A ball is thrown vertically upward with an initial speed of 30.0 m/s at a height of 1.5 m above the ground level. In the absence of air resistance, (a) how high does the ball go, (b) how much time does it take for the ball to reach its maximum height, and (c) what is the total time the ball is in the air before striking the ground?

We have that for the Question "What is the minimum charge required to pick up the tissue paper?" it can be said that minimum charge is

From the question we are told

Generally the equation for the Electro static force  is mathematically given as

[tex]\frac{kqq'}{r^2}=mg\\\\Therefore\\\\q=\frac{5*10^{-3}*9.8*(0.06^)^2}{9*10^{9}*14*10^{-6}}\\\\q=1.4*10^{-9}C\\\\q=1.4mc\\\\[/tex]

q=0.0014\muC

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Answer:

Speed of ball equals 6.024 m/s.

Explanation:

Let the student throw the ball with a velocity of 'v' m/s horizontally.

Now the time in which the ball travels 10.0 meter horizontally shall be equal to the time in which it travels (15.0-1.50) meters vertically

Hence the time taken to cover a vertical distance of 13.50 meters is obatined using 2 equation of kinematics as

[tex]s=\frac{1}{2}gt^{2}\\\\t=\sqrt{\frac{2s}{g}}\\\\t=\sqrt{\frac{2\times 13.5}{9.81}}\\\\\therefore t=1.66 seconds[/tex]

Since there is no acceleration in horizantal direction we infer that in time of 1.66 seconds the ball travels a distance of 10 meters

Hence the spped of throw is obatines as

[tex]Speed=\frac{Distance}{Time}\\\\v=\frac{10}{1.66}=6.024m/s[/tex]

Final answer:

The initial speed of the softball can be calculated using the height it drops and the horizontal distance it travels. By determining the time of fall for the vertical drop and knowing the horizontal distance, the initial horizontal velocity can be found, approximately 6.02 m/s.

Explanation:

To solve for the initial speed of the softball, we need to analyze the motion in two dimensions separately: horizontal and vertical.

Horizontal Motion

The horizontal motion can be considered with constant velocity since there's no acceleration in that direction (ignoring air resistance).

Vertical Motion

The vertical motion can be described by the kinematic equations for uniformly accelerated motion (free fall). Given the height difference from the window to the catchpoint (13.5 m) and the acceleration due to gravity (9.81 m/s²), we can calculate the time it takes for the ball to fall this height. The equation we use is:

h = vit + (1/2)at²

Substitute h = 13.5 m, a = 9.81 m/s², and vi = 0 m/s (since the ball is thrown horizontally, the initial vertical speed is 0) to solve for t.

We find that the time t is approximately 1.66 seconds. Using this time and the horizontal distance of 10.0 m, we can now calculate the initial horizontal speed.

vh = d/t

Substituting d = 10.0 m and t = 1.66 s, the initial horizontal speed vh is approximately 6.02 m/s.

Answer:

[tex]r_{al}=2.598cm[/tex]

Explanation:

Density =mass/volume

[tex]D_{al}=2.70103kg/m^{3}[/tex]

[tex]D_{iron}=7.86103/m^{3}[/tex]

condition for balance:

[tex]M_{iron}=M_{al}[/tex]

M=D*Volum

then:

[tex]D_{iron}*4/3*pi*r_{ir}^{3}=D_{al}*4/3*pi*r_{al}^{3}[/tex]

[tex]r_{al}=r_{ir}*\sqrt[3]{\frac{D_{iron}}{D_{al}}}[/tex]

[tex]r_{al}=2.598cm[/tex]

Answer:

1.28 cm

Explanation:

Density (ρ) is an intensive property resulting from the quotient of mass (m) and volume (V).

The density of Al is ρAl = 2.70 × 10³ kg/m³

The density of Fe is ρFe = 7.86 × 10³ kg/m³

A Fe sphere of radius 1.82 cm has the following volume.

V = 4/3 × π × r³

V = 4/3 × π × (0.0182 cm)³

V = 2.53 × 10⁻⁵ m³

The mass corresponding to this sphere is:

2.53 × 10⁻⁵ m³ × 2.70 × 10³ kg/m³ = 0.0683 kg

The Al sphere has the same mass, so its volume is:

0.0683 kg × (1 m³/7.86 × 10³ kg) = 8.69 × 10⁻⁶ m³

The radius corresponding to an Al sphere of 8.69 × 10⁻⁶ m³ is:

V = 4/3 × π × r³

8.69 × 10⁻⁶ m³ = 4/3 × π × r³

r = 0.0128 m = 1.28 cm

Answer: a) close together

Explanation: The electric field lines also  represent the intensity of the field, in this sense  for strong electric fields it is usually draw the lines close to each other. In constrast when they are far apart the electric field is weak.  

Final answer:

The electric field lines are close together when the electric field strength is large, indicating a stronger field due to the direct proportionality between field strength and the density of the field lines. The correct answer is a) close together.

Explanation:

When the electric field strength is large, electric field lines are close together. This is because the strength of the electric field is directly proportional to the number of lines per unit area perpendicular to the field lines. The more electric field lines there are in a given area, the stronger the electric field at that point.

