predict the product reaction below be sure indicate stereochemistry when appropriate deuterium d is an isotope of hydrogen with a nucleus consisting of one proton and one neutron
CH3CH2-C---C-CH3 D2 lindlar catalyst

Answers

Answer 1

The product reaction below, when D2 is used in the presence of a Lindlar catalyst, is CH3CH=CH-CH3, D2.

The given reaction is a hydrogenation reaction where alkyne is converted to alkene. The given reaction is: CH3CH2-C---C-CH3 + D2, lindlar catalyst → CH3CH=CH-CH3, D2 The given reaction is a hydrogenation reaction where alkyne is converted to alkene.In the given reaction, alkyne is hydrogenated to give alkene. Lindlar catalyst is used for hydrogenation reactions that only hydrogenates the triple bond in alkyne to a double bond. Lindlar catalyst consists of palladium on calcium carbonate treated with various forms of lead.

Deuterium is an isotope of hydrogen with a nucleus consisting of one proton and one neutron. It is represented by D. In the given reaction, deuterium is used instead of hydrogen to form deuterated alkene. The product alkene is chiral as it is formed from the hydrogenation of a chiral alkyne. Hence, the product alkene is a pair of enantiomers. Therefore, the product reaction below, when D2 is used in the presence of a Lindlar catalyst, is CH3CH=CH-CH3, D2.

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Related Questions

Given the following the equation: f(x): s+1 /s² + s +1 2.1. Find the poles and zero analytically 2.2. Using OCTAVE plot the poles and zeros of the above equation

Answers

The given equation f(x) = (s + 1) / (s² + s + 1) does not have any real-valued poles or zeros. Therefore, there is nothing to plot using Octave or any other graphing tool.

To find the poles and zero of the given equation f(x) = (s + 1) / (s² + s + 1), we can set the denominator equal to zero and solve for the values of s that make the denominator equal to zero.

2.1. Finding the poles and zero analytically:

The denominator of the equation is s² + s + 1. To find the poles, we solve for s:

s² + s + 1 = 0

Using the quadratic formula, we have:

s = (-b ± √(b² - 4ac)) / (2a)

In this case, a = 1, b = 1, and c = 1. Substituting these values into the quadratic formula, we get:

s = (-1 ± √(1 - 4(1)(1))) / (2(1))

= (-1 ± √(-3)) / 2

Since the discriminant (-3) is negative, the equation does not have any real solutions. Therefore, we can state that there exisits no real-valued poles or zeros for this equation.

2.2. Plotting the poles and zeros using Octave, we get:

Since there are no real-valued poles or zeros, there is nothing to plot in this case.

Please note that the given equation does not have any real-valued poles or zeros.

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Please show process
5. (12 pts) (1) Assign R or {S} configuration to all stereocenters of both structures shown below. (2) Are the structures shown below enantiomers, diastereomers, or the same?

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For the molecule on the left with a bromine atom, the highest priority group is the bromine atom which is to the right, the lowest priority group is the hydrogen atom which is behind the plane, and the remaining two groups, carbon and chlorine, are on the same side of the plane.

The orientation of the remaining two groups is such that the lower priority atom is behind the plane, and we move from the highest to the lowest priority in the clockwise direction, so the stereochemistry is R.  For the molecule on the right with a chlorine atom, the highest priority group is the chlorine atom which is to the left, the lowest priority group is the hydrogen atom which is behind the plane, and the remaining two groups, carbon and bromine, are on the same side of the plane. The orientation of the remaining two groups is such that the lower priority atom is behind the plane, and we move from the highest to the lowest priority in the clockwise direction, so the stereochemistry is R.  

Both the molecules are diastereomers because they have different configurations at both stereocenters.  Diastereomers are a type of stereoisomers that are not enantiomers. Diastereomers are stereoisomers of a molecule that have different configurations at one or more chiral centers and are not mirror images of each other. They do not have to share the same physical properties, such as melting or boiling points. They have different chemical and physical properties.

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A pump is used to fill a tank 5 m in diameter from a river as shown. The water surface in the river is 2 m below the bottom of the tank. The pipe diameter is 5 cm, and the head loss in the pipe is given by hL = 10 V2/2g where V is the mean velocity in the pipe. The flow in the pipe is turbulent, so α = 1. The head provided by the pump varies with discharge through the pump as hp = 20 - 4 × 104 Q2, where the discharge is given in cubic meters per second (m3/s) and hp is in meters. How long will it take to fill the tank to a depth of 10 m?

Answers

The exact time it takes to fill the tank to a depth of 10 m.

The given equation for the head provided by the pump (hp) varies with the discharge through the pump. Without specific values or ranges for the discharge (Q) mentioned in the problem.

It is not possible to determine the exact time it takes to fill the tank to a depth of 10 m.

To determine the time it takes to fill the tank to a depth of 10 m, we need to calculate the discharge through the pipe and then use it to find the time required.

Given:

Tank diameter (D): 5 m

Water surface in the river below the bottom of the tank: 2 m

Pipe diameter (d): 5 cm (0.05 m)

Head loss in the pipe (hL): 10 V²/(2g)

Flow in the pipe is turbulent, so α = 1

Head provided by the pump (hp): 20 - 4 × 10⁴Q² (in meters), where Q is the discharge (m³/s)

We can start by finding the discharge through the pipe:

Head loss in the pipe (hL) = hp

10 V²/(2g) = 20 - 4 × 10⁴Q²

Simplifying the equation:

V² = (20 - 4 × 10⁴Q²) × (2g) / 10

Since the flow is turbulent, α = 1, so we can use the following equation to relate velocity (V) and discharge (Q):

V = Q / (πd² / 4)

V = 4Q / (πd²)

Substituting the value of V in terms of Q into the previous equation:

(4Q / (πd²))² = (20 - 4 × 10⁴Q²) × (2g) / 10

Simplifying further:

16Q² / π²d⁴ = (20 - 4 × 10⁴Q²) × (2g) / 10

Now we can solve this equation to find the value of Q.

