay, which is a type of radioactive decay where an alpha particle is emitted from the nucleus.
An alpha particle is made up of two protons and two neutrons, which means that it has a mass number of 4 and a charge of +2. When Americium-241 undergoes alpha decay, it loses an alpha particle, which results in the formation of a new nucleus. In this case, the new nucleus is Neptunium-237, which has a mass number of 237.
Since the particle that is emitted is an alpha particle, the answer is (a) Alpha (2p, 2n). Alpha particles are relatively large and heavy, and they have low penetration power, which means that they can be stopped by a few inches of air or a piece of paper.
Therefore, the correct option is (a) Alpha (2p, 2n)
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2. How do our oceans help reduce the effects of climate change felt on the land and in the atmosphere?
A: They absorb and hold heat and carbon dioxide
B: They adjust pH so that acidification does not affect the organisms living there
C: They release carbon dioxide back into the atmosphere and cool the surrounding area
D: They absorb and hold heat and carbon dioxide
They adjust pH so that acidification does not affect the organisms living in the ocean.
What is Climate change?The ocean generates 50 percent of the oxygen we need, absorbs 25 percent of all carbon dioxide emissions and captures 90 percent of the excess heat generated by these emissions.
It is not just ‘the lungs of the planet’ but also its largest ‘carbon sink’ – a vital buffer against the impacts of climate change. The ocean is central to reducing global greenhouse gas emissions and stabilizing the Earth’s climate.
However, increasing greenhouse gas emissions have affected the health of the ocean – warming and acidifying seawater – causing detrimental changes to life under water and on land, and reducing the ocean’s ability to absorb carbon dioxide and safeguard life on the planet.
Therefore, They adjust pH so that acidification does not affect the organisms living in the ocean.
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if pressure was determined using the forearm, or lower leg, would you anticipate those values to be different? if yes, explain why.
Answer:
Explanation:
If pressure was determined using the forearm or lower leg, we would expect to see different values for pressure in these two locations. This is because the two locations have different anatomical and physiological characteristics that can affect the measurement of pressure.
The forearm is closer to the heart and has a higher arterial pressure than the lower leg, which is farther away from the heart and has a lower arterial pressure. The difference in arterial pressure can lead to different readings of pressure in the forearm and lower leg. Additionally, the composition of tissue, such as muscle and bone, differs between the forearm and lower leg, which can also affect the measurement of pressure. For example, the lower leg has a larger proportion of muscle and bone, which may compress more easily than the soft tissue in the forearm, leading to lower pressure readings.
Another factor that can affect the measurement of pressure is the size of the limb being measured. A larger limb, such as the thigh, would have a larger surface area and more tissue to compress than a smaller limb, such as the forearm, which can also affect pressure measurements.
Therefore, if pressure was determined using the forearm or lower leg, we would expect to see different values for pressure in these two locations due to differences in arterial pressure, tissue composition, and limb size. It is important to use appropriate anatomical landmarks and positioning to ensure accurate and consistent measurement of pressure.
An object is 6.0 cm in front of a converging lens with a focal length of 10 cm. Use ray tracing to determine the location of the image. Express your answer using two significant figures.
The rays tracing is used to determine the image location. And the location is found to be -15 cm.
The focal length is defined as the distance between one of the loci and the center of the lens. It is written by the expression as, [tex]\frac{1}{f}=\frac{1}{u}+\frac{1}{v}[/tex]. Here the distance of the image is denoted by v and distance of the object is denoted by u, and the focal length is denoted by f.
Given the distance of the object is 6 cm and the focal length is 10 cm. Then, the location of the image is calculated as follows,
[tex]\begin{aligned}\frac{1}{10}&=\frac{1}{6}+\frac{1}{v}\\\frac{1}{v}&=\frac{1}{10}-\frac{1}{6}\\v&=\frac{10 \times 6}{6-10}\\&=-15\end{aligned}[/tex]
The required answer is -15 cm and the image is upright and virtual.
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PLEASE HURRY
two parallel plates of area 5.68*10^-3 m^2 have equal and opposite charges of 4.38*10^-11 C placed on them. what is the electric field between the plates?
The electric fields are generally produced by changing the magnetic fields or electric charges. The electric field between the plates of area 5.68 × 10⁻³ m² and opposite charges of 4.38 × 10⁻¹¹ C is 8.714 × 10⁻²⁶ N/C.