Hence, near a positive charge or around a negative charge, where the field lines begin or terminate, the field lines are densely packed when the charge is large, indicating a strong electric field. Field lines provide a visual representation of the field's strength and direction, and they will never intersect because the electric field at a point must have a unique direction.

Answer:

[tex]t=6.4534 s[/tex]

Explanation:

This is an exercise where you need to use the concepts of free fall objects

Our knowable variables are initial high, initial velocity and the acceleration due to gravity:

[tex]y_{0}=75m[/tex]

[tex]v_{oy} =20m/s[/tex]

[tex]g=9.8 m/s^{2}[/tex]

At the end of the motion, the rock hits the ground making the final high y=0m

[tex]y=y_{o}+v_{oy}*t-\frac{1}{2}gt^{2}[/tex]

If we evaluate the equation:

[tex]0=75m+(20m/s)t-\frac{1}{2}(9.8m/s^{2})t^{2}[/tex]

This is a classic form of Quadratic Formula, we can solve it using:

[tex]t=\frac{-b ± \sqrt{b^{2}-4ac } }{2a}[/tex]

[tex]a=-4.9\\b=20\\c=75[/tex]

[tex]t=\frac{-(20) + \sqrt{(20)^{2}-4(-4.9)(75) } }{2(-4.9)}=-2.37s[/tex]

[tex]t=\frac{-(20) - \sqrt{(20)^{2}-4(-4.9)(75) } }{2(-4.9)}=6.4534s[/tex]

Since the time can not be negative, the reasonable answer is

[tex]t=6.4534s[/tex]

The rock will hit the ground approximately 2.37 seconds after it is thrown.

Given:

- Initial height, [tex]\( y_0 = 75 \)[/tex] m

- Initial velocity, [tex]\( v_0 = 20 \)[/tex] m/s (since the rock is thrown upwards, this velocity will be negative in the equation as it is in the opposite direction to the positive y-axis)

- Acceleration due to gravity, [tex]\( g = 9.8 \) m/s\( ^2 \)[/tex]

The motion equation becomes:

[tex]\[ 0 = 75 - 20t - \frac{1}{2}(9.8)t^2 \][/tex]

Multiplying through by 2 to clear the fraction, we get:

[tex]\[ 0 = 150 - 40t - 9.8t^2 \][/tex]

Rearranging the terms to align with the standard quadratic form [tex]\( at^2 + bt + c = 0 \)[/tex], we have:

[tex]\[ 9.8t^2 + 40t - 150 = 0 \][/tex]

Now we can apply the Quadratic Formula to solve for t:

[tex]\[ t = \frac{-b \pm \sqrt{b^2 - 4ac}}{2a} \][/tex]

Where ( a = 9.8 ), ( b = 40 ), and ( c = -150 ). Plugging in these values, we get:

[tex]\[ t = \frac{-40 \pm \sqrt{40^2 - 4(9.8)(-150)}}{2(9.8)} \][/tex]

Solving this, we get two values for t, but only the positive value is physically meaningful since time cannot be negative.

 Calculating the discriminant:

[tex]\[ \sqrt{40^2 - 4(9.8)(-150)} = \sqrt{1600 + 5880} = \sqrt{7480} \][/tex]

Now, we find the two possible values for t:

[tex]\[ t = \frac{-40 \pm \sqrt{7480}}{2(9.8)} \] \[ t = \frac{-40 \pm 86.52}{19.6} \][/tex]

The two solutions for t are:

[tex]\[ t_1 = \frac{-40 + 86.52}{19.6} \approx 2.37 \text{ s} \] \[ t_2 = \frac{-40 - 86.52}{19.6} \approx -6.43 \text{ s} \][/tex]

Since time cannot be negative, we discard [tex]\( t_2 \)[/tex] and take [tex]\( t_1 \)[/tex] as the time when the rock hits the ground.

The time taken is 2.37 s.

Answer:Momentum of Truck[tex]=4000\times 20=80,000 kg-m/s[/tex]

Momentum of car[tex]=1350\times 10=13,500 kg-m/s[/tex]

Explanation:

Given

mass of truck(m)=4000 kg

Velocity of Truck is ([tex]V_T[/tex])=[tex]-20\hat{j}[/tex]

mass of car ([tex]m_c[/tex])=1350 kg

Velocity of car[tex](V_c)=10 \hat{j}[/tex]

Conserving momentum

[tex]4000\times \left ( -20\right )+1350\left ( 10\right )=5350v[/tex]

[tex]v=\frac{66,500}{5350}=12.42 m/s[/tex]

Momentum of Truck[tex]=4000\times 20=80,000 kg-m/s[/tex]

Momentum of car[tex]=1350\times 10=13,500 kg-m/s[/tex]

Answer:

1) Momentum of truck before collision is [tex]\overrightarrow{p_{1}}=-80000kgm/s[/tex]

2) Momentum of car before collision is [tex]\overrightarrow{p_{2}}=13500kgm/s[/tex]

Explanation:

The momentum of an object with mass 'm' travelling with speed 'v' is mathematically given by

