The correct answer is B. Electrons move from cathode to anode.A. The concentration of the electrolyte does not necessarily decrease during the electroplating process.B. Electrons move from cathode to anode. (Correct)C. Silver is reduced at the silver electrode (cathode). (Correct)
In electroplating, the object to be plated (the iron spoon in this case) is connected to the cathode, while the metal being plated (silver) is connected to the anode. During the process, electrons flow from the cathode to the anode. Therefore, statement B is correct.
A. The concentration of the electrolyte decrease: This statement is incorrect. The concentration of the electrolyte solution used in the electroplating process remains constant throughout the process.
C. Silver is reduced at the silver electrode: This statement is incorrect. In electroplating, the metal being plated is reduced at the cathode (iron spoon in this case), not at the electrode made of that metal (silver electrode).
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Find the solution to the initial value problem (1+x^11)y′+11x^10y=9x^17 subject to the condition y(0)=2.
The initial condition y(0) = 2, we get:2 = 0 + C So, the solution to the initial value problem is:y = -([tex]9/11) x^11 ln|x| + 2(1+x^11).[/tex]
Given differential equation [tex](1+x^11)y′+11x^10y=9x^17[/tex]with initial condition y(0) = 2
To solve the initial value problem, we need to find y' first. For that, divide the differential equation by (1+x^11):y' + 11x^10/(1+x^11)y = 9x^17/(1+x^11)This is a first-order linear differential equation of the form:
y' + P(x)y = Q(x)where P(x) = 11x^10/(1+x^11) and Q(x) = 9x^17/(1+x^11)Using the integrating factor, I = e^ integral P(x) dx, we can solve this equation. I = e^ integral P(x) dx = e^ integral (11x^10/(1+x^11)) dx Taking u = 1+x^11, the integral becomes: integral [tex]11x^10/(1+x^11) dx= 11/11 integral (u-1)/u du= ln|u| - ln|u-1| + C = ln|(1+x^11)/(x^11)| + C.[/tex]
Now, the integrating factor is I = e^ln|(1+x^11)/(x^11)| = (1+x^11)/x^11Multiplying both sides of the differential equation by I, we get:[tex](1+x^11)y'/x^11 + 11(x^11+y^11)/(x^11(1+x^11))y = 9/(1+x^11).[/tex]
Now, the left-hand side of the equation can be written in the form of the derivative of a product using the product rule. Differentiate both sides of the equation and simplify to get:
[tex]y/(1+x^11) = -9/11 ln|x| + C[/tex] (where C is the constant of integration)
Multiplying both sides of the equation by (1+x^11), we get:y = -(9/11) x^11 ln|x| + C(1+x^11).
Substituting t
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1.3) Which of the following alkyl halides cannot be used to
synthesize an ester from a carboxylate anion? -CH3Br -CH2CH3Cl
-(CHE)3Cl -CH3CH2CH2Br
The alkyl halide that cannot be used to prepare (CHE)3Cl is CH3CH2CH2Br.
This alkyl halide cannot be used to prepare (CHE)3Cl because (CHE)3Cl is a tertiary alkyl halide, which means it has a carbon atom bonded to three other carbon atoms. CH3CH2CH2Br is a primary alkyl halide, meaning it has a carbon atom bonded to only one other carbon atom. In order to convert a primary alkyl halide into a tertiary alkyl halide, multiple substitution reactions would be required, which are generally difficult to carry out.
On the other hand, (CHE)3Cl can be prepared from CH3Cl by reacting it with excess CH3MgBr (Grignard reagent) followed by treatment with HCl. This reaction allows for the direct substitution of the halogen atom on the methyl group, resulting in the formation of (CHE)3Cl.
In summary, CH3CH2CH2Br cannot be used to prepare (CHE)3Cl because it is a primary alkyl halide, while (CHE)3Cl is a tertiary alkyl halide. The conversion from a primary alkyl halide to a tertiary alkyl halide requires multiple substitution reactions, which are generally difficult to carry out.
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VB at B. For the cantilever steel beam [E = 230 GPa; / = 129 × 106 mm4], use the double-integration method to determine the deflection Assume L = 3.7 m, Mo = 61 kN-m, and w = = 13 kN/m. W Mo Answer:
The deflection of the cantilever steel beam is approximately (x²) / 102,564,102,564,102.56.
To determine the deflection of the cantilever steel beam using the double-integration method, we can follow these steps:
First, let's calculate the reaction force at the fixed end of the beam. We can use the equation for the sum of moments about the fixed end:
ΣM = 0
(-Mo) + (VB x L) = 0
VB x L = Mo
VB = Mo / L
VB = 61 kN-m / 3.7 m
VB ≈ 16.49 kN
Next, let's find the equation for the deflection of the beam. The equation for the deflection of a cantilever beam under a uniformly distributed load (w) is given by:
δ = (w x x²) / (6 x E x I)
where δ is the deflection, w is the load per unit length, x is the distance from the fixed end, E is the modulus of elasticity, and I is the moment of inertia.
Now, we need to calculate the moment of inertia (I) of the beam. The moment of inertia for a rectangular cross-section can be calculated using the formula:
I = (b x h³) / 12
where b is the width of the beam and h is the height of the beam.
Given that the beam is rectangular and the dimensions are not provided in the question, we cannot determine the exact moment of inertia without additional information.
However, if we assume a typical rectangular cross-section with a width of 100 mm and a height of 200 mm, we can calculate the moment of inertia as follows:
I = (100 mm x (200 mm)³) / 12
I ≈ 133,333,333.33 mm⁴
Now we can substitute the values into the deflection equation and solve for the deflection (δ). Using the given values:
δ = (13 kN/m x x²) / (6 x 230 GPa x 133,333,333.33 mm⁴)
Simplifying the units:
δ = (13 x 10^3 N/m x x²) / (6 x 230 x 10⁹ N/mm² x 133,333,333.33 mm⁴)
δ = (13 x 10³ x x²) / (6 x 230 x 10⁹ x 133,333,333.33)
δ ≈ (x²) / 102,564,102,564,102.56
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must use laplace
Use Laplace transforms to determine the solution for the following equation: 6'y(r) dr y'+12y +36 y(r) dr=10, y(0) = -5 For the toolbar, press ALT+F10 (PC) or ALT+FN+F10 (Mac).
