The electric potential difference of a 125 F capacitor is measured across the terminals of the capacitor and found to be 9.0 V. The potential energy of the capacitor, rounded to two significant figures, is

i think photons with shorter wavelengths have larger speed.

I apologise if its incorrect.

Answer:

energy

Explanation:

Answer: 2.55 g/cm^3

Explanation:

density is defined as:

Density = mass/volume

Now, the mass of the cylinder is 600g

and the volume of a cylinder is:

V = pi*r^2*h

where r is the radius (half of the diameter), here r = (5/2)cm and h is the height, here 12 cm

So the volume is:

V = 3.14*(2.5cm)^2*12cm = 235.5cm^3

then the density is:

D = 600g/235.5cm^3 = 2.55 g/cm^3

Answer:

Explanation:

77

The magnitude of the electrostatic force on a third charge of 4.0 µC placed on the x-axis at x = 30 cm is equal to 77 N.

According to Coulomb’s law, the force of repulsion or attraction between two charged bodies is the multiplication of their charges and is inversely proportional to the square of the distance between them.

The magnitude of the electric force can be written as follows:

[tex]F =k \frac{q_1q_2}{r^2}[/tex]

where k has a value of 9 × 10⁹ N.m²/C².

Given, the first charge, q₁ = + 80 ×10⁻⁶ C

The second charge , q₂ = - 50 × 10⁻⁶ C

The third charge, q₃ = + 4 ×10⁻⁶ C

The distance between these two charges (q₁ and q₃) , r = 0.30 m

The distance between these two charges (q₂ and q₃) , r = 0.20m

The magnitude of the electrostatic force on the third charges will be:

[tex]F =9\times 10^9 (\frac{80\times 10^{-6}C\times 4 \times 10^{-6}C}{(0.30)^2} ) +9\times 10^9 (\frac{50\times 10^{-6}C\times 4 \times 10^{-6}C}{(0.20)^2} )[/tex]

F = 77 N

Therefore, the magnitude of the electrostatic force is equal to 77 N.

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Answer:

They are used in icy conditions.

Explanation:

They can also go over grassy plains and mucky swamps.

Answer:

The time interval is  [tex]t = 6.667 \ s[/tex]

Explanation:

From the question we are told that

    The acceleration of the car is  [tex]a = 3 m/s^2[/tex]

     The velocity of the car is  [tex]v= 20.0 \ m/s[/tex]

The final velocity of the car can be mathematically represented as

       [tex]v =u + at[/tex]

Now since the car start from rest  u = 0 So

      [tex]v = 0 + at[/tex]

       [tex]v = at[/tex]

substituting values

       [tex]20 = 3 t[/tex]

       [tex]t = \frac{20}{3}[/tex]

        [tex]t = 6.667 \ s[/tex]

Answer:

a)  T_alcohol = 123.2ºC , b) T_alcohol = -67.2ºC  and c)  r_alcohol =√5,6 r_mercury  

Explanation:

We can solve this problem using the thermal expansion equation

            ΔV = β Vo ΔT

indicates that alcohol has a coefficient of expansion 5 times that of mercury

           β_alcohol = 5 β_mercury

the amount of alcohol used from a correct reading at zero degrees, let's substitute in the equation for alcohol

           ΔV = β_ alcohol ΔT

           ΔV = 5.6 β_mercury ΔT

we see that the expansion is 5 times the expansion of mercury

           T_alcohol = 5.6 T_mercury

           T_alcohol = 5.6 22

           T_alcohol = 123.2ºC

b) in the case of T = -12ºC

          T_alcohol = 5.6 (-12)

          T_alcohol = -67.2ºC

c) In this case we want the division to give the same value for the two thermometers

let's use the volume ratio

          V = A L

where A is the area of ​​the circle and L the length that the alcohol travels

We know that the volume of alcohol is 5.6 times the volume of mercury

        V_alcohol = 5.6 V_mercury

        A_alcohol V = 5.6 A_mercury L

        A_alcohol = 5.6 A_mercury

if the area of ​​a plum is A = π r², when substituting in this equation

         π r_alcohol² = 5.6 π r_mercury²

           r_alcohol =√5,6 r_mercury

the consequence the radius of the alcohol thermometer must be √5.6 times the radius of the Mercury thermometer; the correct answer is 2

Answer:

A) Em = 4.41 J

B) L = 0.33m

Explanation:

A) The total mechanical energy of the block is the elastic potential energy due to the compressed spring. The gravitational energy is zero. Then you have:

[tex]E_m=\frac{1}{2}k(\Delta x)^2[/tex]

k: constant's spring = 730 N/m

Δx: distance of the compression = 0.11m

You replace the values of k and Δx:

[tex]E_m=\frac{1}{2}(730N/m)(0.11m)^2=4.41\ J[/tex]

B) To find the distance L traveled by the block you take into account that the total mechanical energy of the block is countered by the work done by the friction force, and also by the work done by the gravitational energy.