[tex]\overrightarrow{p}=mass\times \overrightarrow{v}[/tex]

In this problem we shall assume that direction's coincide with the Cartesian axis for simplicity

Thus for Truck we have

Mass = 4000 kg

Velocity = [tex]-20\widehat{j}[/tex]m/s

Thus momentum of truck becomes

[tex]\overrightarrow{p_{1}}=4000\times -20\overrightarrow{j}=-80000kgm/s[/tex]

Similarly for car we have

Mass = 1350 kg

Velocity = [tex]10\widehat{j}[/tex]m/s

Thus momentum of car becomes

[tex]\overrightarrow{p_{2}}=1350\times 10\overrightarrow{j}=13500kgm/s[/tex]

Answer:

a) The speed of the ball at the bottom of the first plane is 2.59 m/s

b) It takes the ball 6.56 s to roll down the first plane.

Explanation:

The equations for the position and velocity of the ball are as follows:

x = x0 + v0 · t + 1/2 · a · t²

v = v0 + a · t

Where:

x = position at time t

x0 = initial position

v0 = initial speed

t = time

a = acceleration

v = velocity at time t

b) First, let´s calculate the time it takes the ball to reach the bottom of the plane using the equation for the position:

x = x0 + v0 · t + 1/2 · a · t²

Placing the center of the frame of reference at the point where the ball starts rolling, x = 0. Since the ball starts from rest, v0 = 0. Then:

x = 1/2 · a ·t²

Let´s find the time when the ball reaches a position of 8.50 m

8.50 m = 1/2 · 0.395 m/s² · t²

t² = 2 · 8.50 m / 0.395 m/s²

t = 6.56 s

a) Now, using the equation of the velocity, we can calculate the velocity of the ball at the bottom of the plane (t = 6.56 s):

v = a · t

v = 0.395 m/s² · 6.56 s = 2.59 m/s

Answer:

The pressure of the tire will be 4.19 atm

Explanation:

The ideal gas equation is:

p0 * V0 / T0 = p1 * V1 / T1

Since V0 = V1 because the volume of the tire doesn't change

p0 / T0 = p1 / T1

p1 = p0 * T1 / T0

We need absolute temperatures for this equation

16 C = 289 K

45 C = 318 K

Now we replace the values:

p1 = 3.71 * 318 / 289 = 4.19 atm

Final answer:

To calculate the new gauge pressure of a heated bicycle tire with constant volume, we use Charles's law. With initial conditions of 3.71 atm and 16°C, and final temperature 45°C, the final gauge pressure is approximately 4.08 atm.

Explanation:

The student is asking to calculate the new gauge pressure of a bicycle tire after its temperature increases, assuming the volume and amount of gas remain constant.

This scenario is governed by the Gas Law, specifically Charles's law, which states that the pressure of a gas is directly proportional to its temperature when the volume is held constant.

Therefore, one can apply the formula P2 = P1 * (T2 / T1), where P1 and T1 represent the original pressure and temperature and P2 and T2 represent the final pressure and temperature, respectively, to calculate the new pressure at the higher temperature.

Considering the initial gauge pressure (P1) is 3.71 atm and the initial temperature (T1) is 16°C or 289 K (since temperatures must be in Kelvin for these calculations), and the final temperature (T2) is 45°C or 318 K, we can solve for P2.

First, add 273.15 to the temperature to convert it from Celsius to Kelvin.

T1 = 16 + 273.15 = 289.15 K

T2 = 45 + 273.15 = 318.15 K

Next, apply Charles's law to find P2:

P2 = P1 * (T2 / T1)

P2 = 3.71 atm * (318.15 K / 289.15 K)

P2 = 3.71 atm * 1.1004

P2 ≈ 4.08 atm

The final gauge pressure in the tire at the higher temperature of 45°C is approximately 4.08 atm.

Answer:

Explanation:

Y = 5 Sin27( .2x-3t)

= 5 Sin(5.4x - 81 t )

Amplitude = 5 m

Angular frequency ω = 81

frequency = ω / 2π

= 81 / (2 x 3.14 )

=12.89

Wave length λ = 2π / k ,

k = 5.4

λ = 2π / 5.4

= 1.163 m

Phase velocity =ω / k

= 81 / 5.4

15 m / s.

The wave is travelling in + ve x - direction.

Answer:

Explanation:

The standard equation of the sinusoidal wave in one dimension is given by

[tex]y = A Sin\left ( \frac{2\pi }{\lambda }\left ( vt-x \right )+\phi  \right )[/tex]

Here, A be the amplitude of the wave

λ be the wavelength of the wave

v be the velocity of the wave

Φ be the phase angle

x be the position of the wave

t be the time

this wave is travelling along positive direction of X axis

The frequency of wave is f which relates with velocity and wavelength as given below

v = f x λ

The relation between the time period and the frequency is

f = 1 / T.

Friction:

When an object slips on a surface, an opposing force acts between the tangent planes which acts in the opposite direction of motion. This opposing force is called Friction. Or in other words, Friction is the opposing force that opposes the motion between two surfaces.

The main component of friction are:

Normal Reaction (R):

Suppose a block is placed on a table in the above picture, which is in resting state, then two forces are acting on it at that time.

