El tubo de entrada que suministra presión de aire para operar un gato hidráulico tiene 2 cm de diámetro. El pistón de salida es de 32 cm de diámetro. ¿Qué presión de aire se tendrá de aire se tendrá que usar para levantar un automóvil de 17,640 N?`

Answer:302.5

Explanation:

Answer:

  n = 1 + R / f

Explanation:

The equation of the constructor is optical is

          1 / f = 1 / p + 1 / q

where f is the focal length, p and q are the distance to the object and image, respectively

The exercise tells us that it is a concave lens with focal length fo, in these lenses the focal length is negative. The relationship to calculate the focal length is

         1 / f = (n -n₀) (1 /R₁ - 1 /R₂)

where is n₀ the refractive index of the medium that surrounds the lens in this case it is air with n₀ = 1, you do not indicate the type of lens, but the most used lens is the concave plane, in this case R₂ = ∞, so which 1 / R₂ = 0, let's substitute

         1 / f = (n-1) / R₁

         n - 1 = R₁ / f

let's calculate

         n = 1- R₁ / f

remember that the radius of curvature is negative, so the equation is

         n = 1 + R / f

Complete Question  

A very long, straight solenoid with a cross-sectional area of 2.39cm2 is wound with 85.7 turns of wire per centimeter. Starting at t= 0, the current in the solenoid is increasing according to i(t)=( 0.162A/s2) t2. A secondary winding of 5 turns encircles the solenoid at its center, such that the secondary winding has the same cross-sectional area as the solenoid. What is the magnitude of the emf induced in the secondary winding at the instant that the current in the solenoid is 3.2A ?

Answer:

The value  is [tex]\epsilon =  1.83 *10^{-5} \  V[/tex]

Explanation:

From the question we are told that

    The  cross-sectional area is  [tex]A = 2.39 \ cm^2 = \frac{2.39}{10000} = 0.000239 \ m^2[/tex]

    The  number of turns is  [tex]N = 85.7 \ turns/cm = 8570 \ turns / m[/tex]

    The initial time is  t = 0s

    The  current on the solenoid  is [tex]I(t)   = (0.162 \ A/s^2) t^2[/tex]

     The number of turns of the secondary winding is  [tex]n =  5 \ turns[/tex]

Generally At I =  3.2 A

        [tex]3.2 =  (0.162 )t^2[/tex]

=>       [tex]t^2  =  19.8[/tex]

=>         [tex]t =  4.4 \  s[/tex]

Generally induced emf is mathematically represented as

        [tex]\epsilon  = A *  \mu_o *  n *  N  \frac{d(I)}{dt}[/tex]

         [tex]\epsilon  =  0.000239 *  4\pi * 10^{-7} *  8570 * 5 *  (0.162) * 2t[/tex]

          [tex]\epsilon  =  0.000239 *  4\pi * 10^{-7} *  8570 * 5 *  (0.162) * 2 *  4.4[/tex]  

        [tex]\epsilon =  1.83 *10^{-5} \  V[/tex]

Answer:

The correct option is a

Explanation:

The alpha particle has the lowest penetrating power of the trio of alpha, beta and gamma particles and can be stopped by a sheet of paper and hence cannot penetrate a human skin. Beta particle has a higher penetrating power than alpha particle (some of it penetrates the human skin and some do not) while the gamma particle has the highest penetrating power (with all of it penetrating the human skin).

From the above description, it can be deduced that the alpha particle will stay and interact with the hand (because of its low penetrating power) as the remaining particles move through the skin.

Answer:

a. True

Explanation:

Distance is described with only magnitude. It is defined as the total path covered by an object, in other words it  is the length of a path followed by a particle.

Displacement is described with both magnitude and direction. It is distance traveled in a specified direction or  change in position in some time interval.

Therefore, the correct option is " a. True"

Body mass index, known as BMI, is not a method of calculating body fat percentage, but it is a technique used to check nutritional status and to see if a person is within normal range with respect to weight and height.. This technique is measured by the formula: BMI = Weight (Kg) / (Height (m)) ².

