If a car has a mass of 4.5 tons and can accelerate uniformly from rest to 28 m/s in 6.6 seconds, what is the force acting on the car? 4. List and define the two types of forces by which all others are classified.

Answers

Answer 1

1. The force acting on the car is approximately 19,080 Newtons when accelerating uniformly from rest to 28 m/s in 6.6 seconds. 2). The two types of forces by which all others are classified are contact forces (occur through direct physical contact) and non-contact forces (act at a distance without direct contact).

The force acting on the car, we can use Newton's second law of motion, which states that force (F) is equal to mass (m) multiplied by acceleration (a): F = m * a

Mass of the car, m = 4.5 tons (1 ton = 1000 kg, so the mass is 4500 kg)

Final velocity, v = 28 m/s

Time taken, t = 6.6 seconds

First, we need to calculate the acceleration (a) using the equation:

a = (v - u) / t

where u is the initial velocity, which is 0 m/s since the car starts from rest.

Plugging in the values, we have:

a = (28 - 0) / 6.6

Calculating the value, we find:

a ≈ 4.24 m/s²

Now, we can calculate the force (F) using the equation:

F = m * a

Substituting the given mass and acceleration:

F = 4500 kg * 4.24 m/s²

Calculating the value, we find:

F ≈ 19,080 N

Therefore, the force acting on the car is approximately 19,080 Newtons.

Now, moving on to the second part of your question:

4. The two types of forces by which all others are classified are:

a) Contact forces: These are forces that occur when two objects are in direct physical contact with each other.

Examples of contact forces include frictional forces, normal forces, and applied forces.

b) Non-contact forces: These are forces that act at a distance without any direct physical contact between objects.

Examples of non-contact forces include gravitational forces, electromagnetic forces, and magnetic forces.

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Related Questions

Answer the value that goes into the blank.
The energy of a single photon with wavelength = 0.66 nm is ------× 10-16 J.

Answers

The energy of a single photon with a wavelength of 0.66 nm can be calculated using the equation E = hc/λ, where h is Planck's constant and c is the speed of light. The value that fills in the blank is determined by evaluating this equation.

The energy of a photon is given by the equation E = hc/λ, where E represents energy, h is Planck's constant (approximately 6.626 x 10^-34 J·s), c is the speed of light (approximately 3.00 x 10^8 m/s), and λ is the wavelength of the photon.

To find the energy of a single photon with a wavelength of 0.66 nm, we can substitute the values into the equation:

E = (6.626 x 10^-34 J·s) * (3.00 x 10^8 m/s) / (0.66 x 10^-9 m)

Simplifying the equation, we get:

E = 3.00 x 10^-19 J

Therefore, the energy of a single photon with a wavelength of 0.66 nm is 3.00 x 10^-19 J or 3.00 x 10^-16 × 10^-3 J.

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the earth's magnetic dipole moment is 8.0×1022am2.true or false?

Answers

The statement is true. The Earth's magnetic dipole moment is estimated to be around 8.0×10²² Am².

The Earth's magnetic dipole moment refers to the strength and orientation of the Earth's magnetic field. It is a measure of the magnetic field's ability to act as a dipole, similar to a bar magnet. The Earth's magnetic field is generated by the movement of molten iron in its outer core.

The Earth's magnetic dipole moment is typically expressed in units of ampere-meter squared (Am²). It is not a constant value and can change over time due to various factors, including the movement of the molten iron in the core.

Scientists estimate the Earth's current magnetic dipole moment to be around 8.0×10²² Am². This value represents the strength and orientation of the Earth's magnetic field.

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False. The earth's magnetic dipole moment is not 8.0×1022 A·m². The actual value of the Earth's magnetic dipole moment is approximately 7.9×1022 A·m².

The earth's magnetic dipole moment is not 8.0×10^22 A·m². The correct value of the Earth's magnetic dipole moment is approximately 7.9×10^22 A·m². The magnetic dipole moment represents the strength and orientation of the Earth's magnetic field, which is generated by the motion of molten iron in its outer core.

It is measured in units of ampere-meters squared (A·m²) and provides valuable information for studying Earth's magnetic field and its interactions with the Sun and other celestial bodies. The accurate determination of the Earth's magnetic dipole moment is crucial for various applications, including navigation, geophysics, and understanding the behavior of Earth's magnetosphere.

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2) Re-write the equation in terms of 6 \[ \gamma_{d}=\frac{G_{s} \gamma_{w}}{1+e} \]

Answers

The equation given as:

[tex][tex]\[ \gamma_{d}[/tex]

=[tex]\frac{G_{s} \gamma_{w}}{1+e} \][/tex][/tex]

needs to be rewritten in terms of 6. We know that e = 2.71 approximately,  the equation in terms of 6 is:

[tex][tex]\[\gamma_d = \frac{6G_s\gamma_w}{22.26}\][/tex][/tex]

This new equation gives the value of γd in terms of 6.

so we will substitute this value in the equation to get:

[tex]\[\gamma_d = \frac{G_s\gamma_w}{1+2.71}\][/tex]

Simplifying the expression by adding the denominator terms and getting a common denominator, we get:

[tex][tex]\[\gamma_d = \frac{G_s\gamma_w}{3.71}\][/tex][/tex]

Now, we can divide both sides of the equation by 3.71 to isolate γd on one side and write the equation in terms of 6, as follows:

[tex]\[\gamma_d[/tex]

[tex]= \frac{G_s\gamma_w}{3.71} \times \frac{6}{6}\] \[\gamma_d [tex][/tex]

[tex]= \frac{6G_s\gamma_w}{22.26}\][/tex][/tex]

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Question 11 In a DC circuit Ohm's law can be applied to: (a) Resistors (b) Voltage sources (c) Inductors (d) Capacitors O (a), (c), and (d) O (a) and (b) all only (a)

Answers

In a DC circuit, Ohm's law can be applied to resistors.

