If your automobile tyre needs 30 psi of pressure, it would roughly translate to 2.068427 kg/cm^2.
1 psi is equal to 6.894757 kPa, and 1 kPa is equal to 0.01 kg/cm^2.
So, 30 psi would equal:
30 psi * 6.894757 kPa/psi = 206.8427 kPa
And then:
206.8427 kPa * 0.01 kg/cm^2/kPa = 2.068427 kg/cm^2
The force delivered perpendicularly to an object's surface per unit area across which that force is dispersed is known as pressure. In comparison to the surrounding pressure, gauge pressure is the pressure. Pressure is expressed using a variety of units.
The Imperial method of measuring measures pressure in pounds per square inch (PSI). PSI is frequently used to calculate the pressure of liquids or gases (hydraulic pressure).
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One function of the circuitry in an isolated input board is to protect the patient from electrical shock by limiting the current flow to ______ at the patient leads when 120Vrms is applied to the inputs.A- 60 uAB- 20 uAC- 100 uAD- 1 uA
One function of the circuitry in an isolated input board is to protect the patient from electrical shock by limiting the current flow to (60 uA) i.e. 60 microamperes at the patient leads when 120Vrms. Hence the correct option is (A).
In medical electrical equipment, it is important to limit the amount of current that flows through the patient in order to protect them from electrical shock. The isolated input board is a safety feature that helps to ensure this by limiting the current flow to a safe level, typically 60 microamperes (60 uA), when a high voltage (such as 120Vrms) is applied to the inputs. This helps to reduce the risk of electrical shock and improve patient safety. The amount of current given to patients by medical equipment can vary widely depending on the specific equipment and treatment being used. Some medical devices, such as electroconvulsive therapy (ECT) machines, deliver high currents (in the milliampere range) to the patient in order to induce a therapeutic electrical seizure. Other devices, such as pacemakers and defibrillators, deliver much smaller currents (in the microampere range) in order to regulate the heart's rhythm. In all cases, it is important to carefully control the amount of current delivered to the patient in order to minimize the risk of electrical shock and other adverse effects. The isolated input board and other safety features in medical electrical equipment help to ensure that the current delivered to the patient stays within safe limits.
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The ancient Romans knew about an earth material called lodestone.
Lodestone is a rock that is a natural magnet. The Romans created a
monument in one of their temples that included a statue suspended in
midair
How might they have used lodestone to create the effect?
Thank you!
The Romans could have made the statue out of lodestone, or placed a core of lodestone inside. Then the frame of the statue would have had to be made of iron in order to have equal net forces around the statue.
About lodestoneLodestones led to a magnetic compass.
Lodestone is a form of magnetite that exhibits distinctive magnetic qualities. This quality led to the use of lodestones as an early form of compass, as they could be used to show the way north.
As is often the case with scientific phenomena that are difficult to explain, gemstones have historically been associated with magical or alchemical events, and many people who practice magic use gemstones in their work. Magnets and objects with magnetic qualities continue to be popular in alternative medicine and magical practices.
Magnetite is a form of iron oxide. When a rock has a certain crystal structure and chemical composition, it has the potential to become a magnet. If a stone is magnetized, it will be attracted to the earth's magnetic poles, and when it is suspended in the air, it will slowly point towards the poles. It will also attract iron, as observed by the Chinese in the fourth century AD.
Seafarers used lodestones in their navigation; the Chinese seem to have been the first to discover the properties of magnetite in a navigational context.
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could a planet like earth have formed around a first-generation star?
It's possible for a planet like Earth to have formed around a first-generation star, also known as a Population III star.
Population III stars are believed to be the first generation of stars to form in the universe and are composed mainly of hydrogen and helium, with trace amounts of heavier elements. These stars are thought to have formed around 100 million years after the Big Bang.
However, it's also important to note that the conditions necessary for the formation of planets like Earth around Population III stars may have been rare. These stars are thought to have been much more massive and luminous than stars like our Sun, and the intense radiation they emitted may have made it difficult for solid planetary bodies to form and survive.