Once we have Q, we can calculate the time required to fill the tank.

The exact time it takes to fill the tank to a depth of 10 m.

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Determine [OH] in a solution where
[H_30^+] = 3.72 x 10^-9 M. Identify the solution as acidic, basic, or neutral.

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the concentrations of [H₃O⁺] and [OH⁻] are equal, the solution is neutral.

To determine [OH⁻] in a solution with [H₃O⁺] = 3.72 x 10^-9 M, we can use the relationship between [H₃O⁺] and [OH⁻] in water.

In pure water at 25°C, the concentration of [H₃O⁺] is equal to the concentration of [OH⁻]. This is known as a neutral solution.

Since [H₃O⁺] = 3.72 x 10^-9 M, we can conclude that [OH⁻] is also 3.72 x 10^-9 M.

the [OH⁻] in the solution is 3.72 x 10^-9 M.

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‌Find the solution of the system x'=6x+8y,y' =8x+6y, where primes indicate derivatives with respect to t, that satisfies the initial condition
‌x(0)=−3,y(0)=3. x=
y=
Based on the general solution from which you obtained your particular solution, complete the following two statements: The critical point (0,0) is

Answers

The solution to the system of differential equations that satisfies the initial condition x(0) = -3, y(0) = 3 is:

[tex]x(t) = 3e^(-2t) * -1,[/tex]
[tex]y(t) = 3e^(-2t) * 1.[/tex]

The critical point (0,0) is a stable node.

The given system of differential equations is:

x' = 6x + 8y,
y' = 8x + 6y.

To find the solution that satisfies the initial condition x(0) = -3, y(0) = 3, we can use the method of solving systems of linear differential equations.

Let's rewrite the system in matrix form:

X' = AX,

where X = [x, y] and A is the coefficient matrix [6 8; 8 6].

To find the solution, we need to find the eigenvalues and eigenvectors of matrix A.

First, let's find the eigenvalues λ by solving the characteristic equation |A - λI| = 0, where I is the identity matrix.

The characteristic equation becomes:

|6 - λ 8|
|8 6 - λ| = 0.

Expanding the determinant, we get:

(6 - λ)(6 - λ) - (8)(8) = 0,
(36 - 12λ + λ^2) - 64 = 0,
λ^2 - 12λ - 28 = 0.

Solving this quadratic equation, we find the eigenvalues:

(λ - 14)(λ + 2) = 0,
λ = 14 or λ = -2.

Next, we find the corresponding eigenvectors.

For λ = 14:

(A - 14I)v = 0,
|6 - 14 8| |x| = |0|,
|8 6 - 14| |y|   |0|.

Simplifying, we get:

|-8 8| |x| = |0|,
|8 -8| |y|   |0|.

Simplifying further, we have:

-8x + 8y = 0,
8x - 8y = 0.

Dividing the first equation by 8, we get:

-x + y = 0,
x = y.

Taking y = 1, we find the eigenvector v1 = [1, 1].

For λ = -2:

(A + 2I)v = 0,
|6 + 2 8| |x| = |0|,
|8 6 + 2| |y|   |0|.

Simplifying, we get:

|8 8| |x| = |0|,
|8 8| |y|   |0|.

Simplifying further, we have:

8x + 8y = 0,
8x + 8y = 0.

Dividing the first equation by 8, we get:

x + y = 0,
x = -y.

Taking y = 1, we find the eigenvector v2 = [-1, 1].

The general solution to the system of differential equations is given by:

[tex]X(t) = c1 * e^(λ1 * t) * v1 + c2 * e^(λ2 * t) * v2,[/tex]

where c1 and c2 are constants.

Substituting the eigenvalues and eigenvectors, we have:

[tex]X(t) = c1 * e^(14 * t) * [1, 1] + c2 * e^(-2 * t) * [-1, 1].[/tex]

To find the particular solution that satisfies the initial condition x(0) = -3, y(0) = 3, we substitute t = 0 and the initial conditions into the general solution:

[tex]X(0) = c1 * e^(14 * 0) * [1, 1] + c2 * e^(-2 * 0) * [-1, 1].[/tex]

Simplifying, we get:

[-3, 3] = c1 * [1, 1] + c2 * [-1, 1].

This gives us two equations:

-3 = c1 - c2,
3 = c1 + c2.

Adding these equations, we get:

0 = 2c1.

Dividing by 2, we find c1 = 0.

Substituting c1 = 0 into one of the equations, we have:

3 = 0 + c2,
c2 = 3.

Therefore, the particular solution that satisfies the initial condition is:

[tex]X(t) = 0 * e^(14 * t) * [1, 1] + 3 * e^(-2 * t) * [-1, 1].[/tex]

Simplifying, we have:

[tex]X(t) = 3e^(-2t) * [-1, 1].[/tex]

Therefore, the solution to the system of differential equations that satisfies the initial condition x(0) = -3, y(0) = 3 is:

[tex]x(t) = 3e^(-2t) * -1,[/tex]
[tex]y(t) = 3e^(-2t) * 1.[/tex]

Now, let's complete the statements:

The critical point (0,0) is a stable node.

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Use the following conversion factors to answer the question:
1 bolt of cloth = 120 ft,1 meter = 3.28 ft,
1 hand = 4 inches,1 ft = 12 inches.
If a horse stands 15 hands high, what is its height in meters?