Then, you have:

[tex]E_m-W_f-W_g=0\\\\W_f=(\mu Mg cos\theta)L\\\\W_g=(Mgsin\theta)L[/tex]

μ:  coefficient of kinetic friction = 0.19

g: gravitational acceleration = 9.8m/s^2

M: mass of the block = 2.5kg

θ: angle of the inclined plane = 21°

You replace the values of all parameters:

[tex]E_m-W_f-W_g=0\\\\4.41-(0.19)(2.5kg)(9.8m/s^2)(cos21\°)L-(2.5kg)(9.8m/s^2)(sin21\°)L=0\\\\4.41-4.34L-8.78L=0\\\\4.41-13.12L=0\\\\L=0.33m[/tex]

hence, the distance L in which the block stops is 0.33m

(a) The block's initial mechanical energy on the given position is 4.42 J.

(b) The distance traveled by the block when it is pushed by the spring before coming to rest is 1.02 m.

The given parameters;

The block's initial mechanical energy is calculated as follows;

[tex]E = K.E _i + P.E_i\\\\E = \frac{1}{2} mv^2 \ + \ \frac{1}{2} kx^2\\\\E = \frac{1}{2} m (0)^2 \ + \ \frac{1}{2} \times 730 \times (0.11)^2\\\\E = 4.42 \ J[/tex]

The block will travel up if the energy applied by the spring is greater than the work-done by frictional force on the block.

The work-done on the block by the frictional force is calculated as follows;

[tex]W_f = F_k \times d\\\\W_f= \mu_k F_n \times d\\\\W_f = \mu_k mgcos(\theta) \times d\\\\W_f = (0.19)(2.5)(9.8)cos(21) \times d \\\\W_f = 4.346 d[/tex]

Apply work-energy theorem;

[tex]4.346d = 4.42\\\\d = \frac{4.42}{4.346} = 1.02 \ m[/tex]

Thus, the distance traveled by the block when it is pushed by the spring before coming to rest is 1.02 m.

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Answer:

the tension in the cable is [tex]\mathbf{F = \frac{\pi E_o v^2r^2}{2d^2}}[/tex]

the work done by the cable is [tex]\mathbf{W= \frac{\pi E_ov^2r^2}{4d}}[/tex]

Explanation:

A)

If we have two circular plate supported by a cable at a fixed distance, then the electric field formed between the two plate of the capacitor can be represented by the equation.

[tex]\mathbf{E = \frac{voltage \ \ V}{distance \ \ d}}[/tex]

However; the net electric field i.e the sum of the electric filed produced is represented as:

[tex]\mathbf{E' = \frac{E}{2}} \\ \\ \mathbf{E' = \frac{V}{2d}}[/tex]

So, if we assume that the lower plate and the upper plate possess the charge +q and -q respectively. Then, the tension of the cable which is the same as Force F can be written as:

[tex]\mathbf{F = q* E'}[/tex]

[tex]\mathbf{F = \frac{q*v}{2d}}[/tex] -----    equation (1)

Also ; we know that

[tex]\mathbf{C = \frac{q}{v}= \frac{E_oA}{d}}[/tex]

[tex]\mathbf{\frac{q}{v}= \frac{E_o \pi r^2}{d}} \ \ \ \ \ \mathbf{since \ A = \pi r^2}[/tex]

[tex]\mathbf{{q}= \frac{\pi E_o {v} r^2}{d}}[/tex]    -----   equation (2)

Replacing equation 3 into equation (2); we have:

[tex]\mathbf{F = \frac{\pi E_o vr^2}{d}* \frac{v}{2d}}[/tex]

[tex]\mathbf{F = \frac{\pi E_o v^2r^2}{2d^2}}[/tex]

Therefore,  the tension in the cable is [tex]\mathbf{F = \frac{\pi E_o v^2r^2}{2d^2}}[/tex]

