What is the current widely accepted theory about global climate change and what are some predictions associated with it?

Answers

Answer 1
The theory concerning global climate change is that carbon and oxygen are combining to form co2 causing global climate change. Predictions are that they will be positive and negative effects, positive effects are they produce more crops and cold related deaths. Some negatives are damage to crops, rising of sea level, spread of disease and other things.
Answer 2

The widely accepted theory about global climate change is :

The formation of CO₂ by carbon and oxygen

Formation of CO₂

The formation of CO₂ by the mixture of carbon and oxygen is a widely accepted theory because of its effect on global climate change. the predictions regarding this theory includes some positives and negatives.

some of the positive predictions is :

Improved growth of  crops because plants absorb C0₂ during photosynthesis

some negative predictions include

Rising sea levelsspread of carbon related diseases

Hence we can conclude that The widely accepted theory about global climate change is The formation of CO₂ by carbon and oxygen.

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Related Questions

within what force will acar hit a tree if the car has a mass of 3,000 kg and it is accelerating at a rate of 2 m/s/s

Answers

Use the formula. Plug in known values, so you get f = 3000*2 and get 6000N as a result. 

A car is skidding to a stop on a level stretch of road. you may want to review ( pages 115 - 117) . part a identify the number of the action/reaction pairs of forces between the car and the road surface.

Answers

The number of the reaction / action pairs of forces between the car and the road surface is 2 pairs. The car and the road surface can have a total number of 2 reaction or action pairs. So the answer is basically 2 pairs.

When rust forms on a piece of iron, what evidence do you have that a chemical reaction has taken place?

Answers

the rust is the product and evidence

1. Assume it takes 7.00 min to fill a 30.0-gal gasoline tank. a. calculate the rate at which the tank is filled in gallons per second? b. calculate the rate at which the tank is filled in cubic meters per second? C. determine the time interval, in hours, required to fill a 1.00-m3 volume at the same rate. (1 U.S. gal=231in.3)

Answers

Final answer:

a. The rate at which the tank is filled is 16.5 gallons per second. b. The rate at which the tank is filled is 0.0273 cubic meters per second. c. It would take approximately 36.6 seconds to fill a 1.00 m³ volume at the same rate.

Explanation:

a. To calculate the rate at which the tank is filled in gallons per second, we need to convert the time from minutes to seconds and divide the volume of the tank by the time taken to fill it.
1 gallon = 231 cubic inches

30 gallons = 30 x 231 cubic inches = 6930 cubic inches

Rate = Volume / Time

= 6930 cubic inches / (7 minutes x 60 seconds/minute)

= 16.5 cubic inches/second

b. To calculate the rate at which the tank is filled in cubic meters per second, we need to convert the volume from gallons to cubic meters and divide it by the time taken to fill the tank.

1 cubic meter = 1000 liters
1 gallon = 3.785 liters
30 gallons = 30 x 3.785 liters = 113.55 liters
1 liter = 0.001 cubic meters
113.55 liters = 113.55 x 0.001 cubic meters = 0.11355 cubic meters
Rate = Volume / Time

= 0.11355 cubic meters / (7 minutes x 60 seconds/minute)

= 0.0273 cubic meters/second

c. To determine the time interval required to fill a 1.00-m³ volume at the same rate, we need to divide the volume by the rate.

Time = Volume / Rate

= 1.00 m³ / 0.0273 cubic meters/second

= 36.6 seconds

What is an example of Convection?

Answers

boiling water. heat goes from the burner into the pot which heats the water at the bottom. this hot water rises and cooler water moves down to replace it, causing a circular motion.

Which of the following is not true about chemical changes? a. They form a new substance. b. They can be reversed by physical changes. c. They can be detected by changes such as color. d. They have different properties from their starting materials. Please select the best answer from the choices provided

Answers

B.) They can be reversed by physical changes.

Answer : The incorrect option is (b) They can be reversed by physical changes.

Explanation :

Chemical change : It is a change where changes occurs in the chemical composition and thus resulting in the formation of new compound or substance. It is an irreversible reaction.

The indication of chemical changes are :

Formation of gas bubbles.

Formation of precipitate.

Change in color.

Change in temperature.

Change in volume.

Change in smell or taste.

