Applications of Trigonometry in Real Life

Trigonometry has a lot of real-life applications of trigonometry, such as in astronomy, to calculate the distance between planets and stars. Other than that, one application of trigonometry is the calculation of the height and distance of various objects in the real world.

Before understanding the application of Trigonometry, we need to understand some basic terms, such as

• Line of Sight
• Angle of Elevation
• Angle of Depression

Line of Sight

Consider a person looking at the top of the light tower, as in the figure: the line drawn from the eye of the boy to the top of the tower is called a Line of Sight. 

Angle of Elevation

Consider a person looking at the top of the light tower as in the below figure.

The angle between the line of sight and the horizontal level at the eye of the boy, ΔCDA or ∠D, is called the angle of elevation. 

When we measure the angle of elevation, the observer should raise their head and look above the horizontal level.

Here, if one wants to calculate the height of the tower without actually measuring it, then what and how much information is required?

The following detail is necessary to find out the height of the tower without measuring it:

1. Distance, AB or CD, between the tower and the point where the boy is standing.
2. The angle of elevation, ∠EDC, of the top of the tower.
3. The height of the boy DA.

In ΔCDE, the known ∠D is the opposite of the side CE, and the side CD. So here is the trigonometry ratio that can be used to apply all these three quantities. Determine tan D or cot D as their ratio involves CD and CE.

Angle of Depression

Now consider a situation as in the given figure 4: a person is looking towards a ball from a balcony. Its line of sight is below the horizontal level. The angle between the line of sight and the horizontal level is called the angle of depression.

Thus, the angle of depression of the point on the object is the angle between the horizontal level and line of sight when the point is below the horizontal level.

In the above figure, the person at point C is looking towards the ball at B. CB is the line of sight, and AC is the height of the balcony.

In ΔBCD, ∠BCD is the angle of depression of point B. Here is the height of the balcony AC = BD and the distance of the ball from the ground foot of the building AB = CD. According to the given data, the trigonometry ratio can be used, as it can involve both known and unknown quantities.

Real-Life Applications of Trigonometry

There are various applications of trigonometry, and some of the common applications of trigonometry are the following:

Trigonometry to Measure Height

The basic use or application of trigonometry is the measure of height. We use the concept of trigonometry to measure the height and distance between two objects by measuring the angles between these objects.

We can easily find the height of an object if we know the distance between any point and the foot of the building and the angle of elevation or the depression of that point from the building.

Trigonometry in Aviation

We use trigonometry in aviation for measuring the height and speed of any flying objects such as Airplanes and missiles.

The exact position of the airplane and other flying objects can be measured if we are given its height and the angle of elevation.

Trigonometry in Navigation

Trigonometry is widely used in the navigation of ships, and others can easily find the position of our ship in the ocean with the help of stars and the knowledge of trigonometry and angles.

Trigonometry in Astronomy

Trigonometry is widely used in astronomy to find the distances and positions of the stars and other heavenly bodies.

We can measure the angle of various heavenly bodies from the Earth by knowing the time taken by the light from that body to reach the Earth's surface and the speed of light; we can find its position in space using trigonometry.

Other Uses of Trigonometry

The other uses of trigonometry are discussed below.

• It is used in criminology to study crime scenes, such as determining the path of bullets or crime scene reconstruction.
• It is used by marine biologists to study the depth of oceans using echo sounding or triangulation.
• It is used to study waves and their properties, as waves in mathematics can be represented using sine or cosine functions.

Related Articles:

• Real-Life Applications of Sine and Cosine Functions
• Real-life Applications of Angles
• Real-Life Applications of Triangles

Solved Examples

Problem 1: A pole stands vertically on the plane. From a point on the plane, which is 12 m away from the foot of the pole, the angle of elevation of the top of the pole is 30°. Find the height of the pole.

Solution: 

First, draw a simple diagram of the given problem as below:

In this figure, BC represents the height of the electric pole and ∠CAB or ∠A represents the angle of the elevation of the top of the tower. In ΔABC, ∠CAB is the right angle and AB = 12 m. In ΔABC, CB is needed to be determined i.e. the height of the pole.

To solve the given problem, use trigonometry ratio tan A or cot A as they involve given sides in ratios.

Now,  \tan A = \dfrac{CB}{AB}

\Rightarrow \tan 30^{\degree}=\dfrac{CB}{12}
\begin{aligned}\Rightarrow CB&=12\tan30^{\degree}\\ \Rightarrow CB &=4\sqrt{3}\text{ m}\end{aligned}

Hence, the height of the pole is 4√3.