B)

Assume that the upper plate is displaced by dz in an upward direction ; Then we can express the workdone by the tension as :

[tex]\mathbf{dW = T *dz} \\ \\ \mathbf{dW = F*dz} \\ \\ \mathbf{dW = \frac{\pi E_o v^2r^2}{2z^2}dz }[/tex]

The net workdone to raise the plate from separation d to 2d is:

[tex]\mathbf{W = \int\limits^{2d}_{2zd} {dw} = \frac{\pi E_ov^2r^2}{2} \int\limits^{2d}_d \frac{dz}{z^2} }[/tex]

[tex]\mathbf{W= \frac{\pi E_ov^2r^2}{2} [-\frac{1}{z}]^{2d}_d }[/tex]

[tex]\mathbf{W= - \frac{\pi E_ov^2r^2}{2} [\frac{1}{2d}-\frac{1}{d}]}[/tex]

[tex]\mathbf{W= - \frac{\pi E_ov^2r^2}{2} [\frac{-1}{2d}]}[/tex]

[tex]\mathbf{W= \frac{\pi E_ov^2r^2}{4d}}[/tex]

the work done by the cable is [tex]\mathbf{W= \frac{\pi E_ov^2r^2}{4d}}[/tex]

C) To calculate the energy stored in the Electrical energy Capacitor before the top plate is raised ; we have:

[tex]\mathbf{U_i = \frac{1}{2}Cv^2} \\ \\ \mathbf{U_i = \frac{1}{2}(\frac{E_oA}{d})v^2} \\ \\ \mathbf{U_i = \frac{1}{2}(\frac{E_o \pi r^2}{d})v^2} \\ \\ \mathbf{U_i = \frac{E_o \pi r^2 v^2}{2d}} }[/tex]

D) The energy stored in the plate after the  the top plate was raised is as follows:  

[tex]\mathbf{U_f = \frac{1}{2}C'v^2} \\ \\ \mathbf{U_f = \frac{1}{2}(\frac{E_oA}{2d})v^2} \\ \\ \mathbf{U_f = \frac{1}{2}(\frac{E_o \pi r^2}{2d})v^2} \\ \\ \mathbf{U_f = \frac{E_o \pi r^2 v^2}{4d}} }[/tex]

E) Yes,  work done by the cable equal to the change in the stored electrical energy. The Difference in energy stored before and after the top plate is raised:

[tex]\mathbf{U_i-U_f} = \mathbf{\frac{E_o \pi r^2 v^2}{2d}} }} - \mathbf {\frac{E_o \pi r^2 v^2}{4d}} }}[/tex]

[tex]\mathbf{U_i-U_f}= \mathbf {\frac{E_o \pi r^2 v^2}{4d}} }}[/tex]

Thus;

b)The work done in separating the plates is equal to the magnitude of the energy change in the plates. This does not mean that the work done is equal to the change in the energy stored in the plates.

Answer:

Answer is C                                

Explanation:

I just did it E2020

A free body diagram with three force vectors, the first pointing south labeled F Subscript g Baseline, the second pointing northeast labeled F Subscript T Baseline and the third pointing northwest labeled F Subscript T. Thus option C is correct.

Free body diagram is defined as a drawing of an interesting object with all of its surroundings removed and the forces at work on the subject's body clearly depicted.

It is also defined as a diagram that reduces the loads and moments acting on a component or system of components.

Free body diagrams are streamlined depictions of an object and the force vectors operating on it in a problem. Since the diagram will depict this body without its surroundings, it is "free" of its environment.

Thus, a free body diagram with three force vectors, the first pointing south labeled F Subscript g Baseline, the second pointing northeast labeled F Subscript T Baseline and the third pointing northwest labeled F Subscript T. Thus option C is correct.

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Answer: Silver

Explanation:Silver has ahigh thermal conductivity of 429 watts/meter-k. Stainless steel on the other hand, has low thermal conductivity of 160 watts/meter-k.