What is electric field?The electric field can be defined as the electric force per unit charge. The electric field strength is usually measured in volt per meter. So its SI unit is V/m. The electric field is radially outwards from positive charge and radially in towards negative point charge.
The electric field between two parallel plates is:
E = Q / A × ε₀
Here A = Area
Q = Charge
ε₀ = Permittivity of free space = 8.85 × 10⁻¹² C²/Nm²
Then,
E = 4.38 × 10⁻¹¹ C / 5.68 × 10⁻³ m² × 8.85 × 10⁻¹² C²/Nm²
= 8.714 × 10⁻²⁶ N/C
Thus the electric field between the plates is 8.714 × 10⁻²⁶ N/C.
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how to change in velocity to acceleration
Acceleration is the rate of change of velocity over time, and it is calculated by dividing the change in velocity by the time taken for the change to occur.
To change velocity to acceleration, the initial velocity and final velocity must be known, as well as the time taken for the change to occur.
The formula for acceleration is given by:
a = (v_f - v_i) / t
where a is acceleration, v_f is final velocity, v_i is initial velocity, and t is the time taken for the change in velocity to occur.
For example, if an object initially travels at 10 meters per second and then accelerates to a final velocity of 20 meters per second over a period of 5 seconds, the acceleration can be calculated as follows:
a = (20 - 10) / 5 = 2 meters per second squared
Therefore, the acceleration of the object is 2 meters per second squared.
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What is the gravitational force between two objects attract?
The gravitational force between two objects attract is the force of attraction that exists between any two objects in the universe.
The gravitational force between two objects is the force of attraction that exists between any two objects in the universe. This force is dependent on the mass of the two objects and the distance between them.
According to the law of universal gravitation, the force of attraction between two objects is directly proportional to the product of their masses and inversely proportional to the square of the distance between them. Mathematically, this can be expressed as:
[tex]F = G(m-1m-2)/r^2[/tex]
here F is gravitational force, G is the gravitational constant (a universal constant with a value of [tex]6.67 * 10^-^1^1 Nm^2/kg^2[/tex], m1 and m2 are the masses of the two objects, and r is the distance between the centers of their masses.
As the distance between the two objects increases, the gravitational force between them decreases. This means that the force is weaker when the objects are further apart, and stronger when they are closer together. This is because the force is spread out over a larger area as the distance increases, resulting in a weaker force per unit area.
The gravitational force between two objects is always attractive, which means that the force pulls the two objects toward each other. This is why planets are attracted to the sun, and why objects on Earth are attracted to the center of the planet. The magnitude of the gravitational force between two objects is proportional to their masses, which is why larger objects have a stronger gravitational force than smaller ones.
Overall, the gravitational force between two objects is a fundamental force of nature that plays a crucial role in the behavior of the universe, from the motion of planets to the formation of galaxies.
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one joule of energy used each second is equal to ? of work.
Exactly, 1 Joule of energy per second is what is used to define a Watt. Joules and seconds, respectively, are the SI units for time and work. A power of 1 Joule per second was used to define a Watt.
A one newton (N) force applied over a one meter distance does one joule's worth of work (or energy) (m).. To put it simply, it requires approximately 1 joule of energy to raise a 3/4 pound weight 1 foot off the ground or to drag something 1 foot using a parallel pulling force of 3/4 pound. According to this definition from physics, 1 volt is the same as 1 joule of electric potential energy divided by 1 coulomb of charge. The power unit is the watt. According to this, 1 joule of labor is completed in 1 second. It is, in essence, the ability of an appliance to use energy at a rate of 1 joule per second.
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What was the black hole in Interstellar?
The black hole in Interstellar was a fictional depiction of a supermassive black hole called Gargantua.
Explanation: In the movie Interstellar, Gargantua is a supermassive black hole located near the fictional wormhole that connects our galaxy to another. The black hole was created using scientific simulations based on the theories of physicist Kip Thorne, who served as a consultant for the film. The depiction of the black hole in the movie was intended to be as scientifically accurate as possible, taking into account the effects of gravitational lensing and time dilation.
The stunning visuals of the black hole in the movie were achieved using a combination of computer-generated graphics and practical effects, making it one of the most realistic depictions of a black hole in film history.
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Listening occurs when your ears pick up sound waves being transmitted by a speaker. (True/False)
The given statement, listening occurs when your ears pick up sound waves being transmitted by a speaker. is true, beacuse the sound waves vibrate the eardrum, which in turn sends signals to the brain that are interpreted as sound.
