2.A 5 Ohm resistor is connected to a 9 Volt battery. How many Joules of thermal energy are produced in 7 minutes?


3.The current in a flashlight powered by 4.5 Volts is 0.5 A. What is the power delivered to the flashlight?


4.If the flashlight in the previous problem is left on for 3 minutes, how much electric energy is delivered to the bulb?


7.A 50 Ohm resistance causes a current of 5 milliamps to flow through a circuit connected to a battery. What is the power in the circuit?


8.How many Joules of electric energy are delivered to a 60 Watt lightbulb if the bulb is left on for 2.5 hours?

Answer:

Explanation:

Given the equation modelled by the height of the train given as:

s(t) = 18t²-2t³ for for 0 ≤ t ≤ 9

a) Velocity is the rate of change of displacement.

Velocity = dS(t)/dt

V = dS(t)/dt = 36t - 6t² miles

Velocity at t = 3hrs is determiner by substituting t = 3 into the velocity function.

V = 36(3) -6(3)²

V= 108 - 72

Velocity = 36mi/hr

b) for Velocity at time = 7hrs

V(7) = 36(7) - 6(7)²

V(7) = 252 - 294

V(7) = -42mi/hr

The velocity at t = 7hrs is -42mi/hr

c) Acceleration is the rate of change of velocity.

a(t) = dV(t)/dt

Given v(t) = 36t - 6t²

a(t) = 36 - 12t

Acceleration at t=1 is given as:

a(1) = 36 -12(1)

a(1) = 24mi/hr²

Answer:

A drunk driver's car travel 49.13 ft further than a sober driver's car, before it hits the brakes

Explanation:

Distance covered by the car after application of brakes, until it stops can be found by using 3rd equation of motion:

2as = Vf² - Vi²

s = (Vf² - Vi²)/2a

where,  

Vf = Final Velocity of Car = 0 mi/h

Vi = Initial Velocity of Car = 50 mi/h

a = deceleration of car  

s = distance covered

Vf, Vi and a for both drivers is same as per the question. Therefore, distance covered by both car after application of brakes will also be same.

So, the difference in distance covered occurs before application of brakes during response time. Since, the car is in uniform speed before applying brakes. Therefore, following equation shall be used:

s = vt

FOR SOBER DRIVER:

v = (50 mi/h)(1 h/ 3600 s)(5280 ft/mi) = 73.33 ft/s

t = 0.33 s

s = s₁

Therefore,

s₁ = (73.33 ft/s)(0.33 s)

s₁ = 24.2 ft

FOR DRUNK DRIVER:

v = (50 mi/h)(1 h/ 3600 s)(5280 ft/mi) = 73.33 ft/s

t = 1 s

s = s₂

Therefore,

s₂ = (73.33 ft/s)(1 s)

s₂ = 73.33 ft

Now, the distance traveled by drunk driver's car further than sober driver's car is given by:

ΔS = s₂ - s₁

ΔS = 73.33 ft - 24.2 ft

ΔS = 49.13 ft

Answer:

Hey!

Your answer is C!

Explanation:

HOPE THIS HELPS!!

Straight line with no slope explains what a velocity time graph would look like with no acceleration. The correct option is 3.

When there is no acceleration, the item is travelling at a steady speed. The y-axis of a velocity-time graph represents velocity, while the x-axis represents time.

A straight line with no slope implies constant velocity, where the velocity remains constant over time. There is no change in velocity, which indicates that there is no acceleration.

Thus, on the velocity-time graph, a straight line with no slope depicts an object travelling with no acceleration. The correct option is 3.

For more details regarding velocity-time graph, visit:

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Your question seems incomplete, the probable complete question is:

Which explains what a velocity time graph would look like with no acceleration?

Answer:

a) [tex]E_T=134,484\frac{N}{C}\hat{i}+149954.66\frac{N}{C}\hat{j}[/tex]

b) zero

Explanation:

a) To find the electric field at point C, you sum the contribution of the electric fields generated by the other two charges. The total electric field at C is given by:

[tex]E_T=E_1+E_2[/tex]

E1: electric field of charge 1

E2: electric field of charge 2

It is necessary to calculate the x and y components of both E1 and E2. You take into account the direction of the fields based on the charge q1 and q2:

[tex]E_1=k\frac{q_1}{r_{1,3}}[cos\theta\hat{i}+sin\theta \hat{j}]\\\\E_2=k\frac{q_2}{r_{2,3}}[cos\phi\hat{i}-sin\phi \hat{j}]\\\\[/tex]

r13: distance between charges 1 and 3

r12: charge between charges 2 and 3

k: Coulomb's constant = 8.98*10^9 Nm^2/C^2

Thus, you first calculate the distance r13 and r23, and also the angles:

[tex]r_{1,3}=3.00m\\\\r_{2,3}=\sqrt{(3.00m)^2+(4.00m)^2}=5.00m\\\\\theta=90\°\\\\\phi=tan^{-1}(\frac{4.00}{3.00})=53.13\°[/tex]