Evolution of heat, light and sound.

Physical change : It is a change in which shape and size of a substance changes. In this there is no change in the chemical composition of the substance and no new substance is forming. It is a reversible reaction.

The indication of chemical changes are :

Change in shape.

Change in form.

Change in size.

Change in phase.

From the given options we conclude that the option (b) is incorrect option while all the options are correct for chemical changes.

Hence, the incorrect option is (b)

Which two processes increase the motion of the molecules?

Answers

the answer is 2 because a and b are slowing it down by condensing it and then freezing it so its not one, b and c are opposites because b slows it down whereas c speeds it up so its not 3, and number 4 is the same explanation for number 3
hope you pass :)

Final answer:

Increasing the temperature and decreasing the solvent density are two processes that increase the motion of molecules, facilitating increased diffusion rates.

Explanation:

The two processes that increase the motion of molecules are raising the temperature and decreasing the solvent density. When the temperature is increased, it provides more energy to the molecules, thus making them move faster and increasing the rate of diffusion. On the other hand, a lower solvent density means that the molecules have fewer obstructions to navigate through, allowing them to move more freely and thus increasing diffusion rate.

For instance, heating water can increase the kinetic energy of its molecules, leading to a faster spread of those molecules through the environment. Conversely, if water is very dense, such as saltwater compared to fresh water, molecules of a solute would diffuse more slowly due to the increased resistance.

The speed of sound in air is 344 m/s at room temperature. the lowest frequency of a large organ pipe is 30 s−1 and the highest frequency of a piccolo is 1.5×104s−1. part a find the difference in wavelength between these two sounds. express your answer using two significant figures. λ = 11 m

Answers

The formula for calculating wavelength ʎ is:

ʎ = s / f

where ʎ is wavelength, s is speed of sound, f is frequency

 

ʎ (large organ pipe) = (344 m/s) / (30 s-1) = 11.47 m

ʎ (piccolo) =  (344 m/s) / (1.5x10^4 s-1) = 0.023 m

 

So the difference is:

11.47 – 0.023 = 11.45 m

 

Answer:

11.45 m

Final answer:

The difference in wavelength between the lowest frequency of a large organ pipe and the highest frequency of a piccolo, with the speed of sound at 344 m/s, is approximately 11 m.

Explanation:

The question asks to calculate the wavelength difference between the lowest frequency of a large organ pipe and the highest frequency of a piccolo, given the speed of sound in air at room temperature. The speed of sound in air at 21°C is typically around 344 m/s. The frequency for the organ pipe is 30 s⁻¹ (30 Hz), and for the piccolo, it's 1.5×10⁴ s⁻¹ (15,000 Hz). To find the wavelengths, we use the formula λ = v/f, where λ is the wavelength, v is the speed of sound, and f is the frequency. Thus, for the organ pipe, the wavelength is λ = 344 m/s / 30 s⁻¹ = 11.47 m, and for the piccolo, λ = 344 m/s / 1.5×10⁴ s⁻¹ = 0.0229 m. The difference in wavelength, to two significant figures, is about 11 m.

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What is the force of attraction between cations and anions?

Answers

The force of attraction between cations and anions is an ionic bond.

Final answer:

The force of attraction between cations and anions is electrostatic attraction, which is fundamental to the formation of ionic bonds. The strength of this force depends on the charges of the ions and the distance between them, with stronger forces resulting from higher charges or shorter distances. The arrangement of ions in a crystal structure and the Madelung constant also play roles in the bond strength.

Explanation:

The force of attraction between cations and anions is known as electrostatic attraction. This is the principle underlying ionic bonds, which form when electrons are transferred from one atom to another, leading to the creation of oppositely charged ions that are held together by this force. According to Coulomb's law, the strength of the electrostatic force between two ions is directly proportional to the product of their charges and inversely proportional to the square of the distance between them.

A cation with a greater positive charge will form a stronger bond than one with a lesser charge. Conversely, larger ions result in weaker bonds due to the increased distance between the electrons of one ion and the nucleus of the other. Additionally, the orientation of ions in a crystal lattice affects the attractive forces. Salts such as NaF and NaCl are classic examples, where ions arrange themselves in a way to maximize attractive interactions and minimize repulsive ones.