Answers

a horse that stands 15 hands high has a height of approximately 1.524 meters.

To convert the height of the horse from hands to meters, we'll use the given conversion factors:

1 hand = 4 inches

1 ft = 12 inches

1 meter = 3.28 ft

First, we need to convert the height from hands to inches:

15 hands * 4 inches/hand = 60 inches

Next, we'll convert inches to feet:

60 inches / 12 inches/ft = 5 ft

Finally, we'll convert feet to meters:

5 ft * (1 meter / 3.28 ft) ≈ 1.524 meters

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An office building to be constructed in Houston will be subjected to wind loads. The probability that the wind speed will exceed 100 miles per hour (mph) is 0.01% in any year. If the building subjected to wind speeds exceeding 100 mph, the damage will be $65,000. No damage occurs when the wind speed is less than 100 mph. To protect the building against winds of 100 mph or more, the engineers have determined that an additional capital investment of $35,000 is required. When the building is subjected to wind speeds in excess of 100 mph, the building damage is estimated to be $6,000. Use Decision Tree Analysis determine the best of the following alternatives: A. No additional investment for wind load damage B. $35,000 investment for wind load damage Assume a design life of 20 years and a yearly interest rate of 10 percent (See Engineering Economics Reference). You must draw the Decision Tree (with all pertinent information). Present detailed calculations to support your results.

Answers

Based on the given information, we can use Decision Tree Analysis to determine the best alternative for protecting the building against wind loads.

1. Decision Node: The first decision is whether to make an additional investment of $35,000 for wind load damage protection.

2. Chance Node: The probability of wind speeds exceeding 100 mph in any year is 0.01%. If the wind speed exceeds 100 mph, there are two possible outcomes:

  a. Terminal Node: If no additional investment is made, the building damage is $65,000.

  b. Terminal Node: If the additional investment of $35,000 is made, the building damage is $6,000.

3. Calculate the Expected Monetary Value (EMV) for each branch of the Chance Node:

 

  a. EMV of no additional investment = Probability (0.01%) * Damage ($65,000)

  b. EMV of $35,000 investment = Probability (0.01%) * Damage ($6,000) + (1 - Probability (0.01%)) * Additional Investment ($35,000)

4. Compare the EMV of both branches and select the alternative with the higher EMV as the best option.

Detailed calculations and drawing of the Decision Tree would be required to determine the specific values and make the final decision.

Decision Tree Analysis provides a structured approach to evaluate different alternatives and their associated probabilities and costs. By considering the potential outcomes and their probabilities, decision-makers can make informed choices that maximize expected value or minimize potential losses. It is important to conduct a thorough analysis and consider the financial implications over the design life of the project to make an optimal decision.

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Use the transformation x = u and y = uv where R is the region bounded by the triangle with vertices (1,1), (7,4) and (1,2). For above problem, complete the following steps, showing all relevant work for another student to follow: a) Sketch and shade region R in the xy-plane. b) Label each of your curve segments that bound region R with their equation and domain. c) Find the image of R in uv-coordinates. d) Sketch and shade set S in the uv-plane

Answers

Equation for AB in uv-coordinates: v = 3/2u - 1/2, Equation for AC in uv-coordinates: v = u + 1, Equation for CB in uv-coordinates: v = 2/3u - 2/3.

Given Information: Region R is bounded by the triangle with vertices (1, 1), (7, 4), and (1, 2).

Transformation: x = u and y = uv

Step-by-step solution:

a) Sketch and shade region R in the xy-plane.

The vertices of the triangle are (1,1), (7,4) and (1,2).

b) Label each of your curve segments that bound region R with their equation and domain.

Equations and domains for the curve segments are given below:

Domain for AB: 1 ≤ x ≤ 7

Equation for line AB: y = (3/2)x - 1/2

Domain for AC: 1 ≤ x ≤ 1

Equation for line AC: y = x + 1

Domain for CB: 1 ≤ x ≤ 7

Equation for line CB: y = (2/3)(x + 1) - 1

c) Find the image of R in uv-coordinates.

The transformation is given by: x = u and y = uv

Replacing x and y in AB, AC, and CB lines we get:

Domain for u: 1 ≤ u ≤ 7

Domain for v: 0 ≤ v ≤ 3u - 2

Equation for AB in uv-coordinates: v = 3/2u - 1/2

Equation for AC in uv-coordinates: v = u + 1

Equation for CB in uv-coordinates: v = 2/3u - 2/3

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A=-x^2+40 which equation reveals the dimensions that will create the maximum area of the prop section

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The x-coordinate of the vertex is 0.  the corresponding y-coordinate (the maximum area), we can substitute x = 0 into the equation A(x) = -x^2 + 40: A(0) = -(0)^2 + 40 = 40.

To find the dimensions that will create the maximum area of the prop section, we need to analyze the given equation A = -x^2 + 40. The equation represents a quadratic function in the form of A = -x^2 + 40., where A represents the area of the prop section and x represents the dimension.

The quadratic function is in the form of a downward-opening parabola since the coefficient of is negative (-1 in this case). The vertex of the parabola represents the maximum point on the graph, which corresponds to the maximum area of the prop section.

To determine the x-coordinate of the vertex, we can use the formula x = -b / (2a), where the quadratic equation is in the form Ax^2 + Bx + C and a, b, and c are the coefficients. In this case, the equation is -x^2 + 40, so a = -1 and b = 0. Plugging these values into the formula, we get x = 0 / (-2 * -1) = 0.

Therefore, the x-coordinate of the vertex is 0. To find the corresponding y-coordinate (the maximum area), we can substitute x = 0 into the equation  A(x) = -x^2 + 40: A(0) = -(0)^2 + 40 = 40.