Additionally, the process of planet formation is thought to require the presence of heavier elements like carbon, oxygen, and nitrogen, which are the building blocks of the building blocks of rocky planets like Earth. These elements are thought to have been synthesized in later generations of stars, so it's likely that planets like Earth formed around later generation stars that had a higher abundance of these elements.
So, while it's possible for a planet like Earth to have formed around a first-generation star, the conditions for this to happen may have been rare, and it's more likely that planets like Earth formed around later generation stars.
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A passenger at the rear of a train traveling at 15 m/s relative to Earth throws a baseball with a speed of 15 m/s in the direction opposite the motion of the train. What is the velocity of the baseball relative to Earth as it leaves the thrower’s hand?
The trains move at a speed of 15 m/s in relation to the earth. The speed of the ball is -15 m/s in relation to the train. The ball's speed is therefore 15 - 15 = 0 in relation to the earth.
What is an easy way to define velocity?A particle or item's movement with regard to the time is expressed vectorially as velocity. The meter per second (m/s), usually referred to as speed, is the accepted unit of velocity magnitude.
What is a good instance of velocity?Simply said, velocity is the rate of motion of an object in a specific direction. Using an automobile driving north on a highway as an example, or a rocket after it has launched, as an example of speed.
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Find the following vector. The vector in the direction of (10,- 24) with length 2 The vector in the direction of (10, – 24) with length 2 is? Complete parts (a) through (c) below. 4i + 3j. + a. Find two unit vectors parallel to v= - b. Find b if y= (5.0 ) ,b) is a unit vector. c. Find all values of a such that w=ai - Žj is a unit vector.
Since a must be positive, a = √(-20.5136) is not a real value, so there are no values of a that satisfy the equation.
what are the steps to solve the problem:
(a) To find two unit vectors parallel to the vector v = (10, -24), we need to divide the vector by its length to find its direction. The magnitude of v is the square root of the sum of the squares of the components, so the length of v is:
√(10^2 + (-24)^2) = √(100 + 576) = √676 = 26
To find the direction, divide each component of the vector by its length:
v = (10/26, -24/26) = (10/26, -24/26) = (10/26, -24/26) = (10/26, -24/26) = (10/26, -24/26) = (0.3846, -0.9231)
So, the two unit vectors parallel to v are:
u1 = (0.3846, -0.9231)
u2 = (-0.3846, 0.9231)
(b) To find b, we need to scale the unit vector u1 to have a magnitude of 5.0. Since u1 is already a unit vector, we can simply multiply it by 5.0:
b = 5.0 * u1 = (5.0 * 0.3846, 5.0 * -0.9231) = (1.923, -4.616)
(c) To find all values of a such that w = ai - bj is a unit vector, we need to find a so that the magnitude of w is equal to 1.0. The magnitude of w is:
√(a^2 + b^2) = √(a^2 + 4.616^2) = 1.0
Solving for a, we have:
a^2 + 4.616^2 = 1.0^2
a^2 + 21.5136 = 1.0
a^2 = 1.0 - 21.5136
a^2 = -20.5136
Since a must be positive, a = √(-20.5136) is not a real value, so there are no values of a that satisfy the equation.
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which of the following is an example of a chemical property
Answer:
flammability, toxicity, acidity, reactivity (many types), and heat of combustion.
Explanation:
have great day
How much time doe it take for accelerate at cheetah to 20m/ from ret to peed of 40m/?
It takes the cheetah two seconds to accelerate at 20 m/s² from rest to a speed of 40 m/s.
Acceleration in colloquial terms means speeding up, but in physics, acceleration can mean speeding up, slowing down, or changing directions.
Mathematically speaking, acceleration a is equal to change in velocity Δv over time t (a = Δv/t). Change in velocity is equal to final velocity v minus initial velocity u (Δv = v - u).
Given that u = 0 m/s, v = 40 m/s, and a = 20 m/s², the time it takes the cheetah to accelerate is:
a = Δv/t
20 = (40 - 0)/t
20 = 40/t
20t = 40
t = 40/20
t = 2 seconds
The complete question is most probably "How much time does it take a cheetah to accelerate at 20 m/s² from rest to a speed of 40m/s?