Ergo, the answer  is BMI!!!!!!!!!!!

Hope this helped you!

Answer:

independent

dependent

dependent

Answer:

A

Explanation:

cant be c because its asking for speed and speed doesnt have direction

Complete Question

A NASA spacecraft measures the rate R of at which atmospheric pressure on Mars decreases with altitude. The result at a certain altitude is: [tex]R = 0.0498 \ kPAkm^{-1}[/tex] Convert R to [tex]kJ*m^{-4}[/tex]

Answer:

The value  is       [tex]R  = 0.0498 *10^{-3} \frac{kJ}{m^4}[/tex]

Explanation:

From the question we are told that

   The altitude is  [tex]R = 0.0498 \ kPAkm^{-1}[/tex]

Generally  

     [tex]1 k PA  =  1000 PA[/tex]

So  

   [tex]R = 0.0498 \frac{1000PA}{ km}[/tex]

Also  

   1 km  =  1000 m

So  

     [tex]R = 0.0498 \frac{1000PA}{ 1000m}[/tex]

=>   [tex]R = 0.0498 \frac{1 PA}{ 1 m}[/tex]

Now  PA  is Pascal which is mathematically represented as

       [tex]PA =  \frac{N}{m^2 }[/tex]

So

   [tex]R  = 0.0498 \frac{\frac{N}{m^2} }{m}[/tex]

    [tex]R  = 0.0498 \frac{N}{m^3}[/tex]

Looking the unit we are arrive at we see that it contains  J  which is mathematically represented as

      [tex]J =  N  *  m[/tex]

So  

  [tex]R  = 0.0498 \frac{ N \frac{m}{m} }{m^3}[/tex]

=>  [tex]R  = 0.0498 \frac{\frac{J}{m} }{m^3}[/tex]

=>  [tex]R  = 0.0498 \frac{J}{m^4}[/tex]

Generally  

      [tex]1 J \to 1.0*10^{-3} kJ[/tex]

      [tex]0.0498 J  \to x kJ[/tex]

=>      [tex]x =  \frac{0.0498 *  1.0*10^{-3}}{1}[/tex]

=>   [tex]0.0498 *10^{-3} kJ[/tex]

So

    [tex]R  = 0.0498 *10^{-3} \frac{kJ}{m^4}[/tex]

Explanation:

Height is the x-axis, and gravitational potential energy is the y-axis.  As the height increases, the gravitational potential energy increases linearly.

The correct answer is B. 1.3 m/s north

Explanation:

Velocity is a factor that describes how fast or slow the motion of a body occurs and its direction. Moreover, this can be calculated by dividing the total displacement into the time of movement, and the final result is expressed in units such as meters per second followed by the direction, for example, 152 m/s south. The process to calculate the velocity of the swimmer is shown below.

[tex]v = \frac{d}{t}[/tex]

[tex]v = \frac{28 meters}{22 seconds}[/tex]

[tex]v = 1.27 m/s[/tex]

This means the velocity of the swimmer is 1.27 m/s, which can be rounded as 1.3 m/s. Additionally, if the direction is considered it would be 1.3 m/s north because the swimmer went from the south of the pool to its north.

Answer:

the answer is B

Explanation:

confirmed

Answer: Hello your question is incomplete attached below is the complete question

Ra = 1132 N

Rb = 522.6 N

Pa = 679.7 N

Explanation:

To determine the scalar components Ra

[tex]\frac{Ra}{Sin 120^o} = \frac{750}{sin 35^o}[/tex]  

therefore : Ra = [tex]\frac{sin120^o * 750}{sin 35^o}[/tex] = 1132 N

To determine the scalar component Rb

[tex]\frac{Rb}{sin 25^o} = \frac{750}{sin 35^o}[/tex]

therefore : Rb = [tex]\frac{sin 25^o * 750}{sin 35^o}[/tex]  = 522.6 N

To determine the orthogonal projection Pa of R onto

Pa = 750 cos[tex]25^o[/tex] = 679.7 N

Answer:

6787.5 V

Explanation:

From the question,

P = IV..................... Equation 1

Where P = Power, I = rms current, V = rms voltage.

make V the subject of the equation

V = P/I................. Equation 2

Given: P = 1500 W, I = 6.4/√2 = 4.525 A

Substitute these values into equation 2

V = 1500(4.525)

V = 6787.5 V

Hence the rms voltage = 6787.5 V

Answer:

a. the minimum amplitude of vibration for the NO molecule A [tex]\simeq[/tex] 4.9378 pm

b. the minimum amplitude of vibration for the HCl molecule A [tex]\simeq[/tex] 10.9336 pm

Explanation:

Given that:

The effective spring constant describing the potential energy of the HBr molecule is 410 N/m

The effective spring constant describing the potential energy of the NO molecule is 1530 N/m

To calculate the minimum amplitude of vibration for the NO molecule, we use the formula:

[tex]\dfrac{1}{2}kA^2= \dfrac{1}{2}hf[/tex]

[tex]kA^2= hf[/tex]

[tex]A^2= \dfrac{hf}{k}[/tex]

[tex]A = \sqrt{\dfrac{hf}{k}}[/tex]

[tex]A = \sqrt{\dfrac{(6.626 \times 10^{-34} \ J. s ) ( 5.63 \times 10^{13} \ s^{-1})}{1530 \ N/m}}[/tex]

[tex]A = \sqrt{\dfrac{3.730438 \times 10^{-20} \ m}{1530 }[/tex]

[tex]A = \sqrt{2.43819477 \times 10^{-23}\ m[/tex]

[tex]A =4.93780799 \times 10^{-12} \ m[/tex]

A [tex]\simeq[/tex] 4.9378 pm

The effective spring constant describing the potential energy of the HCl molecule is 480 N/m

To calculate the minimum amplitude using the  same formula above, we have:

[tex]A = \sqrt{\dfrac{hf}{k}}[/tex]

[tex]A = \sqrt{\dfrac{(6.626 \times 10^{-34} \ J. s ) ( 8.66 \times 10^{13} \ s^{-1})}{480 \ N/m}}[/tex]

[tex]A = \sqrt{\dfrac{5.738116\times 10^{-20} \ m}{480 }[/tex]

[tex]A = \sqrt{1.19544083\times 10^{-22}\ m[/tex]

[tex]A = 1.09336217 \times 10^{-11} \ m[/tex]

[tex]A = 10.9336217 \times 10^{-12} \ m[/tex]

A [tex]\simeq[/tex] 10.9336 pm

Answer:

3.5s

Explanation:

Using equation of motion number 2

S= ut + 1/2 gt²

Substituting

10= 0.5+1.62t²

t= 3.5seconds

Answer:

resultant force = 14 N  ( East direction)

Explanation:

A = [tex]\sqrt{(4*7)^2 + (4*7)^2}[/tex]

A = 39.6 N

B = 4 * 7

B = 28 N

C = 2 * 7

C = 14 N

∑ y forces = Ay - B = (4*7) - 28 = 0

∑ x forces = Ax - C = (4*7) - 14 = 14 N

so the resultant force = 14 N  ( East direction)

Answer:

resultant = 14 N to the right

Explanation:

A→+B→+C→

adding all forces acting on x

and

adding all forces acting on y

A = sqrt(4*7)^2 + (4*7)^2 = 39.6

B = 4 * 7 = 28

C = 2 * 7 = 14

forces acting on x = (4*7) - 28 = 0

forces acting on y = (4*7) - 14 = 14 N

so the resultant = 14 N to the right

Answer:

bobby has a greater magnitude of velocity because because when angular speed is constant linear velocity is proportional to radius of the circular path

B. They both have same magnitude of angular velocity since the angular speed of the merrygoround is constant

C. Also they both have the same tangential acceleration because the angular speed is constant and tangential is zero for both of them

D. Centripetal acceleration of Bobby is greater

E.they both have the same angular acceleration because angular Speed I constant so angular acceleration is zero for both

Answer:

Hip and knee extensors

Explanation:

These are gluteus muscles and hamstring muscles the there are the major movers for your body and are very important in pelvic alignment and lower back support during weight lifting

Answer: 1) a = 9.61m/s² pointing to west.

