The correct option is D; The cart moved at a constant velocity of 0.5m/s for the entire 7 seconds.
Which graph best represents a constant acceleration?Constant acceleration is represented as a horizontal line on the acceleration graph. The slope of the velocity graph represents the acceleration. On the velocity graph, constant acceleration Equals constant slope = straight line.
Acceleration is represented in a velocity-time graph by the slope, or steepness, of the graph line. If the line slopes upward, as seen in the figure between 0 and 4 seconds, velocity increases, and acceleration is positive. The velocity-time graph will be a curve when the acceleration increases with time, as anticipated by the equation: v = u + at.
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in which way is the planet uranus unique?responses it has seasons. it has seasons. it has a hot interior. it has a hot interior. it lacks an atmosphere. it lacks an atmosphere. it rotates on its side.
The planet Uranus is unique in that it rotates on its side, with an axial tilt of approximately 98 degrees.
This means that Uranus essentially orbits the sun on its side, with its poles facing towards and away from the sun at different times during its orbit.
This unusual orientation results in extreme seasonal variations, with each pole experiencing over 20 years of continuous sunlight followed by over 20 years of darkness.
Additionally, Uranus has a relatively cold interior and a thick atmosphere composed primarily of hydrogen, helium, and methane.
Therefore, the response "it rotates on its side" is correct which makes planet Uranus unique.
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a series circuit has a capacitor of 1.25x10-5 farad, a resistor of 260 ohms and an inductor of 0.2 henry. the initial charge on the capacitor is 2x10-6 coulomb and there is no initial current. find the charge q(t) on the capacitor at any time t.
The final expression for the charge Q(t) at any time t is given as:Q(t) = CV(t) = 2.5 × 10^-11 e- t/RC
To find the charge on the capacitor at any time t, we need to find the total current in the circuit and then find the charge using the formula Q = CV, where V is the potential difference across the capacitor.Let's find the total current in the circuit using the formula:
I = (1/LC)½ x (e- Rt/2L) sin(wt - φ)
where, L = inductance C = capacitance R = resistance ω = (1/LC)½ = 5000 sinφ = RωL = 260 × 5000 × 0.2 = 2600
Let's now substitute the given values into the formula and simplify:I = (1/(0.2 × 1.25 × 10^-5))½ x (e- 260t/2 × 0.2) sin(5000t - φ)I = 10^5 x (e- 130t) sin(5000t - φ). Let's now find the charge Q on the capacitor using the formula:
Q = CV where, C = capacitance V = potential difference across the capacitor. To find the potential difference across the capacitor, we need to find the current passing through it, which is given as the total current minus the current passing through the inductor. Let's find the current passing through the inductor using the formula:
I L = I x sin(wt - φ)IL = I x sin(5000t - φ).The potential difference across the capacitor can be calculated using the formula:V C = V 0 × e- t/RC where, V0 = initial potential difference across the capacitor R = resistance of the circuit C = capacitance of the circuit. Let's now find the current passing through the capacitor:I C = (I - I L)I C = I - I L
Now we have all the necessary formulas to find the charge Q(t) at any time t. Let's substitute the given values into the formulas and simplify:
I = 10^5 x (e- 130t) sin(5000t - φ)IL = I x sin(5000t - φ)IC = I - I LVC = V0 × e- t/RCQ = CVCI = I - I L = 10^5 x (e- 130t) sin(5000t - φ) - I sin(5000t - φ)V C = V 0 × e- t/RC = 2 × 10^-6 e- t/RCQ = C × V C = (1.25 × 10^-5) × (2 × 10^-6) e- t/RC = 2.5 × 10^-11 e- t/RC
Now, let's substitute the values of I and V C into the formula for IC to obtain:IC = 10^5 × (e- 130t) sin(5000t - φ) - 10^5 sin(5000t - φ) × e- t/RC. Therefore final expression for the charge Q(t) at any time t is given as:Q(t) = CV(t) = 2.5 × 10^-11 e- t/RC
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We can use the equation [tex]q(t) = C.V(t)[/tex] to calculate the charge q (t) on the capacitor at any time t: [tex]q(t) = 1,25 . 10-5 Farad.V(t)[/tex].
The charge on a capacitor in a series circuit at any time t is given by the equation [tex]q(t) = C.V(t)[/tex], where C is the capacitance of the capacitor and V(t) is the voltage across the capacitor at time t.
In the given circuit, the capacitance of the capacitor is 1.25 x 10-5 Farad, and the initial charge on the capacitor is 2 x 10-6 Coulomb. Therefore, to find the charge q(t) on the capacitor at any time t, we need to find the voltage V(t) across the capacitor at time t.