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What is the sign on the charge of the yellow sphere? Positive or Negative
The sign on the charge of the yellow sphere is positive.
What is charge ?Charge is a fundamental property of matter that describes the interaction between particles and forces. It is one of the four fundamental forces of nature, alongside gravity, the strong nuclear force, and the weak nuclear force. Charge is measured in coulombs (C), and is either positive or negative. Positive charges attract negative charges, and negative charges attract positive charges. The magnitude of the charge affects the strength of the attraction between the particles. Charge can be carried by electrons, protons, and ions, and is responsible for the electric force. Charge is also responsible for the electric potential, which is the potential energy associated with a given configuration of charges.
This is because the yellow sphere is a positively charged particle, meaning that it has an excess of protons compared to electrons.
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a river flows with a uniform velocity v. a person in a motorboat travels 1.52 km upstream, at which time a log is seen floating by. the person continues to travel upstream for 91 min at the same speed and then returns downstream to the starting point, where the same log is seen again. find the flow velocity of the river. assume the speed of the boat with respect to the water is constant throughout the entire trip. (hint: the time of travel of the boat after it meets
The flow velocity of the river is 2 mts/hour.
To solve the problem, we can use the formula:
v = d / t
Where,
v = the velocity of the river
d = the distance traveled by the log in the same time interval t as the boat.
Let's say the speed of the boat with respect to the water vb. [assume the speed of the boat with respect to the water is constant throughout the entire trip]
Assume, vb = 3 mts/hour.
The distance traveled by the boat upstream is 1.52 km + (91 min x 60 sec/min) x vb. The distance traveled by the log is 2 x 1.52 km. The time elapsed for the entire trip is 2 x 91 min x 60 sec/min.
So, v = (2 x 1.52 km) / (2 x 91 min x 60 sec/min)
Finally, v = vb - v.
Substituting the known values, we get:
v = vb - (2 x 1.52 km) / (2 x 91 min x 60 sec/min)
v = 3 - 1.00
v = 2 mts/hour
The velocity of the river is 2 mts/hour.
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when one atom loses an electron to another atom, it results in the formation of
When an atom loss one electron completely to another atom with the consequent formation of electrostatic charges is referred as an ionic bond.
Definition of Ionic BondsIonic bonds are bonds that occur due to the handover of electrons to form positive ions and negative ions whose electron configuration is the same as that of the noble gases. Positive ions and negative ions are bound by an electrostatic force.
The resulting compounds are called ionic compounds. One example that we often encounter everyday is table salt. Well, the chemical formula for table salt is NaCl (Sodium chloride). In solid NaCl there is a bond between Na+ ions and Cl- ions by electrostatic forces, so it is called an ionic bond.
In ionic bonds, there is a transfer of electrons from one atom to another. Due to the movement of electrons, the atom that gains electrons becomes negatively charged, while the atom that loses electrons will be positively charged.
If an atom gains electrons, the atom becomes a negative ion, also known as an anion. Meanwhile, if an atom loses electrons, then the atom becomes a positive ion or cation.
Due to the difference in charge between ions (positive ions and negative ions), positive and negative ions will attract each other by electrostatic forces. This incident is the basis of ionic bonding.
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Sasha lifts a couch from the ground floor of her house to the attic. If the couch has a mass of 120 kg and is lifted 8. 2 m, then what is the energy gained by the couch?.
The change in gravitational potential energy of the couch with 120 kg mass is 9653 J.
The gravitational potential energy is defined as the energy possessed by an object due to its position above the ground. If an object is located near the surface of the earth then the change in gravitational potential energy is given by
ΔU - mgΔh
Where
m = the mass of the object
g = acceleration of gravity
g = 9.8 m / [tex]s^{2}[/tex]
Δh = change in height of the object
For the couch in this problem, we have m = 120 kg which is its mass.
Δh = 8.2 cm
Now solving the equation, we get:
ΔU = 120 x 9.8 x 8.2 = 9653 J
The energy gained by the couch is 9653 J
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What is the mass of Earth in simple words?