Hence, the equation that reveals the dimensions that will create the maximum area of the prop section is A = 40. This means that regardless of the dimension x, the area of the prop section will be maximized at 40 units.

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Use z-score table to answer the following: What percent of data is above z=−1.5 ? 19.33 66.81 81.66 33.19 93.32

Answers

Approximately 93.25 percent of the data is above a z-score of -1.5

The percentage of data above a z-score of -1.5, we need to find the area under the standard normal distribution curve that corresponds to z > -1.5.

Using a standard normal distribution table (also known as the z-score table), we can look up the area associated with a z-score of -1.5. The table provides the cumulative probability (area) from the left tail up to a specific z-score.

The closest z-score in the table to -1.5 is -1.49, which has a corresponding area of 0.06749. This means that 6.749% of the data lies to the left of -1.49.

Since we want the percentage of data above z = -1.5, we subtract the cumulative probability from 1:

Percentage above z = 1 - 0.06749 = 0.93251

Converting this to a percentage, we multiply by 100:

Percentage above z = 0.93251 × 100 ≈ 93.25%

Therefore, approximately 93.25% of the data is above a z-score of -1.5.

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Bitumen stabilizes soil by binding each individual particle together and protecting the soil from in contact with water. The first mechanism takes place in cohesionless, granular soil, whereas the second mechanism works with fine-grained cohesive soils. Why

Answers

The effectiveness of bitumen stabilization may vary depending on factors such as the type and gradation of soil, the bitumen content and properties, and the specific project requirements. Proper engineering and design considerations are essential for achieving successful bitumen stabilization in different soil conditions.

Bitumen, a sticky and viscous material derived from crude oil, can stabilize soil through two distinct mechanisms depending on the type of soil involved. These mechanisms are:

Binding Mechanism in Cohesionless, Granular Soil:

In cohesionless or granular soils, such as sands and gravels, bitumen acts as a binder by adhering to individual soil particles and creating interlocking bonds. This binding mechanism occurs due to the cohesive and adhesive properties of bitumen. When bitumen is mixed with granular soil, it coats the surface of the particles and forms a thin film around them. As a result, neighboring particles are effectively bonded together.

The binding action of bitumen improves the cohesion and shear strength of the soil, preventing individual particles from moving and shifting. This stabilization helps to increase the load-bearing capacity and overall stability of the soil. Additionally, bitumen binding can reduce soil permeability, limiting the movement of water through the soil and enhancing its resistance to erosion.

Water Repellency in Fine-Grained Cohesive Soil:

In fine-grained cohesive soils, such as silts and clays, the mechanism of soil stabilization by bitumen involves water repellency. Fine-grained soils have a tendency to absorb water, which can lead to swelling and reduced strength. Bitumen creates a barrier on the surface of the soil particles, preventing direct contact between water and the soil.

By forming a water-repellent layer, bitumen reduces the absorption of water by the soil, thereby minimizing swelling and maintaining the soil's stability. The protective barrier created by bitumen prevents the ingress of water into the soil, reducing its susceptibility to changes in moisture content and maintaining its structural integrity.

It's important to note that the effectiveness of bitumen stabilization may vary depending on factors such as the type and gradation of soil, the bitumen content and properties, and the specific project requirements. Proper engineering and design considerations are essential for achieving successful bitumen stabilization in different soil conditions.

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With related symmetry operations, show that the point group for cis- and transisomer of 1,2 -difluoroethylene are different.

Answers

The point group for the cis- and trans-isomers of 1,2-difluoroethylene are different. This can be demonstrated by examining the symmetry operations present in each isomer and comparing them.
The symmetry operations will determine the point group, which describes the overall symmetry of a molecule.

Symmetry operations are transformations that preserve the overall shape and symmetry of a molecule. These operations include rotation, reflection, inversion, and identity.
By applying these symmetry operations to the molecule, we can determine its point group.

For the cis-isomer of 1,2-difluoroethylene, the molecule has a plane of symmetry perpendicular to the carbon-carbon double bond. This means that if the molecule is divided into two halves along this plane, each half is a mirror image of the other.
Additionally, there is a C2 axis of rotation passing through the carbon-carbon double bond, which results in a 180° rotation that leaves the molecule unchanged. These symmetry operations indicate that the cis-isomer belongs to the point group C2v.

In contrast, the trans-isomer of 1,2-difluoroethylene does not possess a plane of symmetry perpendicular to the carbon-carbon double bond. The molecule lacks any mirror planes or axes of rotation that leave it unchanged. Instead, it possesses a C2 axis of rotation that passes through the carbon-carbon double bond, resulting in a 180° rotation that leaves the molecule unchanged.
Therefore, the trans-isomer belongs to the point group C2h.

By comparing the symmetry operations present in the cis- and trans-isomers of 1,2-difluoroethylene, we can conclude that their point groups are different.
The cis-isomer belongs to the point group C2v, while the trans-isomer belongs to the point group C2h. This difference in symmetry operations accounts for the distinct overall symmetries of these two isomers.
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Two bacteria cultures are being studied in a lab. At the start,
bacteria A had a population of 60 bacteria and the number of
bacteria was tripling every 8 days. Bacteria B had a population of
30 bacte

Answers

At the start, bacteria A had a population of 60 bacteria and the number of bacteria was tripling every 8 days. Bacteria B had a population of 30 bacteria, but the question seems to be cut off before providing any information about the growth rate or pattern for Bacteria B.

For Bacteria A, we know that the population starts at 60 bacteria. Since it is tripling every 8 days, we can calculate the population at different time points by multiplying the initial population by the growth factor.