To do this, we must first calculate the total inductance and resistance in the circuit. The total inductance is the sum of the inductances of each inductor, so the total inductance in this circuit is 0.2 Henry. The total resistance is the sum of the resistances of each resistor, so the total resistance in this circuit is 260 Ohms.
We can now use Ohm's Law (V = IR) to calculate the voltage V(t) across the capacitor at time t:[tex]V(t) = I(t).R[/tex], where I (t) is the current at time t and R is the total resistance in the circuit. Since the inductance of the circuit is 0.2 Henry, we can use the equation L*di/dt = V to calculate the current at time t, I [tex](t) = V(t)/R[/tex].
Substituting this into Ohm's Law, we get: V(t) = (V(t)/R)*R. Solving for V(t), we get V(t) = V(t). Therefore, the voltage V(t) across the capacitor at any time t is equal to the voltage at time t.
Finally, we can use the equation [tex]q(t) = C.V(t)[/tex]to calculate the charge q(t) on the capacitor at any time t: [tex]q(t) = 1,25 . 10-5 Farad.V(t)[/tex].
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A 2 kg object is released from rest near the surface of a planet such that its gravitational field is considered to be constant. The mass of the planet is unknown. The
object's speed after falling for 3 sis 75 m/s. Air resistance is considered to be negligible, Calculate the weight of the 2 kg object on the planet of unknown mass.
2N
B
25 N
50N
D
75 N
a clean nickel surface is exposed to light with a wavelength of 241 nm n m . the photoelectric work function for nickel is 5.10 ev e v . for related problem-solving tips and strategies, you may want to view a video tutor solution of a photoelectric-effect experiment. part a what is the maximum speed of the photoelectrons emitted from this surface?
The maximum speed of the photoelectrons emitted from the clean nickel surface is 6.70 × 10⁵ m/s.
Calculate the energy of a photon.E = hc/λwhere, h = Planck’s constant = 6.626 × 10⁻³⁴ Js, c = speed of light = 3 × 10⁸ m/sE = 6.626 × 10⁻³⁴ × 3 × 10⁸/241 × 10⁻⁹E = 8.21 × 10⁻¹⁸ J
Calculate the kinetic energy of the photoelectrons.
K.E. = E – W₀K.E. = 8.21 × 10⁻¹⁸ J – 5.10 × 1.6 × 10⁻¹⁹ J = 7.09 × 10⁻¹⁹ J
K.E. = 1/2 mv² where, m = mass of photoelectron, v = velocity of photoelectron, and K.E. = kinetic energy of photoelectronv = √(2K.E./m) = √[(2 × 7.09 × 10⁻¹⁹ J)/(9.1 × 10⁻³¹ kg)]v = 6.70 × 10⁵ m/s or 0.224c
So, the maximum speed of the photoelectrons emitted from this surface is 6.70 × 10⁵ m/s.
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if two identical resistors are connected in series to a battery, does the battery have to supply more power or less power than when only one of the resistors is connected? explain
The battery has to supply more power when two resistors are connected in series than when only one resistor is connected. This is because the power dissipated in a series circuit is equal to the sum of the power dissipated in each resistor.
When two identical resistors are connected in series to a battery, the battery has to supply more power than when only one of the resistors is connected. This is because the resistors offer resistance, which results in the dissipation of energy as heat. The higher the resistance of a resistor, the more power it requires to operate.Resistors consume energy as they offer resistance to the flow of current. The power supplied by the battery is converted to heat energy in the resistor, and the amount of heat energy dissipated is determined by the resistance of the resistor. The greater the resistance of the resistor, the more power it requires to function.
As a result, when two identical resistors are connected in series to a battery, the battery has to supply more power than when only one of the resistors is connected, to produce the same current through the circuit. Therefore, if two resistors of equal value are connected in series, the total power dissipated is twice that of when a single resistor is connected.
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A force f = bx 3 acts in the x direction, where the value of b is 3. 7 n/m3. How much work is done by this force in moving an object from x = 0. 00 m to x = 2. 7 m?
The work done by the force in moving the object from x = 0.00 m to x = 2.7 m is 69.03 J.
To calculate the work done by a force, we can use the following formula:
[tex]$$W = \int F(x) dx$$[/tex]
where F(x) is the force as a function of position, and the integral is taken over the distance the object is moved.