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(^o^)(^o^)(^o^)(^o^)(^o^)(^o^)(^o^)(^o^)(^o^)(^o^)

Answer:

3

Explanation:

The closer an orbit is to the nucleus the fewer energy

Answer:

a) ΔS = 14.46 J/k

b) ΔS = 70.76 J/k

Explanation:

The general formula to calculate the entropy change accompanied with a process is:

ΔS = ΔQ/T

where,

ΔS = entropy change for the process

ΔQ = Heat Transfer during the process

T = Absolute Temperature during the process

a)

In this case the heat transfer will be given as:

ΔQ = (ΔHfus)(N)

where,

ΔHfus = Molar Heat of Fusion of Tin = 7.029 KJ/mol

N = No. of moles of tin = 1 mol

Therefore,

ΔQ = (7.029 KJ/mol)(1 mol)

ΔQ = 7.029 KJ = 7029 J

and the absolute temperature is:

T = 213°C +273 = 486 k

using these values in the entropy formula, we get:

ΔS = 7029 J/486 k

ΔS = 14.46 J/k

b)

In this case the heat transfer will be given as:

ΔQ = (ΔHvap)(N)

where,

ΔHvap = Molar Heat of Vaporization of Carbon Dioxide = 15.326 KJ/mol

N = No. of moles of Carbon Dioxide = 1 mol

Therefore,

ΔQ = (15.326 KJ/mol)(1 mol)

ΔQ = 15.326 KJ = 15326 J

and the absolute temperature is:

T = 216.6 k

using these values in the entropy formula, we get:

ΔS = 15326 J/216.6 k

ΔS = 70.76 J/k

Answer:

the speed of 0.10 sphere when it is moved to 0.20 kg  to the left is :   [tex]3.3337*10^{-5} \ m/s[/tex]

Explanation:

Using the expression of the Change in  Gravitational Potential Energy:

[tex]U= -(\frac{ Gm_1m_2 }{r_2} - \frac{ Gm_1m_2 }{r_1}) \\ \\ U=Gm_1m_2 (\frac{ 1 }{r_2} - \frac{ 1 }{r_1})[/tex]

So when the sphere exerts just 10 kg mass; the change in the gravitational potential energy is :

[tex]U_1=Gm_1m_2 (\frac{ 1 }{r_2} - \frac{ 1 }{r_1})[/tex]

[tex]U_1=6.67*10^{-11}*0.1 \ kg*10 \ kg(\frac{ 1 }{0.6 \ m} - \frac{ 1 }{0.8 \ m})[/tex]

[tex]U_1 = 2.778*10^{-11} J[/tex]

the change in the gravitational potential energy  when the sphere exerts just 5 kg mass is ;

[tex]U_2=Gm_1m_2 (\frac{ 1 }{r_2} - \frac{ 1 }{r_1})[/tex]

[tex]U_2=6.67*10^{-11}*0.1 \ kg*5 \ kg(\frac{ 1 }{0.4 \ m} - \frac{ 1 }{0.2 \ m})[/tex]

[tex]U_2 = -8.335*10^{-11} J[/tex]

The net total change is:

[tex]U_{total } = U_1 +U_2[/tex]

[tex]U_{total} = 2.778*10^{-11} + (-8.335*10^{-11})[/tex]

[tex]U_{total} = -5.557*10^{-11}[/tex]

We all know that for there to be a balance ;loss of gravitational potential energy must be equal to the gain in kinetic energy .

SO;

K.E =  [tex]5.557*10^{-11}[/tex]

[tex]\frac{1}{2}mv^2 = 5.557*10^{-11}[/tex]

[tex]v^2 = \frac{2*5.557*10^{-11} \ J}{m_1}[/tex]

[tex]v=\sqrt{ \frac{2*5.557*10^{-11} \ J}{0. 1 \kg}[/tex]

v = [tex]3.3337*10^{-5} \ m/s[/tex]

Thus, the speed of 0.10 sphere when it is moved to 0.20 kg  to the left is :   [tex]3.3337*10^{-5} \ m/s[/tex]

The speed of 0.10 sphere when it is moved to 0.20 kg  to the left is :3.3337 *10^-5 m/s

The speed of any object is defined as the movement of any object with respect to the time.