The solution to the given equation using Laplace transforms is y(r) = 15e^(-48r).
To solve the given equation using Laplace transforms, we'll apply the Laplace transform to both sides of the equation. Let's denote the Laplace transform of y(r) as Y(s). The Laplace transform of the derivative of y(r) with respect to r, y'(r), can be written as sY(s) - y(0).
Applying the Laplace transform to the equation, we have:
sY(s) - y(0) + 12Y(s) + 36Y(s) = 10
Now, we can substitute y(0) with its given value of -5:
sY(s) + 12Y(s) + 36Y(s) = 10 - (-5)
sY(s) + 12Y(s) + 36Y(s) = 15
Combining like terms, we get:
(s + 48)Y(s) = 15
Now, we can solve for Y(s) by isolating it:
Y(s) = 15 / (s + 48)
To find the inverse Laplace transform and obtain the solution y(r), we can use a table of Laplace transforms or a computer algebra system. The inverse Laplace transform of Y(s) = 15 / (s + 48) is y(r) = 15e^(-48r).
Therefore, the solution to the given equation is y(r) = 15e^(-48r).
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If 50.5 {~mol} of an ideal gas is at 6.47 x 10^{5} {~Pa} and 31 {IK} , what is the volume V of the gas?
If 50.5 mol of an ideal gas is at 31 K then the volume (V) of the gas is around 0.641 .
Number of moles (n) = 50.5 mol
Pressure (P) = [tex]6.47 x 10^{5}[/tex]
Temperature (T) = 31 K
To find the volume (V) of the gas, we can use the ideal gas law equation, which relates the pressure (P), volume (V), number of moles (n), and temperature (T) of an ideal gas:
PV = nRT
where R is the ideal gas constant.
It is required to determine the value of the ideal gas constant, R. The ideal gas constant is typically represented by the symbol R and has a value of 8.314 J/(mol·K)
Rearranging the ideal gas law equation to solve for the volume (V):
V = (nRT) / P
Substituting the given values:
[tex]V = (50.5 mol) x (8.314 J/(mol·K)) x (31 K)[/tex]
V = 0.641
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At a point in a 15 cm diameter pipe, 2.5 m above its discharge end, the pressure is 250kPa. If the flow is 35 liters/second of oil (SG-0.762), find the head loss between the point and the discharge end. 27.98 m 22.98 m 35.94 m 30.94 m
The head loss between the point and the discharge end equation is option d) 0.7323 m.
Given data: Diameter of the pipe = 15 cm
Radius of the pipe = 7.5 cm
Height of the point above the discharge end = 2.5 m
Pressure at the point = 250 kPa
Flow of oil = 35 L/s
Specific gravity of oil = 0.762
Formula used: Bernoulli’s Equation
Bernoulli’s Equation:
P₁/ρ + v₁²/2g + z₁ = P₂/ρ + v₂²/2g + z₂
where P₁/ρ + v₁²/2g + z₁ = Pressure head at point
1P₂/ρ + v₂²/2g + z₂ = Pressure head at point 2
where P = Pressure
ρ = Density of the fluid
v = Velocity of the fluid
g = Acceleration due to gravity
z = Elevation
Let the head loss between the point and the discharge end be ‘h’.
Discharge end of the pipe:
Pressure head at the discharge end of the pipe = 0 m
Velocity at the discharge end of the pipe = v₁
Let us consider the point to be point 2.
Point 2: Pressure head at point 2 = 250 kPa / (1000 kg/m³ * 9.81 m/s²) = 0.02542 m
Velocity at point 2 = Q / A₂
= (35 × 10⁻³ m³/s) / π (0.15 m)² / 4
= 0.756 m/s
Density of the fluid = Specific gravity × Density of water
= 0.762 × 1000 kg/m³
= 762 kg/m³
Let us calculate the cross-sectional area at point 2.
A₂ = π (d/2)²/4
= π (0.15 m)²/4
= 0.01767 m²
The velocity at the discharge end of the pipe is zero. Hence, v₁ = 0.0 m/s.
Now, we need to find the head loss between the point and the discharge end.
v₁²/2g = (250 × 10³ N/m²) / (762 kg/m³ * 9.81 m/s²) + (0.756²/2g) + 2.5 m - 0v₁²/2g
= 0.7323 m
head loss, h = v₁²/2g = 0.7323 m
Hence, the correct option is (d) 30.94 m.
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When a 1 g of protein dissolved in water to make 100 mL solution, its osmotic pressure at 5°C was 3.61 torr. What is the molar mass of the protein? R = 0.0821 atm-L/mol-K 69.0 x 104 g/mol 48.1 x 104 g/mol O69.0 x 103 g/mol O 48.1 x 10³ g/mol
The molar mass of the protein is 69.0 x 103 g/mol.
To calculate the molar mass of the protein, we can use the formula:
Molar mass = (osmotic pressure * volume) / (R * temperature)
In this case, the osmotic pressure is given as 3.61 torr, the volume is 100 mL (or 0.1 L), the gas constant (R) is 0.0821 atm-L/mol-K, and the temperature is 5°C (or 278 K).
Plugging in these values into the formula, we get:
Molar mass = (3.61 torr * 0.1 L) / (0.0821 atm-L/mol-K * 278 K)
Simplifying this expression, we find:
Molar mass = 0.361 torr-L / (0.0821 atm-L/mol-K * 278 K)
Converting torr to atm and simplifying further, we have:
Molar mass = 0.361 atm-L / (0.0821 atm-L/mol-K * 278 K)
Canceling out the units, we get:
Molar mass = 0.361 / (0.0821 * 278)
Calculating this expression, we find:
Molar mass ≈ 69.0 x 103 g/mol
Therefore, the molar mass of the protein is approximately 69.0 x 103 g/mol.
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Excavated soil material from a building site contains cadmium.
When the soil was analysed for the cadmium, it was determined that
its concentration in the soil mass was 250 mg/kg. A TCLP test was
then
The concentration of cadmium in the excavated soil was 250 mg/kg, while the leachate from the TCLP test contained 5 mg/L of cadmium.
conducted to determine the leachability of cadmium from the soil. The results of the TCLP test showed that the concentration of cadmium in the leachate was 5 mg/L.