The first is due to its weight mg which is working from its center of gravity towards the vertical bottom.

The second one is superimposed vertically upwards by the table on the block, called the reaction force (P). This force passes through the center of gravity of the block.

Due to P = mg, the box is in equilibrium position on the table.

Coefficient of friction ( μ ):

The ratio of the force of friction and the reaction force is called the coefficient of friction.

Coefficient of friction, µ = force of friction / reaction force

μ = F / R

The coefficient of friction is volume less and dimensionless.

Its value is between 0 to 1.

Advantage and disadvantage from friction force:

How to reduce friction:

Answer:

the vector position is   r = (10.4 t + t²) i + (8+ 6t - 2 t²) j

Explanation:

In this problem we have acceleration in the x and y axes, therefore we will use the accelerated motion equations

   X = Xo + Vox t + ½ aₓ t²

   Y = I + I go t + ½ [tex]a_{y}[/tex] t²

We calculate the components of velocity using trigonometry

   Vox = Vo cos θ = 12 cos 30

   Voy = Voy sin θ = 12 sin 30

    Vox = 10.4 m / s

    Voy = 6 m / s

The value accelerations are data

    aₓ = 2 m / s²

    [tex]a_{y}[/tex] = - 4 m / s²

The initial position is

    Xo = 0

    Yo = 8 m

    Since the launching point is 8 m above the ground.  The acceleration is negative because it has a downward direction; with this data we write the equations of the position

      X = 10.4 t + ½ 2 t²

      Y = 8 + 6 t - ½ 4 t²

     X = 10.4 t + t²

      Y = 8 + 6 t - 2 t²

We write the position vector

    r = x i + y j

     r = (10.4 t + t²) i + (8+ 6t - 2 t²) j

this the vector position

Answer:

13330.86 J

Explanation:

mass of volume of 30.1 cc of water = density x volume

= 1 x 30.1 = 30.1 gm

= 30.1 x 10⁻³ kg

Heat to be withdrawn to cool water from 22.4 degree to 0 degree

= mass x specific heat x fall of temperature

= 30.1 x 10⁻³ x 4186 x 22.4

= 2822.36 J

Heat to be withdrawn to cool water  0 degree ice

mass x latent heat of freezing

30.1 x 10⁻³ x 334000

= 10053.4 J

Heat to be withdrawn to cool ice from 0 degree to -7.2 degree

mass x specific heat of ice x fall of temperature

= 30.1 x 10⁻³ x 2100 x 7.2

= 455.1 J

Total heat to be withdrawn

=  2822.36  + 10053.4 + 455.1

= 13330.86 J

Answer:

Part I:

(a): [tex]7.889\times 10^2\ Nm.[/tex]

(b): [tex]0\ Nm.[/tex]

(c): [tex]6.52\times 10^2\ Nm.[/tex]

Part II:

(a): [tex]2.664\times 10^{-9}\ C.[/tex]

(b): Charge on the sphere is positive and only distributed on the surface of the sphere and not inside the sphere.

Explanation:

Assuming,

[tex]\hat i,\ \hat j,\ \hat k[/tex] are the unit vectors along positive x, y and z axes respectively.

Given, the electric field is of intensity 3.22 kN/C and is along x-axis.

Therefore,

[tex]\vec E = 3.22\ kN/C\ \hat i=3.22\times 10^3\ N/C\ \hat i.[/tex]

The magnetic flux through a surface is defined as

[tex]\phi = \vec E\cdot \vec A[/tex]

where,

[tex]\vec A[/tex] is the area vector of the surface which is directed along the normal to the plane of the surface and its magnitude is equal to the area of the surface.

[tex]A = \text{length of the plane }\times \text{width of the plane}\\=0.700\times 0.350\\=0.245\ m^2.[/tex]

(a):

When the plane is parallel to yz plane, then its normal is along x axis, therefore,

[tex]\vec A = A\ \hat i.[/tex]

Electric flux,

[tex]\phi = \vec E\cdot \vec A \\=(3.22\times 10^3)\hat i\cdot (0.245)\hat i = 3.22\times10^3\times 0.245\times (\hat i\cdot \hat i) = 7.889\times 10^2\ Nm.[/tex]

(b):

When the plane is parallel to xy plane, then its normal is along z axis, therefore,

[tex]\vec A = A\ \hat k.[/tex]

Electric flux,

[tex]\phi = \vec E\cdot \vec A \\=(3.22\times 10^3)\hat i\cdot (0.245)\hat k = 3.22\times10^3\times 0.245\times (\hat i\cdot \hat k) = 0\ Nm.[/tex]

(c):

When the normal to the plane makes an angle [tex]34.2^\circ[/tex] with the x-axis.

Electric flux through the plane is given by,

[tex]\phi = \vec E\cdot \vec A\\=EA\cos(34.2^\circ) \\=(3.22\times 10^3)\times (0.245)\times \cos(34.2^\circ)\\=6.52\times 10^2\ Nm.[/tex]

(a):

Given:

The electric field is directed radially outward from the surface of the sphere at its every point and the normal to the surface of the sphere is also radially outwards at its every point therefore both the electric field and the area vector of the sphere is along the same direction.