By using the expression of the Change in  Gravitational Potential Energy:

[tex]U=-Gm_1m_2(\dfrac{1}{r_2}-\dfrac{1}{r_1})[/tex][tex]U_2=-Gm_1m_2(\dfrac{1}{r_2}-\dfrac{1}{r_1})[/tex]

So when the sphere exerts just 10 kg mass; the change in the gravitational potential energy is :

[tex]U_1=-Gm_1m_2(\dfrac{1}{r_2}-\dfrac{1}{r_1})[/tex]

[tex]U_1=- 6.67\times 10^{-11}\times 0.1\times 10(\dfrac{1}{0.6}-\dfrac{1}{0.8})[/tex]

[tex]U_1=2.778\times 10^{-11][/tex]

The change in the gravitational potential energy  when the sphere exerts just 5 kg mass is ;

[tex]U_2=-Gm_1m_2(\dfrac{1}{r_2}-\dfrac{1}{r_1})[/tex]

[tex]U_2=- 6.67\times 10^{-11}\times 0.1\times 5(\dfrac{1}{0.4}-\dfrac{1}{0.2})[/tex]

[tex]U_2=-8.335\times 10^{-11}\ J[/tex]

The net total change is:

[tex]U_{total}=U_1+U_2[/tex]

[tex]U_{total}=2.778\times 10^{-11}+(-8.335\times 10^{-11})[/tex]

[tex]U_{tot\leq al}=-5.557\times 10^{-11}[/tex]

We all know that for there to be a balance ;loss of gravitational potential energy must be equal to the gain in kinetic energy .

SO;

[tex]\rm KE=5.557\times 10^{-11}[/tex]

[tex]\dfrac{1}{2}mv^2=5.557\times 10^{-11}[/tex]

[tex]v^2=\dfrac{2\times 5.557\times 10^{-11}}{m}[/tex]

[tex]v=\sqrt{\dfrac{2\times 5.557\times 10^{-11}}{m}}[/tex]

[tex]v=3.337\times 10^{-5}\ \frac{m}{s}[/tex]

Thus, the speed of 0.10 sphere when it is moved to 0.20 kg  to the left is : [tex]v=3.337\times 10^{-5}\ \frac{m}{s}[/tex]

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Answer:

The Peltier coefficient is a measure of the amount of heat carried by electrons or holes

Explanation:

Answer:

The Peltier coefficient is a measure of the amount of heat carried by electrons or holes.

Explanation:

Answer:

a. The free body diagram for this object has been attached. It shows all the forces acting on the body at rest, including the friction force in the opposite direction to sliding of the object (assume it's left to right).

b. Since the object is in contact with the surface, there is a normal force acting on both of them and is equal to the weight exerted by each. This perpendicular force is defined by Newton's second law of motion.

c. The force of friction always acts in a direction opposite to the direction of motion of the body. F = mg ('a' for acceleration is replaced by 'g' gravity because acceleration in this case is just gravity).

Hope that answers the question, have a great day!

Answer:

a

The force experience by the two spheres is [tex]F_1 = 1.44*10^4 N[/tex]

This force is attractive cause the charge are unlike charges

b

The force experienced by the two spheres is  [tex]F_2 = 3.24*10^{3} \ N[/tex]

The force is repulsive because the two charges are like charges

Explanation:

From the question we are told that

   The charge on the first sphere is  [tex]q_1 = -20.0 \mu C = 20 *10^{-6} C[/tex]

    The charge on the second sphere is  [tex]q_2 = 50 \mu C = 50*10^{-6} C[/tex]

      The distance of separation is [tex]d = 2.50 \ cm = \frac{2.50}{100} = 0.025 \ m[/tex]

The electrostatic force experienced by the two spheres is mathematically represented as

                  [tex]F_1 = \frac{k q_1 q_2}{d^2}[/tex]

Now k is the coulomb’s constant with a value of  [tex]k = 9*10^9 N \cdot m^2 /C^2[/tex]

   So

              [tex]F_1 = \frac{9*10^9 * 20 *10^{-6} * 50*10^{-6}}{0.025}[/tex]

              [tex]F_1 = 1.44*10^4 N[/tex]

When the sphere are brought together the charge on each sphere would be the average of the total charge and this can be mathematically evaluated as

            [tex]q = \frac{q_1 + q_2 }{2}[/tex]

            [tex]q = \frac{(-20 + 50)*10^{-6} }{2}[/tex]

            [tex]q = 15 \mu C[/tex]

So when they are seperated the electrostatic force experienced is  

         [tex]F_2 = \frac{kq^2}{d^2}[/tex]

         [tex]F_2 = \frac{ 9*10^9 * (15 *10^{-6})}{0.025}[/tex]

         [tex]F_2 = 3.24*10^{3} \ N[/tex]

Answer: we embrace and are simultaneously respecting their rational autonomy

Explanation:

Ursula is a student of Kantian philosophy who argues that we should never use people as a means to an end unless we embrace and are simultaneously respecting their rational autonomy

Answer:

The final velocity of the bullet is 9 m/s.