After 8 days, the population would be 60 * 3 = 180 bacteria.
After 16 days, the population would be 180 * 3 = 540 bacteria.
After 24 days, the population would be 540 * 3 = 1620 bacteria.
And so on.

Each time, we multiply the previous population by 3 to get the new population after 8 days.

As for Bacteria B, since no information is given about its growth rate or pattern, we cannot determine its population at different time points. It is important to have this information in order to calculate the population accurately.

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please anyone help me with this im lost

Answers

The angle measures with the parallel lines cut by the transversal are given by the image presented at the end of the answer.

What are corresponding angles?

When two parallel lines are cut by a transversal, corresponding angles are pairs of angles that are in the same position relative to the two parallel lines and the transversal.

Corresponding angles are always congruent, which means that they have the same measure.

Hence, for the bottom angles, we have that:

The opposite angles are congruent.The lateral angles are supplementary (sum of 180º).

And in the top angles, these are corresponding to the bottom angles, meaning that they are congruent.

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Write an article on the application of basic knowledge of strength of materials in civil engineering practices. The article must be written using a font size of 12 and the size of the spacing between the lines is 1.5. The number of pages is not more than 6 including diagrams, pictures, and calculations if any.

Answers

The application of basic knowledge of strength of materials is essential in the successful construction of structures that can withstand external and internal forces.

Strength of materials is a branch of mechanical engineering that analyses the internal and external forces that materials undergo. The use of basic knowledge of strength of materials has been applied in the construction of civil engineering structures. This article discusses the application of basic knowledge of strength of materials in civil engineering practices. It is important to understand the properties of different materials used in construction such as steel, concrete, and wood. Knowledge of material strength and its resistance to tension, compression, bending, and shear is vital in the design of structures.

In conclusion, the application of basic knowledge of strength of materials is essential in the successful construction of structures that can withstand external and internal forces.

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Which of the following 1)-4) applies to lipids, sugars, and proteins?
1) What is a macromolecule?
2) What is the main component of plant cell walls?
3) What is the main component of animal cell membranes?
4) What contains the most nitrogen?

Answers

option 3 is the correct answer as it specifically addresses the main component of animal cell membranes.

Out of the options provided, the answer that applies to lipids, sugars, and proteins is option 3: "What is the main component of animal cell membranes?"

Animal cell membranes are composed of a double layer of lipids called phospholipids. These phospholipids have a hydrophilic (water-loving) head and a hydrophobic (water-fearing) tail. This unique structure allows them to form a barrier that separates the inside of the cell from the outside environment.

The lipids in animal cell membranes help regulate the passage of substances in and out of the cell, maintaining homeostasis. While lipids are the main component of animal cell membranes, sugars and proteins also play important roles.

Sugars, specifically glycoproteins and glycolipids, are attached to the surface of the cell membrane and help with cell recognition and communication.

Proteins, on the other hand, are embedded within the lipid bilayer and perform various functions like transporting molecules across the membrane, serving as receptors, and facilitating cell signaling.

Therefore, option 3 is the correct answer as it specifically addresses the main component of animal cell membranes.

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Problem 2 ( 5 points) Let Bt​,t≥0, be standard Brownian motion. Determine the characteristic function exp[iα(2Bu​−5Bs​+3Bt​)], with parameter α∈R for 0≤u

Answers

The characteristic function is exp[iα(2Bu​−5Bs​+3Bt​)].

What is the characteristic function of the expression exp[iα(2Bu​−5Bs​+3Bt​)] with parameter α∈R for 0≤u?

To find the characteristic function of the given expression, we can use the properties of characteristic functions and the fact that the increments of a standard Brownian motion are normally distributed with mean zero and variance equal to the time difference. Let's denote the characteristic function as φ(α). Using the linearity property, we can split the expression as φ(α) = φ(2αu) * φ(-5αs) * φ(3αt).

The characteristic function of a standard Brownian motion at time t is given by φ(α) = exp(-α^2*t/2). Applying this to each term, we get φ(α) = exp(-2α^2*u/2) * exp(5α^2*s/2) * exp(-3α^2*t/2).

Simplifying, we have φ(α) = exp(-α^2*u) * exp(5α^2*s/2) * exp(-3α^2*t/2).

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Can you solve this please?

Answers

Answer:

x = 4°

∠PAR = 66°

Step-by-step explanation:

Since ∠GAU and ∠KAR are vertical angles, they are equal

∠GAU = ∠KAR

⇒ 6x = 2x + 16

⇒ 4x = 16

⇒ x = 4

Given ∠KAP = 90

Also, ∠KAP = ∠PAR + ∠KAR

⇒ 90 = ∠PAR  + 2x + 16

⇒ ∠PAR = 90 - 2x - 16

= 90 - 2(4) -16

= 90 -8 -16

⇒ ∠PAR  = 66°

Determine the voltage, Current, and Power Gain of an amplifier that has an input signal of 1mA at 10mA corresponding Output signal of 1 mA at 1 V. Also, express all three gains in decibel. (....../2.5)

Answers

The voltage gain is 1000 V/A (60 dB), the current gain is 10 (20 dB), and the power gain is 10 (10 dB).