What is Ohm's Law?

Ohm's Law is a law in physics that establishes a relationship between electric current, voltage, and resistance in an electric circuit. Georg Simon Ohm first proposed this in 1827. This law applies to direct current (DC) circuits and is utilized to find out about the behavior of electrical circuits.

There are three main factors to remember when it comes to Ohm's law; current, resistance, and voltage. Ohm's law states that the current through a conductor between two points is directly proportional to the voltage across the two points and inversely proportional to the resistance between them. The three parts of this equation are:

I = Current (in amperes) V = Voltage (in volts) R = Resistance (in ohms)

Hence, in a DC circuit Ohm's law can be applied to resistors only.

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Obtain Root Locus plot for the following open loop system:
() =
+ 3
( + 5)( + 2)( − 1)
For which values of gain K is the closed loop system stable?

Answers

The values of gain K for which the closed-loop system is stable cannot be determined without plotting the Root Locus.

To obtain the Root Locus plot for the given open-loop system, we need to determine the poles and zeros of the system and then plot the loci of the roots as the gain K varies.

The given open-loop transfer function is:

G(s) = K(s + 3) / ((s + 5)(s + 2)(s - 1))

The poles of the system are the values of 's' that make the denominator of the transfer function equal to zero. So, we have poles at s = -5, s = -2, and s = 1.

The zeros of the system are the values of 's' that make the numerator of the transfer function equal to zero. In this case, there is a zero at s = -3.

To find the values of gain K for which the closed-loop system is stable, we need to determine the regions of the Root Locus plot that lie on the left-hand side of the complex plane. In other words, the regions where the number of poles to the right of a point is an odd number. From the given transfer function, we can see that there are three poles at s = -5, s = -2, and s = 1. Therefore, the Root Locus plot will start from these three poles and extend towards infinity. To find the breakaway and break-in points on the Root Locus plot, we can perform calculations and analysis using the characteristic equation. However, since the calculations are involved and require step-by-step analysis, it is best to refer to a graphical representation of the Root Locus plot. Please refer to a Root Locus plot software or tool to obtain the complete Root Locus plot for the given open-loop system. The plot will show the regions of stability and the values of gain K for which the closed-loop system is stable.

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A particle moves in a straight line with the given velocity v(t)=4t−²−1( in m/s). Find the displacement and distance traveled over the time interval [1/2,3].
(Use symbolic notation and fractions where needed.)
displacement:
total distance traveled:

Answers

The total distance traveled by the particle over the time interval [1/2, 3] is 19/6 units (meters). The total distance traveled by the particle over the time interval [1/2, 3] is 19/6 units (meters).

To find the displacement and total distance traveled by the particle over the time interval [1/2, 3], we need to integrate the given velocity function.

The displacement can be found by evaluating the definite integral of the velocity function with respect to time over the given time interval:

Displacement = ∫[1/2 to 3] (4t^(-2) - 1) dt

Integrating the velocity function, we get:

Displacement = [-2t^(-1) - t] evaluated from 1/2 to 3

= [(-2/(3) - 3) - (-2/(1/2) - (1/2))]

= [(-2/3 - 3) - (-4 + 1/2)]

= [-2/3 - 3 + 4 - 1/2]

= -2/3 - 5/2

= -4/6 - 15/6

= -19/6

Therefore, the displacement of the particle over the time interval [1/2, 3] is -19/6 units (meters).

To find the total distance traveled, we need to consider the absolute value of the velocity function and integrate it over the given time interval:

Total distance traveled = ∫[1/2 to 3] |4t^(-2) - 1| dt

Integrating the absolute value of the velocity function, we get:

Total distance traveled = ∫[1/2 to 3] (4t^(-2) - 1) dt

Since the absolute value of the velocity function is the same as the given velocity function, the total distance traveled is the same as the displacement, which is | -19/6 | = 19/6 units (meters).

Therefore,  the total distance traveled by the particle over the time interval [1/2, 3] is 19/6 units (meters).

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A 2 Question: If we wish to exponentiate a number, we use the " (index) symbol. For example, if we wish to type an expression like ?, we can do so by typing **(-2) into the answer box. Additionally, there are a number of Greek letters whose use is commonplace in physics, such as Q, 1, 7, 8. In a question where you are required to use the variables in your answer, you type the English spelling for the Greek letter. The names of the Greek letters are listed on your formula sheet. For example, to use ju you would type mu. Try and enter the expression below into the answer box. μα? 20 In the box below, enter the expression for the volume of a cylinder with radius r, and height h. V= One thing you may notice is that a doesn't display as a 'variable found in your answer', whereas the other Greek letters do. This is due to the fact that a is usually given its canonical value of 3.14159265.... You should not copy variables from the question text, instead type them into the answer box using your keyboard. Check

Answers

The expression for the volume of a cylinder with radius r, and height h is V = πr²h. It is worth noting that if we wish to exponentiate a number, we use the "^" symbol. For example, if we wish to type an expression like "x to the power of 3," we can do so by typing "x^3" into the answer box.

Additionally, there are a number of Greek letters whose use is commonplace in physics, such as α (alpha), β (beta), γ (gamma), δ (delta), θ (theta), λ (lambda), μ (mu), etc. In a question where you are required to use the variables in your answer, you type the English spelling for the Greek letter. The names of the Greek letters are listed on your formula sheet. For example, to use μ (mu), you would type "mu."When typing variables, it is important not to copy them from the question text. Instead, type them into the answer box using your keyboard. Also, note that the variable "a" does not display as a "variable found in your answer" because it is usually given its canonical value of 3.14159265. Hence, it's recommended to use "pi" instead of "a" while solving mathematical problems.