In this case, the force is given by [tex]$F(x) = bx^3 = 3.7x^3$[/tex] [tex]N/m^3[/tex] . The distance the object is moved is from x = 0.00 m to x = 2.7 m. Therefore, we can calculate the work done by the force as follows:
[tex]$$W = \int_{0.00}^{2.7} F(x) dx = \int_{0.00}^{2.7} (3.7x^3) dx $$[/tex]
[tex]$$W = \left[\frac{3.7x^4}{4}\right]_{0.00}^{2.7} = \left[\frac{3.7(2.7^4)}{4}\right] - \left[\frac{3.7(0.00^4)}{4}\right]$$[/tex]
[tex]$$W = 69.03 \text{ J}$$[/tex]
Therefore, the work done by the force in moving the object from x = 0.00 m to x = 2.7 m is 69.03 J.
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A piece of metal weighing 187.6 g is placed in a graduated cylinder containing 225.2 mL of water. The combined volume of solid and liquid is 250.3 mL. What is the density, in grams per milliliter, of the metal?
The density of the metal in grams per milliliter is 7.87 g/mL.
Given data:The weight of metal, W = 187.6 g,Volume of water, V₁ = 225.2 mL.
The combined volume of solid and liquid, V₂ = 250.3 mL
Volume of the metal can be calculated as:Volume of metal = V₂ - V₁= 250.3 - 225.2= 25.1 mL
The density of the metal can be calculated as:Density = Weight of metal / Volume of metal
Density = W / V= 187.6 g / 25.1 mL= 7.87 g/mL
Thus, the density, in grams per milliliter, of the metal is therefore calculated and found to be 7.87 g/mL.
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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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!!! If each compound undergoes electrophilic aromatic substitution, where should the substituent be added? Phenol?
Benzaldehyde?
Benzoic Acid?
Bromobenzene?
Nitrobenzene?
Toluene?
The substituent in Phenol is added to the ortho and para positions of the benzene ring. The substituent in Benzaldehyde is added to the ortho and para positions of the benzene ring.
The substituent in Bromobenzene is added to the ortho and para positions of the benzene ring. The substituent in Nitrobenzene is added to the meta position of the benzene ring. The substituent in Toluene is added to the ortho and para positions of the benzene ring.
Substituents on different aromatic compounds. The substituent is added to different positions for each of the aromatic compounds if they undergo electrophilic aromatic substitution. The positions where the substituents are added to Phenol, Benzaldehyde, Benzoic Acid, Bromobenzene, Nitrobenzene, and Toluene are described below:
Phenol- The substituent in Phenol is added to the ortho and para positions of the benzene ring.
Benzaldehyde- The substituent in Benzaldehyde is added to the ortho and para positions of the benzene ring.
Benzoic Acid- The substituent in Benzoic acid is added to the meta position of the benzene ring.
Bromobenzene- The substituent in Bromobenzene is added to the ortho and para positions of the benzene ring.
Nitrobenzene- The substituent in Nitrobenzene is added to the meta position of the benzene ring.
Toluene- The substituent in Toluene is added to the ortho and para positions of the benzene ring.
Thus, we can see that the positions of the substituent in each aromatic compound depend on the particular compound that undergoes electrophilic aromatic substitution.
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calculate the magnitude of the gravitational field of the sun at the location of earth, in meters per square second.
The magnitude of the gravitational field of the Sun at the location of Earth is approximately 9.81 m/s2.
This value is derived from Newton's Law of Universal Gravitation, which states that the gravitational force (F) between two objects is equal to the product of the two objects' masses (m1 and m2) multiplied by the gravitational constant (G) divided by the square of the distance between the two objects (r2):
F = G * m1 * m2 / r2
The mass of the Sun is 1.989 × 1030 kg, and the average distance between Earth and the Sun is 1.496 × 1011 meters. Therefore, plugging those values into the equation gives us:
F = 6.67 × 10-11 * 1.989 × 1030 * 5.972 × 1024 / (1.496 × 1011)2
F = 9.81 m/s2
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polar stratospheric clouds are high-altitude clouds made of
Polar stratospheric clouds are high-altitude clouds made of tiny ice crystals that form in the lower stratosphere at very cold temperatures. They exhibit vivid iridescent colors and are associated with ozone depletion.
High-altitude clouds comprised of microscopic ice crystals are referred to as polar stratospheric clouds, nacreous clouds, or mother-of-pearl clouds. At heights of around 15,000 to 25,000 meters and extremely low temperatures of minus 80 to minus 85 degrees Celsius, they occur in the lower stratosphere. The refraction of sunlight as it passes through the ice crystals gives these clouds their distinctive dazzling and vibrant iridescent colors. Polar stratospheric clouds, which are linked to the ozone layer's thinning, are most frequently seen during the winter in polar locations like the Arctic and Antarctic.