With a relative uncertainty of 104, the most accurate estimate of Earth's mass at the moment is M = 5.9722 1024 kg.
Is mass on Earth merely weight?Although they are related, they are actually rather different. Although they are frequently used interchangeably, the terms "mass" and "weight" have completely different meanings. In the cosmos, your mass follows you wherever you go, but your weight varies according to your location.
What is the mass trying to say?In physics, mass is a way to measure inertia, a fundamental property of all matter. What it essentially is is the resistance of a mass of matter to changing its direction or speed in response to the application of a force.
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are 60 miles apart on reciprocal courses. if cdn 884 is traveling at 360 mph and cmm 448 is traveling at 240 mph, how long will it take until closure occurs
Time until close occurs on reciprocal courses will be 30 minutes, and we can calculate this by first finding out relative speed.
To determine the time it will take until closure occurs between two aircraft traveling on reciprocal courses, you must first calculate their relative speed. This can be done by subtracting the speed of one aircraft from the other. In this case:
The relative speed would be:
360 mph - 240 mph = 120 mph.
Next, you can use this relative speed and the distance between the two aircraft to calculate the time until closure using the formula:
Time until closure = Distance between aircraft / Relative speed
So, for the two aircraft traveling 60 miles apart and with a relative speed of 120 mph, the time until closure would be 60 miles / 120 mph = 0.5 hours or 30 minutes.
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how+does+the+exponent+compare+with+expectations?+if+you+extrapolate+to+lower+m,+by+what+degree+of+polymerization+would+excluded+volume+increase+rg+(i)+by+only+10%+(ii)+by+a+factor+of+2?
The exponent in the relationship between excluded volume and degree of polymerization (m) is often close to 1.5, but the exact value depends on the specifics of the polymer system being studied.
To extrapolate to lower m, the degree of polymerization would have to increase by a factor of approximately 2.83 to increase excluded volume by 10%, or by approximately 7.07 to double excluded volume.
The relationship between excluded volume and degree of polymerization (m) is an important concept in polymer science and is described by the equation Rg^2 ~ m^α, where Rg is the radius of gyration and α is the scaling exponent.
The excluded volume is the volume of a polymer that is not accessible to other solutes or solvent molecules due to the presence of the polymer itself. The radius of gyration is a measure of the size of a polymer, and the scaling exponent (α) is a measure of how the size of the polymer changes with increasing m, the degree of polymerization.
Typically, α is close to 1.5, which means that the size of the polymer increases as the square root of the degree of polymerization. However, the exact value of α can depend on the specifics of the polymer system being studied, such as the type of polymer, the solvent, and the presence of other interactions.
To extrapolate the excluded volume to lower m, we can rearrange the equation Rg^2 ~ m^α and solve for m:
m = (Rg^2) / (Rg_0^2)^(1/α)
where Rg_0 is the radius of gyration at a reference degree of polymerization. If we want to increase excluded volume by 10%, then we can solve for m given that Rg^2 = 1.1 * Rg_0^2:
m = (1.1 * Rg_0^2) / (Rg_0^2)^(1/α) = (1.1)^(1/α)
Since α is often close to 1.5, we can approximate α as 1.5, giving us:
m = (1.1)^(1/1.5) ≈ 2.83
So, to increase excluded volume by 10%, the degree of polymerization would have to increase by a factor of approximately 2.83.
Similarly, if we want to double the excluded volume, then we can solve for m given that Rg^2 = 2 * Rg_0^2:
m = (2 * Rg_0^2) / (Rg_0^2)^(1/α) = 2^(1/α)
Again, approximating α as 1.5, we get:
m = 2^(1/1.5) ≈ 7.07
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a proton is located at. what is the force on the proton, due to the dipole
The force on the proton due to the dipole is [tex]F = 6.67 * 10^{-11} N.[/tex]
This is because the dipole is an electric dipole, meaning that it consists of two charges of opposite sign. Since the proton is positively charged, it experiences an attractive force towards the negative charge of the dipole. The magnitude of this force is given by Coulomb's law,
[tex]F = k\frac{q1*q2}{r^{2}}[/tex]
,where k is the Coulomb constant, q1 and q2 are the charges of the two particles and r is the distance between them.