Next, you replace the values of all parameters in order to calculate E1 and E2:

[tex]E_1=(8.98*10^9Nm^2/C^2)(\frac{3.30*10^{-4}C}{(3.00m)^2})\hat{j}\\\\E_1=329266.66\frac{N}{C}\\\\E_2=(8.98*10^9Nm^2/C^2)(\frac{6.24*10^{-4}C}{(5.00m)^2})[cos53.13\°\hat{i}-sin(53.13\°)\hat{j}]\\\\E_2=224140.8[0.6\hat{i}-0.8\hat{j}]=134484\hat{i}-179312\hat{j}[/tex]

finally, you obtain for ET:

[tex]E_T=134,484\frac{N}{C}\hat{i}+(329266.66-179312)\frac{N}{C}\hat{j}\\\\E_T=134,484\frac{N}{C}\hat{i}+149954.66\frac{N}{C}\hat{j}[/tex]

b) The x component of the force exerted by A on C is zero because there is only a vertial distance between them. Thus, there is only a y component force.

Answer:

B) The lighter gases boiled off of the protoplanets closest to the sun, leaving dust and metals behind to form the inner planets.

Explanation:

Inner planets are smaller and rockier than outer gas planets,outer planets are larger,because of their lower gravity they don't attract extreme amounts of gas in their planets.The four outer planets were so far from the Sun that its winds could not blow away their ice and gases

Answer:

The electrical force on 2nd charge (3 Q) will also be equal to F.

Explanation:

The electrical force between two electrically charged particles is given by the Coulomb's Law. The mathematical formula of Coulomb's Law is as follows:

F = kQ₁Q₂/r²

where,

F = Electrical Force exerted by both particles on each other

k = Coulomb's Constant

Q₁ = Magnitude of 1st Charge = Q

Q₂ = Magnitude of 2nd Charge = 3 Q

r = Distance between the charges

Therefore,

F = k(Q)(3 Q)/r²

F = 3 kQ²/r²

Since, it is clear from the formula that the magnitude of force applied by the first charge on 2nd charge is equal to the force applied by 2nd charge on 1st charge.

Therefore, the electrical force on 2nd charge (3 Q) will also be equal to F.

Answer:

Beta Particle

Explanation:

The beta particle decay completes the following reaction,

¹⁴C₆   ⇒ ¹⁴N₇ + Beta particle

Therefore the answer is option D.

Radioactive decay is a type of nuclear reaction in which the unstable nucleus of a radioactive element releases energy in the form of nuclear radiation. Alpha decay, decay, and beta decay are a few examples of radioactive decay.

The radioactive deacy is acompained by the release of the enormous amount of energy,the nuclear power generation with the help of the nuclear reaction is one of the most significant application of the radioactive decay.

¹⁴C₆   ⇒ ¹⁴N₇ + Beta particle

Beta particles are the negatively charged electron emitted from radioactive decay.

For the given reaction the unstable carbon atom losses a beta particle to produce a stable nitrogen atom.

Thus the given radioactive decay can is completed by beta particle emission.

Learn more about radioactive decay from here

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Answer:

Nancy Elizabeth Lieberman (nacido el 1 de julio de, 1958), apodado "Señora mágica", ] es un ex profesional jugador de baloncesto y entrenador de la WNBA (WNBA) que es actualmente un organismo de radiodifusión para los New Orleans Pelicans de la Nacional La Asociación de Baloncesto (NBA) y la entrenadora principal de Power , un equipo en el BIG3 que lideró en su Campeonato 0.]bLieerman es considerada como una de las figuras más importantes del baloncesto femenino estadounidense.

Explanation:

Answer:

Ok

Explanation:

Please mark brainliest

Answer:

It is larger

Explanation:

I believe the answer would be "It is larger" since v = 2v (since it's in series), which would increase the magnetic field and thus produced a bigger angle.

Answer:

Useless

Explanation:

Question

Answer: Iron and steel are two separate metallic elements.

Explanation:

The following are the differences between magnetic properties of iron and steel.:

1. Iron get magnitized quickly under the influence of magnetic field whereas the steel magnitized slowly.

2. The iron looses its magnitism when magnetic field is removed but steel retains the magnitism for long when magnetic field is removed.

Answer:

B

Explanation:

Resolve the 75N force into 2 components; horizontal and vertical. And remember that there is no acceleration in the downward direction, so apply Newton's second law and equate it to 0.

