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Stuff for OCC Math 1740
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Reciprocal Identities
Reciprocal Identities
Reciprocal Identities
Reciprocal Identities
Reciprocal Identities
Reciprocal Identities
Quotient Identities
Quotient Identities
Pythagorean Identities
Pythagorean Identities
Pythagorean Identities
Pythagorean Identities
Pythagorean Identities
Pythagorean Identities
Pythagorean Identities
Pythagorean Identities
Pythagorean Identities
Pythagorean Identities
Pythagorean Identities
Pythagorean Identities
Pythagorean Identities
Pythagorean Identities
Pythagorean Identities
Pythagorean Identities
Pythagorean Identities
Pythagorean Identities
Double Angle Identities
Double Angle Identities
Double Angle Identities
Double Angle Identities
Double Angle Identities
Double Angle Identities
Half Angle Identities
Half Angle Identities
Half Angle Identities
Half Angle Identities
Trig Substitution x=
Trig Substitution
Trig Substitution sqrt(a²-x²)=
Trig Substitution
Trig Substitution dx=
Trig Substitution
Trig Substitution x=
Trig Substitution
Trig Substitution sqrt(a²+x²)=
Trig Substitution
Trig Substitution dx=
Trig Substitution
Trig Substitution x=
Trig Substitution
Trig Substitution sqrt(x²-a²)=
Trig Substitution
Trig Substitution dx=
Trig Substitution
Trapezoidal Rule
Simpsons Rule
Partial Fractions
Partial Fractions
Partial Fractions
Partial Fractions
Partial Fractions
Partial Fractions
Partial Fractions
Partial Fractions
Partial Fractions
Partial Fractions
Weight Density of Water
62.5 lbs/ft³
Washer Method for Volume
Disc Method for Volume
Shell Method
Comparing Volume Methods
Error for Midpoint Method
Error Bound for Trapezoidal Rule
Error Bound for Simpsons Rule
Work (Standard) =
Work = F (Force) *D (Distance) (W=F(x)dx)
Force (Standard) =
Force = M (Mass) * G (Acceleration)
Force (Spring) =
Force (Spring) = k (Spring Constant)* X (Distance between Natural Length and End Length)
Force (Weight) =
Force (Weight) = W (Weight Density) * X (Amount: Feet, Feet² …) Basically KX K=lbs/ft, lbs/ft² … * Amount
Work (Pumping Liquid) =
Work (Pumping Liquid) = (p(density) * g (acceleration)) (integral(a to b) V (Volume) * D(displacement) (both as a function of x) dx)