Answer:
1/2.25 or 4/9
Step-by-step explanation:
A kicker's extended leg is swung for 0.4 seconds in a counterclockwise direction while accelerating at 200 deg/'s2. What is the angular velocity of the leg at the instant of contact with the ball?
The answer to the question is that the angular velocity of the kicker's leg at the instant of contact with the ball can be calculated using the formula:
ωf = ωi + αt
Where:
ωi = initial angular velocity (0 rad/s)
α = angular acceleration (200 deg/s^2 converted to rad/s^2 = 3.49 rad/s^2)
t = time (0.4 seconds)
ωf = final angular velocity (what we're solving for)
To solve for ωf, we plug in the values:
ωf = 0 + (3.49 rad/s^2 x 0.4 s)
ωf = 1.396 rad/s
Therefore, the angular velocity of the kicker's leg at the instant of contact with the ball is 1.396 rad/s.
The problem provides us with the time and acceleration of the kicker's leg, but we need to find the angular velocity at the instant of contact with the ball. To do this, we use the formula for angular velocity, ω = Δθ/Δt, where Δθ is the change in angle and Δt is the change in time. However, we don't have the angle information, only the acceleration and time. So, we use the formula for angular acceleration, α = Δω/Δt, to find the change in angular velocity over time. We know that the initial angular velocity is 0 because the kicker's leg is starting from rest. Finally, we solve for the final angular velocity using the equation ωf = ωi + αt.
The problem involves the calculation of angular velocity at the instant of contact between the ball and the kicker's extended leg. The solution involves using the formula for angular acceleration to find the change in angular velocity over time. The problem statement provides us with the time taken for the leg to swing and the acceleration of the leg during that time.
The first step in the solution is to identify the relevant formulae that can be used to calculate the angular velocity of the kicker's leg at the instant of contact with the ball. The formula for angular velocity, ω = Δθ/Δt, involves the change in angle over time. However, we don't have the angle information in the problem statement. So, we use the formula for angular acceleration, α = Δω/Δt, to find the change in angular velocity over time.
The second step in the solution is to identify the values of the parameters in the formulae. The problem statement provides us with the time taken for the leg to swing, which is 0.4 seconds. The problem also provides us with the acceleration of the leg, which is 200 deg/'s². However, we need to convert this to radians per second squared because the formula for angular acceleration requires angular velocity to be in radians per second. We know that 1 revolution is equal to 2π radians. So, 200 deg/'s². is equal to (200/360) x 2π radians/s². = 3.49 rad/s².. The initial angular velocity is 0 because the kicker's leg is starting from rest.
The third step in the solution is to use the formula for angular acceleration to find the change in angular velocity over time. The formula is α = Δω/Δt, which can be rearranged as Δω = αΔt. Substituting the values, we get:
Δω = 3.49 rad/s² x 0.4 s
Δω = 1.396 rad/s
The fourth and final step is to use the formula ωf = ωi + Δω to find the final angular velocity at the instant of contact between the ball and the kicker's extended leg. The initial angular velocity is 0 because the kicker's leg is starting from rest. Substituting the values, we get:
ωf = 0 + 1.396 rad/s
ωf = 1.396 rad/s
Therefore, the angular velocity of the kicker's leg at the instant of contact with the ball is 1.396 rad/s.
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A company finds that the marginal profit, in dollars per foot, from drilling a well that is x feet deep is given by P′(x)=4 ^3√ x. Find the profit when a well 50 ft deep is drilled.
Question content area bottom Part 1 Set up the integral for the total profit for a well that is 50 feet deep.
P(50)= ∫ enter your response here dx
Part 2 The total profit is $enter your response here. (Round to two decimal places as needed.)
The total profit when a well 50 feet deep is drilled is approximately $1164.10, rounded to two decimal places.
The total profit for drilling a well that is 50 feet deep need to integrate the marginal profit function P'(x) with respect to x from 0 to 50.
This gives us the total profit function P(x):
P(x) = ∫ P'(x) dx from 0 to 50
Substituting P'(x) = [tex]4 \times x^{(1/3)[/tex] into the integral we get:
P(x) = [tex]\int 4 \times x^{(1/3)[/tex] dx from 0 to 50
Integrating with respect to x get:
P(x) = 4/4 * 3/4 * x^(4/3) + C
C is the constant of integration.
The value of C we need to use the given information that the marginal profit is zero when the well is 0 feet deep.
This means that the total profit is also zero when the well is 0 feet deep.
P(0) = 0
= [tex]4/4 \times 3/4 \times 0^{(4/3)} + C[/tex]
C = 0
So the total profit function is:
P(x) = [tex]3x^{(4/3)[/tex]
The profit when a well 50 feet deep is drilled is:
P(50) = [tex]3 \times 50^{(4/3)[/tex] dollars
Using a calculator to evaluate this expression, we get:
P(50) = [tex]3 \times 50^{(4/3)[/tex]
≈ $1164.10
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How does unpredictability and the law of
large numbers explain why researchers
believe that many variables are normally
distributed?
The law of large numbers and unpredictability play a role in researchers believing that many variables follow a normal distribution. Here's how they are connected:
Law of Large Numbers: The law of large numbers states that as the sample size increases, the average of the sample will converge to the true population mean. In other words, if we repeatedly sample from a population and calculate the average of each sample, the average of these sample means will become more accurate as the sample size increases.
Unpredictability: Many variables in nature and social sciences are influenced by a multitude of factors that interact in complex ways. These factors can lead to variability in the observed values of the variables. Additionally, random errors, measurement uncertainties, and other factors can introduce unpredictability into the data.
Normal Distribution: The normal distribution, also known as the Gaussian distribution or bell curve, is a mathematical model that describes the distribution of many natural phenomena. It is characterized by its symmetric bell-shaped curve. The normal distribution is often observed in situations where many independent and randomly varying factors contribute to the outcome. Examples include the heights of individuals, IQ scores, measurement errors, and many biological and physical phenomena.
Researchers believe that many variables are normally distributed because the combination of the law of large numbers and unpredictability suggests that the observed values of a variable will tend to cluster around the population mean. The variability introduced by various factors and random errors is often balanced out, resulting in a bell-shaped distribution. This belief is supported by empirical evidence in numerous fields where normal distributions are frequently encountered.