The Toxicity Characteristic Leaching Procedure (TCLP) test is a standardized laboratory test used to assess the potential leaching of hazardous substances from solid waste materials. In the case of cadmium, the TCLP test measures the leachability of cadmium from the soil, simulating its potential movement into groundwater or surface water.
In this scenario, the concentration of cadmium in the excavated soil material was found to be 250 mg/kg. This value represents the total amount of cadmium present in the soil mass. However, the total concentration of cadmium alone does not indicate its potential impact on the environment or human health.
To evaluate the potential risk posed by the cadmium in the soil, the TCLP test was conducted. The test measures the leachability of cadmium by subjecting the soil to an acidic solution that simulates the conditions of a landfill or disposal site. The resulting leachate is then analyzed to determine the concentration of cadmium that has leached from the soil.
In this case, the TCLP test showed that the concentration of cadmium in the leachate was 5 mg/L. This value indicates the amount of cadmium that was mobilized and could potentially leach into the surrounding environment under the simulated conditions of the test. A concentration of 5 mg/L suggests that the leachability of cadmium from the soil is relatively low.
To assess the environmental and human health risks associated with the excavated soil, further evaluation would be needed. Regulatory standards and guidelines typically exist for permissible concentrations of cadmium in soil and water. Comparing the results of the TCLP test to these standards would help determine if any remediation or management measures are necessary to mitigate potential risks.
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If two varieties of mangoes having the price rs 30 per kg and Rs 40 per kg is mixed in the ratio of 3:2,what would be selling price per kg?
The selling price per kg of the mixed mangoes would be Rs 34.
To determine the selling price per kilogram (kg) when two varieties of mangoes are mixed in a specific ratio, we need to calculate the weighted average of their prices based on the given ratio.Let's assume the selling price per kg of the mixed mangoes is S.
Given that the two varieties are mixed in a ratio of 3:2, we can calculate the weighted average as follows:
(3 * Rs 30 + 2 * Rs 40) / (3 + 2) = (90 + 80) / 5 = Rs 170 / 5 = Rs 34
It's important to note that the selling price per kg is determined by the weighted average of the individual prices, taking into account the proportion or ratio in which they are mixed.
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A medical device company knows that the percentage of patients experiencing injection-site reactions with the current needle is 11%. What is the standard deviation of X, the number of patients seen until an injection-site reaction occurs? a. 3.1289 b. 8.5763 c. 9.0909 d. 11
The answer is (b) 8.5763 is the standard deviation of X, the number of patients seen until an injection-site reaction occurs.
The number of patients seen until an injection-site reaction occurs follows a geometric distribution with probability of success 0.11.
The formula for the standard deviation of a geometric distribution is:
σ = sqrt(1-p) / p^2
where p is the probability of success.
In this case, p = 0.11, so:
σ = sqrt(1-0.11) / 0.11^2
= sqrt(0.89) / 0.0121
= 8.5763 (rounded to four decimal places)
Therefore, the answer is (b) 8.5763.
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A silver metal electrode is added to a silver nitrate solution, which is connected via a potassium nitrate salt bridge to a solution of copper nitrate solution with a copper electrode to produce a galvanic cell. Which metal is reduced and what is the standard cell potential? Ag+(aq)+1e−→Ag(s);E∘=0.80 VCu2+(aq)+2e−→Cu(s);E∘=0.34 V K+(aq)+e−→K(s);E∘=−2.92 V a. Silver, 0.46 V b. Copper, 0.46 V c. Copper, 1.14 V d. Silver, 1.14 V e. Silver, −0.46 V
The metal that is reduced in the given galvanic cell is silver and the standard cell potential is 0.46 V.
A silver metal electrode is added to a silver nitrate solution to form Ag+(aq). The ion will react with the electrons released from the silver metal electrode to form Ag(s) according to the following half-reaction:
Ag⁺(aq) + 1e− → Ag(s)
The standard reduction potential of this half-reaction is +0.80 V, indicating that it has a strong tendency to be reduced. Similarly, copper ion will react with electrons released from the copper electrode to form Cu(s) according to the following half-reaction:
Cu²⁺(aq) + 2e− → Cu(s)
The standard reduction potential of this half-reaction is +0.34 V. We can see that the Ag⁺ ion has a greater tendency to be reduced than the Cu²⁺ ion. Hence, silver is reduced in the given galvanic cell. The standard cell potential is calculated by subtracting the reduction potential of the oxidized half-reaction from that of the reduced half-reaction. Therefore, the standard cell potential is given as follows:
0.80 V - 0.34 V = 0.46 V.
Therefore, the correct answer is option (a) silver, 0.46 V.
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Yeast is added to a vat of grape juice in order to ferment it to make wine. The amount of yeast present in the vat doubles every 4 hours after it is added. Suppose that 5 grams of yeast is added to the vat at t = 0. A formula for the amount of yeast at time t is A(t) = 5. (2) ¹/4 (a) How much yeast will be present in 24 hour? (b) How much time will elapse before the amount of yeast reaches 500 grams?
(a) After 24 hours, there will be 320 grams of yeast present in the vat.
(b) It will take approximately 26.5756 hours for the amount of yeast to reach 500 grams.
How to Calculate the amount of Yeast?(a) To find the amount of yeast present in 24 hours, we can use the formula A(t) = 5 * [tex](2)^{(t/4)}.[/tex]
Plugging in t = 24, we get:
A(24) = 5 * [tex](2)^{(24/4)}[/tex] = 5 *[tex](2)^6[/tex] = 5 * 64 = 320 grams.
(b) To determine the time it takes for the amount of yeast to reach 500 grams, we can rearrange the formula A(t) = 5 * [tex](2)^{(t/4)[/tex] and solve for t:
500 = 5 * [tex](2)^{(t/4)[/tex]
Dividing both sides by 5:
100 = [tex](2)^{(t/4)[/tex]
Taking the logarithm base 2 of both sides to isolate the exponent:
log₂(100) = t/4
Using logarithmic properties, we find:
t/4 = log₂(100)
t = 4 * log₂(100)
Using a calculator, we can evaluate the right-hand side:
t ≈ 4 * 6.6439 ≈ 26.5756
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Determine the volume (in L) of O_2(at STP) formed when 52.5 g of KClO_3 decomposes according to the following reaction. KClO_3( s)→KCl(s)+ Volume of O_2:
Answer: The volume of O₂ formed when 52.5 g of KClO₃ decomposes at STP is approximately 14.39 liters.
