What role do planetesimals play in the origin of the planets?

All would motivate someone toward attaining a career goal except low self-esteem. The correct option is B.

We tend to feel better about ourselves and about life in general when we have healthy self-esteem.

It improves our ability to deal with life's ups and downs. When we have low self-esteem, we tend to view ourselves and our lives in a more negative and critical light.

People's choices and decisions are heavily influenced by their self-esteem. In other words, self-esteem motivates people by making it more or less likely that they will take care of themselves and reach their full potential.

Except for low self-esteem, everyone would not motivate somebody to pursue a career goal.

Thus, the correct option is B as low self esteem cannot motivate anyone for career goal.

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Answer:

[tex]v(t) = \frac{-cos4t}{5} + \frac{6}{5} Volts[/tex]

Explanation:

Given

current I =  4sin4t

capacitance C = 5F

v(0) = 1

The voltage across the capacitor is expressed as:

[tex]v(t) = \frac{1}{C} \int\limits^t_{t_0} {i(t)} \, dt + v(t_0)[/tex]

Given v(0) = 1, means at t = 0, v(t0) = 1

Substitute

[tex]v(t) = \frac{1}{5} \int\limits^t_{0} {4sin4t} \, dt + 1\\v(t) = \frac{1}{5} [\frac{-4cos4t}{4} ] + 1\\\\v(t) = \frac{1}{5} (-cos4t)+1 + \frac{1}{5}\\v(t) = \frac{-cos4t}{5} + \frac{6}{5}[/tex]

Answer:

Ax = -3       By= 7         tan phi =  -7 / 3    phi = -66.8

Since theta is in the second quadrant   theta = 180 - 66.8 = 113.2 deg

Bx = 5        By = 2        tan theta = .4        theta = 21.8 deg

Cx = Ax + Bx = 2       Cy = Ay + By = 9

tan theta = 9 / 2 = 4.5      theta = 77.5 deg

1) The solution is [tex]\theta_{1} \approx 113.141^{\circ}[/tex].

2) The solution is [tex]\theta_{1} \approx 21.874^{\circ}[/tex].

3) The solution is [tex]\theta_{1} \approx 77.467^{\circ}[/tex].

1) In this case, we can determine the angle, measured in sexagesimal degrees, with respect to the x-axis by definition of dot point:

[tex]\cos \theta = \frac{\vec A\,\bullet \, \vec u}{\|\vec A\|\cdot \|\vec u\|}[/tex] (1)

Where [tex]\|\vec A\|[/tex] and [tex]\|\vec u\|[/tex] are the norms of [tex]\vec A[/tex] and [tex]\vec u[/tex].

If we know that [tex]\vec A = (-3, 7)[/tex] and [tex]\vec u = (1, 0)[/tex], then the angle that [tex]\vec A[/tex] make with the x-axis is:

[tex]\|\vec A\| = \sqrt{(-3)^{2}+7^{2}}[/tex]

[tex]\|\vec A\| = \sqrt{58}[/tex]

[tex]\|\vec u\| = 1[/tex]

[tex]\cos \theta = \frac{(-3)\cdot (1)}{\sqrt{58} \cdot 1}[/tex]

[tex]\cos \theta \approx -0.393[/tex]

The solution is [tex]\theta_{1} \approx 113.141^{\circ}[/tex].

2) In this case, we can determine the angle, measured in sexagesimal degrees, with respect to the x-axis by definition of dot point:

[tex]\cos \theta = \frac{\vec B\,\bullet \, \vec u}{\|\vec B\|\cdot \|\vec u\|}[/tex] (1)

Where [tex]\|\vec B\|[/tex] and [tex]\|\vec u\|[/tex] are the norms of [tex]\vec B[/tex] and [tex]\vec u[/tex].

If we know that [tex]\vec B = (5, 2)[/tex] and [tex]\vec u = (1, 0)[/tex], then the angle that [tex]\vec A[/tex] make with the x-axis is:

[tex]\|\vec B\| = \sqrt{5^{2}+2^{2}}[/tex]

[tex]\|\vec B\| = \sqrt{29}[/tex]

[tex]\|\vec u\| = 1[/tex]

[tex]\cos \theta = \frac{(5)\cdot (1)}{\sqrt{29} \cdot 1}[/tex]

[tex]\cos \theta \approx 0.928[/tex]

The solution is [tex]\theta_{1} \approx 21.874^{\circ}[/tex].