However, it's important to note that not all variables follow a normal distribution. Some variables may follow other distributions, such as skewed distributions or multimodal distributions. Statistical techniques and tests are employed to assess the distributional characteristics of data and determine the best-fitting distribution for a given variable.
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(a) Find the values of p for which the following integral converges:
∫[infinity]e 1/(x(ln(x))^p)dx
Input youranswer by writing it as an interval. Enter brackets or parentheses in the first and fourth blanks as appropriate, and enter the interval endpoints in the second and third blanks. Use INF and NINF (in upper-case letters) for positive and negative infinity if needed. If the improper integral diverges for all p, type an upper-case "D" in every blank.
The values of p for which the integral converges is (1, ∞).
To determine the convergence of the integral, we can use the integral test. For the integral to converge, the function inside the integral (i.e., 1/(x(ln(x))^p)) must be integrable, and hence, it must be positive, continuous, and decreasing for all x greater than some constant N.
Let f(x) = 1/(x(ln(x))^p). Then, we have:
f'(x) = -(ln(x))^(p-1)/(x^(p+1))
For f to be decreasing, f'(x) must be negative. Thus, we have:
p > 1
Also, f(x) is continuous and positive for x > 1. Hence, the integral converges for p > 1.
Therefore, the values of p for which the integral converges is (1, ∞).
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Let y =| 5|, u1= , u2 =| 글 1, and w-span (u1,u2). Complete parts(a)and(b). a. Let U = | u 1 u2 Compute U' U and UU' | uus[] and UUT =[] (Simplify your answers.) b. Compute projwy and (uuT)y nd (UU)y (Simplify your answers.)
a)Computing UU', we multiply U with U', resulting in a 1x1 matrix or scalar value. b) Calculating the matrix product of uuT with vector y. The result will be a vector.
In part (a), we are asked to compute U'U and UU', where U is a matrix formed by concatenating u1 and u2. In part (b), we need to compute projwy, (uuT)y, and (UU)y, where w is a vector and U is a matrix. We simplify the answers for each computation.
(a) To compute U'U, we first find U', which is the transpose of U. Since U consists of u1 and u2 concatenated as columns, U' will have u1 and u2 as rows. Thus, U' = |u1|u2|. Now, we can compute U'U by multiplying U' with U, which gives us a 2x2 matrix.
Next, to compute UU', we multiply U with U', resulting in a 1x1 matrix or scalar value.
(b) To compute projwy, we use the projection formula. The projection of vector w onto the subspace spanned by u1 and u2 is given by projwy = ((w · u1)/(u1 · u1))u1 + ((w · u2)/(u2 · u2))u2. Here, · denotes the dot product.
For (uuT)y, we calculate the matrix product of uuT with vector y. The result will be a vector.
Similarly, for (UU)y, c
It's important to simplify the answers by performing the necessary calculations and simplifications for each operation, as the resulting expressions will depend on the specific values of u1, u2, w, and y given in the problem.
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write a recursive algorithm to compute n2 when n is a non-negative integer, using the fact that n 12=n2 2n 1 . then use mathematical induction to prove the algorithm is correct
By using principle of mathematical induction it is proved that recursive algorithm correctly computes n² for any non-negative integer n.
Here is a recursive algorithm to compute n² using the given fact,
def compute_square(n):
if n == 0:
return 0
else:
return compute_square(n-1) + 2*n - 1
To prove the correctness of this algorithm using mathematical induction, we need to show that it satisfies two conditions,
Base case,
The algorithm correctly computes 0², which is 0.
Inductive step,
Assume the algorithm correctly computes k² for some arbitrary positive integer k.
Show that it also correctly computes (k+1)².
Let us prove these two conditions,
Base case,
When n = 0, the algorithm correctly returns 0, which is the correct value for 0².
Thus, the base case is satisfied.
Inductive step,
Assume that the algorithm correctly computes k².
Show that it also computes (k+1)².
By the given fact, we know that (k+1)² = k² + 2k + 1.
Let us consider the recursive call compute_square(k).
By our assumption, this correctly computes k². Adding 2k and subtracting 1 (as per the given fact) to the result gives us,
compute_square(k) + 2k - 1 = k² + 2k - 1
This expression is equal to (k+1)² as per the given fact.
The proof assumes that the recursive function compute_square is implemented correctly and that the given fact is true.
If the algorithm correctly computes k², it will also correctly compute (k+1)².
Therefore, by principle of mathematical induction it is shown that recursive algorithm correctly computes n² for any non-negative integer n.
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The above question is incomplete , the complete question is:
Write a recursive algorithm to compute n² when n is a non-negative integer, using the fact that (n +1)²=n² + 2n + 1 . Then use mathematical induction to prove the algorithm is correct
Suppose the mean fasting cholesterol of teenage boys in the US, is μ = 175 mg/dL with σ = 50 mg/dL. An SRS of 39 boys whose fathers had a heart attack reveals a mean cholesterol 195 mg/dL. If we want to know whether the mean fasting cholesterol of the sample is significantly different than the population mean, a. Should this be a one-sided or two-sided test? How do you know? b. Perform the hypothesis test. Show all steps. (Significant level a-0.05)
a. If we want to know whether the mean fasting cholesterol of the sample is significantly different than the population mean, this should be a one-sided test because we are only interested in determining if the sample mean is significantly higher than the population mean.
b. The hypothesis test shows below
a. This should be a one-sided test because we are only interested in determining if the sample mean is significantly higher than the population mean. We are not interested in determining if the sample mean is significantly lower than the population mean.
b. We will perform a one-sample z-test to test the null hypothesis that the sample mean is not significantly different from the population mean. Our alternative hypothesis is that the sample mean is significantly greater than the population mean.
Null hypothesis: H0: μ = 175
Alternative hypothesis: Ha: μ > 175
Significance level: α = 0.05
Sample size: n = 39
Sample mean: x = 195
Population standard deviation: σ = 50
Test statistic:
z = (x - μ) / (σ / √n)
z = (195 - 175) / (50 / √39)
z = 2.19
Critical value:
Using a one-tailed z-table with a significance level of 0.05, the critical value is 1.645.