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an object is moving to the right in a straight line. the net force acting on the object is also directed to the right, but the magnitude of the force is decreasing with time. the object will
The object will decelerate over time, as the net force acting on it decreases. This is because the net force is the vector sum of all forces acting on the object.
What is the effect on object?When an object is moving to the right in a straight line, and the net force acting on the object is also directed to the right, it means that there is no opposing force to halt its motion.
Therefore, the object will continue to move to the right in a straight line with constant speed since there is no change in the magnitude of the net force.
However, when the net force is directed to the right and is decreasing with time, the object's motion will be altered. The magnitude of the force is decreasing with time, so there will be less force acting on the object.
The force acting on the object is decreasing with time; thus, the object's acceleration will be less than before. As a result, the velocity of the object will decrease with time. Since there is no force opposing the motion, the object will continue to move to the right but with decreasing speed due to the decrease in net force acting on it.
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help me
plss asap!!!
Answer:B
Explanation:The ray above makes a 90 degree angle. The ray below makes a 60 degree angle.
Find the fourier series of f(x)=x
for 0<=x<=2
The function f(x) = x, where 0 x 2, has the following Fourier series: Given that f(x) has an odd period of 2, we may express its Fourier series as follows: F(x) = A0 + [n=1 to] Ancos (n/x) plus bnsin (n/x).
Since f(x) is an odd function, a0 = 0. We may apply the following formulae to determine the Fourier coefficients: a = (2/1) f(x)cos(nx/1)[0 to 1] dx Bn = (2/1) f(x)sin(nx/1)[0 to 1] dx We may determine the coefficients using the following formulas: an is equal to (2/1) [0 to 1] x*cos(nx/1) dx. Bn is equal to (2/1), [0 to 1]x*sin(nx/1)dx. By integrating in pieces, we obtain: a = (2/π^2) [(1-(-1)^n)/(n^2)] bn = (2/π) [(1-(-1)^n)/(n)] The Fourier series of f(x) = x, where 0 x its Fourier series as follows: F(x) = A0 + [n=1 to] Ancos (n/x) plus bnsin (n/x).2, is as follows: f(x) = Σ(n=1 to ∞) [(2/) (1-(-1)n)/(n))*sin(nx/1)].
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A block on a horizontal surface is placed in contact with a light spring with spring constant k, as shown in Figure 1. When the block is moved to the left so that the spring is compressed a distance d from its equilibrium length, the potential energy stored in the spring-block system is Em . When a second block of mass 2m is placed on the same surface and the spring is compressed a distance 2d, as shown in Figure 2, how much potential energy is stored in the spring compared to the original potential energy Em ? All frictional forces are considered to be negligible.
The required potential energy stored in the spring-block system, when the second block is placed on the surface and the spring is compressed by twice the distance, is four times the original potential energy Em.
Let's denote the original potential energy when the spring is compressed by distance d as Em. When the spring is compressed, it exerts a restoring force given by Hooke's Law:
F = -kx,
Where F is the restoring force, k is the spring constant, and x is the displacement from the equilibrium position.
When the spring is compressed by distance d, the potential energy stored in the system is given by:
[tex]E_m = \dfrac{1}{2} kd^2[/tex]
Now, let's consider the situation when the second block of mass 2m is placed on the surface, and the spring is compressed by a distance 2d. Since the spring is compressed by twice the distance, the displacement is 2d. In this case, the potential energy stored in the system can be calculated as:
[tex]E_2 = \dfrac{1}{2} k((2d)^2) \\E_2= 4\times \dfrac{1}{2}k(d^2) \\E_2= 4E_m[/tex]
Therefore, the potential energy stored is four times the original potential energy Em.
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Motorola used the normal distribution to determine the probability of defects and the number of defects expected in a production process. Assume a production process produces items with a mean weight of 12 ounces. a. The process standard deviation is 0.14, and the process control is set at plus or minus 2.4 standard deviations. Units with weights less than 11.664 or greater than 12.336 ounces will be classified as defects. What is the probability of a defect (to 4 decimals)? In a production run of 1000 parts, how many defects would be found to the nearest whole number)? b. Through process design improvements, the process standard deviation can be reduced to 0.12. Assume the process control remains the same, with weights less than 11.664 or greater than 12.336 ounces being classified as defects. What is the probability of a defect (to 4 decimals)? In a production run of 1000 parts, how many defects would be found to the nearest whole number)?
a. To calculate the probability of a defect, we need to find the area under the normal distribution curve that falls outside the control limits of 11.664 and 12.336 ounces. We can calculate the z-scores for these limits as follows:
[tex]z_1 = (11.664 - 12) / 0.14 = -2.4[/tex]
[tex]z_2 = (12.336 - 12) / 0.14 = 2.4[/tex]
Using a standard normal distribution table or calculator, we can find that the probability of a defect is approximately 0.0115 (to 4 decimals).