             2) (a) Δv = - 37.9km/s

                  (b) a = - 6.10⁷km/years

Explanation: Aceleration is the change in velocity over change in time.

1) For the plane:

[tex]a=\frac{\Delta v}{\Delta t}[/tex]

[tex]a=\frac{125}{13}[/tex]

a = 9.61m/s²

The plane is moving east, so velocity points in that direction. However, it is stopping at the time of 13s, so acceleration's direction is in the opposite direction. Therefore, acceleration points towards west.

2) Total change of velocity:

[tex]\Delta v = v_{f}-v_{i}[/tex]

[tex]\Delta v = -17.1-(+20.8)[/tex]

[tex]\Delta v= -37.9[/tex]km/s

The interval is in years, so transforming seconds in years:

v = [tex]\frac{-37.9}{3.15.10^{-7}}[/tex]

[tex]v=-12.03.10^{7}[/tex]km/years

Calculating acceleration:

[tex]a=\frac{-12.03.10^{-7}}{2.01}[/tex]

[tex]a=-6.10^{7}[/tex]

Acceleration of an asteroid is a = -6.10⁷km/years .

Answer:

Explanation:

point a represents time 0 and position coordinate 30

point b represents time 10 s , and position coordinate 50 m .

time elapsed = 10 - 0 = 10 s .

displacement = 50 m - 30 m

= 20 m

average velocity = displacement / time elapsed

= 20 / 10

= 2 m /s .

Answer:

v = 6.79 m/s

Explanation:

It is given that,

Mass of a train car, m₁ = 11000 kg

Speed of train car, u₁ = 21 m/s

Mass of other train car, m₂ = 23000 kg

Initially, the other train car is at rest, u₂ = 0

It is a case based on inelastic collision as both car couples each other after the collision. The law of conservation of momentum satisied here. So,

[tex]m_1u_1+m_2u_2=(m_1+m_2)V[/tex]

V is the common velocity after the collisions

[tex]V=\dfrac{m_1u_1}{(m_1+m_2)}\\\\V=\dfrac{11000\times 21}{(11000+23000)}\\\\V=6.79\ m/s[/tex]

So, the two car train will move with a common velocity of 6.79 m/s.

Answer:

13.51 nm

Explanation:

To solve this problem, we are going to use angle approximation that sin θ ≈ tan θ ≈ θ where our θ is in radians

y/L=tan θ ≈ θ

and ∆θ ≈∆y/L

Where ∆y= wavelength distance= 2.92 mm =0.00292m

L=screen distance= 2.40 m

=0.00292m/2.40m

=0.001217 rad

The grating spacing is d = (90000 lines/m)^−1

=1.11 × 10−5 m.

the small-angle

approx. Using difraction formula with m = 1 gives:

mλ = d sin θ ≈ dθ →

∆λ ≈ d∆θ = =1.11 × 10^-5 m×0.001217 rad

=0.000000001351m

= 13.51 nm

Answer:

The value is  [tex]q_o = Q[/tex]

Explanation:

From the question we are told that

   The net charge is [tex]Q = + 3Q[/tex]

     The  charge place on the  inside of the cavity is  [tex]q = -2Q[/tex]

Since we are told from the question that small charge placed inside the cavity is isolated from the conductor

  Then it implies that the electric flux is  Zero

Which mean that the charge place within the conductor +  the charge  on the inner region of the conductor  =  0  

i.e

     [tex]q + q_i = 0[/tex]

=>   [tex]-2Q + q_i = 0[/tex]

=>   [tex]q_i = 2Q[/tex]

Now the net charge on the conductor is mathematically represented as

   [tex]Q = q_o + q_i[/tex]