Step-by-step explanation:
To determine the volume of O₂ formed when 52.5 g of KClO₃ decomposes at STP (Standard Temperature and Pressure), we need to use stoichiometry and the ideal gas law.
First, we need to find the number of moles of KClO₃:
moles of KClO₃ = mass of KClO₃ / molar mass of KClO₃
The molar mass of KClO₃ can be calculated as follows:
M(K) + M(Cl) + 3 * (M(O)) = 39.10 g/mol + 35.45 g/mol + 3 * (16.00 g/mol) = 122.55 g/mol
moles of KClO₃ = 52.5 g / 122.55 g/mol ≈ 0.428 moles
From the balanced equation, we know that the stoichiometric ratio between KClO₃ and O₂ is 2:3. This means that for every 2 moles of KClO₃ decomposed, 3 moles of O₂ are produced.
moles of O₂ = (moles of KClO₃ / 2) * 3
moles of O₂ = (0.428 moles / 2) * 3 ≈ 0.643 moles
Now, we can use the ideal gas law to calculate the volume of O₂ at STP. At STP, 1 mole of any ideal gas occupies 22.4 liters.
volume of O₂ = moles of O₂ * 22.4 L/mol
volume of O₂ = 0.643 moles * 22.4 L/mol ≈ 14.39 liters
Therefore, the volume of O₂ formed when 52.5 g of KClO₃ decomposes at STP is approximately 14.39 liters.
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The volume of O₂ gas formed when 52.5 g of KClO₃ decomposes at STP can be determined by calculating the number of moles of O₂ produced and then converting it to volume using the ideal gas law is 11.48L.
First, we need to find the number of moles of KClO₃. The molar mass of KClO₃ is 122.55 g/mol, so we divide the mass of KClO₃ (52.5 g) by its molar mass to obtain the number of moles:
[tex]\[\text{{Moles of KClO3}} = \frac{{52.5 \, \text{{g}}}}{{122.55 \, \text{{g/mol}}}} = 0.428 \, \text{{mol}}\][/tex]
According to the balanced equation, for every 2 moles of KClO₃ that decompose, 3 moles of O₂ are produced. Therefore, we can calculate the number of moles of O₂:
[tex]\[\text{{Moles of O2}} = \frac{{3 \times \text{{Moles of KClO3}}}}{2} = \frac{{3 \times 0.428 \, \text{{mol}}}}{2} = 0.642 \, \text{{mol}}\][/tex]
Now we can use the ideal gas law, which states that PV = nRT, to convert the number of moles of O₂ to volume. At STP (standard temperature and pressure), the values are T = 273.15 K and P = 1 atm. The ideal gas constant R = 0.0821 L·atm/(mol·K). Rearranging the equation, we get:
[tex]\[V = \frac{{nRT}}{P} = \frac{{0.642 \, \text{{mol}} \times 0.0821 \, \text{{L·atm/(mol·K)}} \times 273.15 \, \text{{K}}}}{1 \, \text{{atm}}} = 11.48 \, \text{{L}}\][/tex]
Therefore, the volume of O2 gas formed when 52.5 g of KClO₃ decomposes at STP is 11.48 L.
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Find the derivative of the function. h(x)=7^x^2+2^2x h′(x)=
The derivative of the function h(x) = 7^(x^2) + 2^(2x) is h'(x) = (ln 7) * (7^(x^2)) * (2x) + (ln 2) * (2^(2x)) * (2).
To find the derivative of the function h(x) = 7^(x^2) + 2^(2x), we can apply the rules of differentiation.
Let's break it down step by step:
Step 1: Start with the function h(x) = 7^(x^2) + 2^(2x).
Step 2: Recall the exponential function rule that states d/dx(a^x) = (ln a) * (a^x), where ln represents the natural logarithm.
Step 3: Differentiate each term separately using the exponential function rule.
For the first term, 7^(x^2), we have:
d/dx(7^(x^2)) = (ln 7) * (7^(x^2)) * (2x)
For the second term, 2^(2x), we have:
d/dx(2^(2x)) = (ln 2) * (2^(2x)) * (2)
Step 4: Combine the derivatives of each term to find the derivative of the entire function.
h'(x) = (ln 7) * (7^(x^2)) * (2x) + (ln 2) * (2^(2x)) * (2)
This is the derivative of the function h(x) = 7^(x^2) + 2^(2x). It represents the rate of change of the function with respect to x at any given point.
It's important to note that this derivative can be simplified further depending on the specific values of x or if there are any simplification opportunities within the terms.
However, without additional information, the expression provided is the derivative of the function as per the given function form.
In summary, the derivative of the function h(x) = 7^(x^2) + 2^(2x) is h'(x) = (ln 7) * (7^(x^2)) * (2x) + (ln 2) * (2^(2x)) * (2).
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What is the slope of the line represented by the equation y = 4/5x-3
Answer:
To find the slope of a line from its equation, we need to use the slope-intercept form of the equation, y = mx + b, where m is the slope and b is the y-intercept. Since the equation y = 4/5x-3 is already in this form, the slope is m = 4/5.
Step-by-step explanation:
The answer is:
4/5Work/explanation:
The given equation is in y = mx + b form, where m is equal to the slope and b is equal to the y intercept.
So the slope is the number in front of x.
The y intercept is the constant.
Therefore, the slope is 4/51. What is the brown gas (name and formula) that nitric acid reacting with copper produces? 2. How can you tell that the gas produced in #1 makes an acid in water? 3. How many moles of the gas in #1 are produced from 1 mole of copper? 4. What color is a copper(II) nitrate when it is diluted in water?
According to the equation, 2 moles of nitrogen dioxide (NO2) are created for every 3 moles of copper (Cu). When copper(II) nitrate is diluted in water, a blue solution results. The amount of nitrogen dioxide produced by 1 mole of copper is (2/3) moles.