Listening occurs when sound waves are transmitted by a speaker and picked up by the ears. Sound waves are mechanical waves that propagate through a medium, such as air, and cause pressure changes that the ear can detect. When the sound waves reach the ear, they cause the eardrum to vibrate, which then sets off a chain of events that ultimately lead to the generation of electrical signals in the auditory nerve.
These electrical signals are then transmitted to the brain, where they are interpreted as sound. Without the sound waves being transmitted by a speaker or some other sound source, there would be nothing for the ear to detect, and hence, no listening would occur.
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what is the term for the amount of energy needed to raise the temperature of 1 kg of water by 1ºc?
A calorie is a term for the amount of energy needed to raise the temperature of 1 kg of water by 1ºc.
The calorie was originally defined as the amount of heat required at a pressure of 1 standard atmosphere to raise the temperature of 1 gram of water to 1° Celsius.
A calorie is a unit of heat energy, the International Table calorie originally defined it as 1/860 international watt-hour. It is used in engineering steam tables and is equal to 4.1868 joules.
For stating the heat content of the food the dietetics use kilocalories, i.e., the amount of heat energy that the food can yield as it passes through the body. The kilocalorie is simply called the calorie. The 15° calorie is mostly used in chemistry and physics; it is measured by maintaining 1-atmosphere pressure and heating a 1-gram water sample from 14.5°C to 15.5°C.
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what is the term for a beam of light containing waves that are aligned in the same direction?
A beam of light containing waves that are aligned in the same direction is called polarized light.
Polarization of light is a property that applies to turning waves that shows the geometrical blooming of the oscillations. In a turning wave, the way of the oscillation is ninety degrees of the motion of the wave. Plane polarized light has the two waves in which the way of vibration is similar for all waves. In circular polarization, the electric vector turns about the way of straight light as the wave progresses. If you glow a beam of polarized moonlight that is chromated light (light of only the one frequency – in different words a similar color) through a solution of a metamorphic active substance, the light that comes out, its plane of polarization is seen to have rotating or turning around. The rotating body may be clockwise or anti-clockwise.
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The diagram below shows the orbit of a satellite around the Sun.
At which point does the satellite have the least gravitational potential energy?
A. Point C
B. Point A
C. Point B
D. Point D
The point C is the point where the satellite would have the least gravitational potential energy
What is meant by gravitational potential energy?Gravitational potential energy is the energy that an object possesses by virtue of its position in a gravitational field. It is defined as the energy that an object has due to its height above a reference level in a gravitational field, such as the Earth's gravitational field.
The gravitational potential energy of an object is directly proportional to its mass, the acceleration due to gravity, and its height above the reference level. When an object is raised to a higher altitude, it gains potential energy, which can be converted into kinetic energy as it falls back down to a lower altitude. This potential energy is a form of stored energy that can be converted into other forms of energy, such as kinetic energy, thermal energy, or electrical energy, depending on the type of system in which the object is located.
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In order for a planet in an elliptical orbit around the Sun to "sweep out equal areas in equal intervals of time," it must:
a) Move slower when it is close to the Sun.
b) Move faster when it is close to the Sun.
c) Move at the same speed at all times within the orbit.
d) Have a perfectly circular orbit.
According to Kepler's second law, in order for a planet in an elliptical orbit around the Sun to "sweep out equal areas in equal intervals of time," it must move faster when it is close to sun. Hence, option b is correct.
What is second law of Kepler ?Kepler proposed three laws of planetary motion. The first law is says that every planets moves through an elliptical orbital around the sun. The second law states that "The path of the planets about the sun are elliptical in shape, with the center of the sun being located at one focus." This law is called law of equal areas.
According to Kepler's law of equal areas, an imaginary line between a planet and the sun would shift as the planet travelled along its elliptical course. The fictitious line would cut off a region as it went. Equal areas would be swept out in equal periods of time by the line.
The planet is not always at the same distance from the sun because of the elliptical nature of its orbit. The planet must move more quickly along its orbital route when it is closest to the sun in order for the area to remain constant during all time periods. Hence, option b is correct.
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you research the star sirius and find that its spectral lines are blue-shifted. what does this tell you about sirius?
The correct option is C. This tells you that Sirius has a radial velocity that is toward us.