The test statistic (z = 2.19) is greater than the critical value (1.645), so we reject the null hypothesis. This means that the sample mean (195 mg/dL) is significantly higher than the population mean (175 mg/dL) at the 0.05 significance level.
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A sample of helium gas occupies 12. 4 L at 23oC and 0. 956 atm. What volume will it occupy at 40oC and 0. 956 atm?
The helium gas will occupy approximately 13.09 L at 40°C and 0.956 atm.
To solve this problem, we can use the combined gas law equation, which states:
(P1 * V1) / (T1) = (P2 * V2) / (T2)
Where:
P1 = Initial pressure
V1 = Initial volume
T1 = Initial temperature (in Kelvin)
P2 = Final pressure
V2 = Final volume (what we need to find)
T2 = Final temperature (in Kelvin)
First, let's convert the temperatures to Kelvin:
Initial temperature T1 = 23°C + 273.15 = 296.15 K
Final temperature T2 = 40°C + 273.15 = 313.15 K
Now, let's substitute the given values into the equation:
(0.956 atm * 12.4 L) / (296.15 K) = (0.956 atm * V2) / (313.15 K)
Now we can solve for V2:
(0.956 atm * 12.4 L * 313.15 K) / (0.956 atm * 296.15 K) = V2
Simplifying the equation, we find:
V2 ≈ 13.09 L
Therefore, the helium gas will occupy approximately 13.09 L at 40°C and 0.956 atm.
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(From Hardcover Book, Marsden/Tromba, Vector Calculus, 6th ed., Section 1.5, # 7 or from your Ebook in the Supplementary Exercises for Section 11.7, #184) Let v, w E Rn. If ||vl-w-show that v + w and v - w are orthogonal (perpendicular).
v + w and v - w are orthogonal.
To show that v + w and v - w are orthogonal, we need to show that their dot product is zero.
We have:
(v + w) . (v - w) = ||v||^2 - ||w||^2
Now, since ||v|| = ||w||, we can simplify this to:
(v + w) . (v - w) = 0
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solve the given differential equation. dx/dy = −4y^2 + 6xy / 3y^2 + 2x Verify the solution (6x + 1)y^3 = -3x^3 + c
The solution to the given differential equation is (6x + 1)y^3 = -3x^3 + c.
Given differential equation is:
dx/dy = (-4y^2 + 6xy) / (3y^2 + 2x)
Rearranging and simplifying, we get:
(3y^2 + 2x) dx = (-4y^2 + 6xy) dy
Integrating both sides, we get:
∫(3y^2 + 2x) dx = ∫(-4y^2 + 6xy) dy
On integration, we get:
(3/2)x^2 + 3xy^2 = -4y^3 + 3x^2y + c1
Multiplying throughout by 2/3, we get:
x^2 + 2xy^2 = (-8/3)y^3 + 2x^2y/3 + c
Rewriting in terms of y^3 and x^3, we get:
(6x + 1)y^3 = -3x^3 + c
Hence, the solution to the given differential equation is (6x + 1)y^3 = -3x^3 + c.
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The Minitab output includes a prediction for y when x∗=500. If an overfed adult burned an additional 500 NEA calories, we can be 95% confident that the person's fat gain would be between
1. −0.01 and 0 kg
2. 0.13 and 3.44 kg
3. 1.30 and 2.27 jg
4. 2.85 and 4.16 kg
We can be 95% confident that the person's fat gain would be between 0.13 and 3.44 kg.
So, the correct answer is option 2.
Based on the Minitab output, when an overfed adult burns an additional 500 NEA (non-exercise activity) calories (x* = 500), we can be 95% confident that the person's fat gain (y) would be between 0.13 and 3.44 kg.
This range is the confidence interval for the predicted fat gain and indicates that there is a 95% probability that the true fat gain value lies within this interval.
In this case, option 2 (0.13 and 3.44 kg) is the correct answer.
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Name a time where the two “hands” of an analog clock would form a right angle. (BONUS: How many times does a right angle form on the clock face each day?)
There are a total of 2 x 2 = 4 instances where the two "hands" of an analog clock form a Right angle.
The two "hands" of an analog clock form a right angle at two specific times during a 12-hour period. The first occurrence is at 3:15, where the minute hand points to the 3 and the hour hand points to the 9, forming a right angle. The second occurrence is at 9:45, where the minute hand points to the 9 and the hour hand points to the 3, forming another right angle.
To determine how many times a right angle forms on the clock face each day, we need to consider both the AM and PM periods. In a 24-hour day, there are 12 hours in the AM (from 12:00 AM to 11:59 AM) and 12 hours in the PM (from 12:00 PM to 11:59 PM).
For each 12-hour period, there are two instances where the hands form a right angle. Therefore, in a full day, there are a total of 2 x 2 = 4 instances where the two "hands" of an analog clock form a right angle.
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consider the vector field f(x,y,z)=⟨−6y,−6x,4z⟩. show that f is a gradient vector field f=∇v by determining the function v which satisfies v(0,0,0)=0. v(x,y,z)=
f is a gradient vector field with the potential function v(x,y,z) = -6xy. We can check that v(0,0,0) = 0, as required.
How to find the gradient vector?To determine the function v such that f=∇v, we need to find a scalar function whose gradient is f. We can find the potential function v by integrating the components of f.
For the x-component, we have:
∂v/∂x = -6y
Integrating with respect to x, we get:
v(x,y,z) = -6xy + g(y,z)
where g(y,z) is an arbitrary function of y and z.
For the y-component, we have:
∂v/∂y = -6x
Integrating with respect to y, we get:
v(x,y,z) = -6xy + h(x,z)
where h(x,z) is an arbitrary function of x and z.
For these two expressions for v to be consistent, we must have g(y,z) = h(x,z) = 0 (i.e., they are both constant functions). Thus, we have:
v(x,y,z) = -6xy
So, the gradient of v is:
∇v = ⟨∂v/∂x, ∂v/∂y, ∂v/∂z⟩ = ⟨-6y, -6x, 0⟩
which is the same as the given vector field f. Therefore, f is a gradient vector field with the potential function v(x,y,z) = -6xy. We can check that v(0,0,0) = 0, as required.