3) In this case, we need to find the value of [tex]\vec C[/tex] by vectorial sum before calculating the angles with respect to x-axis:

[tex]\vec C = \vec A + \vec B = (-3, 7) + (5, 2)[/tex]

[tex]\vec C = (2, 9)[/tex]

In this case, we can determine the angle, measured in sexagesimal degrees, with respect to the x-axis by definition of dot point:

[tex]\cos \theta = \frac{\vec C\,\bullet \, \vec u}{\|\vec C\|\cdot \|\vec u\|}[/tex] (1)

Where [tex]\|\vec C\|[/tex] and [tex]\|\vec u\|[/tex] are the norms of [tex]\vec C[/tex] and [tex]\vec u[/tex].

If we know that [tex]\vec B = (2, 9)[/tex] and [tex]\vec u = (1, 0)[/tex], then the angle that [tex]\vec A[/tex] make with the x-axis is:

[tex]\|\vec C\| = \sqrt{2^{2}+9^{2}}[/tex]

[tex]\|\vec C\| = \sqrt{85}[/tex]

[tex]\|\vec u\| = 1[/tex]

[tex]\cos \theta = \frac{(2)\cdot (1)}{\sqrt{85} \cdot 1}[/tex]

[tex]\cos \theta \approx 0.217[/tex]

The solution is [tex]\theta_{1} \approx 77.467^{\circ}[/tex].

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Answer:

784 N

Explanation:

Given that a 80-kg person stands at rest on a scale while pulling vertically downwards on a rope that is above them. Use g = 9.80 m/s2.

The weight of the person = mg

The weight = 80 × 9.8

The weight = 784 N

The critical magnitude of tension that the rope is pulling on the person when the person just begins to lift off the scale will be equal to the weight of the person which is 784 N

Answer:truck

Explanation:

truck

Answer:

E = 1.76 J

Explanation:

Given that,

Mass of an object, m = 0.4 kg

It moves by a vertical distance of 0.45 m in the Earth's gravitational field.

We need to find the change in its gravitational potential energy. It can be given by the formula as follow :

[tex]E=mgh\\\\E=0.4\times 9.8\times 0.45\\\\E=1.76\ J[/tex]

So, the change in its gravitational potential energy is 1.76 J.

Answer:

B = 0.62 T

Explanation:

       [tex]B= \mu_{o} *n*I (1)[/tex]

The missing part of the question is :

given dm-2 cm and de 25 cm

Answer:

The correct answer is = 2500 N

Explanation:

Given:

External force (fe) = 200 N

dm- 2 cm = 0.02 m

de = 25 cm = 0.25 m

Balancing torque about elbow

Fm*dm = Fe*de

By putting value

fm*0.02 = 200*0.25

fm= 200*0.25/0.02

fm = 50/0.02

fm = 2500 N

Thus, the correct answer is = 2500 N

Answer:

aerodynamic properties

Explanation:

For this test the correct answers are:

1. Initial conditions

2. the speed of a character at the moment of contact

3. the hardness of the sidewalk where the mug landed

4. the location where potential energy is zero

5. aerodynamic properties

I just took this test and these were the correct answers.

Answer:

3.2 m/s

Explanation:

you take the amount of blocks height wise, and the number of blocks with wise, and divide. height over with, so in this case 16/5. 16 divided by 5 is 3.2  

Answer:

A. 100 N

Explanation:

Given

Table = 800N

Pushing Force = 100N

Required

Determine the friction force with the floor

From the question, we understand that the table moves at a constant speed.

In this kind of situation, the friction force equals to the pushing force.

Hence:

Friction Force = Pushing Force

Friction Force = 100N

Answer:

a) The initial speed of the rock is approximately 14.607 meters per second.

b) The greatest height of the rock from the base of the cliff is 42.878 meters.

Explanation:

a) The rock experiments a free-fall motion, that is a vertical uniform accelerated motion due to gravity, in which air friction and effects of Earth's rotation. By Principle of Energy Conservation we have the following model:

[tex]U_{g,1}+K_{1} = U_{g,2}+K_{2}[/tex] (Eq. 1)

Where:

[tex]U_{g,1}[/tex], [tex]U_{g,2}[/tex] - Initial and final gravitational potential energies, measured in joules.

[tex]K_{1}[/tex], [tex]K_{2}[/tex] - Initial and final translational kinetic energies, measured in joules.

By definitions of gravitational potential and translational kinetic energies we expand and simplify the equation above:

[tex]m\cdot g\cdot (y_{1}-y_{2})= \frac{1}{2}\cdot m\cdot (v_{2}^{2}-v_{1}^{2})[/tex]

[tex]g\cdot (y_{1}-y_{2}) = \frac{1}{2}\cdot (v_{2}^{2}-v_{1}^{2})[/tex] (Eq. 2)

Where:

[tex]g[/tex] - Gravitational acceleration, measured in meters per square second.

