Unizor - Function Limits - Standard Problems

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Function Limit - Standard Problems

Problem 1

Consider a function defined for all real arguments x and δ:
f(x) = [(x+δ)²−x²] / δ
Assume that variable x is fixed, while variable δ converges to 0.
Prove that this function has a limit for δ→0 and that this limit equals to 2x.

Solution

[(x+δ)²−x²] / δ =
= (x+δ−x)·(x+δ+x) / δ =
= δ·(2x+δ) / δ =
= 2x+δ
which converges to 2x as δ→0

Problem 2

Consider a function defined for all real arguments x and δ:
f(x) = [(x+δ)^n−x^n] / δ
Assume that variable x is fixed, while variable δ converges to 0.
Prove that this function has a limit for δ→0 and that this limit equals to n·x^(n−1).

Solution

[(x+δ)^n−x^n] / δ =
= (x+δ−x)·[Σj∈[0,n−1](x+δ)^(n−1−j)(x)^j] / δ =
= Σj∈[0,n−1](x+δ)^(n−1−j)·(x)^j
which converges to
= Σj∈[0,n−1](x)^(n−1−j)·(x)^j = n·x^(n−1)

Problem 3

For this problem you will need a theorem proven in the Trigonometry chapter (see lecture Geometry with Trigonometry - Lim sin(x)/x) that states that
sin(δ)/δ→1 if δ→0.

Consider a function defined for all real arguments x and δ:
f(x) = [sin(x+δ)−sin(x)] / δ
Assume that variable x is fixed, while variable δ converges to 0.
Prove that this function has a limit for δ→0 and that this limit equals to cos(x).

Solution

f(x) = [sin(x+δ)−sin(x)] / δ =
= (1/δ)[sin(x)cos(δ) + cos(x)sin(δ)−sin(x)] =
= cos(x)·[sin(δ)/δ] − sin(x)·[1−cos(δ)]/δ

As we know, if δ→0,
sin(δ)/δ→1.
Therefore, the first component of the above expression is converging as follows
cos(x)·[sin(δ)/δ]→cos(x)

Considering
1−cos(δ) = 2sin²(δ/2),
we can write the following expressions:
[1−cos(δ)]/δ = 2sin²(δ/2)/δ = sin(δ/2)·[sin(δ/2)/(δ/2)]

The product of infinitesimal function sin(δ/2) (as δ→0) and a function sin(δ/2)/(δ/2) converging to 1 results in infinitesimal function.

Therefore,
sin(x)·[1−cos(δ)]/δ
is infinitesimal as δ→0 and our original function converges to cos(x)

Problem 4

Consider a function defined for all real arguments x and δ:
f(x) = [cos(x+δ)−cos(x)] / δ
Assume that variable x is fixed, while variable δ converges to 0.
Prove that this function has a limit for δ→0 and that this limit equals to −sin(x).

Solution

f(x) = [cos(x+δ)−cos(x)] / δ =
= (1/δ)[cos(x)cos(δ) −
− sin(x)sin(δ)−cos(x)] =
= −sin(x)·[sin(δ)/δ] −
− cos(x)·[1−cos(δ)]/δ

As we know, if δ→0,
sin(δ)/δ→1.
Therefore, the first component of the above expression is converging as follows
−sin(x)·[sin(δ)/δ]→−sin(x)

Considering
1−cos(δ) = 2sin²(δ/2),
we can write the following expressions:
[1−cos(δ)]/δ = 2sin²(δ/2)/δ =
= sin(δ/2)·[sin(δ/2)/(δ/2)]

The product of infinitesimal function sin(δ/2) (as δ→0) and a function sin(δ/2)/(δ/2) converging to 1 results in infinitesimal function.

Therefore,
cos(x)·[1−cos(δ)]/δ
is infinitesimal as δ→0 and our original function converges to −sin(x).

Problem 5

Consider a function defined for all non-negative arguments x and δ:
f(x) = [√(x+δ)−√x] / δ
Assume that variable x is fixed, while variable δ converges to 0.
Prove that this function has a limit for δ→0 and that this limit equals to 1/(2√x).

Solution

Multiply numerator and denominator of the original function by [√(x+δ)+√x].
The numerator will become [(x+δ)−x]=δ and it can be canceled with δ in denominator.
The result is
1 / [√(x+δ)+√x],
which converges to 1/(2√x) as δ→0.