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In a repeated-measures ANOVA, the variability within treatments is divided into two components. What are they?
a.between subjects and error
b.between subjects and between treatments
c.between treatments and error
d.total variability and error
In a repeated-measures ANOVA, the variability within treatments is divided into two components: between subjects and error .(A)
To explain further, a repeated-measures ANOVA is used to analyze the differences in means of scores for the same subjects under different conditions.
The variability within treatments can be broken down into two components: 1) between subjects, which accounts for individual differences in subjects and 2) error, which represents unexplained variance that is not accounted for by between subjects or treatment effects.
By separating the variability into these two components, researchers can better understand the sources of variation and isolate the true effects of the treatments being studied.(A)
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Consider the following.
T is the reflection through the origin in
R2: T(x, y) = (−x, −y), v = (2, 5).
(a) Find the standard matrix A for the linear transformation T.
(b) Use A to find the image of the vector v.
(c) Sketch the graph of v and its image.
(a) the standard matrix A for the linear transformation T: [ 0 -1 ].
(b) the image of v under T is the vector (-2, -5).
(c) To sketch the graph of v and its image, plot the vector v = (2, 5) starting from the origin (0, 0) and ending at the point (2, 5).
(a) To find the standard matrix A for the linear transformation T, we apply T to the standard basis vectors e1 = (1, 0) and e2 = (0, 1):
T(e1) = T(1, 0) = (-1, 0)
T(e2) = T(0, 1) = (0, -1)
Now, we form the matrix A using these transformed basis vectors as columns:
A = [T(e1) | T(e2)] = [(-1, 0) | (0, -1)] = [ -1 0 ]
[ 0 -1 ]
(b) To find the image of vector v = (2, 5) under the transformation T, we multiply the matrix A by v:
Av = [ -1 0 ] [ 2 ] = [-2]
[ 0 -1 ] [ 5 ] = [-5]
So, the image of v under T is the vector (-2, -5).
(c) To sketch the graph of v and its image, first draw a coordinate plane. Then, plot the vector v = (2, 5) starting from the origin (0, 0) and ending at the point (2, 5). Next, plot the image of v, which is (-2, -5), starting from the origin (0, 0) and ending at the point (-2, -5).
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consider log linear model (wx, xy, yz). explain whywand z are independent given x alone or given y alone
In a log-linear model with variables wx, xy, and yz, the independence of variables w and z given x alone or given y alone. In this log-linear model, w and z are independent variables given x alone or given y alone.
1. When considering the independence of w and z given x, it means that the values of w and z are not influenced by each other once the value of x is known. Similarly, when considering the independence of w and z given y, it implies that the values of w and z are not influenced by each other once the value of y is known.
2. To understand this further, let's examine the log-linear model. The model assumes that the logarithm of the joint probability distribution of wx, xy, and yz can be expressed as the sum of three terms: one involving the parameters w, the second involving the parameters x and y, and the third involving the parameters z. By considering each term separately, we can see that the parameters w and z do not directly interact or affect each other.
3. Given x alone, the parameter w is only influenced by x, and similarly, given y alone, the parameter z is only influenced by y. As a result, the values of w and z can be considered independent given x alone or given y alone because the presence or absence of x or y does not affect the relationship between w and z. Therefore, in this log-linear model, w and z are independent variables given x alone or given y alone.
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Sketch the curve with the given vector equation. indicate with anarrow the direction in which t increases
r(t) = t2i +t4j +t6k
I have no idea how to go about drawing the vector. I knowthat
x=t2
y=t4
z=t6
and that a possible subsititution can be y=x2and z=x3
To sketch the curve with the given vector equation [tex]r(t) = t^2i + t^4j + t^6k,[/tex] we can plot points for various values of t and connect them with a smooth curve that spirals upwards as t increases, and to indicate the direction in which t increases, you can use an arrow pointing in the positive i direction.
Here is a sketch of the curve defined by the vector equation [tex]r(t) = t^2 i + t^4 j + t^6 k:[/tex]
|
* |
* |
* |
* |
* |
* ----------- |------------
To sketch the curve with the given vector equation[tex]r(t) = t^2i + t^4j + t^6k,[/tex]you can start by plotting points for various values of t and then connecting these points to form a curve.
Choose some values of t, such as t = -1, 0, 1, 2, 3, and 4.
Plug each value of t into the vector equation to get the corresponding vector.
For example, when t = 2, r(2) = 4i + 16j + 64k.
Plot each vector as a point in three-dimensional space.
For example, the vector 4i + 16j + 64k would be plotted at the point (4, 16, 64).
Connect the points with a smooth curve to show the shape of the curve.
To indicate the direction in which t increases, you can use an arrow.
The arrow should point in the direction of increasing t.
In this case, since the coefficient of i (the x-component) is positive and the coefficient of j and k are both positive, the curve will spiral upwards as t increases.
Regarding your substitution, we are correct that [tex]y = x^2[/tex] and [tex]z = x^3[/tex] are possible substitutions.
These equations represent a parabolic curve in the xy-plane and a cubic curve in the xz-plane.
However, keep in mind that the vector equation[tex]r(t) = t^2i + t^4j + t^6k[/tex]already represents a curve in three-dimensional space, so we do not need to make any additional substitutions to sketch the curve.
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To sketch the curve with the given vector equation r(t) = t^2i + t^4j + t^6k, start by identifying the parametric equations: x = t^2, y = t^4, and z = t^6. You already found the possible substitutions, y = x^2 and z = x^3. Now, create a 3D graph with axes for x, y, and z. For various values of t (e.g., -2, -1, 0, 1, 2), calculate the corresponding x, y, and z coordinates using the parametric equations. Plot these points on the graph and connect them to form the curve. Add an arrow to indicate the direction in which t increases, which is the direction of the curve as you move from negative to positive t values.
To sketch the curve with the given vector equation, you can start by plotting points on the coordinate plane. The vector equation r(t) = t2i + t4j + t6k tells us that the x-coordinate is t^2, the y-coordinate is t^4, and the z-coordinate is t^6. You can choose a few values of t, such as -1, 0, and 1, and plug them into the equation to get the corresponding points on the curve.