To determine the voltage, current, and power gain of the amplifier, we can use the following formulas:

Voltage Gain (Av):

Av = Vout / Vin

Current Gain (Ai):

Ai = Iout / Iin

Power Gain (Ap):

Ap = Pout / Pin

Given:

Vin = 1 mA

Vout = 1 V

Iin = 1 mA

Iout = 10 mA

Voltage Gain (Av):

Av = Vout / Vin

= 1 V / 1 mA

= 1000 V/A

To express the voltage gain in decibels (dB):

Av_dB = 20 * log10(Av)

= 20 * log10(1000)

≈ 60 dB

Current Gain (Ai):

Ai = Iout / Iin

= 10 mA / 1 mA

= 10

To express the current gain in decibels (dB):

Ai_dB = 20 * log10(Ai)

= 20 * log10(10)

≈ 20 dB

Power Gain (Ap):

Ap = Pout / Pin

= (Vout * Iout) / (Vin * Iin)

= (1 V * 10 mA) / (1 mA * 1 mA)

= 10

To express the power gain in decibels (dB):

Ap_dB = 10 * log10(Ap)

= 10 * log10(10)

≈ 10 dB.

Therefore, amplifier has a voltage gain of 1000 V/A (60 dB), a current gain of 10 (20 dB), and a power gain of 10 (10 dB). These gains indicate the amplification capabilities of the amplifier in terms of voltage, current, and power.

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PLEASE HELP BEEN STUCK ON THIS

Answers

Answer:   infinitely many solutions

Step-by-step explanation:

The system is only 1 line.  So it must be that there are 2 equations that are actually the same so they intersect infinitely many times.

A W8x35 tension member with no holes is subjected to a service dead load of 180 kN and a service live load of 130 kN and a service moments MDLX = 45 kN-m and MLLX = 25kN-m. The member has an unbraced length of 3.8m and is laterally braced at its ends only. Assume Cb = 1.0. Use both ASD and LRFD and A572 (GR. 50) steel.

Answers

The required section is W₈ × 40 and the maximum tensile stress developed is 287.69 N/mm².

W₈ × 35 tension member with no holes is subjected to a service dead load of 180 kN and a service live load of 130 kN and service moments MDLX = 45 kN-m and

MLLX = 25kN-m.

The member has an unbraced length of 3.8m and is laterally braced at its ends only.

Assume Cb = 1.0.

Use both ASD and LRFD and A572 (GR. 50) steel.

Solution: For ASD:

From AISC table 3-2, φt = 0.9 and

φb = 0.9

Therefore, ASD Load combinations = 1.2D + 1.6L + 0.9(MDLX ± MLLX)

= 1.2 × 180 + 1.6 × 130 + 0.9(45 ± 25)

= 446.5 kN

Design tensile strength = φt × 0.75 × Fu

= 0.9 × 0.75 × 345

= 233.775 N/mm²

Net area = U - An

= 24.8 - (2 × 13.5)

= -2.2 mm²

This means, as the net area is negative, the section is insufficient to withstand the loads. We need to use a larger section.

Now, consider the section W8 × 40

From AISC table 3-2, φt = 0.9 and

φb = 0.9

Therefore, ASD Load combinations = 1.2D + 1.6L + 0.9(MDLX ± MLLX)

= 1.2 × 180 + 1.6 × 130 + 0.9(45 ± 25)

= 446.5 kN

Design tensile strength = φt × 0.75 × Fu

= 0.9 × 0.75 × 345

= 233.775 N/mm²

Net area = U - An

= 32.6 - (2 × 13.6)

= 5.4 mm²

The net area is positive, the section is adequate to withstand the loads.

Now, check for the gross section strength under ultimate limit state (ULS). For LRFD,

From AISC table 6-1, φt = 0.9 and

φb = 1.0

Therefore, LRFD Load combinations = 1.2D + 1.6L + 1.6(LRFD moment)

= 1.2 × 180 + 1.6 × 130 + 1.6(45 + 25)

= 692 kN

Design tensile strength = φt × 0.9 × Fu

= 0.9 × 0.9 × 345

= 280.665 N/mm²

Gross area = U = 32.6 mm²

Design tensile strength = φt × 0.9 × Fu

= 0.9 × 0.9 × 345

= 280.665 N/mm²

Factored tensile strength (φt) = 0.9 × 0.9 × 345

= 278.91 N/mm²

Design strength (φt × U) = 278.91 × 32.6

= 9078.066 N

= 9.08 MN

Factored tensile stress (Pu) = (1.2D + 1.6L + 1.6 (LRFD moment))/φt × U

= 692/278.91 × 32.6

= 287.69 N/mm²

Pu < Pn

Design is safe.

Therefore, the required section is W8 × 40.

And the maximum tensile stress developed is 287.69 N/mm².

Note: As Cb is given, the lateral-torsional buckling of the member need not be checked as Cb > Cb(min).

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The Chemical Industry is one the most diverse manufacturing industries and is concerned with
the manufacture of a wide variety of solid, liquid, and gaseous materials. The main raw materials
of the chemical industry are water, air, salt, limestone, sulfur, and fossil fuel. The industry converts
these materials into organic and inorganic industrial chemicals,
ceramic products
petrochemicals, agrochemicals, polymers and fragrances.
Task expected from student:
Illustrate the key segments of chemical industry
Describe the Chemical industry value chain

Answers

The key segments of the chemical industry include:

1. Organic chemicals: These are compounds that contain carbon and are derived from petroleum or natural gas. Examples include ethylene, propylene, and benzene, which are used to produce plastics, synthetic fibers, and rubber.

2. Inorganic chemicals: These are compounds that do not contain carbon. Examples include sulfuric acid, sodium hydroxide, and ammonia. Inorganic chemicals are used in various industries such as agriculture, water treatment, and manufacturing.

3. Petrochemicals: These are chemicals derived from petroleum or natural gas. They are used to produce a wide range of products, including plastics, rubber, fibers, and solvents.

4. Agrochemicals: These are chemicals used in agriculture to improve crop yield and protect plants from pests and diseases. Agrochemicals include fertilizers, pesticides, and herbicides.

