Given Equation

V =aS/b + S + S²/c

Given constants:

• a = 4
• b = 1
• c = 9

Substituting values:

V(S) =4S/1 + S + S²/9

Step 1: Simplify the Expression

Multiply numerator and denominator by 9 to remove the fraction:

V(S) =36S/9 + 9S + S²

Step 2: Differentiate V(S)

Let:

• f(S) = 36S
• g(S) = S² + 9S + 9

Using the quotient rule:

dV/dS =f′(S)g(S) − f(S)g′(S)/g(S)²

dV/dS = 36(S² + 9S + 9) − 36S(2S + 9)/(S² + 9S + 9)²

Step 3: Simplify the Numerator

36(S² + 9S + 9) = 36S² + 324S + 324

36S(2S + 9) = 72S² + 324S

Subtracting:

(36S² + 324S + 324) − (72S² + 324S) = −36S² + 324

Therefore:

dV/dS = 324 − 36S²/ (S² + 9S + 9)²

Step 4: Find the Maximum

For maximum V, set the numerator equal to zero:

324 − 36S² = 0

36S² = 324

S² = 9

S = ±3

Step 5: Select the Physical Solution

Since substrate concentration cannot be negative:

S = 3

Final Answer

S = 3

Explanation of Possible Distractors

Conclusion

The equation
V = aS / (b + S + S²/c)
reaches its maximum value at
S = 3
for a = 4, b = 1, and c = 9.