The flux through the surface is given by

[tex]\phi = \vec E \cdot \vec A \\= EA\cos0^\circ\\=EA\\=E\ 4\pi R^2\\=570\times 4\pi \times 0.205^2\\=3.01\times 10^2\ Nm.[/tex]

According to Gauss law of electrostatics,

[tex]\phi = \dfrac q{\epsilon_o}[/tex]

where,

Therefore, the net charge on the sphere is given by

[tex]q=\epsilon_o\times \phi\\=8.85\times 10^{-12}\times 3.01\times 10^2\\=2.664\times 10^{-9}\ C.[/tex]

(b):

Since, the sphere is charged all of the charge resides on its surface. The electric field through the sphere is radially outwards which means the charge on the sphere should be positive.

There is no charge distributed inside the sphere.

Answer:

The answer is  a=b=c=3.833 cm

Explanation:

Lets call the variables a=side a b=side b c=side c

We have that the formula of the equilateral triangle for its height is:

1)h=(1/2)*root(3)*a

2) If we resolve the equation we have

 2.1)2h=root(3)*a

 2.2)(2h/root(3))=a

3) After the replacement of each value we have that

a=2*3.32/1.73205

a=3.833 cm

And we know that the equilateral triangle has the same value for each side so a=b=c=3.833 cm

Answer:

Option a

Explanation:

Galileo's experiment of inclined plane provides the measurement of acceleration with accuracy with the help of simple equipment.

The ultimate objective of the experiment was to prove that when other external forces are absent like the one due to air resistance, all the objects fall at a constant accelerated rate towards the Earth.

Thus he measured the influence of gravity on the free falling object accurately and observed that the distance covered by these objects when released from rest and moving at a steady rate, then the distance traveled by the object is proportional to the square of the time taken.

From his findings:

[tex]D = \frac{gH}{2L}t^{2}[/tex]

where

D = distance

L = Inclined plane length

H = Height of the inclined plane

Answer: Hi!

The acceleration of our particle is then a = 4*[tex]10^{3[/tex] meters per second square. Also we know that we start at X₀ = O m (i am not sure if you are using a a 0 or a O, but you will see that in this problem it doesn't matter, se i will use a constant O, that can be  ani real number as the initial position) and V₀ = 0 m/s.

Ok, we have the acceleration, so if we want the velocity, we must integrate the acceleration over time.

V(t) = ∫ 4*[tex]10^{3[/tex]dt = 4*[tex]10^{3[/tex]*t + V₀

where we added the constant of integration, who is the inicial velocity, that we already know that is zero.

and for the position, we must integrate again.

X(t) =  ∫ 4*[tex]10^{3[/tex]*tdt =  4*[tex]10^{3[/tex]*[tex]t^{2}[/tex]/2 + X₀

ok, in the part a) we want to know the displacement at 2 seconds.

that is X(2s) - X(0s) = (2000*4 + O) - O meters = 8000 meters.

in the b part we want to know the velocity at 1 second; that is:

V(1s) = 4000*1 m/s = 4000 meters per second.

Answer:

4.51 * 10^{-5} C

Explanation:

The force between two charge  q and q1 is given as

[tex]F = \frac{k*q*q1}{r^2}[/tex]

[tex]= \frac{(9.0 * 10^9)(24 * 10^{-6})(8 * 10^{-6} C)}{(0.19m)^2} [/tex]

= 47.86 N in the +y direction

We need the force between q and q2 to be (47.86 - 18) =  29.86 N in the other direction to get the desired result.

solving for q2,

[tex]q2 = \frac{Fr^2}{(kq)} [/tex]

[tex]= \frac{(29.86)(0.33 m)^2}{(9.0 * 10^9*8*10^{-6} C)}[/tex]

[tex]= 4.51 * 10^{-5} C[/tex]

Final answer:

To determine the magnitude of q2, we can use Coulomb's Law to calculate the net force exerted on charge q. By setting up an equation using the given information, we can find that the magnitude of q2 is approximately 4.84 μC.

Explanation:

To determine the magnitude of q2, we can use Coulomb's Law, which states that the electrostatic force between two charges is directly proportional to the product of their charges and inversely proportional to the square of the distance between them. In this case, we have two charges, q1 and q2, with a distance of 0.33 - 0.19 = 0.14m between them.

The net electrostatic force on charge q can be calculated using the equation F = k * (|q1 * q| / r1^2) + k * (|q2 * q| / r2^2), where k is the electrostatic constant (8.99 x 10^9 N*m^2/C^2).

From the given information, we know that F = 18 N and points in the +y direction, so we can set up the following equation: 18 = k * (|(-24 μC) * (8 μC)| / (0.19m)^2) + k * (|q2 * (8 μC)| / (0.33m)^2).

Solving this equation, we can find the magnitude of q2, which is approximately 4.84 μC.

Answer:

How: It will have a very different chemical composition.

Why: Because the interstellar medium at the beginning of universe were compounded only of Hydrogen and Helium.

Explanation:

Once the Big Bang passed and the universe began its expansion, the temperature started to decrease, what allowed the combination of hydrogen and helium. Therefore, the chemical composition of the molecular cloud in which the first stars were formed only held those elements.