[tex]y_{1}[/tex], [tex]y_{2}[/tex] - Initial and final height, measured in meters.

[tex]v_{1}[/tex], [tex]v_{2}[/tex] - Initial and final speed of the rock, measured in meters per second.

If we know that [tex]g = 9.807\,\frac{m}{s^{2}}[/tex], [tex]y_{1} = 32\,m[/tex], [tex]y_{2} = 0\,m[/tex] and [tex]v_{2} = 29\,\frac{m}{s}[/tex], then the equation is:

[tex]\left(9.807\,\frac{m}{s^{2}} \right)\cdot (32\,m-0\,m) = \frac{1}{2}\cdot \left[\left(29\,\frac{m}{s} \right)^{2}-v_{1}^{2}\right][/tex]

[tex]313.824 = 420.5-0.5\cdot v_{1}^{2}[/tex]

[tex]0.5\cdot v_{1}^{2} = 106.676[/tex]

[tex]v_{1} \approx 14.607\,\frac{m}{s}[/tex]

The initial speed of the rock is approximately 14.607 meters per second.

b) We use (Eq. 1) once again and if we know that [tex]g =9.807\,\frac{m}{s^{2}}[/tex], [tex]y_{1} = 32\,m[/tex], [tex]v_{1} \approx 14.607\,\frac{m}{s}[/tex] and [tex]v_{2} = 0\,\frac{m}{s}[/tex], then the equation is:

[tex]\left(9.807\,\frac{m}{s^{2}} \right)\cdot (32\,m-y_{2}) = \frac{1}{2}\cdot \left[\left(0\,\frac{m}{s} \right)^{2}-\left(14.607\,\frac{m}{s} \right)^{2}\right][/tex]

[tex]313.824-9.807\cdot y_{2} = -106.682[/tex]

[tex]9.807\cdot y_{2} = 420.506[/tex]

[tex]y_{2} = 42.878\,m[/tex]

The greatest height of the rock from the base of the cliff is 42.878 meters.

Answer:

Wnet = 0

Explanation:

        [tex]W_{net} = \frac{1}{2} k* \Delta x^{2} - m*g*h_{max} (1)[/tex]

        [tex]\frac{1}{2} k* \Delta x^{2} = m*g*h_{max} (2)[/tex]

Answer:

1. λ = 1.4x10⁻¹⁵ m

2. a) n=2, l=1, [tex]m_{l}[/tex]= -1, 0, +1, [tex]m_{s}[/tex] = +/- (1/2)

b) n=3, l=0, [tex]m_{l}[/tex]= 0, [tex]m_{s}[/tex] = +/- (1/2)

c) n=5, l=2, [tex]m_{l}[/tex]= -2, -1, 0, +1, +2, [tex]m_{s}[/tex] = +/- (1/2)  

Explanation:

1. The proton's wavelength can be found using the Broglie equation:

[tex] \lambda = \frac{h}{mv} [/tex]

Where:

h: is the Planck's constant = 6.62x10⁻³⁴ J.s

m: is the proton's mass = 1.673x10⁻²⁴ g = 1.673x10⁻²⁷ kg

v: is the speed of the proton = 2.90x10⁸ m/s

The wavelength is:

[tex] \lambda = \frac{h}{mv} = \frac{6.62 \cdot 10^{-34} J.s}{1.673 \cdot 10 ^{-27} kg*2.90 \cdot 10^{8} m/s} = 1.4 \cdot 10^{-15} m [/tex]                    

2. a) 2p

We have:

n: principal quantum number = 2

l: angular momentum quantum number = 1 (since is "p")

[tex]m_{l}[/tex]: magnetic quantum number = {-l,... 0 ... +l}

Since l = 1 → [tex]m_{l} = -1, 0, +1[/tex]

[tex]m_{s}[/tex]: is the spin quantum number = +/- (1/2)

b) 3s:

n = 3

l = 0 (since is "s")

[tex]m_{l}[/tex] = 0

[tex]m_{s}[/tex] = +/- (1/2)

c) 5d:

n = 5

l = 2 (since is "d")

[tex]m_{l}[/tex] = -2, -1, 0, +1, +2

[tex]m_{s}[/tex] = +/- (1/2)

I hope it helps you!