5. Polymers: These are large molecules made up of repeating subunits. Polymers are used in a wide range of applications, such as packaging materials, adhesives, and synthetic fibers.

6. Fragrances: These are compounds used to add scent to various products, such as perfumes, soaps, and detergents.


Now, let's move on to the value chain of the chemical industry.
The value chain of the chemical industry includes the following steps:

1. Raw material sourcing: The chemical industry relies on raw materials such as water, air, salt, limestone, sulfur, and fossil fuel. These materials are sourced from various locations, including mines, wells, and refineries.

2. Chemical manufacturing: Once the raw materials are sourced, they undergo various chemical reactions and processes to produce different chemicals. This includes refining and processing of fossil fuels, synthesis of organic and inorganic compounds, and production of polymers and fragrances.

3. Product distribution: After the chemicals are manufactured, they are packaged and distributed to customers. This involves logistics and transportation to ensure the safe delivery of chemicals to different industries and markets.

4. Marketing and sales: The chemical industry engages in marketing and sales activities to promote their products and attract customers. This includes advertising, branding, and establishing relationships with clients.

5. Research and development: The chemical industry invests in research and development to innovate and improve their products. This involves developing new chemicals, improving manufacturing processes, and finding solutions to environmental challenges.

6. Environmental and safety compliance: The chemical industry adheres to strict environmental and safety regulations to ensure the safe handling, storage, and disposal of chemicals. This includes implementing safety protocols, conducting risk assessments, and monitoring emissions and waste disposal.

Each step in the value chain is crucial for the chemical industry to efficiently produce and deliver chemicals to meet the diverse needs of various industries.

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What is the pH of a 0.463 M aqueous solution of NaHCO3? Ka1
(H2CO3) = 4.2x10-7Â Ka2 (H2CO3) = 4.8x10-11

Answers

The pH of a 0.463 M aqueous solution of NaHCO3 is approximately 8.22.

To calculate the pH of the solution, we need to consider the dissociation of NaHCO3 into its constituent ions, HCO3- and Na+. Since Na+ does not react with water, it does not affect the pH.

HCO3- can undergo a series of reactions with water to form H2CO3 and HCO3-, and H2CO3 can further dissociate into H+ and HCO3-. This process is represented by the following equations:

HCO3- + H2O ⇌ H2CO3 + OH-
H2CO3 ⇌ H+ + HCO3-

We can use the equilibrium constants Ka1 and Ka2 to calculate the concentrations of H2CO3 and H+ ions in the solution.

First, we need to calculate the concentration of H2CO3 using Ka1:
[H2CO3] = (Ka1 * [HCO3-]) / [OH-]

Next, we calculate the concentration of H+ using Ka2:
[H+] = (Ka2 * [H2CO3]) / [HCO3-]

Using the concentrations of H+ ions, we can calculate the pH:
pH = -log[H+]

Substituting the values into the equations, we find that the pH of the solution is approximately 8.22.

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Write the sum in sigma notation and use the appropriate formula
to evaluate it. (The final answer is large and may be left with
exponents.)
3 + 3 · 5 + 3 · 5^2 + 3 · 53 + ··· + 3.5^23

Answers

The sum in sigma notation can be written as:
∑(k=0 to 23) 3 · 5^k

The sum of the given series is approximately -89, 406, 967, 163, 085, 936.75.

To write the given sum in sigma notation, we can observe that each term is of the form 3 · 5^k, where k represents the position of the term in the series.

The sum in sigma notation can be written as:
∑(k=0 to 23) 3 · 5^k
To evaluate this sum using the appropriate formula, we can use the formula for the sum of a geometric series:
S = a(1 - r^n) / (1 - r),
where:
S is the sum of the series,
a is the first term,
r is the common ratio,
n is the number of terms.
In our case, a = 3, r = 5, and n = 23.
Using these values in the formula, we can evaluate the sum:
S = 3(1 - 5^23) / (1 - 5).

Now let's calculate the value:

S = 3 * (1 - 119,209,289,550,781,250) / (1 - 5)

S = 3 * (-119,209,289,550,781,249) / -4

S = 357,627,868,652,343,747 / -4

S ≈ -89, 406, 967, 163, 085, 936.75

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A wooden fruit crate will hold 62 pound of fruit. the crate already has 18 pounds of fruit inside it. Which inequality represents the solution set that shows the pound of fruit,p, that can be added to the crate.

Answers

Any value of p that is equal to or less than 44 pounds will satisfy the condition and be within the allowable range for the crate's capacity.

To represent the solution set for the pounds of fruit, p, that can be added to the crate, we need to consider the total weight limit of the crate.The crate can hold a total of 62 pounds of fruit, and it already has 18 pounds of fruit inside it. To find the remaining weight capacity, we subtract the weight already in the crate from the total weight capacity.

Therefore, the inequality that represents the solution set is:

p ≤ 62 - 18

Simplifying the inequality:

p ≤ 44

This means that the pound of fruit, p, that can be added to the crate should be less than or equal to 44 pounds.

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For Exercises 4 and 5, use the prism at the right.

What is the surface area of the prism?

Answers

Answer:

2(17.2(3) + 17.2(5.5) + 3(5.5)) = 325.4 m²

Which is an equation in point-slope form of the line that passes through the points (−4,−1) and (5, 7)

Answers

The equation in point-slope form of the line that passes through the points (-4, -1) and (5, 7) is Oy - 7 = 8/9(x - 5). Option C

The point-slope form of a linear equation is given by the equation y - y1 = m(x - x1), where (x1, y1) are the coordinates of a point on the line, and m is the slope of the line.