To find the expected number of defects in a production run of 1000 parts, we can use the formula for the binomial distribution:
[tex]P(X = k) = C(n, k) \times p^k \times (1-p)^{(n-k)}[/tex]
where P(X = k) is the probability of exactly k defects in a run of n parts, p is the probability of a single defect (0.0115 in this case), and C(n, k) is the binomial coefficient (the number of ways to choose k defects from n parts).
For k = 0, 1, 2, ..., we can calculate the probabilities and add them up to find the expected number of defects:
E(X) = sum(k=0 to n) [ P(X = k) ] = n * p
Substituting n = 1000 and p = 0.0115, we get:
[tex]E(X) = 1000 \times 0.0115 = 11.5[/tex]
So we can expect to find approximately 12 defects (to the nearest whole number) in a production run of 1000 parts.
b. With a reduced process standard deviation of 0.12, the z-scores for the control limits remain the same as in part a:
[tex]z_1 = (11.664 - 12) / 0.12 = -2.8[/tex]
[tex]z_2 = (12.336 - 12) / 0.12 = 2.8[/tex]
Using a standard normal distribution table or calculator, we can find that the probability of a defect is approximately 0.0004 (to 4 decimals).
To find the expected number of defects in a production run of 1000 parts, we can use the same formula as in part a:
[tex]E(X) = n \times p[/tex]
Substituting n = 1000 and p = 0.0004, we get:
[tex]E(X) = 1000 \times 0.0004 = 0.4[/tex]
So we can expect to find approximately 0 defects (to the nearest whole number) in a production run of 1000 parts.
However, it's important to note that this assumes the process is operating exactly at the mean weight of 12 ounces and there is no other source of variation. In practice, there may still be some small amount of variation that could result in a few defects.
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Reflection, refraction, and the formation of images by mirrors and lenses has been successful described by the A) wave model of light. B) ray model of light. C) particle model of light. D) none of the given answers
The correct answer is B). Reflection, refraction, and the formation of images by mirrors and lenses has been successful described by the Ray Model of Light.
Reflection, refraction, and the formation of images by mirrors and lenses can be explained using the Ray Model of Light, which states that light travels in straight lines, called rays.
As an electromagnetic wave, light travels in straight lines along narrow beams of light, which are referred to as rays. Despite the fact that reflection or refraction can alter its path, light always moves in a straight line.
When light rays reflect off a surface or pass through a lens, the angle of reflection or refraction can be calculated using geometry and the law of reflection/refraction.
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your cousin's eyes suddenly light up and he reaches out, executes a double-jump of your checker pieces, then smiles at you triumphantly. the brain signals for these voluntary actions originated in the of your cousin's brain.
The brain signals for these voluntary actions originated in the cerebrum of your cousin's brain.
Voluntary actions are actions that are planned or executed consciously. Involuntary actions occur naturally, without conscious control, and cannot be changed. When you see something interesting, your brain sends signals to your body that cause you to move your arms or legs, speak or even blink your eyes.
The cerebrum is the largest part of the human brain and it is located at the top and front of the brain. It is the region in the brain that is responsible for conscious thought, voluntary movement, sensation, and memory.
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a pump is to move water from a lake into a large, pressurized tank as shown in the figure at a rate of 1000 gal in 10 min or less. will a pump that adds 3 hp to the water work for this purpose? support your answer with appropriate calculations. repeat the problem if the tank were pressurized to 3, rather than 2, atmospheres.
A 3 hp pump would be used to move water from a lake into a large, pressurized tank.
To solve,
P = F × V,
where P is the power, F is the force, and V is the velocity of the water.
We know the power is 3 hp and the velocity is 1000 gal/10 min, so we can solve for F:
F = P ÷ V = 3 hp ÷ 1000 gal/10 min
= 0.003 hp/gal/min.
Now, if the tank is pressurized to 3 atmospheres, the pressure will increase the force needed to move the water.
So, the equation for pressure is P = F × A, where P is the pressure, F is the force, and A is the area.