The star Sirius is part of the Canis Major constellation.. It is the brightest star in the night sky and is often referred to as the "Dog Star" due to its position in the constellation. It is a binary star system composed of a white main sequence star designated Alpha Canis Majoris and a faint white dwarf companion known as Sirius B. Sirius is a main sequence star and is estimated to be around twice as massive as the Sun and has a surface temperature of 9,940 K.This means that the star is moving closer to us, and its spectral lines are shifted to shorter wavelengths (the blue end of the spectrum). This implies that Sirius is moving faster than the stars around it and the light from the star is Doppler shifted toward the blue end of the spectrum.
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complete question:
You research the star Sirius and find that its spectral lines are blue shifted. What does this tell you about Sirius?
A. It has a transverse velocity that is toward us.
B. Its surface temperature is higher than that of the Sun.
C. It has a radial velocity that is toward us.
D. It has a radial velocity that is away from us.
E. It has a transverse velocity that is away from us.
for object 1 to have a higher absolute temperature than object 2, object 1 must have a —
For object 1 to have a higher absolute temperature than object 2, object 1 must have a greater amount of thermal energy. The temperature of an object is a measure of the average kinetic energy of its particles, meaning how fast its atoms and molecules are moving.
Temperature is a fundamental concept in physics that describes the degree of hotness or coldness of a body or a substance. It is a measure of the average kinetic energy of the molecules in a system.
In thermodynamics, the temperature is defined as the quantity that determines the direction of heat flow between two bodies in thermal contact. The temperature of a body is typically measured using a thermometer and is expressed in units of degrees Celsius, Fahrenheit, or Kelvin.
The Kelvin scale is the most commonly used scale in physics, as it is an absolute temperature scale that starts at absolute zero, the theoretical temperature at which all molecular motion stops. On the Kelvin scale, the freezing point of water is 273.15 K, and the boiling point is 373.15 K.
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Two charged spheres separated by a distance of 4x 10-1 meters are shown below. What is the magnitude and direction of the electrostatic force between them?
Show work please.
Answer:
The magnitude of the electrostatic force between the spheres is 2.25 x 10^-5 N, and its direction is towards the center of the two spheres (i.e., it is attractive).
Explanation:
To calculate the electrostatic force between two charged spheres, we need to use Coulomb's law:
F = k * (q1 * q2) / r^2
where F is the electrostatic force, k is Coulomb's constant (9 x 10^9 N m^2/C^2), q1 and q2 are the charges of the spheres, and r is the distance between their centers.
We don't have the charges of the spheres, so let's assume they have charges of q1 = 1 C and q2 = -1 C (positive and negative charges, respectively). The distance between their centers is r = 4 x 10^-1 m.
Plugging these values into Coulomb's law, we get:
F = (9 x 10^9 N m^2/C^2) * (1 C * -1 C) / (4 x 10^-1 m)^2
F = -2.25 x 10^-5 N
The negative sign indicates that the force is attractive, since the charges are of opposite signs.
Therefore, the magnitude of the electrostatic force between the spheres is 2.25 x 10^-5 N, and its direction is towards the center of the two spheres (i.e., it is attractive).
What is the conversion of 97.6 f to c ?
97.6 °F is equivalent to 36.44 °C (rounded to two decimal places).
To convert a temperature from Fahrenheit (°F) to Celsius (°C), we can use the following formula:
°C = (°F - 32) × 5/9
where °F is the temperature in Fahrenheit and
°C is the temperature in Celsius.
Substituting the given temperature, we have:
°C = (97.6 - 32) × 5/9
°C = 65.6 × 5/9
°C = 36.44
Temperature is a physical measure that quantifies our feelings of hotness and coolness.
A thermometer is used to measure temperature.
Thermometers are calibrated in a variety of temperature scales that have traditionally been defined by various reference points and thermometric substances.
The most prevalent scales are the Celsius scale (previously known as centigrade), the Fahrenheit scale (°F), and the Kelvin scale (K), with the latter being used mostly for scientific reasons.
The kelvin is one of the International System of Units' seven basic units (SI).
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negatively charged particles emitted from a nucleus at a high speed are called__
The negatively charged particles emitted from a nucleus at a high speed are called Beta particles.
Beta particles are small, fast-moving particles that become negatively charged when atoms undergo radioactive decay. These particles are emitted by a number of unstable elements' nucleus, including strontium-90, carbon-14 and hydrogen-3 (tritium).