Given the points (-4, -1) and (5, 7), we can find the slope of the line using the formula:

m = (y2 - y1) / (x2 - x1)

Substituting the coordinates of the points, we have:

m = (7 - (-1)) / (5 - (-4)) = 8 / 9

Now we can choose the correct equation in point-slope form:

Option 1: Oy - 5 = 8/9(x - 7)

Option 2: y + 4 = 9/8(x + 1)

Option 3: Oy - 7 = 8/9(x - 5)

To determine which equation is correct, we need to compare it with the point-slope form and check if it matches the given points.

For the point (-4, -1), let's substitute the coordinates into each equation and see which one satisfies the equation.

Option 1: (-1) - 5 = 8/9((-4) - 7)

-6 = 8/9(-11)

-6 = -8

Option 2: (-1) + 4 = 9/8((-4) + 1)

3 = 9/8(-3)

3 = -27/8

Option 3: (-1) - 7 = 8/9((-4) - 5)

-8 = 8/9(-9)

-8 = -8

From the calculations, we can see that Option 3: Oy - 7 = 8/9(x - 5) satisfies the equation when substituting the coordinates (-4, -1). Option C is correct.

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A tank contains two liquids , half of which has a specific gravity of 12 and the other half has a specific gravity of 74 is submerged such that half of the sphere is in the liquid of sp. gr. of 1.2 and the other half is in liquid with s.g. of 1.5 12. Evaluate the buoyant force acting on the sphere in N. a. 547.8 C. 325 4 b. 443.8 d. 249.9

Answers

We find that none of the provided answers match the calculated total buoyant force. the correct answer is not among the options provided.

To evaluate the buoyant force acting on the sphere, we can consider the buoyant force acting on each half of the sphere separately and then sum the results.

Let's denote the volume of the sphere as V and the radius of the sphere as R.

The buoyant force acting on the first half of the sphere (in liquid with a specific gravity of 1.2) can be calculated using Archimedes' principle:

Buoyant force_1 = (density of liquid_1) * (volume of liquid displaced by the first half of the sphere) * (acceleration due to gravity)

The volume of liquid displaced by the first half of the sphere can be determined by considering the ratio of specific gravities:

Volume of liquid displaced by the first half of the sphere = (volume of sphere) * (specific gravity of liquid_1) / (specific gravity of sphere)

Similarly, we can calculate the buoyant force acting on the second half of the sphere (in liquid with a specific gravity of 1.5):

Buoyant force_2 = (density of liquid_2) * (volume of liquid displaced by the second half of the sphere) * (acceleration due to gravity)

Again, the volume of liquid displaced by the second half of the sphere can be determined using the specific gravities.

Finally, we can sum the two buoyant forces to obtain the total buoyant force acting on the sphere:

Total buoyant force = Buoyant force_1 + Buoyant force_2

Evaluating the given options, we find that none of the provided answers match the calculated total buoyant force. Therefore, the correct answer is not among the options provided.

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PLEASE ANSWER FAST PLEASE ILL GIVE 100 POINTS
AND BRAINLIEST


What is the distance between the two points plotted?


A graph with the x-axis starting at negative 10, with tick marks every one unit up to 10. The y-axis starts at negative 10, with tick marks every one unit up to 10. A point is plotted at 3, 5 and at 3, negative 6.


1 unit

11 units

−11 units

−1 unit

Answers

Answer:

11 units

Step-by-step explanation:

To find the distance between the two points, you can use the distance formula, which is derived from the Pythagorean theorem. The formula is:

Distance = √((x2 - x1)^2 + (y2 - y1)^2)

Let's calculate the distance between the two points (3, 5) and (3, -6):

Distance = √((3 - 3)^2 + (-6 - 5)^2)

= √(0^2 + (-11)^2)

= √(0 + 121)

= √121

= 11

Therefore, the distance between the two points is 11 units.

What is the IUPAC name of the product of the reaction of 2-methyl-1,3-butadiene with fluoroethene?

Answers

The IUPAC name of the product is (Z)-2-fluoro-2-methyl-1,3-pentadiene.

The IUPAC name of the product of the reaction between 2-methyl-1,3-butadiene and fluoroethene is (Z)-2-fluoro-2-methyl-1,3-pentadiene. Let's break it down step by step:

1. Identify the parent chain: The parent chain in this case is the longest continuous carbon chain that includes both reactants. In this reaction, the parent chain is a 5-carbon chain, so the prefix "pent" is used.

2. Number the parent chain: Start numbering from the end closest to the double bond in 2-methyl-1,3-butadiene. In this case, the numbering starts from the end closest to the methyl group, so the carbon atoms are numbered as follows: 1, 2, 3, 4, 5.

3. Identify and name the substituents: In 2-methyl-1,3-butadiene, there is a methyl group (CH3) attached to carbon 2. This is indicated by the prefix "2-methyl."

4. Name the double bonds: In this reaction, one of the double bonds in 2-methyl-1,3-butadiene is replaced by a fluorine atom from fluoroethene. Since fluoroethene is an alkene, the product will also have a double bond. The double bond is located between carbons 2 and 3 in the parent chain. The prefix "pentadiene" is used to indicate the presence of two double bonds in the molecule.

5. Indicate the position of the fluorine atom: The fluorine atom from fluoroethene replaces one of the double bonds in 2-methyl-1,3-butadiene. Since it is attached to carbon 2, the position is indicated by the prefix "2-fluoro-."

Putting it all together, the IUPAC name of the product is (Z)-2-fluoro-2-methyl-1,3-pentadiene.

Please note that the "Z" in the name indicates that the fluorine atom and the methyl group are on the same side of the double bond. This is determined by the priority of the atoms/groups attached to the double bond according to the Cahn-Ingold-Prelog (CIP) rules.

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