We know the pressure is 3 atmospheres and the force is 0.003 hp/gal/min, so we can solve for A:
A = P ÷ F = 3 atmospheres ÷ 0.003 hp/gal/min
= 1000 gal/10 min/3 atmospheres.
Therefore, a 3 hp pump will work for this purpose, even if the tank is pressurized to 3 atmospheres.
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The magnitude of the force between two point charges 1. 0 m
apart is 9 x 10°n. If the distance between them is doubled,
what does the force become?
Force will become 2.25 x 10^N. because, According to Coulomb's Law, the force between two point charges is directly proportional to the product of their charges and inversely proportional to the square of the distance between them.
Thus, if the distance between two point charges is doubled, the force between them will decrease by a factor of 4. This is because the inverse square relationship means that the force decreases rapidly with distance. Therefore, if the force between two point charges is 9 x 10^N when they are 1 meter apart, when the distance is doubled to 2 meters, the force will become 9 x 10^N / 4 = 2.25 x 10^N.
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What allowed the Voyager 2 spacecraft to make a "tour" of all four of the jovian planets in the late 1970's and the 1980's?
1) NASA had developed a new kind of rocket that could propel the craft from planet to planet
2) the four planets were approximately aligned on one side of the Sun and we used the gravity of each planet to speed up the spacecraft to get to the next one in its path
3) the spacecraft stopped off to collect fuel on the satellites of each planet before proceeding to the next one
4) we used laser beams to propel the spacecraft into the outer solar system, where sunlight is dim
5) you can't fool me, no single spacecraft has ever explored four different planets
Answer:
The four planets were approximately aligned on one side of the Sun and we used the gravity of each planet to speed up the spacecraft to get to the next one in its path
Explanation:
All the Options 1, 2, 3, 4 are true about the Voyager 2 spacecraft to make a "tour" of all four of the jovian planets in the late 1970's and the 1980's.
The Voyager 2 spacecraft was able to make a "tour" of all four of the jovian planets in the late 1970's and the 1980's due to the following:
NASA had developed a new kind of rocket that could propel the craft from planet to planet.The four planets were approximately aligned on one side of the Sun and we used the gravity of each planet to speed up the spacecraft to get to the next one in its path.The spacecraft stopped off to collect fuel on the satellites of each planet before proceeding to the next one.We used laser beams to propel the spacecraft into the outer solar system, where sunlight is dim.Learn more about "NASA and spacecraft" at: https://brainly.com/question/16538247
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for the given input voltage amplitude (200 mvpp), what is the maximum gain that this amplifier will be able to produce? show your calculation below.
The maximum gain of an amplifier that produces an output voltage amplitude of 50 Vpp with an input voltage amplitude of 200 mVpp is 25. The formula to calculate gain is output voltage amplitude divided by input voltage amplitude.
In this case, we are given an input voltage of 200 mVpp, so the maximum gain of this amplifier can be calculated as follows:
Gain = Output Voltage/Input Voltage = Output Voltage/200 mVpp
Therefore, the maximum gain of this amplifier is equal to the output voltage. In other words, the maximum gain of this amplifier is equal to the voltage output of the amplifier.
To calculate the output voltage of the amplifier, we need to know the supply voltage and the resistance of the load. Assuming the supply voltage is 5V and the load resistance is 10k ohms, the output voltage can be calculated as follows:
Output Voltage = Supply Voltage * Load Resistance / (Load Resistance + Output Resistance) = 5V * 10k ohms / (10k ohms + 10k ohms) = 5V
Therefore, the maximum gain of this amplifier is 5V/200 mVpp = 25.
To summarize, the maximum gain of this amplifier is 25, calculated by dividing the output voltage by the input voltage. The output voltage can be calculated by knowing the supply voltage and load resistance.
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how to accurately sample a waveform with a maximum frequency of 2khz, what would be the minimum sample rate
In order to accurately sample a waveform with a maximum frequency of 2kHz, the minimum sample rate would be 4kHz.
What is sampling a waveform?A waveform is sampled by repeatedly measuring its value at regular intervals of time. The process of sampling a waveform is known as sampling. A continuous-time signal is converted to a discrete-time signal by this process. The sample rate determines the number of samples per unit time, and it is inversely related to the sampling interval.
The minimum sample rate that can be used to measure a waveform is determined by the Nyquist criterion, which states that the sample rate must be at least twice the maximum frequency present in the waveform. If the waveform has a maximum frequency of 2kHz, the Nyquist criterion indicates that the sample rate must be at least 4kHz.