Nitrogen dioxide (NO2) is the brown gas created when nitric acid combines with copper.
Nitrogen dioxide (NO2), the gas created in step one, combines with water to dissolve and create nitric acid (HNO3), which creates an acid in water. Following is the response:
NO2 + H2O HNO3
We must apply the balanced chemical equation to calculate the number of moles of gas that are created from 1 mole of copper.
The reaction between copper and nitric acid can be represented as follows:
3Cu + 8HNO3 ⟶ 3Cu(NO3)2 + 2NO + 4H2O
From the equation, we can see that for every 3 moles of copper (Cu), 2 moles of nitrogen dioxide (NO2) are produced.
Copper(II) nitrate, when diluted in water, forms a blue solution.
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4) A flow of 45 cfs is carried in a rectangular channel 5 ft wide at a depth of 1.1 ft. If the channel is made of smooth concrete (n=0.016), the slope necessary to sustain uniform flow at this depth i
The slope necessary to sustain uniform flow at this depth is most nearly: c) 0.0043.
To determine the slope necessary to sustain uniform flow in the given rectangular channel, we can use Manning's equation, which relates the flow rate, channel geometry, channel roughness, and slope of the channel.
Manning's equation is given as:
Q = (1.49/n) * A * R^(2/3) * S^(1/2)
Where:
Q = Flow rate (cubic feet per second)
n = Manning's roughness coefficient (dimensionless)
A = Cross-sectional area of the channel (square feet)
R = Hydraulic radius (A/P), where P is the wetted perimeter of the channel (feet)
S = Channel slope (feet per foot)
We are given the flow rate (Q) as 45 cfs, the channel width (B) as 5 ft, and the channel depth (D) as 1.1 ft.
First, let's calculate the cross-sectional area (A) of the channel:
A = B * D = 5 ft * 1.1 ft = 5.5 square feet
Next, we need to determine the hydraulic radius (R):
P = 2B + 2D = 2(5 ft) + 2(1.1 ft) = 12.2 ft
R = A / P = 5.5 sq ft / 12.2 ft = 0.45 ft
Now, we can rearrange Manning's equation to solve for the channel slope (S):
S = [(Q * n) / (1.49 * A * R^(2/3))]^2
Plugging in the given values:
S = [(45 cfs * 0.016) / (1.49 * 5.5 sq ft * (0.45 ft)^(2/3))]^2
S ≈ 0.0043 ft/ft
Therefore, the slope necessary to sustain uniform flow at a depth of 1.1 ft in this rectangular channel is approximately 0.0043, which corresponds to option c).
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If the absolute pressure is 237.0kpa and the atmospheric
pressure is 96.0kpa. the the gage pressure. Provide your answer in
three decimal places.
please answer immediately
The gage pressure is 141 kPa when the absolute pressure is 237.0 kPa and the atmospheric pressure is 96.0 kPa.
The gage pressure when the absolute pressure is 237.0 kPa and the atmospheric pressure is 96.0 kPa can be determined by subtracting the atmospheric pressure from the absolute pressure.
Gage pressure is defined as the difference between absolute pressure and atmospheric pressure. It is the pressure measured by a pressure gauge.
In the given situation, gage pressure can be determined as follows:
Gage pressure = Absolute pressure - Atmospheric pressure
Gage pressure = 237.0 kPa - 96.0 kPa
Gage pressure = 141 kPa
Therefore, the gage pressure is 141 kPa.
In conclusion, the gage pressure is 141 kPa when the absolute pressure is 237.0 kPa and the atmospheric pressure is 96.0 kPa.
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Consider the following reversible elementary reaction liquid phase that takes place in a CSTR: 2A <- ->B. The equilibrium constant Kc is 2.1 L/mol at 400 K. Inlet information is: FA0 = 5 mol/min, FB0 = 0.5 mol/min, FI0 = 1 mol/min. HA {TR} = -250 kJ/mol, HB {TR} = -450 kJ/mol, HI {TR} = -1300 kJ/mol, TR = 298.15 K. CpA = 34 J/molK, . CpB = 33 J/molK, . CpI = 30 J/molK. Calculate the adiabatic equilibrium conversion and temperature for this reaction. Evaluate KC and Xe at 400K, 450K and 500K. Use an adiabatic energy balance to calculate Temperature at energy balance at the following conversions: 0, 0.20 and 0.40
The adiabatic equilibrium conversion for the reversible reaction 2A <-> B can be calculated using the equilibrium constant Kc and the inlet information. The equilibrium constant Kc is given as 2.1 L/mol at 400 K.
To calculate the adiabatic equilibrium conversion, we need to determine the extent of the reaction at equilibrium. This can be done by comparing the initial and equilibrium concentrations of the reactants and products. In this case, we have FA0 = 5 mol/min and FB0 = 0.5 mol/min as the initial concentrations, and we need to find the equilibrium concentrations, FAe and FBe.
The equilibrium conversion Xe can be calculated using the equation:
Xe = (FA0 - FAe) / FA0
To find the equilibrium concentrations, we can use the equation:
Kc = (FBe / (FAe)^2)
By rearranging the equation, we can solve for FBe in terms of FAe:
FBe = Kc * (FAe)^2
Substituting the values of Kc and FAe, we can calculate FBe. Then, we can use the equation for Xe to calculate the adiabatic equilibrium conversion.
To calculate the temperature at energy balance, we need to use the adiabatic energy balance equation, which states that the change in enthalpy is equal to zero:
ΔH = ΣνiHi = 0
where ΔH is the change in enthalpy, νi is the stoichiometric coefficient, and Hi is the enthalpy of each species. By substituting the given values, we can solve for the temperature at energy balance. We can repeat this calculation for different conversions (0, 0.20, and 0.40) to find the corresponding temperatures.