To indicate the direction in which t increases, you can use an arrow. Since t is a parameter, it can increase in either the positive or negative direction, depending on the direction in which you choose to move along the curve. You can use an arrow to show the direction of increasing t, which will help you visualize the direction of the curve.
As for the possible substitution, y = x^2 and z = x^3 are indeed possible substitutions, since they satisfy the equations x = t^2, y = t^4, and z = t^6. Substituting these expressions for x, y, and z will give you a simpler representation of the curve, which can make it easier to sketch.
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Let X, Y and Z be sets. For each of the following statements, prove it or give a counterexample.(a) If X is not a subset of Y , then Y is a subset of X.(b) (X − Y ) − X = ∅.(c) X ∪ (Y − Z) = (X ∪ Y ) − (X ∪ Z).
The statement which is true is (c) X ∪ (Y − Z) = (X ∪ Y ) − (X ∪ Z) and the
statements which are false are a) If X is not a subset of Y , then Y is a subset of X and (b) (X − Y ) − X = ∅.
The statement "If X is not a subset of Y, then Y is a subset of X" is false. A counterexample is sufficient to disprove this statement.
Let's consider X = {1, 2} and Y = {2, 3}. X is not a subset of Y because it contains the element 1 which is not in Y.
However, Y is not a subset of X either because it contains the element 3 which is not in X. Therefore, the statement is false.
The statement "(X - Y) - X = ∅" is false. To prove this, we need to find a counterexample.
Let's consider X = {1, 2, 3} and Y = {2, 3}. The set (X - Y) - X can be computed as ({1} - {2, 3}) - {1}, which simplifies to the empty set ∅. However, the statement claims that (X - Y) - X should be equal to ∅, which is false in this case. Therefore, the statement is false.
The statement "X ∪ (Y - Z) = (X ∪ Y) - (X ∪ Z)" is true. To prove this, we need to show that the sets on both sides of the equation contain the same elements.
Let's consider an arbitrary element x.
If x is in X ∪ (Y - Z), it means x is either in X or in (Y - Z). If x is in X, then it is also in X ∪ Y and X ∪ Z, so it will be in (X ∪ Y) - (X ∪ Z). If x is in (Y - Z), it is not in Z, so it will be in X ∪ Z. Therefore, x is in (X ∪ Y) - (X ∪ Z).
Conversely, if x is in (X ∪ Y) - (X ∪ Z), it means x is in X ∪ Y but not in X ∪ Z. This implies that x is either in X or in Y but not in Z. Therefore, x will be in X ∪ (Y - Z).
Since we have shown that an arbitrary element x is in both X ∪ (Y - Z) and (X ∪ Y) - (X ∪ Z), we can conclude that the two sets are equal. Hence, the statement is true.
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PLEASE HELP!!!!!!!!!!!!!
A basketball player shoots a free throw, where the position of the ball is modeled by x = (26cos 50°)t and y = 5.8 + (26sin 50°)t − 16t^2. What is the height of the ball, in feet, when it is 13 feet from the free throw line? Round to three decimal places.
11.892
11.611
10.214
10.563
The height of the ball when it is 13 feet from the free throw line is approximately 10.214 feet. Rounded to three decimal places, the answer is 10.214.
To find the height of the ball when it is 13 feet from the free throw line, we need to determine the value of y when x is equal to 13.
Given:
x = (26cos 50°)t
y = 5.8 + (26sin 50°)t -[tex]16t^2[/tex]
We can set x = 13 and solve for t:
13 = (26cos 50°)t
t = 13 / (26cos 50°)
t ≈ 0.683
Now, substitute this value of t into the equation for y:
y = 5.8 + (26sin 50°)(0.683) - 16(0.683[tex])^2[/tex]
Calculating this expression:
y ≈ 10.214
Therefore, the height of the ball when it is 13 feet from the free throw line is approximately 10.214 feet. Rounded to three decimal places, the answer is 10.214.
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consider the system of differential equations dx dt = x(2 −x −y) dy dt = −x 3y −2xyConvert this system to a second order differential equation in y by differentiating the second equation with respect to t and substituting for x from the first equation.Solve the equation you obtained for y as a function of thence find x as a function of t. If we also require x(0) = 3 and y(0) = 4. what are x and y?
The specific values of A, B, C, r1, and r2 depend on the particular values of x and y.
The second equation with respect to t:
[tex]d^2y/dt^2 = d/dt(-x^3y - 2xy)[/tex]
[tex]d^2y/dt^2 = -3x^2(dy/dt)y - x^3(dy/dt) - 2y(dx/dt) - 2x(dy/dt)[/tex]
Substituting dx/dt and dy/dt from the given system, we get:
[tex]d^2y/dt^2 = -3x^2y(2 - x - y) - x^4y + 2xy^2 + 2x^2y[/tex]
Simplifying, we obtain:
[tex]d^2y/dt^2 = -3x^2y^2 + x^3y - 6x^2y + 2xy^2[/tex]
This is a second order differential equation in y.
To solve this equation, we assume that y has the form y = e^(rt), where r is a constant.
Substituting this into the equation, we get:
[tex]r^2e^{(rt)} = -3x^2e^{(2t)}e^{(rt)} + x^3e^{(rt)}e^{(rt)} - 6x^2e^{(2t)}e^{(rt)} + 2xe^{(rt)}e^{(2t)}e^{(rt)[/tex]
[tex]r^2 = -3x^2e^{(2t)} + x^3e^{(2t)} - 6x^2e^{(t)} + 2x[/tex]
This is a quadratic equation in r. Solving for r, we get:
r =[tex][-b \pm \sqrt{(b^2 - 4ac)]}/(2a)[/tex]
where a = 1, b = [tex]6x^2 - x^3e^{(2t)}[/tex], and c =[tex]-3x^2e^{(2t)} + 2x[/tex]
Now, using the initial condition y(0) = 4, we can determine the values of the constants A and B in the general solution:
y(t) = [tex]Ae^{(r1t)} + Be^{(r2t)[/tex]
where r1 and r2 are the roots of the quadratic equation above.