The Madelung constant also influences the bond strength and depends on the type of crystal structure. The potential energy of an ionic bond can be quantitatively expressed using the formula involving Avogadro's number, Madelung constant, ion charges, the charge of an electron, and the ion radius.

Short-range forecasts tends to ________ longer-range forecasts.

Answers

Short-range forecasts are more accurate than longer range ones. Short term forecasts may use mathematical techniques such as moving averages and, exponential smoothing. Longer term forecasts not only use different methodologies, such as qualitative vs. quantitative, they also tend to consider different issues.
Final answer:

Short-range forecasts are typically more accurate than longer-range forecasts because they use near future data and can provide detailed specifics about the weather, which is difficult to maintain over a longer time span.

Explanation:

In weather forecasting, short-range forecasts usually tend to be more accurate than longer-range forecasts. This is because the short-range forecasts use models that are based on current and near-future atmospheric conditions, which predict the weather for 1 to 3 days. On the other hand, longer-range forecasts predict weather for a period of 3 to 7 days or even up to several months, and although they can give a general pattern of the weather to be expected, they can't provide detailed specifics like short-range forecasts do. Therefore, short-range forecasts are typically more reliable than longer-range forecasts due to the complexities and variabilities involved in predicting atmospheric conditions over a long time span.

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Making a pancake from batter is an example of a _____ change

Answers

Making a pancake from batter is an example of a chemical change. 

A kangaroo jumps to a vertical height of 2.3 m. how long was it in the air before returning to earth?

Answers

t = √(2y/g) is the time it takes for the kangaroo to get to its maximum height, so it'll take another √(2y/g) seconds to get back ...

Calculate the resultant force, fr, and the couple moment, mr,a. don't forget to include the appropriate signs with your numerical answers.

Answers

I'm not sure what this is but I wish I could help!!!!!!!!!!!

What evidence is there from your results that the characteristic color observed for each compound is due to the metal ion in each case? describe an additional test that could be done to confirm that the color is due to the metal ion?

Answers

Final answer:

The color in metal compounds is primarily due to the metal ion and how it interacts with light. This is evident in emission spectra and color patterns seen in flame tests. A flame test can specifically prove this by displaying characteristic colors for each metal ion.

Explanation:

The color observed in metal compounds is often due to the metal ion involved in the compound - a phenomenon made apparent by changes in the relative energies of the electron orbitals. To illustrate, compounds of a variety of metals (including alkaline earth metals like calcium and strontium) produce different colors when exposed to flame - a feature of their emission spectrum. Furthermore, the color of coordination compounds, like the iron(II) complex [Fe(H₂O)6]SO4 that appears blue-green, depends on the specific ligands coordinated to the metal center, which influences the absorption of light.

A simple test to confirm that the color is due to the metal ion is to perform flame tests on the compounds. This test involves introducing the compound to a flame and observing the color of the flame. Each metal ion can produce a characteristic flame color; hence the flame test serves to confirm the presence of a specific metal ion in a compound.

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which of the following statement best describes the laws of conservation mass?

Answers

In a chemical reaction, matter is neither created or destroyed.

Mass is neither created or destroyed.

If a 4.5 kg object is dropped from a height of 6.0 m, what will be its velocity when it is halfway toward the ground? (Use g = 9.80 m/s2, and ignore air resistance.) 7.7 m/s 11 m/s 16 m/s 29 m/s

Answers

When an object falls or is dropped from rest it's initial velocity is zero.
Using the equations for a motion in straight line. I can find the time it takes to reach 3.0 m down (half way).
x = vt - 4.9t²
-3 = 0 - 4.9t²
-3/-4.9 = t²
0.6122 = t²
0.7825 sec = t

v = v - gt
v = 0 - 9.8(0.7825)
v = -7.67 m/s
the negative denotes downward direction.

You  could also solve the problem using potential and kinetic energy.

Since it starts with maximum PE and gets converted to KE when it hits the ground. mgh = mv²/2
mass cancels, use 3 meters for the halfway distance
-9.8(-3) = v²/2
29.4 * 2 = v²
√(58.8) = 7.67 m/s downwards

The velocity  of object at halfway is 7.67 m/s.

Given data:

The mass of object is, m = 4.5 kg.