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(a) The following statement is either True or False. If the statement is true, provide a proof. If false, construct a specific counterexample to show that the statement is not always true. Let H and K be subspaces of a vector space V, then H∪K is a subspace of V. (b) Let V and W be vector spaces. Let T:V→W be a one-to-one linear transformation, so that an equation T(u)=T(v) alwnys implies u=v. ( 7 points) ) Show that if the set (T(vi),...,T(v.)) is linearly dependent, then the set (V, V.) is linearly dependent as well. Hint: Use part (1).)
a. The statement is false
bi. The kernel of T contains only the zero vector.
bii. If the set (T(vi),...,T(v.)) is linearly dependent, it is true that the set (V, V.) is linearly dependent as well
How to construct a counterexampleTo construct a counterexample
Let V be a vector space over the real numbers, and let H and K be the subspaces of V defined by
H = {(x, 0) : x ∈ R}
K = {(0, y) : y ∈ R}
H consists of all vectors in V whose second coordinate is zero, and K consists of all vectors in V whose first coordinate is zero.
This means that H and K are subspaces of V, since they are closed under addition and scalar multiplication.
However, H ∪ K is not a subspace of V, since it is not closed under addition.
For example, (1, 0) ∈ H and (0, 1) ∈ K, but their sum (1, 1) ∉ H ∪ K.
To show that the kernel of T contains only the zero vector
Suppose that there exists a nonzero vector v in the kernel of T, i.e., T(v) = 0. Since T is a linear transformation, we have
T(0) = T(v - v) = T(v) - T(v) = 0 - 0 = 0
This implies that 0 = T(0) = T(v - v) = T(v) - T(v) = 0 - 0 = 0, which contradicts the assumption that T is one-to-one.
Therefore, the kernel of T contains only the zero vector.
Suppose that the set {T(v1),...,T(vn)} is linearly dependent, i.e., there exist scalars c1,...,cn, not all zero, such that:
[tex]c_1 T(v_1) + ... + c_n T(v_n) = 0[/tex]
Since T is a linear transformation
[tex]T(c_1 v_1 + ... + c_n v_n) = 0[/tex]
Using part (i), since the kernel of T contains only the zero vector, so we must have
[tex]c_1 v_1 + ... + c_n v_n = 0[/tex]
Since the ci are not all zero, this implies that the set {v1,...,vn} is linearly dependent as well.
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Question is incomplete, find the complete question below
a) The following statement is either True or False. If the statement is true, provide a proof. If false, construct
a specific counterexample to show that the statement is not always true. (3 points)
Let H and K be subspaces of a vector space V , then H ∪K is a subspace of V .
(b) Let V and W be vector spaces. Let T : V →W be a one-to-one linear transformation, so that an equation
T(u) = T(v) always implies u = v. (7 points)
(i) Show that the kernel of T contains only the zero vector.
(ii) Show that if the set {T(v1),...,T(vn)} is linearly dependent, then the set {v1,...,vn} is linearly
dependent as well.
Hint: Use part (i).
Q1) 73% of 625 is what number?
73 percent of 625 is approximately 456.
Q1) Calculating the 73% of 625 will give us the number we are looking for.
To find out, we can use the following formula:
% / 100 × Whole Number = Answer
Where: % represents the percentage we want to find. Whole Number represents the whole amount that the percentage is taken from.
Answer represents the result of the percentage calculation.
Therefore, to find out what number is 73% of 625, we can plug in the given values into the formula as follows:
73 / 100 × 625 = Answer
Simplifying this expression gives us:0.73 × 625 = Answer
Multiplying 0.73 and 625 gives us: 455.625 = Answer
Therefore, 73% of 625 is approximately 456.
To sum up, the number we were looking for is approximately 456. This answer was found by using the formula:
% / 100 × Whole Number = Answer.
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(x-3)^2+(y-5)^2=4
What is it’s corresponding center and radius? Need asap
Answer: Centre=(3,5)
Radius = 2
Step-by-step explanation:
By comparing it with the standard form equation of a circle,
[tex](x - h)^2 + (y - k)^2 = r^2[/tex]
therefore the centre of the circle: (h, k) = (3, 5)
radius = [tex]\sqrt[]{r^2}[/tex]
(b) How does reinforced concrete and prestressed concrete overcome the weakness of concrete in tension? You have been assigned by your superior to design a 15 m simply supported bridge beam and he gives you the freedom to choose between reinforced concrete and prestressed concrete. Please make your choice and give justification of your choice.
The technique produces concrete with high tensile strength and is used to build structures with large spans, such as bridges, long beams, and cantilevers.
Reinforced concrete and prestressed concrete are two popular techniques that help overcome the weakness of concrete in tension. Reinforced concrete and prestressed concrete are used to build structures that are both durable and reliable.
Reinforced concrete is made by mixing Portland cement, water, and aggregate. It has excellent compressive strength but weak tensile strength. The tensile strength of reinforced concrete is improved by embedding steel reinforcement rods or bars in it during casting.
The concrete is pre-stressed by tensioning the steel reinforcement rods or tendons before casting. Post-tensioning involves tensioning the tendons after the concrete has hardened.
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From the sample space S={1,2,3,4,…,15} a single number is to be selected at random. Given the following events, find the indicated prohability A. The selected number is even. B. The selected number is a multiple of 4 . C. The sclected number is a prime number: P(C) P(C)= (Simplify your answer. Type an integet of a fraction.)
A. Probability that the selected number is even: 7/15
B. Probability that the selected number is a multiple of 4: 3/15
C. Probability that the selected number is a prime number: 6/15
A. To find the probability that the selected number is even, we need to determine the number of even numbers in the sample space S.
In this case, there are 7 even numbers (2, 4, 6, 8, 10, 12, 14) out of a total of 15 numbers.
Therefore, the probability P(A) is given by:
P(A) = Number of favorable outcomes / Total number of outcomes
P(A) = 7 / 15
B. To find the probability that the selected number is a multiple of 4, we need to determine the number of multiples of 4 in the sample space S.
In this case, there are 3 multiples of 4 (4, 8, 12) out of a total of 15 numbers.
Therefore, the probability P(B) is given by:
P(B) = Number of favorable outcomes / Total number of outcomes
P(B) = 3 / 15
C. To find the probability that the selected number is a prime number, we need to determine the number of prime numbers in the sample space S.
In this case, there are 6 prime numbers (2, 3, 5, 7, 11, 13) out of a total of 15 numbers.