Finally, using the first equation in the given system, we can solve for x:
dx/dt = x(2 - x - y)
dx/dt =[tex]x(2 - x - Ae^{(r1t)} - Be^{(r2t)})[/tex]
Separating variables and integrating, we get:
ln|x| =[tex]\int(2 - x - Ae^{(r1t)} - Be^{(r2t)})dt[/tex]
Solving for x, we get:
x(t) = [tex]Ce^t / (1 + Ae^{(r1t)} + Be^{(r2t)})[/tex]
C is a constant determined by the initial condition x(0) = 3.
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The final solutions for x(t) and y(t) with initial conditions x(0) = 3 and y(0) = 4 are:
x(t) = 1 + e^t + 1/(t-2) + (t-2)e^t
y(t) = 4 - e^(x-2)t - cos(2t)
Differentiating the second equation with respect to t, we get:
d²y/dt² = d/dt(-x³y-2xy) = -3x²(dy/dt)y - x³(dy/dt) - 2y(dx/dt) - 2x(dx/dt)y
Substituting for dx/dt and dy/dt using the given equations, we get:
d²y/dt² = -3x²y(2-x-y) - x³(-x³y-2xy) - 2y(x(2-x-y)) - 2x(-x³y-2xy)
= -3x²y² + 3x³y² + 2xy - x⁴y + 4x²y - 4x³y
Simplifying the equation, we get:
d²y/dt² = x²y(-x² + 3x - 3) + 2xy(2-x)
Now, substituting the given initial conditions, we get:
x(0) = 3 and y(0) = 4
To solve for y(t), we assume y(t) = e^(rt), then substituting it in the second order differential equation, we get:
r²e^(rt) = x²e^(rt)(-x² + 3x - 3) + 2xe^(rt)(2-x)
Dividing by e^(rt) and simplifying, we get:
r² = x²(-x² + 3x - 3) + 2x(2-x)
= -x⁴ + 5x³ - 6x² + 4x
Solving for r, we get:
r = 0, x-2, x-2i, x+2i
Therefore, the general solution for y(t) is:
y(t) = c₁ + c₂e^((x-2)t) + c₃cos(2t) + c₄sin(2t)
To solve for x(t), we use the given equation:
dx/dt = x(2 −x −y)
Substituting y(t) from the above solution, we get:
dx/dt = x(2 - x - (c₁ + c₂e^((x-2)t) + c₃cos(2t) + c₄sin(2t)))
Separating variables and integrating, we get:
∫[x/(x² - 2x + 1 - c₂e^((x-2)t))]dx = ∫dt
Using partial fractions to integrate the left side, we get:
∫[1/(x-1) - c₂e^((x-2)t)/(x-1)^2]dx = t + c₅
Solving for x(t), we get:
x(t) = 1 + c₆e^(t) + c₇/(t-2) + c₈(t-2)e^(t)
Using the given initial condition x(0) = 3, we get:
c₆ + c₇ = 2
Therefore, the final solution for x(t) is:
x(t) = 1 + c₆e^(t) + [2-c₆]/(t-2) + (t-2)e^(t)
Substituting c₆ = 1 and solving for c₇, we get:
c₇ = 1
Therefore, the final solutions for x(t) and y(t) with initial conditions x(0) = 3 and y(0) = 4 are:
x(t) = 1 + e^t + 1/(t-2) + (t-2)e^t
y(t) = c₁ + c₂e^(x-2)t + c₃cos(2t) + c₄sin(2t)
To solve for the constants c₁, c₂, c₃, and c₄, we use the initial condition y(0) = 4. Substituting t = 0 and y = 4 in the solution for y(t), we get:
4 = c₁ + c₂e^(-2) + c₃cos(0) + c₄sin(0)
4 = c₁ + c₂e^(-2) + c₃
Using the given value of c₂ = x-2 = 1, we can solve for the remaining constants:
c₁ = 3 - c₃
c₄ = 0
Substituting these values in the solution for y(t), we get:
y(t) = 3 - c₃ + e^(x-2)t
To solve for c₃, we use the initial condition y(0) = 4. Substituting t = 0 and y = 4, we get:
4 = 3 - c₃ + e^(x-2)*0
c₃ = -1
Therefore, the final solutions for x(t) and y(t) with initial conditions x(0) = 3 and y(0) = 4 are:
x(t) = 1 + e^t + 1/(t-2) + (t-2)e^t
y(t) = 4 - e^(x-2)t - cos(2t)
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if X is uniformly distributed over(-1,1)' find
a)P{|x | > 1/2};
b) the density function of the random variable |X|
The density function of the random variable |X| is f_Y(y) = 1 for 0 ≤ y ≤ 1.
a) Since X is uniformly distributed over (-1,1), the probability density function of X is f(x) = 1/2 for -1 < x < 1, and 0 otherwise. Therefore, the probability of the event {|X| > 1/2} can be computed as follows:
P{|X| > 1/2} = P{X < -1/2 or X > 1/2}
= P{X < -1/2} + P{X > 1/2}
= (1/2)(-1/2 - (-1)) + (1/2)(1 - 1/2)
= 1/4 + 1/4
= 1/2
Therefore, P{|X| > 1/2} = 1/2.
b) To find the density function of the random variable |X|, we can use the transformation method. Let Y = |X|. Then, for y > 0, we have:
F_Y(y) = P{Y ≤ y} = P{|X| ≤ y} = P{-y ≤ X ≤ y}
Since X is uniformly distributed over (-1,1), we have:
F_Y(y) = P{-y ≤ X ≤ y} = (1/2)(y - (-y)) = y
Therefore, the cumulative distribution function of Y is F_Y(y) = y for 0 ≤ y ≤ 1.
To find the density function of Y, we differentiate F_Y(y) with respect to y to obtain:
f_Y(y) = dF_Y(y)/dy = 1 for 0 ≤ y ≤ 1
Therefore, the density function of the random variable |X| is f_Y(y) = 1 for 0 ≤ y ≤ 1.
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Should we be surprised if the sample mean height for the young men is at least 2 inches greater than the sample mean height for the young women? explain your answer.
It is possible for the sample mean height for young men to be at least 2 inches greater than the sample mean height for young women, but it is not necessarily surprising.
There are biological and environmental factors that can affect height, such as genetics, nutrition, and exercise. Men tend to be taller than women on average due to genetic and hormonal differences.
Additionally, men may engage in more physical activity or consume more protein, which can contribute to their height.