The height from the ground is, h = 6.0 m.

When an object falls or is dropped from rest it's initial velocity is zero.

(u = 0). Using the second kinematic equations for a motion, find the time it takes to reach 3.0 m down (half way).

x = ut - 1/2gt²

x = ut - 1/2 (9.8) t²

x = ut - 4.9t²

-3 = 0 - 4.9t²

-3/-4.9 = t²

0.6122 = t²

0.7825 sec = t

Now, apply the first kinematic equation of motion as,

v = u + (-g)t

v = 0 - 9.8(0.7825)

v = -7.67 m/s

the negative denotes downward direction.

Thus, we can conclude that the velocity of object at halfway is 7.67 m/s.

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identify which phase of matter would transmit light waves the fastest, and why? A) The gas would transmit the fastest because the particles move the fastest. B) The solid would transmit the fastest because the particles are closest together. C) The liquid would transmit the fastest because the particles are the most freely moving. D) The gas would transmit the fastest because there are the fewest particles to interfere with the waves.

Answers

Light is actually both a particle and a wave. It is essentially made of particles called photons which move or flow in waves. Due to it being a particle, its movement can also be hindered by other particles, hence the answer is:

 

D) The gas would transmit the fastest because there are the fewest particles to interfere with the waves.

Answer: D.The gas would transmit the fastest because there are the fewest particles to interfere with the waves.

Explanation: Usatestprep

The automobile is originally at rest s = 0. if it then starts to increase its speed at v # = (0.05t 2) ft>s2, where t is in seconds, determine the magnitudes of its velocity and acceleration at s = 550 ft.

Answers

Ans : dv/dt is the acceleration. In order to find the speed, integrate v = ⫠0.05 t^2 dt = 0.05/3 t^3 + v0 = 0.05/3 t^3 since v0 = 0 Similarly, space s is given by s = ⫠v dt = ⫠0.05/3 t^3 dt = 0.05/12 t^4 Then, for s = 550 ft, 0.05/12 t^4 = 550 t^4 = 550*12/0.05 = 132000 s t = (4th)root 132000 = 19.1 s Accordingly, v = 0.05/3 t^3 = 115 ft/s a = 0.05 t^2 = 18.2 ft/s²
Final answer:

The velocity of the car at s = 550 ft is 2,904,166.67 ft/s and the acceleration at s = 550 ft is 1512.5 ft/s^2.

Explanation:

The velocity of the car can be determined by finding the integral of the acceleration function with respect to time. In this case, the acceleration function is v' = 0.05t^2. Integrating this function gives the velocity function v = (0.05/3)t^3 + C, where C is the constant of integration. To find the value of C, we can use the fact that the car is originally at rest, so v(0) = 0. Plugging in the values, we get C = 0, so the velocity function is v = (0.05/3)t^3.

To find the magnitude of the velocity at t = 550 ft, we can plug in the value of t into the velocity function. So, v = (0.05/3)(550)^3 = 2,904,166.67 ft/s. Therefore, the magnitude of the velocity at s = 550 ft is 2,904,166.67 ft/s.

The acceleration can be determined by taking the derivative of the velocity function with respect to time. In this case, the velocity function is v = (0.05/3)t^3. Taking the derivative, we get a = (0.05)t^2. Plugging in the value of t = 550 ft, we get a = (0.05)(550)^2 = 1512.5 ft/s^2. Therefore, the magnitude of the acceleration at s = 550 ft is 1512.5 ft/s^2.

A horizontal pull P pulls two wagons over a horizontal frictionless
floor,
as shown in the gure. The tension in the light horizontal rope connecting
the wagons is

A. equal to P, by Newton's third law. B. equal to 2000 N. C. greater
than P. D. less than P.

Answers

where u is in radians. The linear velocity of the point is tangent to the circle; the point’s linear speed v is given by v vr (radian measure), (10-18) wherev is the angular speed (in radians per second) of the body. The linear acceleration of the point has both tangential and radial components.The tangential component is at ar (radian measure), (10-22) where a is the magnitude of the angular acceleration (in radians per second-squared) of the body.The radial component of is (radian measure). (10-23) If the point moves in uniform circular motion, the period T of the motion for the point and the body is (radian measure).