If the Sun and the solar system were formed from a molecular cloud with that composition, it will both have an absence of metallic elements (elements heavier than helium), since all of them are formed through nuclear reactions in the core of the stars, and each time a star dies, the interstellar medium for the next generation is enriched.

Key elements for life as Carbon, Nitrogen, Oxygen, Phosphorus and Sulfur will be missing for that hypothetical scenario.

For example, the lack of O3 (ozone) in the atmosphere of earth will allow that ultraviolet light hits the earth surface.

If our solar system formed with the first stars, the planets would mostly comprise hydrogen and helium, as heavier elements had not yet formed. The conditions would be hotter and harsher, making life as we know it unlikely to evolve. The Sun, too, would've been exhausted already due to its short lifespan.

If our Sun and the solar system had formed around the same time as the first stars in the universe, our solar system would look very different. The universe at the time of the formation of the first stars was composed of only hydrogen and helium, with trace amounts of lithium. Thus, the planets in our system, formed from the leftover dust and gasses surrounding our Sun, would mostly be made up of hydrogen and helium.

Believed to have occurred just about 200 million years after the big bang, the first stars were much larger and hotter than the current generation of stars, including our Sun. Hence, the planets in our system could have been significantly hotter and larger. It's also worth noting that these first-generation stars had relatively short lifetimes and ended their lives in explosive supernovae, catalyzing the formation of heavier elements. But this means if our Sun was a first-generation star, it would have exhausted its nuclear fuel billions of years ago.

Due to these circumstances, life as we know it might not have been possible in our solar system. Life on Earth relies on heavier elements like carbon, nitrogen, and oxygen, which were only formed in the universe after generations of stellar evolution and supernova explosions. If our solar system was created at the same time as the first stars, these heavier elements wouldn't have existed yet. Therefore, life, at least life as we understand it, wouldn't likely evolve in our solar system.

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Answer:

[tex]3.75*10^{-13}[/tex]  electrons

Explanation:

The total charge Q is the sum of the charge of the N electrons contained in the sphere:

[tex]Q=N*q_{e}[/tex]

[tex]q_{e}=-1.6*10^{-19}C[/tex]    charge of a electron

We solve to find N:

[tex]N=\frac{Q}{q_{e}}=\frac{-6 x 10^{-6}}{-1.6 x 10^{-19}}=3.75*10^{-13}[/tex]

Answer:

Change in momentum is [tex]2.667\times 10^{4} kg.m/s[/tex]

Solution:

The momentum of any body is the product of its mass and the velocity associated with the body and is generally given by:

[tex]\vec{p} = m\vec{v}[/tex]

Now, as per the question:

Mass of the car, M = 1500 kg

The velocity in the east direction, [tex]v\hat{i} = 40\hat{i} km/h[/tex]

The velocity in the north direction, [tex]v\hat{j} = 50\hat{j} km/h[/tex]

Now, the momentum of the car in the east direction:

[tex]p\hat{i} = mv\hat{i} = 1500\times 40\hat{i} = 60000\hat{i} kg.km/h[/tex]

Now, the momentum of the car in the north direction:

[tex]p\hat{j} = mv\hat{j} = 1500\times 50\hat{j} = 75000\hat{j} kg.km/h[/tex]

Change in momentum is given by:

[tex]\Delta p = p\hat{i} - p\hat{j} = 60000\hat{i} - 75000\hat{j}[/tex]

Now,

[tex]|\Delta p| = |60000\hat{i} - 75000\hat{j}|[/tex]

[tex]|\Delta p| = \sqrt{60000^{2} + 75000^{2}}[/tex]

[tex]|\Delta p| = 96046 kg.km/hr = \frac{96046}{3.6} = 2.667\times 10^{4} kg.m/s[/tex]

(Since, [tex]1kg.km/h = \frac{1}{3.6} kg.m/s[/tex])

Answer:

1. Atoms are the smallest particles of an element that retain the element's chemical properties.

2. Substances composed of only one type of atom are classified as elements.

Explanation:

Statement 3 is wrong because out of the 118 identified elements, the first 94 of them occur naturally on Earth and the remaining 24 are synthetic elements.

Final answer:

Atoms are the smallest units retaining an element's properties, and elements consist exclusively of one type of atom. The provided statement about natural occurrence of elements is incorrect, as 92 elements, not 48, occur naturally.

Explanation:

Regarding the student's question on the properties of atoms and elements:

Atoms are the smallest particles of an element that retain the element's chemical properties. For instance, a hydrogen atom possesses all properties of the element hydrogen.

Substances made up of only one type of atom are considered elements. Each element has atoms with a characteristic mass and identical chemical properties.

The statement about the occurrence of elements is partially incorrect. Although 118 elements have been identified, some sources suggest that 92 occur naturally, not just 48.