Here  [tex]q_o[/tex] is the charge on the outer surface

So

    [tex]3Q = q_o + 2Q[/tex]

=>   [tex]q_o = Q[/tex]

Answer:

1.2J

26 N

(-28, 14) m/s

Explanation:

energy

U = kQq / d = 8.99*10^9 * (2.5*10^-6C)² / 0.047m

U = 0.0562/0.047

U = 1.20 J

to two significant figures

tension

T = kQq / d²

T = U / d

T = 1.2 / 0.047

T = 25.53 N = 26 N to 2 sf

Momentum is conserved, and the initial momentum is zero:

0 = 0.0020 * V2 + 0.0040 * V4

so

V2 = -2 * V4

Energy is also conserved:

½ * 0.0020 * (-2V4)² + ½ * 0.0040 * (V4)² = 1.2 J

-½ * 0.0080 * V4² + ½ * 0.0040 * V4² = 1.2 J

-0.0040V4² + 0.002V4² = 1.2 J

0.0060V4² = 1.2 J

V4² = 1.2/0.0060

V4² = 200

V4 = √200

V4 = 14 m/s

and since V2 = -2 * V4

V2 = -28 m/s

(V2, V4) = (-28, 14)

The energy of this system is 1.2J

The  tension in the string is 26 N

The speed of each sphere when they are far apart is (-28, 14) m/s

The energy should be

U = kQq / d

= 8.99*10^9 * (2.5*10^-6C)² / 0.047m

U = 0.0562/0.047

U = 1.20 J

The tension should be

T = kQq / d²

T = U / d

T = 1.2 / 0.047

T = 25.53 N

= 26 N

The speed should be

Since Momentum should be conserved, and the initial momentum is zero:

So,

0 = 0.0020 * V2 + 0.0040 * V4

Now

V2 = -2 * V4

Due to this, Energy is also conserved:

½ * 0.0020 * (-2V4)² + ½ * 0.0040 * (V4)² = 1.2 J

-½ * 0.0080 * V4² + ½ * 0.0040 * V4² = 1.2 J

-0.0040V4² + 0.002V4² = 1.2 J

0.0060V4² = 1.2 J

V4² = 1.2/0.0060

V4² = 200

V4 = √200

V4 = 14 m/s

and now V2 = -2 * V4

V2 = -28 m/s

(V2, V4) = (-28, 14)

Learn more about energy here: https://brainly.com/question/15182235

Answer:

2.42×10⁷ s

Explanation:

From the question above,

Applying,

Q = It.................... Equation 1

Where Q = quantity of charge in coulombs, I = electric current in Ampere, t = time in seconds

make t the subject of the equation

t = Q/I................ Equation 2

Given: Q = 10900 C, I = 0.450 mA = 4.5×10⁻⁴ A

Substitute these values into equation 2

t = 10900/(4.5×10⁻⁴)

t = 2.42×10⁷ s

Hence the clock runs for 2.42×10⁷ s

Answer:

Is a flame hottest when it is blue?  Is it cold today?

Explanation:

Verification questions. These are basic data collecting questions. They are useful in building knowledge.

Answer:

The distance moved is 44 metres.

The magnitude of displacement is 20 metres with northward direction.

Answer:

44 m.

North 20 m.

Explanation:

Distance moved = 26 + 12 + 6

=  44 m.

Magnitude of the displacement = 26 - 12 + 6

= 20m

Direction is Northward.

Answer:

(a). The gauge pressure at the bottom of tube 1 is [tex]P_{1}=\rho g h_{1}[/tex]

(b).  The speed of the fluid in the left end of the main pipe [tex]\sqrt{\dfrac{2g(h_{2}-h_{1})}{(1-(\gamma)^2)}}[/tex]

Explanation:

Given that,

Gauge pressure at bottom = p₁

Suppose, an arrangement with a horizontal pipe carrying fluid of density p . The fluid rises to heights h1 and h2 in the two open-ended tubes (see figure). The cross-sectional area of the pipe is A1 at the position of tube 1, and A2 at the position of tube 2.