Problem 2: The angle of elevation of the bird, who was sitting on a tree, from a point on the ground, which is 60 m away from the foot of the tree, is 60°. Find the height of the tree. (Take √3 = 1.73).

Solution: 

First draw a simple diagram of the given problem as below:

In above figure, AB represents the distance between the ground point and foot of the tree, i.e. 60 m. BC is the height of the tree, let’s assume h.

In ΔABC, ∠ABC is the right angle, and the angle of the elevation is ∠B i.e. 60°. 

Using trigonometry ratio tan A,

\tan A = \dfrac{BC}{AB}
\begin{aligned}\Rightarrow \tan 60{\degree}&=\dfrac{h}{60}\\ \Rightarrow h&=60\sqrt{3}\text{ m}\\\Rightarrow h &=103.8\text{ m}\end{aligned}     

Hence, the height of the tree is 103.8 m.

Problem 3: The angle of depression of a bike, standing in a park, from the top of a 45 m high building is 30°. What is the distance of the bike from the base of the building (in m)? 

Solution:

Below is a simple diagram of the given problem.

In above figure, AB represents the distance between the base of the building and the bike. AC is the height of the building, i.e. 45 m.

In ΔBCD, ∠BCD is the right angle and the angle of the depression is ∠C i.e. 30°. Using trigonometry ratio tan C in ΔBCD.

\tan C = \dfrac{BD}{CD}

Here AC = BD and AB = CD.
\begin{aligned}\tan 30{\degree}&=\dfrac{45\text{ m}}{AB}\\ \Rightarrow AB&=45\sqrt{3}\text{ m}\\\Rightarrow AB&=77.85\text{ m}\end{aligned}

Hence, the distance between the base of building and the bike is 77.85 m.

Problem 4: Consider the following diagram:

If √ACB is the right angle, find AB and CD (Take √3 = 1.73).

Solution:

In ΔACD, use the trigonometry ratio sin A,

 \sin A = \dfrac{CD}{AD}
\begin{aligned}\Rightarrow & \sin 30{\degree}=\dfrac{CD}{5}\\ \Rightarrow &\dfrac{1}{2}=\dfrac{CD}{5}\\ \Rightarrow& CD=2.5 \text{ m}\end{aligned}

And,

\cos A = \dfrac{AC}{AD}

\begin{aligned}\Rightarrow \cos 30{\degree}&=\dfrac{AC}{5}\\ \Rightarrow \dfrac{\sqrt{3}}{2}&=\dfrac{AC}{5}\\ \Rightarrow AC&=4.33\text{ m}\end{aligned}

In ΔBCD, use the trigonometry ratio \tan B             ,

 \tan B = \dfrac{CD}{BC}
\begin{aligned}\tan45{\degree}&=\dfrac{CD}{BC}\\ \Rightarrow 1&=\dfrac{CD}{BC}\end{aligned}
⇒ BC = CD = 2.5 m

From the given figure:

AC = AB + BC
⇒ AB = 4.33 m – 2.5 m 
⇒ AB =1.83 m

Hence, AB = 1.83 m and CD = 2.5 m.

Problem 5: An electrician needs to repair an electric fault to solve the power supply issue in a village. The height of the electric pole, on which the fault exists, is 7 m. He wants to reach a point below 1.5 m from the top of the pole to repair the fault. What length of ladder should he use to reach the required position if the ladder is inclined at 60° to the horizontal? Also, find how far the ladder should be placed from the foot of the pole (Take √3 = 1.73).

Solution:

First, Draw a basic diagram of the given problem as below:

In this figure, BC is the ladder, AD is the total length of the pole, Point C is the where electrician wants to reach.

As given CD = 1.5 m and AD = 7 m.

Therefore,   

AC = AD – CD
⇒ AC = 7 – 1.5 m
⇒ AC = 5.5 m

In ΔABC, ∠B is 60° and ∠A is right angle,

\sin B=\dfrac{AC}{BC}

\begin{aligned}\Rightarrow \sin 60{\degree}&=\dfrac{5.5}{BC}\\\Rightarrow BC&=5.5\times\dfrac{4}{\sqrt{3}}\\\Rightarrow BC&=12.71 \text{ m}\end{aligned}

And, in ΔABC,

\tan B=\dfrac{AC}{AB}
\begin{aligned}\tan 60{\degree}&=\dfrac{5.5}{AB}\\AB&=\dfrac{5.5}{\sqrt{3}}\\&=3.17 \text{m}\end{aligned}

Hence, the length of the ladder BC is 12.71 m and the distance between ladder and foot of the pole AB is 3.17 m.