Answer with Explanation:

We know from newton's second law that acceleration produced by a force 'F' in a body of mass 'm' is given by

[tex]a=\frac{Force}{Mass}=\farc{F}{m}[/tex]

In the given case the acceleration equals

[tex]a=\frac{F_{o}cos^{2}(\omega t)}{m}[/tex]

Now by definition of acceleration we have

[tex]a=\frac{dv}{dt}\\\\\int dv=\int adt\\\\v=\int adt\\\\v=\int \frac{F_{o}cos^{2}(\omega t)}{m}\cdot dt\\\\v=\frac{F_{o}}{m}\int cos^{2}(\omega t)dt\\\\v=\frac{F_{o}}{\omega m}\cdot (\frac{\omega t}{2}+\frac{sin(2\omega t)}{4}+c)[/tex]

Similarly by definition of position we have

[tex]v=\frac{dx}{dt}\\\\\int dx=\int vdt\\\\x=\int vdt[/tex]

Upon further solving we get

[tex]x=\int [\frac{F_{o}}{\omega m}\cdot (\frac{\omega t}{2}+\frac{sin(2\omega t)}{4}+c)]dt\\\\x=\frac{F_{o}}{\omega m}\cdot ((\int \frac{\omega t}{2}+\frac{sin(2\omega t)}{4}+c)dt)\\\\x(t)=\frac{F_{o}}{\omega m}\cdot (\frac{\omega t^{2}}{4}-\frac{cos(2\omega  t)}{8\omega }+ct+d)[/tex]

The plots can be obtained depending upon the values of the constants.

Answer:

Explanation:

We can use conservation of momentum to find the initial velocities.

Taking the unit vector [tex]\hat{i}[/tex] pointing north and [tex]\hat{j}[/tex] pointing east, the final velocity will be

[tex] \vec{V}_f = 16.0 \frac{m}{s} \ ( \ cos(24.0 \°) \ , \ sin (24.0 \°) \ )[/tex]

[tex] \vec{V}_f = ( \ 14.617 \frac{m}{s} \ , \ 6.508 \frac{m}{s} \ )[/tex]

The final linear momentum will be:

[tex]\vec{P}_f = (m_{car}+ m_{truck}) * V_f[/tex]

[tex]\vec{P}_f = (950 \ kg \ + 1900 \ kg \ ) *  ( \ 14.617 \frac{m}{s} \ , \ 6.508 \frac{m}{s} \ )[/tex]

[tex]\vec{P}_f = (2.850 \ kg \ ) *  ( \ 14.617 \frac{m}{s} \ , \ 6.508 \frac{m}{s} \ )[/tex]

[tex]\vec{P}_f = ( \ 41,658.45 \frac{ kg \ m}{s} \ , \ 18,547.8 \frac{kg \ m}{s} \ )[/tex]

As there are not external forces, the total linear momentum must be constant.

So:

[tex]\vec{P}_0= \vec{P}_f [/tex]

As initially the car is travelling east, and the truck is travelling north, the initial linear momentum must be

[tex]\vec{P}_0= ( m_{truck} * v_{truck}, m_{car}* v_{car} )[/tex] 

so:

 [tex]\vec{P}_0= \vec{P}_f[/tex] 

[tex]( m_{truck} * v_{truck}, m_{car}* v_{car} ) = ( \ 41,658.45 \frac{ kg \ m}{s} \ , \ 18,547.8 \frac{kg \ m}{s} \ )[/tex]  

so

[tex]\left \{ {{m_{truck} \ v_{truck} = 41,658.45 \frac{ kg \ m}{s}  } \atop {m_{car} \ v_{car}=18,547.8 \frac{kg \ m}{s} }} \right.[/tex]

So, for the truck

[tex]m_{truck} \ v_{truck} = 41,658.45 \frac{ kg \ m}{s} [/tex]

[tex]1900 \ kg \ v_{truck} = 41,658.45 \frac{ kg \ m}{s} [/tex]

[tex] v_{truck} = \frac{41,658.45 \frac{ kg \ m}{s}}{1900 \ kg} [/tex]

[tex]v_{truck} = \frac{41,658.45 \frac{ kg \ m}{s}}{1900 \ kg} [/tex]

[tex]v_{truck} = 21.93 \frac{m}{s}[/tex]

And, for the car

[tex]950 \ kg \ v_{car}=18,547.8 \frac{kg \ m}{s}[/tex]

[tex]v_{car}=\frac{18,547.8 \frac{kg \ m}{s}}{950 \ kg}[/tex]

[tex]v_{car}=19.524 \frac{m}{s}[/tex]

Answer:

Explanation:

Gas law equation for any gas is as follows .

PV = nRT ( for n moles of gas )

Let the pressure , volume , temperature and mole of gas in cylinder A be P,V

T₁ and 2n . Pressure , volume , temperature and mole in cylinder B will be

P , V , T₂ and n.

Applying Gas laws , we get

For gas in cylinder A

PV = 2n R T₁

For gas in cylinder B

PV = n R T₂

Equating these equations , we get

2n R T₁ = n R T₂

2 T₁ = T₂

or,

[tex]2T_A =T_B[/tex]

[tex]T_A[/tex] is less than [tex]T_B[/tex]

Final answer:

Under the conditions of equal pressure and volume, and using the ideal gas law, we determine that the temperatures of the two cylinders of gas must be the same (TA = TB).