In this case, [tex]q1 = 1.6 *10^{-19} C[/tex] (the charge of the proton),[tex]q2 = -1.6 * 10^{-19} C[/tex] (the charge of the negative charge in the dipole), and[tex]r = 1 * 10^{-8} m[/tex] (the distance between the proton and the negative charge). Plugging these values into the equation yields [tex]F = 6.67 * 10^{-11} N.[/tex]
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complete question:A proton is located at <0, 3 ✕ 10-8, 0> m. What is the force on the proton, due to the dipole <1 ✕ 10-8, 0, 0> m?
what is the dominant charge on the side group of arg at ph = 7?
At pH 7, the dominant charge on the side group of arginine is positive.
Arginine has a basic amine group, which acts as a proton acceptor and gives arginine a positive charge at neutral pH. However, the exact charge on the side group can vary based on other factors such as ionic strength, presence of other charged species in the solution, and the specific chemical structure of the arginine molecule. To determine the exact dominant charge, a more detailed analysis of the specific chemical and physiological conditions would be required.
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How many gallons does 64 fluid ounces equal?
64 fluid ounces will be 0.5 gallon
What is a fluid ounce?
The volume unit known as a fluid ounce, or capacity, is frequently applied to the measurement of liquids. Although it is occasionally referred to as simply "one ounce" when the context makes the meaning apparent, the fluid ounce differs from the (international avoirdupois) ounce as a unit of weight or mass (e.g., "ounces in a bottle").
One imperial fluid ounce of pure water has a mass of almost exactly one ounce. In both imperial and US customary units, the gallon is a unit of volume. Imperial, dry, and wet gallons are the three variations that are currently in use.
1 gallon is 128 fluid ounces
So 64 fluid ounces will be 0.5 gallon.
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two glass tubes (one is 10 mm in diameter and the other one is 7.5 mm in diameter) are placed in a beaker of water. in which tube does the water rise to a higher level?
When two glass tubes (one is 10 mm in diameter and the other one is 7.5 mm in diameter) are placed in a beaker of water water will rise high in which the diameter is larger.
The water will rise to a higher level in the tube with the larger diameter (10 mm). This is because the pressure in the tube with the larger diameter is lower than the pressure in the tube with the smaller diameter. This means that the water molecules in the larger diameter tube are more spread out, causing the pressure to be lower. This causes the water to be drawn into the larger diameter tube due to the pressure difference, causing the water level to be higher in the larger diameter tube.
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The toy raft shown in the top view above is sliding due east on frictionless ice at constant speed vo when a fan blows on its sail, producing a constant acceleration a directed to the north. Which of the following could indicate the path of the raft while the fan is blowing?
A parabola could indicate the path of the raft while the fan is blowing.
What is parabola?A parabola is a type of curve that is defined by a mathematical equation. It is an U-shaped curve that is symmetrical about its vertex, which is the point at which the parabola is at its highest or lowest point. The parabola is used in a variety of applications, including astronomy, engineering, and mathematics. In mathematics, the parabola is used to describe the shape of a wide range of curve-like objects, including ellipses, hyperbolas, and conic sections. In engineering, the parabola is used to calculate the trajectory of objects, such as projectiles and satellites. In astronomy, the parabola is used to describe the orbit of a star or planet around its host star. The parabola is also used to describe the shape of a lens or mirror, such as a solar telescope.
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what is the spring constant of the trampoline? what is the spring constant of the trampoline? 800 n/m 2400 n/m 3200 n/m 1600 n/m
The spring constant of the trampoline when the mass of the girl and the height upto which she jumps is given is calculated to be 212.55 N/m.
A girl is standing on a trampoline. She weighs 65 kg and has a 3-meter vertical leap.
We have to find the spring constant.
Since by Hooke's law,
F = -kx
Where,
F = force applied by the spring
k = spring constant
x = displacement
We also know that the spring will exert a force equal to the girl's weight.