Therefore, the probability P(C) is given by:
P(C) = Number of favorable outcomes / Total number of outcomes
P(C) = 6 / 15
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Question 2 A project has a useful life of 10 years, and no salvage value. The firm uses an interest rate of 12 % to evaluate engineering projects. A project has uncertain first costs and annual
The project has a useful life of 10 years and no salvage value. To evaluate engineering projects, the firm uses an interest rate of 12%. Since the first costs and annual costs of the project are uncertain, it is important to calculate the Net Present Value (NPV) to determine the project's profitability.
To calculate the NPV, we need to discount the future cash flows of the project to their present value. The formula for calculating NPV is:
[tex]NPV = Cash Flow / (1 + r)^t[/tex]
where r is the interest rate and t is the time period. In this case, we need to calculate the NPV for each year of the project's useful life. Since there is no salvage value, the cash flow will be the negative of the annual cost of the project.
Let's say the annual cost is $10,000. We can calculate the NPV for each year using the formula mentioned above. The NPV for year 1 would be:
NPV1 = -$10,000 / (1 + 0.12)^1 = -$8,928.57 (negative because it represents an outgoing cash flow)
Similarly, we can calculate the NPV for each year of the project's useful life. To determine the total NPV, we sum up the NPVs for each year.
By calculating the NPV, we can assess whether the project is financially viable or not. A positive NPV indicates that the project is profitable, while a negative NPV suggests that the project may not be financially feasible.
In summary, to evaluate the profitability of the project with uncertain costs, we need to calculate the NPV by discounting the future cash flows to their present value using the interest rate.
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Two parallel irrigation canals 1000 m apart bounded by a horizontal impervious layer at their beds. Canal A has a water level 6 m higher than canal B. The water level at canal B is 18 m above the canal bed. The formation between the two canals has a permeability of 12 m/day and porosity n=0.2 1- If a non-soluable pollutant is spilled in canal A, the time in years to reach canal B:
The question is about calculating the time required for a non-soluble pollutant that has been spilled into Canal A to reach Canal B. Two parallel irrigation canals, Canal A and Canal B, are separated by 1000 meters and bounded by an impervious layer on their beds.
Canal A has a water level that is 6 meters higher than Canal B. Canal B's water level is 18 meters above the canal bed.
The permeability of the formation between the two canals is 12 m/day, and the porosity is 0.2. To determine the time required for a non-soluble pollutant that has been spilled in Canal A to reach Canal B,
we must first determine the hydraulic conductivity (K) and the hydraulic gradient (I) between the two canals. Hydraulic conductivity can be calculated using Darcy's law, which is as follows: q
=KI An equation for hydraulic gradient is given as:
I=(h1-h2)/L
Where h1 is the water level of Canal A, h2 is the water level of Canal B, and L is the distance between the two canals. So, substituting the given values, we get:
I =(h1-h2)/L
= (6-18)/1000
= -0.012
And substituting the given values in the equation for K, we get: q=KI
Therefore, the velocity of water through the formation is 0.144 m/day,
which means that the time it takes for a non-soluble pollutant to travel from
Canal A to Canal B is:
T=L/v
= 1000/0.144
= 6944 days= 19 years (approx.)
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For the following reaction, 0.478 moles of hydrogen gas are mixed with 0.315 moles of ethylene (C₂H4). hydrogen (g) + ethylene (C₂H₁) (9)→ ethane (C₂H6) (9) What is the formula for the limiting reactant? What is the maximum amount of ethane (C₂H6) that can be produced?
The formula for the limiting reactant is hydrogen gas (H2), and the maximum amount of ethane (C2H6) that can be produced is 0.315 moles.
To determine the limiting reactant and the maximum amount of product that can be formed, we need to compare the moles of each reactant and their stoichiometric ratios in the balanced chemical equation.
The balanced equation for the reaction is:
hydrogen (H2) + ethylene (C2H4) -> ethane (C2H6)
From the given information, we have 0.478 moles of hydrogen gas (H2) and 0.315 moles of ethylene (C2H4).
To find the limiting reactant, we compare the moles of each reactant with their respective stoichiometric coefficients. The stoichiometric coefficient of hydrogen gas is 1, and the stoichiometric coefficient of ethylene is also 1. Since the moles of hydrogen gas (0.478) are greater than the moles of ethylene (0.315), hydrogen gas is in excess and ethylene is the limiting reactant.
The limiting reactant determines the maximum amount of product that can be formed. Since the stoichiometric coefficient of ethane is also 1, the maximum amount of ethane that can be produced is equal to the moles of the limiting reactant, which is 0.315 moles.
Therefore, the formula for the limiting reactant is hydrogen gas (H2), and the maximum amount of ethane (C2H6) that can be produced is 0.315 moles.
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Find the general solution of the differential equation y" + y = 7 sin(2t) + 5t cos(2t). NOTE: Use c₁ and ce for the constants of integration. y(t) =
Find the general solution of the differential equation.
As we know, to solve the differential equation
[tex]y" + y = 7 sin(2t) + 5t cos(2t),[/tex]
We need to find homogeneous and particular solutions.
Homogeneous solution Let's find the characteristic equation of
y" + y = 0
The auxiliary equation is m² + 1 = 0Solving of we get: m = ± i
The homogeneous solution is given by:
yH(t)
= c1 cos(t) + c2 sin(t)
where c1 and c2 are constants of integration. Particular solution For the particular solution, let's use the method of undetermined coefficients.
The general solution is:
[tex]y(t) = yH(t) + yp(t)y(t)\\ = c1 cos(t) + c2 sin(t) - (11/41)sin(2t) - (60/41)t cos(2t) - (15/41)cos(2t) + (7/41)sin(2t)[/tex]
Therefore, the general solution of the given differential equation is:
[tex]y(t) = c1 cos(t) + c2 sin(t) - (4/41)sin(2t) - (60/41)t cos(2t) - (15/41)cos(2t)[/tex]
Answer:
The general solution of the given differential equation is[tex]:
y(t) = c1 cos(t) + c2 sin(t) - (4/41)sin(2t) - (60/41)t cos(2t) - (15/41)cos(2t)[/tex]
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14-
thermodynamics عرصات
A Carnot heat engine is working between two thermal reservoirs of 628.2 C and 211.1 C, what is the Carnot thermal efficiency (96)? OA 86.16 OB. 66.40 C 0.46 D. 46.28 E. 0.66
Carnot thermal efficiency is given by ηcarnot = (T1 - T2)/ T1Where, ηcarnot = Carnot thermal efficiencyT1 = Temperature of the source in KelvinT2 = Temperature of the sink in Kelvin.