Explanation:

Given that the two identical cylinders, A and B, contain the same type of gas at the same pressure, and cylinder A has twice as much gas as cylinder B, we can use the ideal gas law to determine the relationship between their temperatures. The ideal gas law is PV = n ×R× T, where P is pressure, V is volume, n is the number of moles of gas, R is the ideal gas constant, and T is temperature. Since the pressures are equal and the cylinders are identical, volumes are also equal. Thus, because A has twice as much gas as B (nA = 2 x nB), it has twice the number of moles. Holding pressure and volume constant and since R is a constant, both cylinders must have the same temperature for the equation to be balanced. Therefore, we find that TA = TB.

Answer:

4.66 x 10^7 N/C

Explanation:

radius of drop, r = 35 micro meter = 35 x 10^-6 m

number of electrons, n = 26

density of water, d = 1000 kg / m^3

The gravitational force is equal to the product of mass of drop and the acceleration due to gravity.

Mass of drop, m = Volume of drop x density of water

[tex]m = \frac{4}{3}\times 3.14 \times r^{3}\times d[/tex]

[tex]m = \frac{4}{3}\times 3.14 \times \left ( 35\times10^{-6} \right )^{3}\times 1000[/tex]

m = 1.795 x 10^-10 kg

Gravitational force, Fg = m x g = 1.795 x 10^-10 x 9.8 = 1.759 x 10^-9 N

Charge,q = number of electrons x charge of one electron

q = 236 x 1.6 x 10^-19 = 3.776 x 10^-17 C

Electrostatic force, Fe = q E

Where, E is the strength of electric field.

here electrostatic force is balanced by the gravitational force

Fe = Fg

3.776 x 106-17 x E = 1.759 x 10^-9

E = 4.66 x 10^7 N/C

Answer:

The amount of charge at the center is -132.7 nC

Solution:

As per the question:

Electric flux from one face of cube, [tex]\phi_{E} = - 2.5 kN.m^{2}/C[/tex]

Edge, a = 19cm

Since, a cube has six faces, thus total flux from all the 6 faces = [tex]6\times (-2.5) = - 15 kN.m^{2}/C[/tex]

Also, from Gauss' law:

[tex]\phi_{E,net} = \frac{1}{\epsilon_{o}}Q_{enc}[/tex]

[tex]Q_{enc} = 8.85\times 10^{- 12}\times - 15\times 10^{3}[/tex]

[tex]Q_{enc} = - 132.7 nC[/tex]

Answer:

Number of gallons =2 gallon

Explanation:

given data:

rate of gasoline ineurope = 5 euro per liter

total money to buy gasoline =  40 euro

total gasoline an american can buy in europe [tex]= \frac{40}{5}[/tex]

= 8 litres of gasoline

As given in the question 1 ltr is 1 quarts therefore  

Total no. of quarts is 8 quarts

As from question 4 quarts is equal to one gallon, hence

Number of gallons[tex]= \frac{8}{4} = 2 gallon[/tex]

Answer:

The average velocity of the car is 32 m/s.

Explanation:

Given that,

Initial position = 50 m

Final position = 210 m

Time = 5 sec

(a). We need to calculate the average velocity of the car

Using formula of average velocity

[tex]v_{avg}=\dfrac{v_{f}-v_{i}}{t}[/tex]

Put the value into the formula

[tex]v_{avg}=\dfrac{210-50}{5}[/tex]

[tex]v_{avg}=32\ m/s[/tex]

(b). We need to draw the position vs. time graph

We need to calculate the slope of the line of best fit.

Using formula of slop

[tex]slope =\dfrac{y_{2}-y_{1}}{x_{2}-x_{1}}[/tex]

Put the value into the formula

[tex]slope =\dfrac{210-50}{5-0}[/tex]

[tex]slope =32[/tex]

Hence, The average velocity of the car is 32 m/s.

Answer:

[tex]f_{ecco}  = 360 Hz[/tex]

Explanation:

The change of frecuency of sound due to the movement of the source is colled Doppler Effect.

As James (the source) is running toward the wall, the frecuency reaching the wall (so the eco sound) will be higher than the source. In this case the frecuency at the wall will be:

[tex]f_{2}  = f_{1}  (\frac{v}{v-v_{s} } )[/tex]

where [tex]v_{s}[/tex] is the speed of source, 2 m/s

and [tex]v[/tex] is the speed of sound, given that we have wind movind the air in the opposite direction respect to the wall, the speed of sound would be:

[tex]v = 350 \frac{m}{s} - 3 \frac{m}{s} = 347 \frac{m}{s}[/tex]

Replacing the values: [tex]f_{2}  = 357 Hz[/tex]

Now the wall becames the new source, and James (the observer is aproaching the source), for an observer aproaching the source the new frecuency will be:

[tex]f_{3}  = f_{2}  (1 + \frac{v_{s}}{v} )[/tex]

Now the waves are traveling in the direction of wind, so the velocity of sound will be:

[tex]v = 350 \frac{m}{s} + 3 \frac{m}{s} = 353 \frac{m}{s}[/tex]

Replacing:

[tex]f_{3}  = 360 Hz[/tex]