5.3 Equations

Siyavula textbooks: grade 11 Page 1 / 4

Solving trigonometric equations

In Grade 10 and 11 we focussed on the solution of algebraic equations and excluded equations that dealt with trigonometric functions (i.e. $sin$ and $cos$ ). In this section, the solution of trigonometric equations will be discussed.

The methods described in previous Grades also apply here. In most cases, trigonometric identities will be used to simplify equations, before finding the final solution. The final solution can be found either graphically or using inverse trigonometric functions.

Graphical solution

As an example, to introduce the methods of solving trigonometric equations, consider

sin θ = 0, 5

As explained in previous Grades,the solution of Equation [link] is obtained by examining the intersecting points of the graphs of:

\begin{matrix} y & = & sin θ \\ y & = & 0, 5 \end{matrix}

Both graphs, for $- 720^{\circ} < θ < 720^{\circ}$ , are shown in [link] and the intersection points of the graphs are shown by the dots.

Plot of $y = sin θ$ and $y = 0, 5$ showing the points of intersection, hence the solutions to the equation $sin θ = 0, 5$ .

In the domain for $θ$ of $- 720^{\circ} < θ < 720^{\circ}$ , there are 8 possible solutions for the equation $sin θ = 0, 5$ . These are $θ = [- 690^{\circ}, - 570^{\circ}, - 330^{\circ}, - 210^{\circ}, 30^{\circ}, 150^{\circ}, 390^{\circ}, 510^{\circ}]$

Find $θ$ , if $tan θ + 0, 5 = 1, 5$ , with $0^{\circ} < θ < 90^{\circ}$ . Determine the solution graphically.

Write the equation so that all the terms with the unknown quantity (i.e. $θ$ ) are on one side of the equation.
$\begin{matrix} tan θ + 0, 5 & = & 1, 5 \\ tan θ & = & 1 \end{matrix}$
Identify the two functions which are intersecting.
$\begin{matrix} y & = & tan θ \\ y & = & 1 \end{matrix}$
Draw graphs of both functions, over the required domain and identify the intersection point.

The graphs intersect at $θ = 45^{\circ} .$

Algebraic solution

The inverse trigonometric functions $arcsin$ , $arccos$ and $arctan$ can also be used to solve trigonometric equations. These may be shown as second functions on your calculator: sin $^{- 1}$ , cos $^{- 1}$ and tan $^{- 1}$ .

Using inverse trigonometric functions, the equation

sin θ = 0, 5

is solved as

\begin{matrix} sin θ & = & 0, 5 \\ ∴ θ & = & arcsin 0, 5 \\ = & 30^{\circ} \end{matrix}

Find $θ$ , if $tan θ + 0, 5 = 1, 5$ , with $0^{\circ} < θ < 90^{\circ}$ . Determine the solution using inverse trigonometric functions.

Write the equation so that all the terms with the unknown quantity (i.e. $θ$ ) are on one side of the equation. Then solve for the angle using the inverse function.
$\begin{matrix} tan θ + 0, 5 & = & 1, 5 \\ tan θ & = & 1 \\ ∴ θ & = & arctan 1 \\ = & 45^{\circ} \end{matrix}$

Trigonometric equations often look very simple. Consider solving the equation $sin θ = 0, 7$ . We can take the inverse sine of both sides to find that $θ = {sin}^{- 1} (0, 7)$ . If we put this into a calculator we find that ${sin}^{- 1} (0, 7) = 44, 42^{\circ}$ . This is true, however, it does not tell the whole story.

The sine graph. The dotted line represents $y = 0, 7$ . There are four points of intersection on this interval, thus four solutions to $sin θ = 0, 7$ .

As you can see from [link] , there are four possible angles with a sine of $0, 7$ between $- 360^{\circ}$ and $360^{\circ}$ . If we were to extend the range of the sine graph to infinity we would in fact see that there are an infinite number of solutions to this equation! This difficulty (which is caused by the periodicity of the sine function) makes solving trigonometric equations much harder than they may seem to be.

Any problem on trigonometric equations will require two pieces of information to solve. The first is the equation itself and the second is the range in which your answers must lie. The hard part is making sure you find all of the possible answers within the range. Your calculator will always give you the smallest answer ( i.e. the one that lies between $- 90^{\circ}$ and $90^{\circ}$ for tangent and sine and one between $0^{\circ}$ and $180^{\circ}$ for cosine). Bearing this in mind we can already solve trigonometric equations within these ranges.

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Source: OpenStax, Siyavula textbooks: grade 11 maths. OpenStax CNX. Aug 03, 2011 Download for free at http://cnx.org/content/col11243/1.3

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