Beta particles, also known as beta rays or beta radiation, are high-energy, fast-moving electrons or positrons released during the radioactive decay of atomic nuclei. Beta decay occurs in two ways: - decay and + decay, which lead to the creation of electrons and positrons, respectively.
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Weathering is the breaking down of rock. Erosion is the wearing away of rock so that it is moved from its original location. Which parts of your experimental investigation modeled the weathering of rock by water? Which parts modeled the erosion of rock by water? What kinds of weathering did you model? (5 points)
The parts of an experimental investigation that model the weathering of rock by water would involve observing changes in the rocks due to exposure to water, while the parts that model the erosion of rock by water would involve observing how water moves rocks from one location to another.
What is an experimental investigation?In order to gather data to support or disprove a causal relationship, experimental investigations entail a process in which a "fair test" is designed and variables are actively manipulated, controlled, and measured. A control group is used in experimental studies that receives no treatment.
Here, the weathering of rock by water can be modeled by exposing rocks to water and observing how they change over time. For example, if you were to place rocks in a container of water and leave them for a few days or weeks, you might observe changes in the rocks due to the effects of water. These changes could include physical weathering etc.
For erosion of rock by water, this can be modeled by observing how water moves rocks from one location to another. For example, if you were to create a miniature stream by running water over a surface with rocks, you could observe how the water moves the rocks downstream and changes their location. This process can also cause physical and chemical weathering.
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how to convert 600 seconds in minutes?
The conversion of 600 seconds is equal to 10 minutes. Minutes are a unit of time, measured in increments of 1/60th of an hour. Seconds are a unit of time, measured in increments of 1/60th of a minute.
Time is a measure of the duration, between two events or points in time. It is often defined as the indefinite continued progress of existence and events that occur in an apparently irreversible succession from the past, through the present, to the future.
To convert 600 seconds into minutes, simply divide 600 seconds by 60 seconds.
60 seconds = 1 minute
600 seconds / 60 seconds = 10 minutes
One minute is equal to 60 seconds. Minutes are commonly used in everyday life to measure the duration of events and activities. One second is equal to 1/60th of a minute, or 1/3600th of an hour. Seconds are commonly used to measure the duration of very short events, such as the blink of an eye or the time it takes for a person to react.
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Which change will occur in a system with increasing entropy? A Thermal energy will increase B. Mechanical energy will increase C Elastic potential energy will decrease D Gravitational potential energy will decrease
Option A Thermal energy will increase is a change that will occur in a system with increasing entropy.
Why does thermal energy increase in a system with increasing entropy?Thermal energy increases in a system with increasing entropy because this energy is a measure f the movement of the particles which is directly associated with the chaotic state of the matter and therefore also with entropy, a measurement of the chaos in the universe.
Therefore, with this data, we can see that thermal energy increases in a system with increasing entropy due to chaos.
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Two point charges of 30 μc each are 4 cm apart. What is the electric field at the midpoint between the two charges? group of answer choices A. 5. 0 x 106 n/c B. 2. 30 x 107 n/c C. 4. 50 x 107 n/c 0 n/c
The electric field is 135 N/C at the center of the two charges, which equals [tex]4.50 * 10^7 N/C[/tex], Hence the correct option is (C).
To find the electric field at the midpoint between two point charges, we can use the formula:
[tex]E = k * (q1 + q2) / r^2[/tex]
here,
E is electric field,
k is Coulomb constant [tex](9 * 10^9 Nm^2/C^2)[/tex],
q1 and q2 are charges, and
r is distance between the charges.
In this problem, we have two charges of 30 μC each, which means q1 = q2 = 30 [tex]\mu C = 30 * 10^-^6 C[/tex]. The distance between the charges is 4 cm, or 0.04 m, so r = 0.02 m.
To find the electric field at the midpoint between the two charges, we need to find the electric field due to one of the charges at the midpoint, and then double that value to account for the contribution of the other charge.
The midpoint between the two charges is 2 cm, or 0.02 m, from each charge. Therefore, we can use the formula to find the electric field due to one of the charges at the midpoint:
[tex]E1 = k * q1 / r^2 = (9 * 10^9 Nm^2/C^2) * (30 * 10^-^6 C) / (0.02 m)^2 = 67.5 N/C[/tex]
To find the total electric field at the midpoint, we need to double this value:
[tex]E = 2 * E1 = 2 * 67.5 N/C = 135 N/C[/tex]
Therefore, the electric field at the midpoint between the two charges is 135 N/C.