Find the speed of the fluid in the left end of the main pipe.

(a). We need to calculate the gauge pressure at the bottom of tube 1

Using bernoulli equation

[tex]P_{1}=\rho g h_{1}[/tex]

(b). We need to calculate the speed of the fluid in the left end of the main pipe

Using bernoulli equation

Pressure for first pipe,

[tex]P_{1}=\rho gh_{1}[/tex].....(I)

Pressure for second pipe,

[tex]P_{2}=\rho gh_{2}[/tex].....(II)

From equation (I) and (II)

[tex]P_{2}-P_{1}=\dfrac{1}{2}\rho(v_{1}^2-v_{2}^2)[/tex]

Put the value of P₁ and P₂

[tex]\rho g h_{2}-\rho g h_{1}=\dfrac{1}{2}\rho(v_{1}^2-v_{2}^2)[/tex]

[tex]gh_{2}-gh_{1}=\dfrac{1}{2}(v_{1}^2-v_{2}^2)[/tex]

[tex]2g(h_{2}-h_{1})=v_{1}^2-v_{2}^2[/tex]....(III)

We know that,

The continuity equation

[tex]v_{1}A_{1}=v_{2}A_{2}[/tex]

[tex]v_{2}=v_{1}(\dfrac{A_{1}}{A_{2}})[/tex]

Put the value of v₂ in equation (III)

[tex]2g(h_{2}-h_{1})=v_{1}^2-(v_{1}(\dfrac{A_{1}}{A_{2}}))^2[/tex]

[tex]2g(h_{2}-h_{1})=v_{1}^2(1-(\dfrac{A_{1}}{A_{2}}))^2[/tex]

Here, [tex]\dfrac{A_{1}}{A_{2}}=\gamma[/tex]

So, [tex]2g(h_{2}-h_{1})=v_{1}^2(1-(\gamma)^2)[/tex]

[tex]v_{1}=\sqrt{\dfrac{2g(h_{2}-h_{1})}{(1-(\gamma)^2)}}[/tex]

Hence, (a). The gauge pressure at the bottom of tube 1 is [tex]P_{1}=\rho g h_{1}[/tex]

(b).  The speed of the fluid in the left end of the main pipe [tex]\sqrt{\dfrac{2g(h_{2}-h_{1})}{(1-(\gamma)^2)}}[/tex]

Answer:

a)   v = - 4.4168 m / s  , b)    V = 0

Explanation:

The average speed is the variation of the displacement in time used.

          v = Δx /Δt = (x₂-x₁) / (t₂-t₁)

let's apply this equation to our case

Let's reduce the magnitudes of the system Yes

         Δx = 5150 km (1000 m / 1km) = 5.15 106 m

         Δt = 13.5 day (86,400 s / 1 day) = 1,166 10 6 s

a) return trip

the vector is negative because it points long towards the center of the system

         v = - 5.15 106 / 1.166 106

         v = - 4.4168 m / s

the negative sign indicates that he is coming back, to the lair

b) In a complete trip the distance is zero, because it is a vector, consequently the mean fickleness is also zero

                     V(j_ = 0

Answer:

a)    A = 0.07129 m²

b)    A / A ’= 1.77

Explanation:

In this exercise we are asked to find the area in SI units, so let's start by reducing the dimensions to SI units.

width a = 8.5 inch (2.54 cm 1 inch) (1 m / 100 cm)

            a = 0.2159 m

length l = 13 inch (2.54 cm / 1 inch) (1 m / 100 cm)

              l = 0.3302 m

The area of ​​a rectangle is

            A = l a

             A = 0.3302 0.2159

             A = 0.07129 m²

b) we have a second sheet with reduced dimensions

         a ’= 3/4 a

         l ’= ¾ l

Let's find the area of ​​this glossy sheet

         A ’= l’ a ’

         A ’= ¾ l ¾ a

         A ’= 9/16 l a

To find the factor we divide the two quantities

           A / A ’= l a 16 / (9 l a

            A / A ’= 1.77