However, it is important to note that a difference of 2 inches in sample means does not necessarily imply a significant difference in population means. Statistical analysis, such as hypothesis testing, would be needed to determine the significance of this difference.
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the rectangular coordinates of a point are given. plot the point. (−6 2 , −6 2 )
To plot the point (-6 2 , -6 2 ), we locate the x-coordinate -6 on the x-axis and then move upwards to the point where the y-coordinate is -2 on the y-axis.
When we are given the rectangular coordinates of a point, we can easily plot it on a graph. The rectangular coordinates of a point are in the form (x,y), where x represents the horizontal distance of the point from the origin, and y represents the vertical distance of the point from the origin.
In this case, the rectangular coordinates of the point are given as (-6 2 , -6 2 ). This means that the point is located 6 units to the left of the origin, and 2 units above the origin on the y-axis.
To plot this point on a graph, we can simply locate the x and y coordinates on their respective axes and mark the point of intersection.
First, we locate the x-coordinate -6 on the x-axis and then move upwards to the point where the y-coordinate is -2 on the y-axis. We mark this point with a dot and label it as (-6 2 , -6 2 ). This represents the point that is 6 units to the left of the origin and 2 units above the origin.
In summary, We mark this point with a dot and label it as (-6 2 , -6 2 ). This is how we can plot a point given its rectangular coordinates on a graph.
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The plotted point would be located at (-6, 2) on the rectangular coordinate plane.
To plot the point with rectangular coordinates (-6, 2), follow these steps:
To plot the point (−6 2, −6 2 ) with rectangular coordinates, start at the origin (0,0) and move 6 units to the left along the x-axis, then 2 units up along the y-axis to locate the point.
1. Begin at the origin (0, 0) on the coordinate plane.
2. Move 6 units to the left along the x-axis, since the x-coordinate is -6.
3. Move 2 units up along the y-axis, since the y-coordinate is 2.
4. Mark the point at the intersection of these coordinates with a dot or small circle.
The point (-6, 2) has now been plotted on the rectangular coordinate plane.
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Let y= matrix1x2[4][3] and u = matrix1x2[2][-6] Write y as the sum of two orthogonal vectors, one in Span fu and one orthogonal to u
To write y as the sum of two orthogonal vectors, one in Span fu and one orthogonal to u, we first need to find a vector in Span fu.
Let's call this vector v. Since u is a 1x2 matrix, we can think of it as a vector in R^2. To find v, we need to find a scalar c such that cv = u.
We can do this by solving the equation cv = u for c:
c * [a,b] = [2,-6]
This gives us two equations:
ca = 2
cb = -6
Solving for c, we get:
c = 2/a
c = -6/b
Equating the two expressions for c, we get:
2/a = -6/b
Cross-multiplying, we get:
2b = -6a
Dividing both sides by 2, we get:
b = -3a
So we can choose v = [a,-3a], for any non-zero value of a. For simplicity, let's choose a = 1, so v = [1,-3].
Now we need to find a vector w that is orthogonal to u. The dot product of u and w should be 0:
[u1, u2] · [w1, w2] = u1w1 + u2w2 = 0
We know that u = [2,-6], so we can choose w = [3,1], which is orthogonal to u.
Now we can write y as the sum of two vectors, one in Span fu and one orthogonal to u:
y = (y · v/||v||^2) v + (y · w/||w||^2) w
where · denotes the dot product, ||v|| is the norm of v, and ||w|| is the norm of w.
Plugging in the values, we get:
y = ((41 + 3(-3))/10) [1,-3] + ((43 + 31)/(3^2 + 1^2)) [3,1]
y = (-2/5) [1,-3] + (15/10) [3,1]
y = [-2/51 + 15/103, -2/5*(-3) + 15/10*1]
y = [23/10, 7/10]
So we can write y as the sum of [-6/5, 9/5] (which is in Span fu) and [23/10, 7/10] (which is orthogonal to u).
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3. Find intervals of concavity. (a) f(x) = x2 – 3 (0 < x < 2) (b) f(x) = 22 – + x - 3(-35« <3) (c) f(x) = (x - 2)(x + 4) ( -5
The intervals of concavity: (a) (-∞, 0) and (0, 2); (b) (-∞, -2) and (-2, ∞); (c) (-∞, -4) and (-4, 2).
(a) The second derivative of f(x) is f''(x) = 2, which is positive for all x in the interval (0,2). Therefore, f(x) is concave up on the interval (0,2).
(b) The second derivative of f(x) is f''(x) = 6x - 6, which is positive for x > 1 and negative for x < 1. Therefore, f(x) is concave up on the interval (1, ∞) and concave down on the interval (-∞, 1).
(c) The second derivative of f(x) is f''(x) = 2x + 2, which is positive for x > -1 and negative for x < -1. Therefore, f(x) is concave up on the interval (-∞, -1) and concave down on the interval (-1, ∞).
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31. show that any matrix of rank r can be written as the sum of r matrices of rank 1.
To show that any matrix of rank r can be written as the sum of r matrices of rank 1, we will use the concept of matrix decomposition.
Let's consider an arbitrary matrix A of size m x n with rank r. By definition, the rank of a matrix is the maximum number of linearly independent rows or columns. This means that we can express A as a sum of r matrices of rank 1.
We start by performing the singular value decomposition (SVD) of matrix A:
A = U * Σ * V^T
where U is an m x r matrix, Σ is an r x r diagonal matrix with non-negative singular values on the diagonal, and V^T is the transpose of an r x n matrix V.
We can rewrite the singular value decomposition as:
A = σ1 * u1 * v1^T + σ2 * u2 * v2^T + ... + σr * ur * vr^T
where σ1, σ2, ..., σr are the singular values of A, and u1, u2, ..., ur and v1, v2, ..., vr are the corresponding left and right singular vectors, respectively.
Each term in the above expression is a rank 1 matrix, as it is an outer product of a column vector and a row vector. The rank 1 matrices are of the form x * y^T, where x and y are column vectors.
Thus, we have expressed matrix A as the sum of r matrices of rank 1.
In summary, any matrix of rank r can be written as the sum of r matrices of rank 1, where each term in the sum is a rank 1 matrix obtained from the singular value decomposition of the original matrix.