Answer: C. [tex]4.50 * 10^7 N/C[/tex]
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what is temperature of space
Space is a vacuum, and since it contains no matter, it has no intrinsic temperature which varies from extremely hot to extremely cold.
Space is a vacuum, and since it contains no matter, it has no intrinsic temperature. However, temperature can be defined as a measure of the average kinetic energy of the particles in a system, and space does contain various types of energy that can affect the temperature of objects within it.
The temperature of space varies depending on the location and the conditions. For example, objects in the vicinity of the sun or other stars can experience extreme temperatures due to the intense radiation and thermal energy. In contrast, regions of space that are far away from stars or other sources of radiation can be extremely cold, approaching absolute zero (-273.15 degrees Celsius or -459.67 degrees Fahrenheit).
Additionally, objects in space can experience changes in temperature due to their proximity to other objects or the presence of an atmosphere or other insulating material. For example, the International Space Station experiences a range of temperatures, from extremely hot when it is in direct sunlight to extremely cold when it is in the Earth's shadow.
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Why is series better than parallel?
Series connection is advantageous over parallel connection as a parallel circuit consumes more power than a series circuit.
While the voltage across each appliance is the same in a parallel connection, the current passing through each appliance is different in a series connection. A parallel circuit also consumes more energy than a series circuit despite being more dependable.
The quantity of current flowing through each of the circuit's components is the primary distinction between a parallel and a series circuit. The quantity of current flowing through each component in a series circuit is the same.
In comparison to a parallel circuit, a series circuit extends the battery's life. Compared to parallel or series-parallel wiring, this technique of electrical wiring is the most straightforward, and errors are much easier to spot and fix.
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Questionis the measurement of the pull of gravity on an object.AMassBWeightCVolume
Weight is the measurement of the pull of gravity on an object. Weight is a measure of the amount of force an object experiences due to gravity.
This force is measured in units such as Newtons (N) or kilograms (kg). A heavier object will experience a greater force of gravity than a lighter object. The force of gravity on an object is determined by its mass and the acceleration due to gravity, which is a constant. Therefore, the heavier an object is, the greater the force of gravity on it, and the heavier its weight. It is the force with which the Earth or any other gravitational field pulls objects towards itself. Weight is different from mass, which is the measure of the quantity of matter in an object.
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A blue 6. 5 g six sided die is rolling with a velocity of + 12 m/s and a green 7. 5 g eight sided die is rolling in the opposite direction with a velocity of 10 m/s. Calculate the magnitude of the momentum of the two dice system? Round your answer to the nearest integer
The magnitude of the momentum of the two dice system is 153g m/s when a blue 6. 5 g six sided die and a green 7. 5 g eight sided die is rolling in the opposite directions.
Given the mass of first die (m1) = 6.5g
The mass of second die (m2) = 7.5g
The velocity of first die (v1) = 12m/s
The velocity of second die (v2) = 10m/s
The momentum of a system is the product of its mass and velocity.
Thus, the momentum of the blue 6.5 g six sided die is = m1 * v1
6.5 g x 12 m/s = 78 g m/s.
The momentum of the green 7.5 g eight sided die is = m2 * v2
7.5 g x 10 m/s = 75 g m/s.
The magnitude of the momentum of the two dice system is the sum of the momentums of the individual dice: m1 * v1 + m2 * v2
78 g m/s + 75 g m/s = 153 g m/s.
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the smallest area of the slide is seen on what magification
The smallest area on the slide is seen on high power magnification.
The purpose of a microscope is to increase magnification. Low power magnification is 40x, medium power magnification is 100x and high power magnification is 400x.
The area seen through the microscope lenses is the field of view. Compound light microscopes pass visible light through two sets of magnifying lenses to magnify specimens mounted on a glass slide and placed on the flat surface of the microscope.
The total magnification can be calculated as:
Total magnification = Ocular lens power x Objective lens power
The light source in the microscopes can be controlled at a variety of points on the microscope for clear vision. Adjusting the light source correctly before observing is very important.
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The correct question is:
The smallest area on the slide is seen on __________ power of magnification.
positive reinforcement involves _______ and negative reinforcement involves _______.
Answer:
protons and neutrons
Explanation:
protons is postive charges in the atom nucleus. and eletron is negative in the atom in the eletron cloud.
the first one is protons and 2 is eletrons
Answer:
Protons , Electrons
Explanation:
Protons are positive components of an atom and electrons are negative components of the atom.