Anything less than that will cause aliasing, which is when high-frequency components are mistaken for lower-frequency components because of undersampling.
Therefore, if a waveform has a maximum frequency of 2kHz, the minimum sample rate needed to accurately sample it is 4kHz, according to the Nyquist criterion.
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a vhf television station assigned to channel 22 transmits its signal using radio waves with a frequency of 518 mhz. calculate the wavelength of the radio waves. round your answer to significant digits.
The wavelength of the radio waves is approximately 0.579 m or 57.9 cm
Wavelength is the distance covered by an electromagnetic wave while propagating through space. The relationship between the wavelength and the frequency of an electromagnetic wave is given by the formula;
Wavelength = speed of light / frequency = c / f
where c is the speed of light and f is the frequency of the wave.
To calculate the wavelength of a VHF television station assigned to channel 22 that transmits its signal using radio waves with a frequency of 518 MHz, we substitute the known values into the equation above.
Wavelength = c / f = (3 x 10⁸ m/s) / (518 x 10⁶ Hz) = 0.579 m or 57.9 cm (rounded to three significant digits)
Therefore, the wavelength of the radio waves transmitted by the VHF television station assigned to channel 22 is 0.579 m or 57.9 cm (rounded to three significant digits).
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A 1,600 kg car is moving at 22 m/s. How much work was done to accelerate it to this speed?
O 7.7 x 105 J
O 3.5 x 104 J
○ 3.9 × 105 J
O 1.5 x 106 J
!!! Urgent
The closest answer among the options given is 3.9 x 105 J. . An object can accelerate by increasing its speed, changing its direction, or both.
What is Acceleration?
Acceleration is the rate of change of velocity of an object over time. It is a vector quantity, meaning it has both magnitude and direction, and is expressed in units of meters per second squared (m/s^2) or feet per second squared (ft/s^2)
The work done to accelerate the car can be calculated using the kinetic energy formula:
K = 1/2 mv^2
Substituting the given values, we get:
K = 1/2 (1600 kg) (22 m/s)^2
K = 677,600 J
Therefore, the work done to accelerate the car to this speed is 677,600 J.
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Solve the circuit shown in the figure above, also explain how you did it
Answer:
Explanation:
Using Kirchhoff's laws, we can solve for the current i:
At the node where the 2Ω and 4Ω resistors meet, the current is split into two branches, i and i1. Applying Kirchhoff's current law (KCL), we have:
i + i1 = 12/2 = 6 A
At the loop with the 2Ω, 4Ω, and 5Ω resistors, applying Kirchhoff's voltage law (KVL), we have:
-20 + 2i + 4i1 + 5i1 = 0
-20 + 6i1 + 2i = 0
6i1 + 2i = 20
3i1 + i = 10
We can solve this system of equations by substitution, which gives:
i = 2 A
Therefore, the current through the 2Ω resistor is 2 A. The answer is (A) 2 A.
5. (10 pts) The shedding frequency based on the analysis of Question 3 is to be determined through the use of a small-scale model to be tested in a water tunnel. For the specific bridge structure of interestD=20 cmandH=300 cm, and the wind speedVis25 m/s. Assume the air is at MSL ISA conditions. For the model, assume that D m=2 cm. (a) Determine the length of the model Hm needed for geometric scaling. (b) Determine the flow velocity Vm needed for Reynolds number scaling. (c) If the shedding frequency for the model is found to be 27 Hz, what is the corresponding frequency for the full-scale structural component of the bridge? Notes: Refer to the eBook for the properties of air. Assume the density of water rho H2O= 1000 kg/m3 and the dynamic viscosity of water μ H2O=1×10^−3 kg/m/s.
Length of the model Hm = 12 cm. The flow velocity Vm = 5 m/s. Frekuensi yang sesuai untuk skala penuh komponen struktural jembatan adalah 2,7 Hz.
To determine the length of the model, Hm, for geometric scaling, you must use the relationship Hm/H = Dm/D, where Dm is the model's diameter, D is the full scale structure's diameter, and Hm and H are the model and full-scale heights, respectively. Substituting in the given values, we have Hm/300 cm = 2 cm/20 cm, which can be solved for Hm to find that Hm = 12 cm.
To determine the flow velocity Vm for Reynolds number scaling, you must use the relationship Vm/V = sqrt(rhoH2O/rho)*(D/Dm), where rho is the air density and rhoH2O is the water density. Substituting in the given values, we have Vm/25 m/s = sqrt(1000 kg/m3/1.225 kg/m3)*(20 cm/2 cm). Solving for Vm, we find that Vm = 5 m/s.