The primary of a step-up transformer is connected across the terminals of a standard wall socket, and resistor 1 with a resistance r1 is connected across the secondary. the current in the resistor is then measured. next, resistor 2 with a resistance r2 is connected directly across the terminals of the wall socket (without the transformer). the current in this resistor is also measured and found to be the same as the current in resistor 1. how does the resistance r2 compare to the resistance r1? answers

Answers

The turns ratio is the factor that determines voltage andcurrent. In order to have the same current across the resistorin the primary as the resistor in the secondary, then:--N(p) = Primary turnsN(s) = Secondary turnsR(2) = Primary resistorR(1) = Secondary resistor--R(2)/R(1) = N(p)/N(s)R(2) = R(1)*(N(p)/N(s))--If arbitrary values are plugged in, you will see that this step up transformer will require 2x the resistance required in the secondary, R(1), to obtain the same current. Thus R(2) will be 1/2 the value of R(1). This is due to the stepped up voltage in the secondary.

The resistance [tex]\( r_2 \)[/tex] is greater than the resistance [tex]\( r_1 \)[/tex] by the square of the turns ratio of the transformer.

Let's denote the turns ratio of the step-up transformer as [tex]n[/tex], which is the ratio of the number of turns in the secondary winding [tex]\( N_s \)[/tex] to the number of turns in the primary winding [tex]\( N_p \)[/tex]. Therefore, [tex]\( n = \frac{N_s}{N_p} \).[/tex]

Since it is a step-up transformer, [tex]\( n > 1 \).[/tex]

The voltage across the secondary winding [tex]\( V_s \)[/tex] is equal to the voltage across the primary winding [tex]V_p[/tex] multiplied by the turns ratio [tex]n[/tex]. Thus, [tex]\( V_s = n \cdot V_p \).[/tex]

The current in the secondary winding [tex]\( I_s \)[/tex] is related to the current in the primary winding [tex]\( I_p \)[/tex] by the inverse of the turns ratio, due to the conservation of power in an ideal transformer (neglecting losses). Therefore, [tex]\( I_s = \frac{I_p}{n} \).[/tex]

The power delivered to both resistors must be the same because the current in both cases is measured to be the same, and power is the product of voltage and current. Hence, [tex]\( P = V_s \cdot I_s = V_p \cdot I_p \).[/tex]

Now, let's calculate the resistance of the resistors using Ohm's law, which states that [tex]\( V = I \cdot R \)[/tex], where [tex]V[/tex] is the voltage, [tex]I[/tex] is the current, and [tex]R[/tex] is the resistance.

 For resistor 1 connected across the secondary:

[tex]\( R_1 = \frac{V_s}{I_s} \)[/tex]

Substituting [tex]\( V_s = n \cdot V_p \) and \( I_s = \frac{I_p}{n} \)[/tex] into the equation, we get:

[tex]\( R_1 = \frac{n \cdot V_p}{\frac{I_p}{n}} = n^2 \cdot \frac{V_p}{I_p} \)[/tex]

For resistor 2 connected directly across the wall socket:

[tex]\( R_2 = \frac{V_p}{I_p} \)[/tex]

Since the currents are the same [tex](\( I_s = I_p \))[/tex], we can equate the powers:

[tex]\( V_s \cdot I_s = V_p \cdot I_p \)[/tex]

Substituting [tex]\( V_s = n \cdot V_p \) and \( I_s = I_p \),[/tex] we get:

[tex]\( n \cdot V_p \cdot I_p = V_p \cdot I_p \)[/tex]

This simplifies to:

[tex]\( n = 1 \)[/tex]

However, this is not possible since [tex]\( n > 1 \)[/tex] for a step-up transformer. The mistake here is that we assumed [tex]\( I_s = I_p \)[/tex] without considering the turns ratio. The correct approach is to use the power equation:

[tex]\( P = V_s \cdot I_s = V_p \cdot I_p \)[/tex]

Since [tex]\( V_s = n \cdot V_p \) and \( I_s = \frac{I_p}{n} \),[/tex] we have:

[tex]\( n \cdot V_p \cdot \frac{I_p}{n} = V_p \cdot I_p \)[/tex]

This simplifies to:

[tex]\( V_p \cdot I_p = V_p \cdot I_p \)[/tex]

Now, using the resistance formula for both resistors, we have:

[tex]\( R_1 = \frac{V_s}{I_s} = \frac{n \cdot V_p}{\frac{I_p}{n}} = n^2 \cdot \frac{V_p}{I_p} \)[/tex]

[tex]\( R_2 = \frac{V_p}{I_p} \)[/tex]

Comparing [tex]\( R_1 \) and \( R_2 \), we find: \( R_1 = n^2 \cdot R_2 \)[/tex]

Since [tex]\( n > 1 \)[/tex], it follows that [tex]\( R_1 > R_2 \)[/tex]. However, we are asked how [tex]\( r_2 \)[/tex]compares to [tex]\( r_1 \)[/tex], which means we need to express [tex]\( R_2 \)[/tex] in terms of [tex]\( R_1 \)[/tex]:

[tex]\( R_2 = \frac{R_1}{n^2} \)[/tex]

Therefore, [tex]\( r_2 \) is less than \( r_1 \)[/tex] by a factor of [tex]\( n^2 \)[/tex],

List the three products of radioactive decay from the most penetrating to the least penetrating

Answers

1.Gamma   
2.Beta 
3.Alpha

Determine the minimum applied force p required to move wedge a to the right. the spring is compressed a distance of 185 mm. neglect the weight of a and
b. the coefficient of static friction for all contacting surfaces is μs=0.35. neglect friction at the rollers.

Answers

By equation of equilibrium and friction:

Fb = Kx = 15(0.175) = 2.625 kN.

The wedge is on the verge of moving right then slipping will have to occur at both contact surfaces.

Fa = usNa = 0.35Na

Fb = 0.35Nb

Nb = 2.625 = 0; Nb = 2.625 kN

Nacos10 – 0.35Na sin 10 = 2.625 = 0

Na = 2.841 kN

P – (0.35 * 2.625) – 0.35 (2.841) cos 10 – 2.841 sin 10 = 0

P = 2.39 kN

The minimum force required to move wedge A can be approximated as slightly higher than the force of static friction, which can be calculated using the coefficient of static friction and the force exerted by the spring at its compressed state.

To calculate the minimum applied force required to move the wedge A to the right, we first need to obtain the force of static friction, (μs) which resists motion. The force of static friction (F_s) can be calculated using the relation F_s = μs * N, where N is the normal force.

In this case, the normal force can be determined from the compression of the spring which follows Hooke's Law, stating that the force (F) exerted by a spring is proportional to its compression (x), i.e., F = kx, where k is the spring constant. Although k is not provided here, we can assume the spring force equals the normal force due to the system's equilibrium, which occurs before moving A.

Thus, the minimum applied force (p) to make A move would be slightly higher than the force of static friction, i.e., p > F_s. To get an exact value, we need additional data such as the spring constant (k).

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Slate is a metamorphosed rock made from the sedimentary rock _____. A. shale B. limestone C. sandstone D. conglomerate

Answers

it is made from shale

Answer:

A. Shale

Explanation: Sedimentary rocks are converted into metamorphosed rocks under high temperature and pressure. Shale is a sedimentary rock which get converted into slate under high temperature and pressure. Shale is a sedimentary rock made up of volcanic ash or clay while slate is a fine- grained , homogeneous metamorphosed rock. Slate can be found in many colors such as- grey, green, pale to brown.

If you hold a horizontal metal bar several centimeters above the ground and move it through grass, each leaf of grass bends out of the way.?

Answers

If you spin fast enough, the impact of the glad will break the blade of grass before it can move out of the way. In the same way that if you kick an empty can, it will move out of the way, but if you shoot it with a gun, the bullet will cut through the can before it can move. Keep in mind a mower blade turns at probably 10,000 RPMs.

People who have color vision deficiency typically lack one or more of the three cones that are sensitive to a particular wavelength.
true or false

Answers

This is true
People who have color vision deficiency typically lack one or more of the three cones that are sensitive to a particular wavelength.

People who have color vision deficiency typically lack one or more of the three cones that are sensitive to a particular wavelength is the true statement.

What is color vision deficiency?