So, F = mg
Therefore, (-mg) = -kx
65 × (9.81) = k × (3)
k = (65 × 9.81)/3 = 212.55 N/m
Thus, the spring constant of the trampoline is 212.55 N/m.
The given question is incomplete. The complete question is 'A girl is standing on a trampoline. Her mass is 65 kg and she is able to jump 3 m. What is the spring constant for the trampoline?'
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A 193 kg stage curtain needs to be raised 7. 5 m, at constant speed, in as close to 5. 0 s as possible. The power ratings for three motors are listed as 1. 0 kw, 3. 5 kw, and 5. 5 kw. Which motor is best for the job?
The best motor for the above purpose is 3.5 kW.
The best motor for the above purpose is 3.5 kW. In electric motors, electrical energy is converted into mechanical energy. An electric motor produces force in the form of torque by the interaction between its magnetic field and the electric current flowing through its coils. As we know power is defined as the rate of work. Here you have to raise the curtains and defy gravity
so we have
Width = mgH = 193*10*7.5m
= 1418.5 years
Power = W/t
1418.5/5
= 2.8kW
So the best motor for the above purpose is 3.5 kW.
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a 90 kg firefighter needs to climb the stairs of a 20-m-tall building while carrying a 40 kg backpack filled with gear. how much power does the firefighter need to reach the top in 55 s?
Answer:
[tex]\huge\boxed{\sf Power = 1274\ W}[/tex]
Explanation:
Given data:Total mass = m = 90 kg + 40 kg = 130 kg
Height = h = 20 m
Acceleration due to gravity = g = 9.8 m/s²
Time = t = 55 s
Required:Power = P = ?
Formula:[tex]\displaystyle P=\frac{Work}{Time}[/tex]
Solution:Here, the work is done in the form of potential energy.
So,
Work = P.E
As we know,
P.E = mgh
P.E = (130)(9.8)(20)
P.E = 25480 JSo,
Power = P.E / timePower = 25480 / 20
Power = 1274 W
[tex]\rule[225]{225}{2}[/tex]
it takes 1 second for a sound wave to travel from a source to observer a. how long does it take the same sound wave to travel in the same medium to observer b, who is located twice as far from the source as observer a?
It would take 2 seconds for the same sound wave to travel from the source to observer b who is located twice as far from the source as observer a.
The speed of sound in a medium is constant, meaning that the time it takes for a sound wave to travel a certain distance is proportional to the distance itself. Therefore, if observer b is located twice as far from the source as observer a, it will take twice as long for the sound wave to reach observer b as it would take to reach observer a.
This is because the distance that the sound wave has to travel is twice as great to reach observer b compared to observer a. To summarize, if the distance to the observer is doubled, the time it takes for the sound wave to reach the observer will also double.
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a box sits on a frictionless ramp of 25 degrees. find the acceleration of the box as it slides down the hill.
The acceleration of the box as it slides down the ramp is approximately 4.3 m/s^2.
The acceleration of the box can be calculated using the formula:
a = g * sin(θ)
where:
a is the acceleration of the box g is the acceleration due to gravity (9.8 m/s^2 on the surface of the Earth) θ is the angle of the ramp (25 degrees)Converting 25 degrees to radians:
θ = 25° * (π / 180°) = 0.43 radians
Now we can plug in the values:
a = 9.8 m/s^2 * sin(0.43 rad) ≈ 4.3 m/s^2
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The skid marks made by an automobile indicated that its brakes were fully applied for a distance of 85 m before it came to a stop. The car in question is know a constant deceleration of 17 m/s under these conditions. How fast-in km/h-was the car traveling when the brakes were first applied?
The car was traveling at 545.52 km/h when the brakes were first applied.
To find the speed of the car when the brakes were first applied, we can use the equation:
[tex]u^2 = v^2 + 2as \Rightarrow \quad u^2 = v^2 + 2as[/tex]
where v is the final velocity, u is the initial velocity, a is the acceleration and s is the distance traveled.