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The rated current of a 50-hp, 250-volt shunt motor is 186 amps. The no-load speed of the motor is 850 rpm. The combined armature and commutating field resistance is 0.052 ohm. The shunt field resistance is 150 ohms. It is desired that the starting torque of the motor is equal to the rated load torque. Determine:
a. total initial resistance of the starter
b. armature current when the speed becomes 25% of the no-load speed, with the starting resistance still in the circuit. Neglect armature drop with no-load and armature reaction.

Answers

a. Total initial resistance of the starter is 0.05 Ω.Step-by-step explanation:The rated current of a 50-hp, 250-volt shunt motor is 186 amps. The no-load speed of the motor is 850 rpm. The combined armature and commutating field resistance is 0.052 ohm. The shunt field resistance is 150 ohms.

It is desired that the starting torque of the motor is equal to the rated load torque, so load torque Tl = Ts.The torque developed by a DC shunt motor is given as;T = (η φ Ia)/2πN... (1)where,η = efficiency of the motorφ = flux/poleIa = armature currentN = speed of the motorTl = Ts = T,  We know that, back e.m.f. Eb ∝ NTherefore, Eb₁/Eb₂ = N₁/N₂ …(5)Where,Eb₁ = back e.m.f. at N₁ rpm = V − Ia₁ (Ra + Rsh)Eb₂ = back e.m.f. at N₂ rpm = V − Ia₂ (Ra + Rsh)N₁ = speed at which Eb₁ is required to be found = N₀ = 850 rpmN₂ = speed at which Eb₂ is given = 212.5 rpm

Substituting the given values in eq. (5), we get;Eb₁/0.25Eb₁ = 850/212.5Eb₁ = 28.24VTherefore, Ia₂ = (V − Eb₂)/(Ra + Rsh)The armature voltage at N₂ = 0.25Eb₁ = 7.06VV = 250VRa = armature resistance = 0.052 ΩRsh = shunt field resistance = 150 ΩSubstituting the given values in the above equation, we get;Ia₂ = (250 − 7.06)/(0.052 + 150) = 1.62AThus, the total initial resistance of the starter is 0.05 Ω and the armature current when the speed becomes 25% of the no-load speed, with the starting resistance still in the circuit is 1.62 A.

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Gallium Antimonide (GaSb) has a zincblende cubic lattice structure and a density of 5610 kg m
−3
. The atomic weight of Ga is 69.723 and the atomic weight of Sb is 121.76. a) Indicate the relative number of atoms per unit cell in a zincblende lattice structure. b) Calculate the average bond length of the unit cell of GaSb.

Answers

a) The relative number of atoms per unit cell in a zincblende lattice structure is 8.

b) The average bond length of the unit cell of GaSb is approximately 3.63 Å.

a) In a zincblende lattice structure, there are 8 atoms per unit cell. This structure consists of two interpenetrating face-centered cubics (FCC) lattices, where each FCC lattice contains 4 atoms.

b) To calculate the average bond length, we need to consider the lattice parameter. For the zincblende structure, the lattice parameter (a) is related to the bond length (d) by the equation d = a / sqrt(3). Given the density and atomic weights of Ga and Sb, we can calculate the lattice parameter using the formula a = (m / (ρ * N))^(1/3), where m is the molar mass of GaSb and N is Avogadro's number.

Then, we can calculate the average bond length using the obtained lattice parameter. The average bond length of GaSb is approximately 3.63 Å.

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For a wave traveling in deep water has the height of H0
= 2.1 m and period T = 8 s and angle α0 = 18o. Find the wave height
and wavelength at d = 1.5 m

Answers

The calculated value of [tex]\(\lambda\)[/tex], we can then find the wave height at the given depth of [tex]\(d = 1.5\)[/tex] m.

To find the wave height and wavelength at a depth of [tex]\(d = 1.5\)[/tex] m in deep water, we can use the dispersion relation for deep water waves:

[tex]\[c = \sqrt{g \lambda}\][/tex]

where [tex]\(c\)[/tex] is the wave speed, [tex]\(g\)[/tex] is the acceleration due to gravity [tex](\(9.8 \, \text{m/s}^2\))[/tex], and [tex]\(\lambda\)[/tex] is the wavelength.

Given the wave period \(T = 8\) s, we can calculate the wave speed using the formula:

[tex]\[c = \frac{\lambda}{T}\][/tex]

Substituting the values, we have:

[tex]\[c = \frac{\lambda}{8}\][/tex]

To find the wavelength, we rearrange the equation to solve for [tex]\(\lambda\)[/tex]:

[tex]\(\lambda = c \cdot T\)[/tex]

Substituting the calculated value of c, we get:

[tex]\(\lambda = \left(\frac{\lambda}{8}\right) \cdot 8\)[/tex]

Simplifying the equation, we find that [tex]\(\lambda\)[/tex] remains the same regardless of the depth.

Now, to find the wave height at the given depth of \(d = 1.5\) m, we use the wave height formula for deep water waves:

[tex]\[H = H_0 \cdot \cos(\alpha_0) \cdot \exp\left(\frac{k(d + h)}{\cos(\alpha_0)}\right)\][/tex]

where [tex]\(H_0\)[/tex] is the wave height at the surface, [tex]\(\alpha_0\)[/tex] is the wave angle at the surface, [tex]\(k = \frac{2\pi}{\lambda}\)[/tex] is the wave number, and \(h\) is the average water depth.