Answer:

The magnitude of the acceleration is [tex]a_r = 1.50 \ m/s^2[/tex]

The direction is  [tex]\theta = 32.5 6^o[/tex] north of  east

Explanation:

From the question we are told that

   The force exerted by the wind is  [tex]F_{sail} = (330 ) \ N \ north[/tex]

   The force exerted by water is  [tex]F_{keel} = (210 ) \ N \ east[/tex]

      The mass of the boat(+ crew) is  [tex]m_b = 260 \ kg[/tex]

Now Force is mathematically represented as

      [tex]F = ma[/tex]

Now the acceleration towards the north is mathematically represented as

      [tex]a_n = \frac{F_{sail}}{m_b}[/tex]

substituting values

       [tex]a_n = \frac{330 }{260}[/tex]

      [tex]a_n = 1.269 \ m/s^2[/tex]

Now the acceleration towards the east is mathematically represented as

       [tex]a_e = \frac{F_{keel}}{m_b }[/tex]

substituting values

      [tex]a_e = \frac{210}{260}[/tex]

      [tex]a_e =0.808 \ m/s^2[/tex]

The resultant acceleration is  

      [tex]a_r = \sqrt{a_e^2 + a_n^2}[/tex]

substituting values

     [tex]a_r = \sqrt{(0.808)^2 + (1.269)^2}[/tex]

      [tex]a_r = 1.50 \ m/s^2[/tex]

The direction with reference from the north is evaluated as

Apply SOHCAHTOA

        [tex]tan \theta = \frac{a_e}{a_n}[/tex]

       [tex]\theta = tan ^{-1} [\frac{a_e}{a_n } ][/tex]

substituting values

     [tex]\theta = tan ^{-1} [\frac{0.808}{1.269 } ][/tex]

    [tex]\theta = tan ^{-1} [0.636 ][/tex]

   [tex]\theta = 32.5 6^o[/tex]

Answer:

75m/s

Explanation:

...................

Explanation:

We have,

Mass of a baseball is 0.147 kg

Initial velocity of the baseball is 44.5 m/s

The ball is moved in the opposite direction with a velocity of 55.5 m/s

It is required to find the magnitude of the change in momentum of the ball and of the impulse applied to it by the bat.

Change in momentum,

[tex]\Delta p=mv-mu\\\\\Delta p=m(v-u)\\\\\Delta p=0.147\times ((-55.5)-44.5)\\\\\Delta p=-14.7\ kg-m/s\\\\|\Delta p|=14.7\ kg-m/s[/tex]

Impulse = 14.7 kg-m/s

Therefore, the magnitude of the change in momentum of the ball and of the impulse applied to it by the bat is 14.7 kg-m/s

Answer:

The student is going at the bottom of the slide with a velocity of 8.66 m/s

Explanation:

Given;

mass of the student, m = 74 kg

height of the water slide, h = 11.3 m

work done, W = -5.42 × 10³ J

Apply work energy theorem;

[tex]W = \frac{1}{2}mv_f^2+ mgh_f-(\frac{1}{2}mv_o^2 + mgh_o)\\\\ W + \frac{1}{2}mv_o^2 + mgh_o -mgh_f= \frac{1}{2}mv_f^2\\\\ W + \frac{1}{2}mv_o^2 +mg(h_o-h_f) = \frac{1}{2}mv_f^2\\\\\frac{W}{m} + \frac{1}{2} v_o^2 + g(h_o-h_f) = \frac{1}{2}v_f^2\\\\\frac{2W}{m}+ v_o^2 + 2g(h_o-h_f) = v_f^2\\\\v_f = \sqrt{\frac{2W}{m}+ v_o^2 - 2g(h_f-h_o)} \\\\v_f = \sqrt{\frac{2(-5.42*10^3)}{74}+ (0)^2 - 2*9.8(-11.3)}\\\\v_f=\sqrt{-146.4865+221.48} \\\\v_f = \sqrt{74.9935} \\\\v_f = 8.66 \ m/s[/tex]

Therefore, the student is going at the bottom of the slide with a velocity of 8.66 m/s

Answer:[tex]4\ m/s^2[/tex]

Explanation:

Given

mass of toy [tex]m=0.5\ kg[/tex]

Force by first dog [tex]F_1=140\ N[/tex]

Force by second dog is [tex]F_2=138\ N[/tex]

Net force on the dog is

[tex]F_{net}=F_1-F_2=140-138[/tex]

[tex]F_{net}=2\ N[/tex]

and [tex]F_{net}=ma[/tex]

[tex]a=\dfrac{F_{net}}{m}[/tex]

[tex]a=\dfrac{2}{0.5}[/tex]

[tex]a=4\ m/s^2[/tex]

So, horizontal acceleration of the toy is [tex]4\ m/s^2[/tex]

Answer:

-450 m/s

Explanation:

Momentum is conserved.

p₀ = p

0 = (1.5 kg) (1.5 m/s) + (0.005 kg) v

v = -450 m/s

Answer:

C

Explanation:

Researches have shown that Optimism may lead to the advancement of a balanced lifestyle and proactive behavior, cognitive responses combined with improved resilience and problem solving abilities and a more successful processing of negative input will make a huge difference to mental and physical well-being.

So, Students who participated in an optimism workshop had fewer episodes of depression, fewer health problems and had fewer episodes of anxiety.So, the correct answer is C.

The answer is All Of These