Problem 6: A 1.5 m tall boy is looking toward two buildings. Both buildings have a height of 12 m. The elevation angles of the tops of the buildings are 45° and 60°. Find the distance between the two buildings and the distance of the boy from the near building.

Solution:

A simple diagram of the given problem is drawn below

In the above figure, CB and GH represent the two buildings, CG is the distance between the two buildings, CD and GD is the distance between the boy and foot of the buildings of EB and FH respectively.

In ΔCDE and ΔFDG,

EC = FG = EB – AD    (Since, AD = CB = GH)
⇒ EC = FG = 12 m – 1.5 m
⇒ EC = FG = 10.5 m

In ΔCDE, ∠CDE is equal to 60\degreeand ∠DCE is the right angle.

\tan D=\dfrac{EC}{CD}
\begin{aligned}\Rightarrow \tan60{\degree}&=\dfrac{10.5}{CD}\\\Rightarrow CD&=\dfrac{10.5}{\sqrt{3}}\end{aligned}
\begin{aligned}\Rightarrow \tan60{\degree}&=\dfrac{10.5}{CD}\\\Rightarrow CD&=\dfrac{10.5}{\sqrt{3}}\\\Rightarrow CD&=6.07\text{ m}\end{aligned}

In ΔFDG, ∠FDG is 45{\degree}  and ∠FGD is right angle.

\tan D = \dfrac{FG}{GD}
\begin{aligned}\Rightarrow \tan45{\degree}&=\dfrac{10.5}{GD}\\\Rightarrow GD&=10.5\text{ m}\end{aligned}

The distance between the buildings is:                  

CG = GD – CD
⇒ CG = 10.5 m – 6.07 m
⇒ CG = 4.43 m

Hence, the distance between the buildings CG is 4.43 m and the distance between the boy and the foot of the near building CD is 6.07 m.

Problem 7: The angle of elevation of a cloud from a point, which is somewhere on the surface of the water of a lake, is 30°. The angle of depression of the shadow of a cloud in the water of the lake from the same point is 60°. If the height of the cloud is 75 m, then find the depth of the shadow. (Take √3 = 1.73).

Solution:

First, draw a basic diagram of the given problem as below:

In this figure, AB is the water surface of the lake. Points C and D represent the cloud and its shadow respectively. ∠ABC and ∠ABD are the right angles. BC is the height of the cloud, i.e. 75 m and BD is the depth of the shadow. ∠BAC and ∠BAD are the angle of elevation and the angle of the depression, i.e. 30° and 60°.

In ΔABC,

\tan A = \dfrac{BC}{AB}
\begin{aligned}\Rightarrow \tan 30{\degree}&=\dfrac{75}{AB}\\\Rightarrow AB&=75\sqrt{3}\text{ m}\\\Rightarrow AB&=129.75 \text{ m}\end{aligned}

Now in ΔABD,

\tan A = \dfrac{BC}{AB}
\begin{aligned}\Rightarrow \tan60{\degree}&=\dfrac{BD}{AB}\\\Rightarrow BD&=AB\sqrt{3}\text{ m}\\\Rightarrow BD&=224.46\text{ m}\end{aligned}

Hence, the depth of the shadow is 224.46 m.

Problem 8: A boy sees two clouds from a certain point. The angles of the elevation of the clouds are 30° and 45°. If the height of the clouds from the ground surface is the same and the distance between the clouds is 300 m, then find out the height of the cloud.

Solution: 

First, draw a simple diagram of the given problem as below.

In this figure, CE and BD represents the height of the clouds and ∠DAB and ∠EAC represents the angle of the elevation of the clouds at point A. In ΔABD, ∠DBA is the right angle, if the height of cloud BD is h then using trigonometry ratio tan A

\tan A=\dfrac{BD}{AB}
\Rightarrow \tan 45^{\degree}=\dfrac{h}{AB}

⇒ AB = h      (Since, tan 45° = 1)

In ΔACE, ∠ACE is the right angle, if the height of cloud CE is h then using trigonometry ratio as:

\tan A = \dfrac{CE}{AC}
\Rightarrow \tan30^{\degree} = \dfrac{h}{AC}
\begin{aligned}\Rightarrow \dfrac{1}{\sqrt{3}}&=\dfrac{h}{AC}\\\Rightarrow AC&=h\sqrt{3}\end{aligned}
⇒  AC = h√3

From the above figure 4,

AC = AB + BC

Given: BC = 300.

Therefore, h√3 = h + 300

\begin{aligned}\Rightarrow h&=\frac{300}{\sqrt{3}-1}\\ \Rightarrow h&=410.96\text{ m}\end{aligned}              

Hence, the height of the cloud is 410.96 m.