Answer:

(1) The wavelength of the proton is 1.366 x 10⁻¹⁵ m

(2) 2p( l = 1, ml = -1,0,+1)

    3s( n = 3, l = 0, ml = 0)

    5d ( l = 2, ml = -2,-1,0,+1,+2)

Explanation:

Given;

mass of the proton; m = 1.673 x 10⁻²⁴ g = 1.673 x 10⁻²⁷ kg

velocity of the proton, v = 2.9 x 10⁸ m/s

The wavelength of the proton is calculated by applying De Broglie's equation;

[tex]\lambda = \frac{h}{mv}[/tex]

where;

h is Planck's constant = 6.626 x 10⁻³⁴ J/s

Substitute the given values and solve for wavelength of the proton;

[tex]\lambda = \frac{h}{mv}\\\\ \lambda = \frac{(6.626*10^{-34})}{(1.673*10^{-27})(2.9*10^8)}\\\\\lambda = 1.366 *10^{-15} \ m[/tex]

(2) the values for the quantum numbers associated with the following orbitals is given by;

n, which represents Principal Quantum number

[tex]l,[/tex] which represents Azimuthal Quantum number

[tex]m_l,[/tex] which represents Magnetic Quantum number

(a) 2p (number of orbital = 3):

[tex]l= 1\\m_l = -1,0,+1[/tex]

(b) 3s (number of orbital = 1):

[tex]n= 3\\l=0\\m_l= 0[/tex]

(c) 5d (number of orbital = 5)

[tex]l=2\\m_l = 2, -1, 0, +1, +2[/tex]

Answer:

[tex]the \: torque= 44 \: Nm.[/tex]

Explanation:

[tex] torque \: \boxed{t} \: is \: the \: product \: of \:one \: of \: the \: force \: - raduis \: \\ and \: sine \: of \: the \: angle \: of \: inclination : \\ torque \: \boxed{t} = fr \sin( \alpha ) \\ f = w = mg = 80. \times 10 = 80 \\ r = 0.55 \\ \alpha = 90 \\ \sin( \alpha ) = 1 \\ therefore \: the \: torque \: \boxed{t} \: is : \\ 80 \times 0.55 \times 1 = 44 \: Nm.[/tex]

♨Rage♨

A man is holding a weight at arm's length, a distance apart from his shoulder joint, it will experience torque. The torque about his shoulder joint due to the weight if his arm is horizontal is  43.12 N.m .

Torque is the rotation caused about a point when a force is applied at a distance from the point.

The mass of man is 8.0 kg and the distance from the shoulder joint is 0.55 m. The torque applied will be the product of force and distance.

τ =F x r

and Force = weight of the body = mass x acceleration due to gravity

Substitute the values to get the torque.

τ = 8 kg x 9.8 m/s² x 0.55 m

τ = 43.12 N.m

Hence, the torque about his shoulder joint due to the weight if his arm is horizontal is  43.12 N.m

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Answer:

Chemical weathering demands chemical reactions with minerals inside the rock and causes changes in rock composition. Sometimes this process will produce a different kind of product due to the reaction. Mechanical weathering only involves the physical breakage of rocks to smaller pieces of fragments.

Explanation:

Answer:

Pangea existed between about 299 million years ago (at the start of the Permian Period of geological time) to about 180 million years ago (during the Jurassic Period). It remained in its fully assembled state for some 100 million years before it began to break up.

Explanation:

GOOGLE

Answer:buttt

It mean b

Explanation:

Answer:

0.60s

Explanation:

Using the motion equation as follows:

S = ut + 1/2gt²

Where;

S = distance travelled (m)

u = initial velocity (m/s)

t = time (s)

g = acceleration due to gravity (m/s²)

Based on the information provided, S = 1.8m, u = 0m/s, t = ?

S = ut + 1/2gt²

1.8 = (0×t) + 1/2 (9.8t²)

1.8 = 0 + 4.9t²

1.8 = 4.9t²

t² = 1.8/4.9

t² = 0.3673

t = √0.3673

t = 0.6060

t = 0.60s

Answer:

6.15m for 12.3 seconds

Explanation:

Answer: Power= 71.61W

Explanation:

POWER = Work done / Time

But Work done = Gravitational Potential energy

= Mgh

Therefore Power = Mgh/ t

g= 9.8m/s

Where t in mins to secs becomes 48.0x 60=2880 secs

Power= 69x 9.8 x 305/ 2880

=206,241/2880

71.61W

Answer:

V= 295.2m/s

Explanation:

Given that mass of bullet = 5.0g = 0.005kg

Mass of wooden block = 1.20kg

The coefficient of kinetic friction between block and surface = 0.20

The force of friction of the block

Fk = (μ) mg

Fk = 0.2×1.2×9.8m/s

F = 2.352N

= Force × distance

The work done = 2.352× 0.390

= 0.91728J

The initial velocity of the block can be calculated

1/2mv^2

0.5×1.2×v^2 = 0.917J

0.6V^2 = 0.917J

V^2 = 0.917J/0.6

V^2 = 1.52

V = √1.52

V = 1.23m/s

Now we shall use conservation of momentum to find the velocity of the bullet

0.005kg×v = 1.2kg × 1.23m/s

0.005v = 1.476

V= 1.476/0.005

V= 295.2m/s

Answer:

[tex]\boxed {\tt 14.7 \ Newtons}[/tex]

Explanation:

Weight is force due to gravity.

The formula for weight is:

[tex]W=m*g[/tex]

where m is the mass and g is the acceleration of gravity.

On Earth, the acceleration due to gravity is 9.8 meters per seconds squared.

The mass of the book is 1.5 kilograms. Therefore:

[tex]m= 1.5 \ kg \\g=9.8 \ m/s^2[/tex]

Substitute the values into the formula.

[tex]W= 1.5 \ kg *9.8 \ m/s^2[/tex]

Multiply.

[tex]W=14.7 \ kg*m/s^2[/tex]

1 kg meter per second squared is equal to 1 Newton, so our answer of 14.7 kg*m/s² is equal to 14.7 Newtons.

[tex]W=14.7 \ N[/tex]

The weight of a 1.5 kilogram book on Earth is 14.7 Newtons.

Answer:

Answer:

Explanation:

Weight is force due to gravity.

The formula for weight is:

where m is the mass and g is the acceleration of gravity.

On Earth, the acceleration due to gravity is 9.8 meters per seconds squared.

The mass of the book is 1.5 kilograms. Therefore:

Substitute the values into the formula.

Multiply.

1 kg meter per second squared is equal to 1 Newton, so our answer of 14.7 kg*m/s² is equal to 14.7 Newtons.

The weight of a 1.5 kilogram book on Earth is 14.7 Newtons.

Explanation:

Answer:

bias.

Consciousness.

Hypnosis.

Priming.

Sleep.

Trance.

Explanation:

Answer:

0.2533333334

Explanation:

It is simple, just do the math

Answer:

20,861.65 mi/h²

Explanation:

We convert  4,470,000 pound-mass [lbm], to kg. Since  2.205 lbm = 1 kg, then 4,470,000 lbm = 4,470,000 lbm × 1 kg/2.205 = 2,027,210.88 kg

Since Force , F = ma where m = mass and a = acceleration, and our force of thrust , F = 5.25 MN = 5,250,000 N and or mass = mass of spacecraft = 2,027,210.88 kg, we then find the acceleration, a.

a = F/m = 5,250,000 N/2,027,210.88 kg = 2.59 m/s².

We now convert this acceleration into miles per hour. Since 1 mile = 1609 meters and 60 × 60 s = 1 hour ⇒ 3600 s = 1 hour, Our conversion factor for meter to mile is 1 mile/1609 m and that for second to hour is 3600 s/1 hour. We square the conversion factor for the time so we have (3600 s/1 hour)².

Multiplying both conversion factors with our acceleration, we have

a = 2.59 m/s²

= 2.59 m/s² × 1 mile/1609 m × (3600 s/1 hour)²

= 33566440/1609 miles/hour²

= 20,861.65 mi/h²

= 20,861.65 miles per hour squared

Answer:

μ = 0.41

Explanation:

[tex]\frac{1}{2} kx^2 = \mu mgd[/tex]

[tex]\mu = (\frac{1}{2} kx^2)/mgd[/tex]

[tex]\mu = (\frac{1}{2} (100)(0.2)^2)/(0.5)(9.81)(1)[/tex]

[tex]\mu = 0.41[/tex]

The coefficient of kinetic friction between the block and the tabletop is 0.41.

The given parameters;

The coefficient of kinetic friction between the block and the tabletop by applying the principle of conservation of energy as shown below.

Fd = Uₓ

μmgd = ¹/₂kx²

where;

The coefficient of kinetic friction between the block and the tabletop;

[tex]\mu_k = \frac{kx^2}{mgd} \\\\\mu_k = \frac{100\times 0.2^2}{2\times 0.5\times9.8 \times 1 } \\\\\mu_k = 0.41[/tex]

Thus, the coefficient of kinetic friction between the block and the tabletop is 0.41.

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