Given that, The temperatures of the source and the sink are given asT1 = 628.2 C = 901.35 KT2 = 211.1 C = 484.25 K.
Now, Substituting the given values in the above formula,
ηcarnot = (T1 - T2)/ T1= (901.35 - 484.25) / 901.35= 46.27%.
Therefore, the Carnot thermal efficiency is 46.27%.
We are given the temperatures of the source and the sink, to calculate the Carnot thermal efficiency. The Carnot thermal efficiency is the maximum possible efficiency of a heat engine. It is based on the concept of reversible engines, where the engine can perform work without any loss of energy. The Carnot cycle is a hypothetical cycle that serves as the upper limit of a heat engine's efficiency.
It consists of four stages, two adiabatic processes, and two isothermal processes. The Carnot cycle is a reversible cycle that can be executed in both directions.
The Carnot cycle efficiency is given by ηcarnot = (T1 - T2)/ T1. Here, T1 and T2 are the temperatures of the source and the sink in Kelvin, respectively.
Using this formula, we can calculate the Carnot thermal efficiency.
Substituting the given values, we get ηcarnot = (901.35 - 484.25) / 901.35 = 46.27%.
The Carnot thermal efficiency of a heat engine working between two thermal reservoirs of 628.2 C and 211.1 C is 46.27%.
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Let u= (0, 1, 2) and v = (2, 1, -1) be vectors in R3.
Part(a) [3 points] If P(5, 6, 7) is the terminal point of the vector 2u, then what is its initial point? Show your work.Part(b) [4 points] Find ||u||2v - (v. Part(c) [4 points] Find vectors x and y in R3 such that u = x + y where x is parallel to v and y is orthogonal to V. Hint: Consider orthogonal projection
a). The initial point of the vector 2u is (5, 4, 3).
b). ||u||²v - (v) = (8, 4, -4).
c). x = (-1/3, -1/6, 1/6) and y = (1/3, 7/6, 11/6) satisfy the conditions u = x + y,
Part (a):
To find the initial point of the vector 2u, we need to subtract 2u from the terminal point P(5, 6, 7).
Initial point = P - 2u
P(5, 6, 7) - 2u = (5, 6, 7) - 2(0, 1, 2)
= (5, 6, 7) - (0, 2, 4)
= (5 - 0, 6 - 2, 7 - 4)
= (5, 4, 3)
Therefore, the initial point of the vector 2u is (5, 4, 3).
Part (b):
To find ||u||²v - (v), we first need to compute ||u||^2 and then multiply it by v, and finally subtract v from the result.
||u||² = (0)² + (1)² + (2)²
= 0 + 1 + 4
= 5
||u||²v = 5(2, 1, -1)
= (10, 5, -5)
||u||²v - (v) = (10, 5, -5) - (2, 1, -1)
= (10 - 2, 5 - 1, -5 + 1)
= (8, 4, -4)
Therefore, ||u||²v - (v) = (8, 4, -4).
Part (c):
To find vectors x and y such that u = x + y, where x is parallel to v and y is orthogonal to v, we can use the concept of orthogonal projection.
The vector x parallel to v can be obtained by projecting u onto the direction of v. The projection of u onto v is given by:
proj_v(u) = (u · v) / ||v||² * v
where · denotes the dot product.
Let's calculate the projection of u onto v:
(u · v) = (0)(2) + (1)(1) + (2)(-1)
= 0 + 1 - 2
= -1
||v||² = (2)² + (1)² + (-1)²
= 4 + 1 + 1
= 6
proj_v(u) = (-1) / 6 * (2, 1, -1)
= (-1/6)(2, 1, -1)
= (-1/3, -1/6, 1/6)
So, x = proj_v(u) = (-1/3, -1/6, 1/6).
Now, to find y, which is orthogonal to v, we can subtract x from u:
y = u - x
= (0, 1, 2) - (-1/3, -1/6, 1/6)
= (0 + 1/3, 1 + 1/6, 2 - 1/6)
= (1/3, 7/6, 11/6)
Therefore, x = (-1/3, -1/6, 1/6) and y = (1/3, 7/6, 11/6) satisfy the conditions u = x + y,
where x is parallel to v and y is orthogonal to v.
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The initial point of the vector 2u is (5, 4, 3). A vector orthogonal to v is (0, -1, -1). The orthogonal projection of u onto v is (12, 9, 0).
(a) The initial point of the vector 2u can be found by subtracting 2u from the terminal point P(5, 6, 7). Since u = (0, 1, 2), we have 2u = 2(0, 1, 2) = (0, 2, 4). Therefore, the initial point is obtained by subtracting (0, 2, 4) from P(5, 6, 7), giving us:
Initial point = P - 2u = (5, 6, 7) - (0, 2, 4) = (5, 6, 7) - (0, 2, 4) = (5, 4, 3).
(b) To find a vector orthogonal to v, we can take the cross product of v with any other vector. Let's choose the standard unit vector i = (1, 0, 0). Taking the cross product, we have:
v x i = (2, 1, -1) x (1, 0, 0) = (0(-1) - 0(1), -(2(0) - 1(1)), 2(0) - 1(1)) = (0, -1, -1).
Therefore, (0, -1, -1) is a vector orthogonal to v.
(c) The expression ||u||²v - (v · u)u represents the orthogonal projection of u onto the vector v. Let's compute it:
||u||²v = (0² + 1² + 2²)(2, 1, -1) = (1 + 1 + 4)(2, 1, -1) = (6)(2, 1, -1) = (12, 6, -6).
(v · u)u = (2, 1, -1) · (0, 1, 2)(0, 1, 2) = (0(2) + 1(1) + 2(-1))(0, 1, 2) = (0 - 1 - 2)(0, 1, 2) = (-3)(0, 1, 2) = (0, -3, -6).
Therefore, ||u||²v - (v · u)u = (12, 6, -6) - (0, -3, -6) = (12, 6, -6) + (0, 3, 6) = (12, 9, 0).
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