To determine the shedding frequency for the full-scale structure of the bridge, we must use the relationship f/fmodel = (Vmodel/V)*(Dmodel/D). Substituting in the given values, we have f/27 Hz = (5 m/s/25 m/s)*(2 cm/20 cm). Solving for f, we find that the corresponding frequency for the full-scale structural component of the bridge is 2.7 Hz.
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uestion 8: Electron Two-Slit Interference Proctor A beam of electrons with velocity 15.0 m/s pass through two slits separated by 0.500 mm. We place a detector on a distant screen. At which angle measured from the horizontal can we be sure we never detect an electron. (a) The electron could be detected anywhere. O (b) 0.00 rad O (C) 0.0485 rad O (d) 0.195 rad (e) 0.0971 rad Save 5 points available for this attempt
The angle measured from the horizontal is where we can be sure that we never detect an electron is 0.0485 rad.
The correct answer is C.
To find the angle at which we can be sure to never detect an electron, we will use the equation:
θ = λ/d
Where:
θ = angle at which we can be sure to never detect an electron
λ = de Broglie wavelength of the electron = h/p
where h = Planck's constant and p = momentum of electron (m*v)
We know that the velocity of the electron is 15.0 m/s. To find the momentum, we can use the mass of an electron (9.11 x 10⁻³¹ kg).
p = m*v = (9.11 x 10⁻³¹ kg) * (15.0 m/s)
p = 1.37 x 10⁻²⁹ kg m/s
Now we can find the de Broglie wavelength:
λ = h/p
λ = (6.626 x 10⁻³⁴ J s) / (1.37 x 10⁻²⁹ kg m/s)
λ = 4.83 x 10⁻⁵ m
Now we can substitute this into the equation for θ:
θ = λ/d
θ = (4.83 x 10⁻⁵ m)/(0.500 x 10⁻³ m)
θ = 0.0966 rad
However, this is the angle at which we would see destructive interference. To be sure we never detect an electron, we want the angle to be half of this, or:
θ = 0.0966/2
θ = 0.0483 rad, which rounds to 0.0485 rad (to 3 significant figures).
Therefore, the correct answer is (c) 0.0485 rad.
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the cardinals kick a 0.43 kg football for a 3-point field goal. if the ball is kicked at 24 m/s at an angle of 53-degrees, how far will it go before landing back on level ground?
The distance which the football which cover before landing back on the ground level will be about 56.4 meters.
What is the distance of football?
The mass of football, m = 0.43 kg, Initial velocity of football (v) = 24 m/s, Angle of inclination(θ) = 53°
From the given data, we know that the vertical component of the initial velocity is given by, vsin(θ) and the horizontal component of initial velocity is given by, vcos(θ). So, the time taken by the football to reach the maximum height is given by,
t = (vsin(θ))/g
Here, g = 9.8 m/s²
Now, the maximum height attained by the football is given by,h = (vsin(θ))²/(2g).
Therefore, the time of flight or the total time which is taken by the football to land on the ground level is given by,
T = 2t
Now, the horizontal distance travelled by the ball is given by, d = (vcos(θ))T
Substituting the given values in the above formulas, we get:
t = (24sin(53°))/9.8 = 1.71 s
h = (24sin(53°))²/(2×9.8) = 23.4m
T = 2×1.71 = 3.42 s
d = (24×cos(53°))×3.42 = 56.4 m
Therefore, the football will go 56.4 m before it is landing back on the level ground.
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Categorize the following exercises as being isometric or isotonic.
Pushing constantly against a concrete wall
Running up a hill
Swimming freestyle
Pedaling a bicycle on a flat surface
Holding a bench-press bar in the same position
Doing a plank exercise (holding a push-up position)
Balancing on tiptoes
Doing bicep curls
Isometric pushes against a wall made of concrete, Isotonic running up a hill. isotonic freestyle swimming, bicycle pedalling on a level surface: isotonic.
Static muscle contractions, in which the length of the muscle does not change during the workout, are called isometric exercises. This indicates that during the activity, there is no discernible movement or alteration in joint angle. Instead, the muscles are tense against a constant force or maintained still for a certain period of time. Exercises that are isometric include pushing against a wall, keeping a plank position, and tightening a hand grasp. Exercises that are isometric can help to increase joint stability and balance as well as muscular strength and endurance. They can also be incorporated into normal workout routines for general health and strength training. They are frequently used in physical therapy to aid patients in recovering from injuries or surgery.
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