Given [tex]a = -17 m/s^2[/tex] and s = 85 m, we can rearrange the equation as follows:
[tex]\begin{equation}v^2 = u^2 - 2as\end{equation}\\ u^2 = v^2 + 2as \\ \quad u^2 = v^2 + 2as[/tex]
[tex]u^2 = 0 + 2(-17)(85)\\ u^2 = 22,470\\ u = 150.7 m/s[/tex]
To convert m/s to km/h, we multiply by 3.6, giving us:
u = 150.7 * 3.6 = 545.52 km/h.
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What will be the acceleration of the 12-kg object if it is acted upon by a force of 60n?.
The acceleration of the object is 5 m/s². The result is obtained by using the Newton's second law.
What is Newton's second law?The Newton's second law states that "The acceleration is directly proportional to the net force acting on an object and inversely proportional to the object's mass." It can be expressed as
a = ∑F/m
Where
∑F = net forcea = accelerationm = object's massAn object with a mass of 12 kg is acted upon by a force of 60 N.
Find the acceleration of the object!
Using the Newton's second law formula, we get acceleration.
a = ∑F/m
a = 60/12
a = 5 m/s²
Hence, the acceleration of the object is 5 m/s².
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What are the 2 formulas for average velocity?
1. The first formula for average velocity is v = (x2 - x1)/(t2 - t1), where v is the average velocity, x1 and x2 are the initial and final positions, and t1 and t2 are the initial and final times. This formula is used when the motion of an object is known to be in a straight line.
What is average velocity ?Average velocity is the average rate of change of an object's position over a period of time. It is calculated by dividing the total displacement by the total time taken during the displacement. Average velocity is the result of an object's motion and is the overall velocity of the object. Average velocity is a vector quantity, meaning it has both magnitude and direction. Average velocity can be calculated for any type of motion, including linear, circular, and projectile motion. Average velocity is different from instantaneous velocity, which is the velocity of an object at a specific point in time.
2. The second formula for average velocity is v = Δs/Δt, where v is the average velocity, Δs is the total displacement (the difference between the initial and final positions), and Δt is the total time. This formula is used when the motion of an object is not known to be in a straight line.
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what is the magnitude, in newtons, of the force on a single electron placed in the region between the plates?
The force on a single electron in such a system would be extremely small and difficult to measure, as it would be on the order of [tex]10^{-9}[/tex] N.
The magnitude of the force on a single electron placed between two parallel charged plates is given by Coulomb's law, which states that the force between two point charges is proportional to the product of the charges and inversely proportional to the square of the distance between them. However, in this case, the magnitude of the force is not easily calculated as the number of electrons in the plates is very large, and their distribution is not uniform.
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what would be grating onstant for grating with 300lines/nm
The grating constant, also known as the line spacing or groove spacing, is a characteristic of a diffraction grating that describes the spacing between the lines or grooves on the grating.
If a grating has a line spacing of 300 lines per nanometer (300 lines/nm), the grating constant (d) can be calculated as follows:
[tex]d = 1 / (300 lines/nm) = 1 / 300 * 10^-9 m/line = 3.33 * 10^-8 m/line[/tex]
So, the grating constant for this grating is [tex]3.33 * 10^-8[/tex] m/line.
Diffraction gratings are optical devices used to diffract light into its component wavelengths. The spacing between the lines or grooves on the grating determines the extent to which the light is diffracted, and the grating constant describes this spacing. The grating constant is a key parameter that determines the resolution and efficiency of a diffraction grating, and is typically specified in units of meters per line or grooves per meter.
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What would be grating constant for grating with 300lines/nm?
meteorites that strike the earth may be composed of
A meteorites that strike the earth may be composed of chondrites and achondrites.
A meteorite is a piece of solid debris from a space-born object, such as a comet, asteroid, or meteoroid, that makes it through the atmosphere and lands on the surface of a planet or moon and it is made up of chondrites and achondrites.
The object heats up and emits energy as it enters the atmosphere due to a number of causes, including friction, pressure, and chemical reactions with the atmospheric gases. Astronomers refer to the brightest examples as "bolides"; it then transforms into a meteor and creates a fireball, also known as a shooting star or falling star. The sizes of meteorites vary widely. A bolide is a meteorite big enough to crater, according to scientists.
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