Given that [tex]\(H_0 = 2.1\)[/tex] m and [tex]\(\alpha_0 = 18^\circ\)[/tex], we can calculate the wave number [tex]\(k\)[/tex] using the formula:

[tex]\(k = \frac{2\pi}{\lambda}\)[/tex]

Substituting the calculated value of [tex]\(\lambda\)[/tex], we can then find the wave height at the given depth of [tex]\(d = 1.5\)[/tex] m.

To summarize, the wavelength remains the same regardless of depth in deep water, while the wave height changes with depth according to the formula provided.

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Image transcription text[-/9 Points]
DETAILS
SERCP11 16.1.OP.006. 0/5 Submissions Used
The figure below shows a small, charged bead, with a charge of q = +45.0 nC, that moves a distance of d = 0.179 m from point A to point B In the presence of a uniform electric field E of magnitude 270 N/C, pointing rig
(a) What Is the magnitude (in N) and direction of the electric force on the bead?
magnitude
N
direction
-Select-
(b) What is the work (in ]) done on the bead by the electric force as it moves from A to B?
(c) What is the change of the electric potential energy (in ]) as the bead moves from A to 8? (The system consists of the bead and all its surroundings.)
PE - PEA =
(d) What is the potential difference (in V) between A and B?
V8 - VE
Need Help?
Read It... Show more

Answers

(a) Magnitude and direction of the electric force is 12.15 µN, (b) Work done by the electric force is 2.18 µJ,(c) Change of the electric potential energy is (45.0 nC)ΔV,(d)the potential difference is 48.33 V.

(a) The magnitude of the electric force on the bead can be calculated using the formula F = qE, where F is the force, q is the charge, and E is the electric field.

F = (45.0 nC)(270 N/C) = 12.15 µN

(b) The work done on the bead by the electric force can be calculated using the formula W = Fd, where W is the work, F is the force, and d is the distance.

W = (12.15 µN)(0.179 m) = 2.18 µJ

(c) The change in electric potential energy can be calculated using the formula ΔPE = qΔV, where ΔPE is the change in potential energy, q is the charge, and ΔV is the change in electric potential.

ΔPE = (45.0 nC)ΔV

(d) The potential difference between points A and B can be calculated using the formula ΔV = EΔd, where ΔV is the potential difference, E is the electric field, and Δd is the distance.

ΔV = (270 N/C)(0.179 m) = 48.33 V

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A Volt is defined as the potential difference between two points of a conducting wire carrying a constant current of 1 ampere when the power dissipated between these points is 1 watt O a. True O b. False

Answers

False. A volt is defined as the potential difference when one joule of work is done per coulomb of charge moved, not specifically related to a conducting wire carrying a constant current and power dissipation.

A volt is defined as the unit of electric potential difference or voltage. It is not specifically tied to a conducting wire carrying a constant current of 1 ampere and power dissipation of 1 watt. The volt is defined as the potential difference between two points when one joule of work is done per coulomb of charge moved between those points.

This definition holds true in various electrical contexts, not limited to a specific current or power dissipation scenario. Therefore, the statement that a volt is defined based on a conducting wire with a constant current and power dissipation of 1 watt is incorrect.

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What are the voltages at vc₁ and vc2 in the circuit in Fig. 9.90 for v = -1.6 V, IEE = 5.0 mA, Rc = 350 2, and VREF=-2 V?

Answers

The voltages at vc₁ and vc₂ in the circuit are -3.35 V and -1.35 V, respectively, for the given values of v, IEE, Rc, and VREF.

Here are the calculations:

The voltage vc₁ is the voltage at the collector of the transistor. It is equal to the input voltage v minus the product of the emitter current IEE and the collector resistor Rc. The emitter current IEE is equal to the bias current, which is given as 5.0 mA. The collector resistor Rc is given as 350 2. So, the voltage vc₁ is calculated as follows:

vc₁ = v - IEE * Rc

= -1.6 V - 5.0 mA * 350 2

= -3.35 V

The voltage vc₂ is the voltage at the base of the transistor. It is equal to the voltage vc₁ minus the reference voltage VREF. The reference voltage VREF is given as -2 V. So, the voltage vc₂ is calculated as follows:

vc₂ = vc₁ - VREF

= -3.35 V - (-2 V)

= -1.35 V

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what is the classification of an edge-on spiral galaxy with a large central bulge?

Answers

The classification of an edge-on spiral galaxy with a large central bulge are classified as type S0 galaxies, or lenticular galaxies,

These galaxies are intermediate between elliptical and spiral galaxies, with features of both. Like spiral galaxies, they have a disk component but lack the spiral arms, while they have a bulge like an elliptical galaxy but lack the spherical shape. Type S0 galaxies contain less interstellar gas and dust than typical spiral galaxies, so they have little ongoing star formation. They appear to be the result of the transformation of spiral galaxies into elliptical galaxies through a process of gas loss and the aging of the stellar population.

Their edge-on appearance means that they can be studied in detail, as the dust and gas in the galaxy are visible as they cross in front of the central bulge. This provides astronomers with an opportunity to study the properties of the gas and dust, as well as the structure of the central bulge, which is often difficult to observe in other types of galaxies. So therefore edge-on spiral galaxies with large central bulges are classified as type S0 galaxies, or lenticular galaxies.

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b. Gas turbines can also operate in open cycle mode, for which
exhaust gas temperatures exiting the gas
turbine may be around 150° C.
i. Calculate the maximum theoretical efficiency of open cycle gas

Answers

The maximum theoretical efficiency of open cycle gas can be calculated using the Carnot efficiency formula. The Carnot efficiency formula is given as:ηC = 1 - T2/T1

Where T2 is the temperature of the exhaust gas exiting the gas turbine and T1 is the temperature of the gas entering the combustion chamber. The maximum temperature for an open cycle gas turbine is around 150° C.T1 can be taken as the temperature at which the air is drawn into the compressor.