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derive an expression for the specific heat capacity of the metal using the heat balance equation for an isolated system, equation (14.2). your final expression should only contain variables
The specific heat capacity of the metal can be expressed as the ratio of the product of the specific heat capacity and mass of the surroundings to the mass of the metal which is c = (ms) / m.
The specific heat capacity of a metal can be derived using the heat balance equation for an isolated system, given by equation (14.2), which relates the heat gained or lost by the system to the change in its temperature and its heat capacity.
According to the heat balance equation for an isolated system, the heat gained or lost by the system (Q) is given by:
Q = mcΔTwhere m is the mass of the metal, c is its specific heat capacity, and ΔT is the change in its temperature.
For an isolated system, the heat gained or lost by the metal must be equal to the heat lost or gained by the surroundings, which can be expressed as:
Q = -q = -msΔT
where q is the heat gained or lost by the surroundings, s is the specific heat capacity of the surroundings, and ΔT is the change in temperature of the surroundings.
Equating the two expressions for Q, we get:
mcΔT = msΔT
Simplifying and rearranging, we get:
c = (ms) / m
Therefore, the specific heat capacity of the metal can be expressed as the ratio of the product of the specific heat capacity and mass of the surroundings to the mass of the metal.
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Navarro, Incorporated, plans to issue new zero coupon bonds with a par value of $1,000 to fund a new project. The bonds will have a YTM of 5. 43 percent and mature in 20 years. If we assume semiannual compounding, at what price will the bonds sell?
To calculate the price at which the zero-coupon bonds will sell, we can use the formula for present value (PV) of a bond:
[tex]PV = F / (1 + r/n)^(n*t)[/tex]
Where:
PV = Present value or price of the bond
F = Par value of the bond ($1,000)
r = Yield to maturity (YTM) as a decimal (5.43% = 0.0543)
n = Number of compounding periods per year (semiannual, so n = 2)
t = Number of years to maturity (20 years)
Plugging in the values into the formula, we can calculate the price at which the bonds will sell:
PV = 1000 / (1 + 0.0543/2)^(2*20)
= 1000 / (1 + 0.02715)^(40)
= 1000 / (1.02715)^(40)
≈ 1000 / 0.49198
≈ $2033.69
Therefore, the bonds will sell at approximately $2,033.69.
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Test the claim about the differences between two population variances sd 2/1 and sd 2/2 at the given level of significance alpha using the given sample statistics. Assume that the sample statistics are from independent samples that are randomly selected and each population has a normal distribution
Claim: σ21=σ22, α=0.01
Sample statistics: s21=5.7, n1=13, s22=5.1, n2=8
Find the null and alternative hypotheses.
A. H0: σ21≠σ22 Ha: σ21=σ22
B. H0: σ21≥σ22 Ha: σ21<σ22
C. H0: σ21=σ22 Ha: σ21≠σ22
D. H0: σ21≤σ22 Ha:σ21>σ22
Find the critical value.
The null and alternative hypotheses are: H0: σ21 = σ22 and Ha: σ21 ≠ σ22(C).
To find the critical value, we need to use the F-distribution with degrees of freedom (df1 = n1 - 1, df2 = n2 - 1) at a significance level of α/2 = 0.005 (since this is a two-tailed test).
Using a calculator or a table, we find that the critical values are F0.005(12,7) = 4.963 (for the left tail) and F0.995(12,7) = 0.202 (for the right tail).
The test statistic is calculated as F = s21/s22, where s21 and s22 are the sample variances and n1 and n2 are the sample sizes. Plugging in the given values, we get F = 5.7^2/5.1^2 = 1.707.
Since this value is not in the rejection region (i.e., it is between the critical values), we fail to reject the null hypothesis. Therefore, we do not have sufficient evidence to claim that the population variances are different at the 0.01 level of significance.
So C is correct option.
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An object moving in the xy-plane is subjected to the force F⃗ =(2xyı^+x2ȷ^)N, where x and y are in m.
a) The particle moves from the origin to the point with coordinates (a, b) by moving first along the x-axis to (a, 0), then parallel to the y-axis. How much work does the force do? Express your answer in terms of the variables a and b.
b)The particle moves from the origin to the point with coordinates (a, b) by moving first along the y-axis to (0, b), then parallel to the x-axis. How much work does the force do? Express your answer in terms of the variables a and b.
Answer: a) When the particle moves along the x-axis to (a, 0), the y-coordinate is 0. Therefore, the force F⃗ only has an x-component and is given by:
F⃗ = (2axy ı^ + x^2 ȷ^) N
The displacement of the particle is Δr⃗ = (a ı^) m, since the particle moves only in the x-direction. The work done by the force is given by:
W = ∫ F⃗ · d r⃗
where the integral is taken along the path of the particle. Along the x-axis, the force is constant and parallel to the displacement, so the work done is:
W1 = Fx ∫ dx = Fx Δx = (2ab)(a) = 2a^2 b
When the particle moves from (a, 0) to (a, b) along the y-axis, the force F⃗ only has a y-component and is given by:
F⃗ = (a^2 ȷ^) N
The displacement of the particle is Δr⃗ = (b ȷ^) m, since the particle moves only in the y-direction. The work done by the force is:
W2 = Fy ∫ dy = Fy Δy = (a^2)(b) = ab^2
Therefore, the total work done by the force is:
W = W1 + W2 = 2a^2 b + ab^2
b) When the particle moves along the y-axis to (0, b), the x-coordinate is 0. Therefore, the force F⃗ only has a y-component and is given by:
F⃗ = (a^2 ȷ^) N
The displacement of the particle is Δr⃗ = (b ȷ^) m, since the particle moves only in the y-direction. The work done by the force is given by:
W1 = Fy ∫ dy = Fy Δy = (a^2)(b) = ab^2
When the particle moves from (0, b) to (a, b) along the x-axis, the force F⃗ only has an x-component and is given by:
F⃗ = (2ab ı^) N
The displacement of the particle is Δr⃗ = (a ı^) m, since the particle moves only in the x-direction. The work done by the force is:
W2 = Fx ∫ dx = Fx Δx = (2ab)(a) = 2a^2 b
Therefore, the total work done by the force is:
W = W1 + W2 = ab^2 + 2a^2 b