Color vision deficiency is the inability to distinguish certain shades of color. Color blindness is used to describe this visual condition, but very few people are completely color blind.

What are cones?

Color vision is possible due to photoreceptors in the retina of the eye known as cones. These cones have light-sensitive pigments that enable us to recognize color.

Each cone is sensitive to either red, green or blue light. The cones recognize these lights based on their wavelengths.

The pigments inside the cones register different colors and send that information through the optic nerve to the brain.

Most people with color vision deficiency can see colors. The most common form of color deficiency is red-green. It does not mean people with this deficiency cannot see these colors altogether, they simply have a harder time differentiating between them, which can depend on the darkness or lightness of the colors.

Another form of color deficiency is blue-yellow. It is a rarer and more severe form of color vision loss than just red-green deficiency as people with blue-yellow deficiency frequently have red-green blindness, too. In both cases, people with color-vision deficiency often see neutral or gray areas where color should appear.

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Janet jumps off a high diving platform with a horizontal velocity of 2.06 m/s and lands in the water 1.8 s later. How high is the platform? The acceleration of gravity is 9.8 m/s 2 .

Answers

Initial height of platform is 15.87m or 16m.

What is another word for change in motion?

Answers

speed???? not 100 percent certain

Acceleration is another term for change in motion, referring to changes in velocity due to an applied external force.

Another word for change in motion is acceleration. This term refers to a change in velocity, which includes changes in speed, direction, or both. When an object experiences acceleration, it means there has been a non-zero net external force applied to it, as stated by Newton's first law of motion.

Acceleration is quantified as the rate of change of velocity over time and is observed in everyday phenomena such as the breaking of a car or the circular motion of a rotating wheel.

While driving north at 21 m/s during a rainstorm you notice that the rain makes an angle of 36° with the vertical. while driving back home moments later at the same speed but in the opposite direction, you see that the rain is falling straight down. from these observations, determine the speed and the angle of the raindrops relative to the ground?

Answers

Final answer:

The speed of the raindrops relative to the ground is 12.7 m/s and the angle is 90°.

Explanation:

To determine the speed and angle of the raindrops relative to the ground, we can use the concept of relative velocity. When driving north at a speed of 21 m/s, the observer sees the raindrops at an angle of 36° with the vertical. This means that the raindrops are falling at a velocity perpendicular to the observer's motion.

Using trigonometry, we can find the vertical component of the raindrop's velocity:

Vertical Component: vvertical = v x sin(θ) = 21 m/s x sin(36°) = 12.7 m/s

Since the raindrops are falling straight down when driving in the opposite direction, the vertical component of the raindrop's velocity relative to the ground is 0. Therefore, the speed of the raindrops relative to the ground is 12.7 m/s, and the angle with respect to the ground is 90°.

A karate expert breaks a stack of bricks with his bare hand. If the force applied is 520 newtons and the impact time is 5.0 × 10-4 seconds, what is the value of impulse?

Answers

This question could be solved with this formula:
F . ΔT
From which F= The amount of force applied
and ΔT = the impact time ins seconds

So, the Value of impulse would be:
520 N x 5. x 10^-4 seconds

= 0.052 N x 5

= 0.26 Newton Seconds

Final answer:

The impulse delivered by the karate expert's hand to the stack of bricks is 2.6 × 102 N·s, which can be calculated using the force of 520 newtons multiplied by the impact time of 5.0 × 10-4 seconds.

Explanation:

The student is asking about the concept of impulse in physics. The impulse experienced by an object is the product of the average force applied to the object and the time interval over which it is applied. According to the given information:

Force (F) = 520 newtonsImpact time (t) = 5.0 × 10-4 seconds

The impulse (J) can be calculated using the formula:

J = F × t

By substituting the given values:

J = 520 N × 5.0 × 10-4 s = 0.26 kg·m/s

To express it in scientific notation, we can write it as 2.6 × 102 N·s (Newtons second), which is the value of the impulse delivered by the karate expert's hand to the stack of bricks.

Two conductors are made of the same material and have the same length. conductor a is a solid wire of diameter 1.3 mm. conductor b is a hollow tube of outside diameter 8.0 mm and inside diameter 7.0 mm. what is the resistance ratio ra/rb , measured between their ends?

Answers

I think the answer is 3

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