For gas turbines, this is typically around 15° C. Substituting these values into the formula:ηC = 1 - T2/T1ηC = 1 - (150+273)/(15+273)ηC = 1 - 423/288ηC = 0.357 or 35.7%Therefore, the maximum theoretical efficiency of open cycle gas is 35.7%.

Note: The Carnot efficiency formula provides an upper limit to the efficiency that can be achieved by any heat engine operating between two given temperatures. However, it is not possible to achieve this efficiency in practice due to various thermodynamic losses and irreversibilities.

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A man is standing by a lake and sees a fish on the bottom. With a rifle he tries to shoot the fish but misses. To succeed he should have​

Answers

To succeed in shooting the fish while standing by a lake, the man would need a different tool or method rather than a rifle.

Rifles are designed for long-range shooting and are not suitable for underwater targets. When a bullet enters the water, it rapidly loses velocity due to the water's resistance and drag, causing it to deviate from its trajectory. As a result, the bullet will likely miss the fish.

If the man wants to successfully shoot the fish underwater, he would need a specialized underwater firearm such as a spear gun or a fishing harpoon. These tools are specifically designed for underwater shooting and have features that account for water resistance, such as heavier projectiles and streamlined designs. By using a spear gun or fishing harpoon, the man can increase his chances of hitting the fish accurately.

Additionally, another method the man could use is fishing with a rod and bait. This would involve using fishing equipment designed for luring and catching fish, rather than shooting them. By casting a fishing line with appropriate bait, the man can attract the fish and attempt to catch it using angling techniques.

The Question was Incomplete, Find the full content below :

A man is standing by a lake and sees a fish on the bottom. With a rifle he tries to shoot the fish but misses. To succeed in shooting the fish, what should the man have?

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A spherically symmetric charge distribution has a charge density rhoo = rhoo e^r/r. Use Gauss's law to determine E-field at any point.

Answers

To discover the electric field in a spherically symmetric charge distribution, we connected Gauss's law and found that the E-field is given by (2ρ₀) / (ε₀r²), where ρ₀ is the charge density and r is the distance from the origin.

How to determine E-field at any point using Gauss's law

To calculate the electric field (E-field) at any point in a spherically symmetric charge distribution with a charge density of [tex]ρ₀e^{(-r/r₀)}[/tex], we will utilize Gauss's law. Gauss's law states that the electric flux through a closed surface is rise to the full charge enclosed divided by the permittivity of free space (ε₀).

Let's consider a Gaussian surface within the shape of a circle centered at the beginning with sweep r. The E-field will have radial symmetry, indicating radially outward or internal at each point on the surface.

To begin with, we got to calculate the whole charge encased inside the Gaussian surface. The charge thickness ρ(r) is given by[tex]ρ₀e^{-r/r₀)}.[/tex]

The charge encased is:

Q_enclosed = ∫ρ(r) dV

Since the charge distribution is spherically symmetric, ready to express the charge encased as:

Q_enclosed = 4π∫ρ(r) r² dr

Substituting the given charge thickness [tex]ρ(r) = ρ₀e^{(-r/r₀)}[/tex], we have:

Q_enclosed = [tex]4πρ₀ ∫e^{(-r/r₀)} r² dr[/tex]

To assess this necessarily, we will make a substitution: u = -r/r₀, du = -dr/r₀. The limits of integration alter appropriately: when r = 0, u = 0, and when r → ∞, u → -∞.

The necessary get to be:

Q_enclosed = [tex]-4πρ₀r₀³ ∫e^{(u)} u² du[/tex]

Integrating this expression gives:

Q_enclosed = [tex]-4πρ₀r₀³ [e^{(u)}(u² + 2u + 2) / r₀³][/tex]assessed from to -∞

Simplifying further, we have:

Q_enclosed = [tex]-4πρ₀r₀³ [lim(u → -∞) e^{(u)}(u² + 2u + 2) / r₀³ - e^{0}(0² + 2(0) + 2) / r₀³][/tex]

Since e^(-∞) approaches zero, the primary term within the brackets gets to be zero.

Q_enclosed = (-4πρ₀r₀³) (0 - 2/r₀³) = (8πρ₀r₀³ / r₀³) = 8πρ₀

Presently, ready to decide on the electric field at any point utilizing Gauss's law:

E = Q_enclosed / (4πε₀r²)

Substituting the value of Q_enclosed, we get:

E = 8πρ₀ / (4πε₀r²) = 2ρ₀ / ε₀r²

Hence, the electric field in a spherically symmetric charge distribution was found to be given by (2ρ₀) / (ε₀r²), where ρ₀ is the charge density and r is the distance from the origin.

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6. Figure 6 shows the top view of a child of mass m with initial
speed v0 and stepping onto end B of the plank. The plank has length
L and mass M that is perpendicular to the child’s path as shown.

Answers

A plank of mass M and length L is situated parallel to the ground. It is set up to pivot about one end A and is supported by a rope from the other end B. A child of mass m and initial speed v0 is shown in Figure 6, stepping onto the plank at point B. After a short time, the child and the plank come to rest relative to the ground.


As we can observe from that a child of mass m with initial speed v0 stepping onto end B of the plank. The plank has length L and mass M that is perpendicular to the child’s path as shown. It is set up to pivot about one end A and is supported by a rope from the other end B. After a short time, the child and the plank come to rest relative to the ground. To solve this problem, we have to apply the law of conservation of momentum for the system and law of conservation of energy.

The velocity of the child can be calculated by law of conservation of momentum for the system of child and plank before and after the collision. Let the velocity of child and plank after collision be v1. So, according to law of conservation of momentum:Total momentum before collision = Total momentum after collisionmv0 = (M + m) v1....(1)The velocity of child and plank relative to the ground can be calculated by law of conservation of energy.

Total energy before collision = Total energy after collision

The initial kinetic energy of the child is mv0²/2As the plank is at rest, its initial kinetic energy is zero.The final potential energy of the system is (M+m)gL

The final kinetic energy of the system is (M+m)v1²/2Thus, we can write,mv0²/2 = (M+m)gL + (M+m)v1²/2....(2)From equation (1), v1 = mv0/(M+m)

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Question 20 Notyet answered Marked out of A.00 Intrinsic semiconductor contains dopant Select one: True False

Answers

Intrinsic semiconductors contain no dopant. The word “intrinsic” refers to the fact that the semiconductor material is pure and has no intentional impurities added to it. Therefore, the answer to the question is "False".

Intrinsic semiconductors are made of pure crystals of silicon or germanium, each of which has a 4-valence electron structure, with each atom having four electrons in its outermost shell. This causes them to be considered as “semiconductors” because they have an electrical conductivity value that is between that of conductors and insulators.

The electrons in the valence band have low energy, whereas the electrons in the conduction band have high energy. At absolute zero, the valence band is completely filled with electrons, and there are no free electrons in the conduction band. Due to this, intrinsic semiconductors have limited electrical conductivity.

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A car travels part of a circle. The radius of the circular path is 10 meters, and the car travels \( 50^{\circ} \) along the circular path. How far (distance in meters) did the car travel?

Answers

The car traveled approximately `10.47 meters`.

To find out the distance traveled by the car when it travels part of a circle with radius 10m and covering an angle of \( 50^{\circ} \), we can use the formula given below.

The formula for the length of an arc of a circle is: `s = θr` Where `s` is the length of the arc, `r` is the radius of the circle and `θ` is the central angle of the circle in radians.

Since the given angle is in degrees, we need to convert it to radians using the formula: `θ(in radians) = θ(in degrees) × (π/180)`

Given that the radius of the circular path is `10 meters` and the car travels \( 50^{\circ} \) along the circular path.

So the central angle of the circle in radians is:`θ = 50° = (50 × π) / 180 = π / 3`

Now we can find the distance travelled by the car as: `s = θr = π / 3 × 10 = (10π) / 3 ≈ 10.47 meters`

Therefore, the car traveled approximately `10.47 meters`.

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Once the dragster in the previous question (2, a) passes the finish line it releases parachufes to work with the rolling resistance to help it come to a stop. The parachutes together provide a resistance of 28kN, and the frictional resistance acting on the dragster is 16.2kN. Recall the dragiter had a velocity of 147.5 m/s at the finish line, and a mass of 1500 kg. (i) Sketch a free body diagram of the situation and ealculate and show the net fore on it. (2 marks) (ii) Determine the change in kinetic energy on the dragster for it to come to a stop and list two possible places this energy is transferred to. (2 marks) (iii) Using energy principles determine the distance the dragster can stop in, correct to 3 significant figures

Answers

(i) To sketch a free-body diagram of the situation, we need to consider the forces acting on the dragster. - There is a forward force due to the parachutes, which provides a resistance of 28kN.

There is a backward force due to friction, which is 16.2kN. - There is also the force of gravity acting downwards on the dragster, which is equal to the weight of the dragster (mass x acceleration due to gravity). The net force on the dragster can be calculated by subtracting the backward force (friction) from the forward force (parachutes). (ii) The change in kinetic energy of the dragster for it to come to a stop can be calculated using the formula: Change in kinetic energy = (1/2) * mass * (final velocity^2 - initial velocity^2) Since the dragster comes to a stop, the final velocity is 0. We are given the initial velocity as 147.5 m/s and the mass of the dragster as 1500 kg. Plugging these values into the formula will give us a change in kinetic energy. Two possible places where this energy is transferred are: - Heat generated due to friction between the dragster's brakes and the wheels. - Sound energy is produced due to the dragster coming to a stop. (iii) To determine the distance the dragster can stop in, we can use the principle of conservation of energy. The initial kinetic energy of the dragster is equal to the work done by the resistance forces (parachutes and friction). Using the formula for kinetic energy: Initial kinetic energy = (1/2) * mass * initial velocity^2 We can set this equal to the work done by the resistance forces: Work done by resistance forces = force * distance Since the net force acting on the dragster is the sum of the forces due to parachutes and friction, we can write: Work done by resistance forces = net force * distance Setting these two equations equal to each other, we can solve for the distance the dragster can stop in.

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What is the change in kinetic energy of a runner from her starting to the finish line if her mass is 64 kg and her final speed is 8.9 m/s?

Answers

The change in kinetic energy of a runner from her starting to the finish line if her mass is 64 kg and her final speed is 8.9 m/s is  2547.2 Joules.

The kinetic energy of a runner from her starting to the finish line if her mass is 64 kg and her final speed is 8.9 m/s is 2547.2 Joules. The change in kinetic energy of an object is given by the formula:ΔK = (1/2)mv²f - (1/2)mv²i.  Where ΔK is the change in kinetic energy of the object, m is the mass of the object, v is the velocity of the object, and the subscripts i and f refer to the initial and final states respectively.

Given, mass of the runner, m = 64 kg. Final speed of the runner, vf = 8.9 m/s.

The initial speed is not given, which means it can be assumed to be zero because the runner starts from rest.

Therefore,ΔK = (1/2)mv²f - (1/2)mv²i= (1/2)(64 kg)(8.9 m/s)² - (1/2)(64 kg)(0 m/s)²= (1/2)(64 kg)(79.21 m²/s²)= 2547.2 Joules.

Thus, the change in kinetic energy of the runner from her starting to the finish line is 2547.2 Joules.

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5. Caiculate the force F required to move the object down the inclined plane as shown if the FRICTION ANGLE is \( 22^{\circ} \).

Answers

To calculate the force required to move the object down the inclined plane, we can use the formula below;

Force due to friction = µR

Where;µ = coefficient of friction,R = normal force acting on the object (equal to the weight of the object in this case)

The angle of the incline can be given as θ in some instances; here, the angle is given as the friction angle, which is 22°.

To obtain the values of the vertical and horizontal components of the weight of the object, we use the following trigonometric ratios;sin θ = perpendicular/hypotenuse, cos θ = base/hypotenuse

We can then calculate the normal force, N = mg cos θ,

where m is the mass of the object, and g is the acceleration due to gravity (9.8 m/s²).

Once we have found the normal force acting on the object, we can calculate the force due to friction and, subsequently, the force required to move the object down the inclined plane.

The force required to move the object down the inclined plane can then be found using the formula below;

F = mgsin θ + µmg cos θ

where;F = force required to move the object down the inclined plane,m = mass of the object,g = acceleration due to gravity,θ = angle of the incline (the friction angle in this case),µ = coefficient of friction

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What is the energy required to power a 1000-Watt microwave for 2 minutes? (10 points)A step-down transformer has an input voltage of 220 V and 1000 windings in the primary coil. If the output voltage is 100 V, how many coils are in the secondary? (10 points)
2.A step-down transformer has an input voltage of 220 V and 1000 windings in the primary coil. If the output voltage is 100 V, how many coils are in the secondary? (10 points)

What is the frequency of a light wave with a wavelength of 10000 m? (10 points)

Answers

1. To calculate the energy required to power a 1000-Watt microwave for 2 minutes, we use the formula:E = P × tWhere E is energy in joules, P is power in watts, and t is time in seconds.Converting 2 minutes to seconds, we get:t = 2 × 60 = 120 seconds Substituting the values, we get:E = 1000 × 120 = 120,000 joules.

Therefore, the energy required to power a 1000-Watt microwave for 2 minutes is 120,000 joules.2. The transformer formula is given as:V1 / V2 = N1 / N2Where V1 is the input voltage, V2 is the output voltage, N1 is the number of coils in the primary, and N2 is the number of coils in the secondary.Substituting the values, we get:

220 / 100 = 1000 / NN = (100 × 1000) / 220N = 454.5 ≈ 455Therefore, the number of coils in the secondary is 455.3. The frequency formula is given as:f = c / λWhere f is frequency in hertz, c is the speed of light (3 × 10⁸ m/s), and λ is wavelength in meters.Substituting the values, we get:f = (3 × 10⁸) / 10000f = 30,000 HzTherefore, the frequency of a light wave with a wavelength of 10000 m is 30,000 Hz.

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7) The resultant of a 5-newton and a 12-newton force acting simultaneously on an object in the same direction is, in newtons,
(A) 0
(B) 5
(C) 7
(D) 13
(E) 17
8) A vector is given by its components, Ax = 2.5 and Ay = 7.5. What angle dose vector A make with the positive x-axis?
(A) less than 45°
(B) equal to 45°
(C) more than 45° but less than 90°
(D) 90°
(E) not enough information provided

Answers

7) The resultant of a 5-newton and a 12-newton force acting simultaneously on an object in the same direction is, in newtons, correct option is (E) 17. 8) The vector makes an angle of approximately 71.57° with the positive x-axis, correct option is (C) more than 45° but less than 90°.

7) The resultant of a 5-newton and a 12-newton force acting simultaneously on an object in the same direction is, in newtons.

The resultant of two forces acting simultaneously in the same direction is the sum of the forces.

So, the resultant of a 5-newton and a 12-newton force acting simultaneously in the same direction is 5 + 12 = 17 newtons.

Answer: (E) 17.

8) A vector is given by its components, Ax = 2.5 and Ay = 7.5.

To determine the angle that the vector makes with the positive x-axis, we need to use the formula:

[tex]$$\theta =\tan^{-1}\frac{A_y}{A_x}$$[/tex]

Plugging in the values, we get:

[tex]$$\theta =\tan^{-1}\frac{7.5}{2.5}$$$$\theta =\tan^{-1}3$$$$\theta \approx 71.57$$[/tex]

Therefore, the vector makes an angle of approximately 71.57° with the positive x-axis.

Answer: (C) more than 45° but less than 90°.

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while a variety of factors can produce redshifts in the spectrum, the one associated with the expansion of the universe is called:\

Answers

The one associated with the expansion of the universe is called cosmological redshift.

Cosmological redshift is the increase in the wavelength of photons as they travel through space due to the expansion of the universe. This redshift occurs as the universe expands, causing the galaxies and other celestial objects to move away from each other.

The term redshift refers to the fact that as light moves away from us, its wavelength becomes longer, and it appears redder. The amount of redshift observed for distant galaxies is directly proportional to their distance from us and is due to the expansion of the universe.

Cosmological redshift is caused by the expansion of the universe and is one of the most important discoveries of modern cosmology. It provides evidence that the universe is expanding and has been doing so for billions of years.

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Given the effective density of state in the conduction band as
2.88*1019 cm-3and an energy
band gap of 1.14 eV at a temperature of
27.2 degrees, calculate the shift in Fermi energy
level in a silicon

Answers

The effective density of states in the conduction band for silicon is given as 2.88 × 10¹⁹cm⁻³, while the energy band gap is given as 1.14eV at a temperature of 27.2 degrees. We are to determine the shift in Fermi energy level in a silicon.To calculate the shift in Fermi energy level in a silicon,

we can use the equation:ΔEF = kT ln [Nc/Ni] + kT ln [Nd/(Nc-Nd)]where k = Boltzmann constantT = temperatureNi = Intrinsic carrier concentrationNc = Effective density of states in the conduction bandNd = Doping concentrationIntrinsic carrier concentration (Ni) is given by:Ni = (Nv)(Nc) exp[-Eg/2kT]

where Nv is the effective density of states in the valence band.Effective density of states in the valence band for silicon is Nv = 1.04 × 10¹⁹cm⁻³Now, we can substitute the given values:Ni = (1.04 × 10¹⁹)(2.88 × 10¹⁹) exp[-(1.14)/(2 × 8.62 × 10⁻⁵ × 300)]Ni = 1.45 × 10¹⁰cm⁻³ΔEF = kT ln [Nc/Ni] + kT ln [Nd/(Nc-Nd)]ΔEF = (8.62 × 10⁻⁵)(300) ln [(2.88 × 10¹⁹)/ (1.45 × 10¹⁰)] + (8.62 × 10⁻⁵)(300) ln [1/(1.43 × 10⁶)]ΔEF = 0.22eVTherefore, the shift in Fermi energy level in a silicon is 0.22eV.Note: The answer is more than 100 words.

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The shift in Fermi energy level in a silicon crystal inebriate with a pentavalent group impurity of concentration [tex]\(1.2 \times 10^{15} \, \text{cm}^{-3}\)[/tex] at a temperature of 27.2 degrees is approximately -0.103 eV.

To calculate the shift in Fermi energy level in a silicon crystal inebriatewith a pentavalent group impurity, we can use the equation:

[tex]\[ \Delta E_F = k_B \cdot T \cdot \ln \left( \frac{n_d}{n_c} \right) \][/tex]

where:

[tex]\(\Delta E_F\)[/tex] is the shift in Fermi energy level

[tex]\(k_B\)[/tex] is the Boltzmann constant [tex](\(8.617333262145 \times 10^{-5}\) eV/K)[/tex]

[tex]\(T\)[/tex] is the temperature in Kelvin

[tex]\(n_d\)[/tex] is the impurity concentration

[tex]\(n_c\)[/tex] is the effective density of states in the conduction band

Given:

Effective density of states in the conduction band [tex](\(n_c\)) = \(2.88 \times 10^{19}\) cm\(^{-3}\)[/tex]

Energy band gap [tex](\(E_g\))[/tex] = 1.14 eV

Temperature [tex](\(T\))[/tex] = 27.2 °C = 300.2 K

Impurity concentration [tex](\(n_d\)) = \(1.2 \times 10^{15}\) cm\(^{-3}\)[/tex]

First, we need to convert the energy band gap from eV to Joules:

[tex]\[ E_g = 1.14 \times 1.60218 \times 10^{-19} \, \text{J} \][/tex]

Then, we can calculate the shift in Fermi energy level:

[tex]\[ \Delta E_F = (8.617333262145 \times 10^{-5} \, \text{eV/K}) \cdot (300.2 \, \text{K}) \cdot \ln \left( \frac{1.2 \times 10^{15} \, \text{cm}^{-3}}{2.88 \times 10^{19} \, \text{cm}^{-3}} \right) \][/tex]

Now, let's perform the calculation:

[tex]\[\Delta E_F = (8.617333262145 \times 10^{-5} \, \text{eV/K}) \cdot (300.2 \, \text{K}) \cdot \ln \left( \frac{1.2 \times 10^{15} \, \text{cm}^{-3}}{2.88 \times 10^{19} \, \text{cm}^{-3}} \right) \approx -0.103 \, \text{eV}\][/tex]

Therefore, the shift in Fermi energy level in a silicon crystal inebriatewith a pentavalent group impurity of concentration [tex]\(1.2 \times 10^{15} \, \text{cm}^{-3}\)[/tex] at a temperature of 27.2 degrees is approximately -0.103 eV.

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215 The radioactive nuclide 335 Bi decays into 315 Po. (a) Write the nuclear reaction for the decay process. (b) Which particles are released during the decay.

Answers

The nuclear reaction for the decay process of the radioactive nuclide 335 Bi is  335Bi →  315Po + α, where α represents an alpha particle. The alpha particle is released during the decay process.

A nuclide is said to be radioactive if it is unstable and it tends to decay to become more stable. During the decay process, the nuclide will release particles. Alpha decay is one of the types of radioactive decay where a nucleus emits an alpha particle consisting of two protons and two neutrons.

The nuclear reaction for the decay process is given as 335Bi →  315Po + α.

The alpha particle is represented by α. During the decay process, the nuclide 335 Bi releases an alpha particle to become a more stable nuclide 315 Po. The alpha particle released during the decay is composed of two protons and two neutrons. Therefore, the particles released during the decay of the radioactive nuclide 335 Bi into 315 Po is an alpha particle.

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Complete the following statement: When the distance, r, between
two charges of opposite sign is
increased the electric potential energy between the charges:

Answers

The potential energy between two charges of opposite sign is given by the formula, U = kq1q2/r. The electric potential energy between the charges decreases.

The electric potential energy between two charges of opposite sign is inversely proportional to the distance between them. In other words, the electric potential energy decreases as the distance between the two charges of opposite sign increases.This means that if the distance between the two charges is increased, the electric potential energy between them decreases. As a result, the electrical force between the two charges decreases.

This is because the electrical force is directly proportional to the electric potential energy between the two charges.

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why is it important that intrathoracic pressure be kept lower than atmospheric pressure?

Answers

it will increase theatric amount the surroundings
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