Explanation:

We have,

Mass of a bullet is, m = 0.05 kg

Mass of wooden block is, M = 5 kg

Initial speed of bullet, v = 909 m/s

The bullet embeds itself in the block which flies off its stand. Let V is the final velocity of the bullet. The this case, momentum of the system remains conserved. So,

[tex]mv=(m+M)V\\\\V=\dfrac{mv}{m+M}\\\\V=\dfrac{0.05\times 909}{0.050+5}\\\\V=9\ m/s[/tex]

So, the final velocity of the bullet is 9 m/s.

Answer:

A.)

Explanation:

The answer is food chain A, as plants produce their own food using photosynthesis, therefore making them producers.  

A grasshopper then eats this grass, making it a consumer as it is obtaining its energy from the producer.  It is then eaten by a fish and a human.  This chain accurately describe the flow of energy in an ecosystem, as it goes, producer, consumer, consumer, consumer

Hope this helps a little

Answer:

sorry

Explanation:

patulong

Answer:

B.The amount of energy absorbed during the reaction is different

Explanation:

I just took the test

Answer:

A) Emin = eV

B) Vo = (E_light - Φ) ÷ e

Explanation:

A)

Energy of electron is the product of electron charge and the applied potential difference.

The energy of an electron in this electric field with potential difference V will be eV. Since this is the least energy that the electron must reach to break out, then the minimum energy required by this electron will be;

Emin = eV

B)

The maximum stopping potential energy is eVo,

The energy of the electron due to the light is E_light.

If the minimum energy electron must posses is Φ, then the minimum energy electron must have to reach the detectors will be equal to the energy of the light minus the maximum stopping potential energy

Φ = E_light - eVo

Therefore,

eVo = E_light - Φ

Vo = (E_light - Φ) ÷ e

Answer:

a)   r = (0.6 i- 2039 j ^ + 0.102 k⁾ m  and b) vₓ = 30.0 m / s , v_{y} = 2.04 10⁵ m / s   c) v_{z}  = 1.02 10⁻¹m / s

Explanation:

a) To find the position of the particle at a given moment we must know the approximation of the body, use Newton's second law to find the acceleration

         Fe + Fm = m a

         a = (Fe + Fm) / m

the electric force is

         Fe = q E   k ^

         Fe = 4.25 10-4 60 k ^

         Fe = 2.55 10-2 k ^

the magnetic force is

         Fm = q v x B

         Fm = 4.25 10⁻⁴  [tex]\left[\begin{array}{ccc}i&j&k\\30&0&0\\0&0&49\end{array}\right][/tex]

         fm = 4.25 10⁻⁴ (-j ^ 30 4)

         fm 0 = ^ -5,10 10⁻² j

We look for every component of acceleration

X axis

      aₓ = 0

there is no force

Axis y

      ay = -5.10 10²/5 10⁻⁵ j ^

      ay = -1.02 107 j ^ / s2

z axis

      az = 2.55 10⁻² / 5 10⁻⁵ k ^

      az = 5.1 10² k ^ m / s²

Having the acceleration in each axis we can encocoar the position using kinematics

X axis

the initial velocity is vo = 30 m / s and an initial position xo = 0

           x = vo t + ½ aₓ t₂2

           x = 30 0.02 + 0

           x = 0.6m

Axis y

acceleration is ay = -1.02 10⁷ m / s², a starting position of i = 1m

           y = I + go t + ½ ay t²

           y = 1 + 0 + ½ (-1.02 10⁷) 0.02²

           y = 1 - 2.04 10³

           y = -2039 m j ^

z axis

acceleration is aza = 5.1 10² m / s², the position and initial speed are zero

          z = zo + v₀ t + ½ az t²

          z = 0 + 0 + ½ 5.1 10² 0.02²

          z = 1.02 10⁻¹ m k ^

therefore the position of the bodies is

   r = (0.6 i- 2039 j ^ + 0.102 k⁾ m

b) x axis

 since there is no acceleration the speed remains constant

          vₓ = 30.0 m / s

Axis y

  let's use the equation v = v₀ + [tex]a_{y}[/tex] t

         [tex]v_{y}[/tex] = 0 + -1.02 10⁷ 0.02

          v_{y} = 2.04 10⁵ m / s

z axis

          v_{z} = vo + az t

          v_{z} = 0 + 5.1 10² 0.02

          v_{z}  = 1.02 10⁻¹m / s

A) The coordinates of the particle in  x,  y and z axis is written as  :

( 0.6 i - 2039 j + 0.102 k )m   ( i.e. x = 0.6,  y = 2039,  z = 0.102 )

B) The speed of the particle at t = 0.0200 s

A ) Determine the coordinates of the particle in  x, y and z axis

applying Newton's second law ;  a = ( Fe + Fm ) / m

where :  Fe = 2.55 * 10⁻² k

The magnetic force ( Fm ) = qv * B  = [tex]\left[\begin{array}{ccc}i&j&k\\30&0&0\\0&0&49\end{array}\right][/tex]

∴ Fm = 0

Acceleration in each axis ( x , y and z )

Ax = 0  because there is no force

Ay =  - 1.02 * 10⁷  j/s²

Az =   5.1 * 10² km/s²

i) For the x- axis

x =  Vot  +  ½ * Ax * t²

Vo = 30 m/s

t = 0.02

Ax = 0

∴ x - coordinate of the particle = 0.6m

ii) For the y-axis

y = I + Vo*t + ½ *Ay* t²

y = - 2039 m

iii) For the z-axis

 z = zo + v₀* t + ½ * Az* t²

 z = 0.102 m .

B ) Determine the speed of the particle in all three axis

Vx = 30 m/s

Vy = v₀ + Ay *  t

     = 30 + - 1.02 * 10⁷ * 0.020

     = 2.04 * 10⁵ m/s

Vz =  Vo + Az* t

    = 1.02 * 10⁻¹

Hence we can conclude that The coordinates of the particle in  x,  y and z axis is written as  : ( 0.6 i - 2039 j + 0.102 k )m   ( i.e. x = 0.6,  y = 2039,  z = 0.102 )The speed of the particle at t = 0.0200 s

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Answer:

B. fjords

explanation :

Fjords were created by glaciers. In the Earth's last ice age, glaciers covered just about everything. Glaciers move very slowly over time, and can greatly alter the landscape once they have moved through an area. This process is called glaciation.The fjords are one of the glaciers that existed in the past. They are one of the many glacial relief forms that can give us a insight into the size and power of the glaciers.

Answer:

B. fjords

I hope this helps

Answer:

131.2 kg, to have the same precision as 58.2 kg

Explanation:

Answer:

a) v(f) = -4i - 5j

b) 4.18 m

Explanation:

The equation to be used for this question is

v(c)m(c) + v(t)m(t) = [m(c) + m(t)] v(f)

if we rearrange and make v(f) subject of formula, then

v(f) = v(c)m(c) + v(t)m(t) / [m(c) + m(t)]

One vehicle is headed towards south and the other vehicle, west when they collide they will travel together in a southwestern direction. This means that both vehicles are traveling in the negative direction taking a standard frame of reference. Thus, we can write the equation in component form by substituting the values as

v(f) = 1225(-9.5i) + 1654(-8.6j) / 1225 + 1654

v(f) = -11637.5i - 14224.4j / 2879

v(f) = -4i - 5j m/s

From the answer,

v(f) = √(4² + 5²)

v(f) = √41

v(f) = 6.4 m/s

And we know that

KE = ½mv²

Fd = umgd

And, KE = Fd, so

½mv² = umgd

½v² = ugd

Making d the subject of formula,

d = v²/2ug

d = 6.4² / 2 * 0.5 * 9.8

d = 41 / 9.8

d = 4.18 m

(a) The velocity of the system after collision is 4.04 i + 4.9 j.

(b)The distance traveled by the vehicles after collision is 1.73 m.

The given parameters;

Apply the principle of conservation of linear momentum to determine the velocity of the system after collision;

[tex]m_1u_x_1 + m_2 u_y_2 = V(m_1 + m_2)\\\\V = \frac{(1225\times 9.5)_x \ + \ (1654 \times 8.6)_y}{m_1 + m_2} \\\\V = \frac{(1225\times 9.5)_x \ + \ (1654 \times 8.6)_y}{1225+ 1654} \\\\V= \frac{(11,637.5)_x \ + \ (14,224.4)_y}{2879} \\\\V = 4.04x \ + 4.94y\\\\V = 4.04i \ + 4.9 j[/tex]

The magnitude of the final velocity of the system is calculated as;

[tex]V = \sqrt{v_x^2 + v_y^2} \\\\V = \sqrt{(4.04)^2 + (4.9)^2} \\\\V = 6.35 \ m/s[/tex]

The change in the mechanical energy of the system;

[tex]\Delta K.E = K.E_f - K.E_i\\\\[/tex]

The initial kinetic energy of the cars before collision is calculated as;

[tex]K.E_i = \frac{1}{2} m_1u_1_x^2 \ + \frac{1}{2} m_1u_2_y^2 \\\\K.E_i = \frac{1}{2} (1225)(9.5)^2\ + \frac{1}{2} (1654)(8.6)^2\\\\K.E_i = 55,278.13_x \ + \ 61,164.92_y\\\\K.E_i = \sqrt{55,278.13^2 \ + \ 61,164.92^2} \\\\K.E_i = \sqrt{6,796,819,094.9} \\\\K.E_i = 82,442.82 \ J[/tex]

The final kinetic energy of the system;

[tex]K.E_f = \frac{1}{2} (m_1 + m_2)V^2\\\\K.E_f = \frac{1}{2} (1225 + 1654)(6.35)^2\\\\K.E_f = 58,044.24 \ J[/tex]

The change in kinetic energy is calculated as;

[tex]\Delta K.E = K.E_f -K.E_i\\\\\Delta K.E= (58,044.24) - (82,442.82)\\\\\Delta K.E = -24,398.58 \ J[/tex]

Apply the principle of work-energy theorem, to determine the distance traveled by the vehicles after collision;

[tex]W = \Delta K.E\\\\- \mu Fd = - 24,398.58\\\\\mu mgd= 24,398.58\\\\d = \frac{24,398.58}{\mu mg} \\\\d = \frac{24,398.58}{0.5 \times 9.8(1225 + 1654)} \\\\d = 1.73 \ m[/tex]

Thus, the distance traveled by the vehicles after collision is 1.73 m.

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Answer:500 W

Explanation:

Given

When length is L power dissipated is [tex]100\ W[/tex]

Potential difference applied is [tex]200\ V[/tex]

Resistance of wire is directly proportional to length of wire

Suppose initially Resistance is R

When L changes to [tex]2L[/tex]

Resistance changes to [tex]2R[/tex]

Initial Power dissipated is [tex]P_o=\frac{V^2}{R}[/tex]

For 2 R resistance and same voltage, Power dissipated is

[tex]P_1=\frac{V^2}{(2R)}[/tex]

So [tex]P_1=\frac{1}{2}\times \frac{V^2}{R}[/tex]

[tex]P_1=\frac{P_o}{2}[/tex]

So [tex]P_1=\frac{1000}{2}[/tex]

[tex]P_1=500\ W[/tex]

Answer:

Explanation:

Message will travel through the fibre at the speed of 3 x 10⁸ m /s which is also the speed of light .

a ) Time for a message to travel from US to France by using glass fibre  link

time  = distance / speed

= 6000 x 1000 / 3 x 10⁸

= .02 s .

b )

22000 miles = 1.6 x 22000

= 35200 km

Time for a message to travel from US to France by using a satellite link

time = distance / velocity

 distance = 2 x √ ( 35200² + 3000² )

=  2 x 35327 km

= .7 x 10⁸ m .

time = .7 x 10⁸ / 3 x 10⁸

= .233 s

c )

Difference of time = .233 - .02

= .213 which is more than 1/6 s for which effect of hearing stays in the brain , which is called persistence of vision .  So they will be heard as different sounds.

Answer: please see below

Explanation:

A manned space exploration is defined as the exploration of individuals --- astronauts in space using a spacecraft as a vehicle and are  responsible for operating its controls

The extreme conditions in space that challenge manned space exploration is as follows.

1. extreme loud sound waves cause by the launch of spacecraft which can shatter the spacecraft

2. extreme Temperatures in space ranging from extreme hot temperatures  (near the sun) to extreme cold temperatures  ( below freezing point out of space.

3.micrometeorite showers responsible for sandblasting can  damage spacecraft.

4.Ultra violet Radiation which can alter the control unit of the spacecraft  

Because of theses extreme conditions that pose challenges to space explorations, necessary precautions should be taken into consideration to be able to overcome such challenges. These precautions include building the spacecraft and the control unit in such a way that can resist these harmful conditions, also taking in mind safe escape routes for the astronauts in case of failures.

Answer:

Just add all the resistors together

1+2+3=6

6Ω is the total resistance

Explanation: