🏠 Home › 📚 CSEC Mathematics › ↗️ Magnitude & Direction of Vectors

Magnitude and Direction of Vectors

CSEC Mathematics: The Size and Angle of Movement

Essential Understanding: Every vector has two fundamental properties: its magnitude (how long it is) and its direction (where it points). These properties turn abstract numbers into meaningful physical quantities like velocity, force, and displacement.

🔑 Key Skill: \(|\vec{v}| = \sqrt{x^2 + y^2}\)

📈 Exam Focus: \(\theta = \tan^{-1}(y/x)\) with Quadrant Adjustment

🎯 Problem Solving: Physics Applications (Velocity, Force)

1. The Vector as a Triangle

The most important shift for a student is to stop seeing a vector \(\mathbf{v} = \begin{pmatrix} x \\ y \end{pmatrix}\) as a single line and start seeing it as a right-angled triangle where:

←

Horizontal Component (\(x\))

The base of the triangle. This is how far the vector moves horizontally.

Positive: Rightward movement

Negative: Leftward movement

↑

Vertical Component (\(y\))

The height of the triangle. This is how far the vector moves vertically.

Positive: Upward movement

Negative: Downward movement

↗

The Vector Itself

The hypotenuse of the triangle. This is the actual path of the vector.

Magnitude: Length of the hypotenuse

Direction: Angle of the hypotenuse

Visual Representation

Every vector \(\begin{pmatrix} x \\ y \end{pmatrix}\) can be drawn as a right-angled triangle:

\(x\)

\(y\)

\(\vec{v}\)

\(θ\)

2. Calculating Magnitude (Size)

The magnitude of a vector is its length. In CSEC notation, the magnitude of vector \(\mathbf{u}\) is written as \(|\mathbf{u}|\).

The Pythagorean Formula

Derived directly from Pythagoras' Theorem (\(a^2 + b^2 = c^2\)):

\[ |\mathbf{u}| = \sqrt{x^2 + y^2} \]

Key Tip: Even if the components are negative (e.g., \(-3\)), the magnitude is always positive because squaring a negative number results in a positive value (\((-3)^2 = 9\)).

Square each component: Calculate \(x^2\) and \(y^2\).

Add the squares: \(x^2 + y^2\).

Take the square root: \(\sqrt{x^2 + y^2}\).

Include units: If \(x\) and \(y\) are in meters, magnitude is in meters.

3. Calculating Direction (Angle)

The direction of a vector is the angle \(\theta\) it makes with the positive \(x\)-axis.

The Tangent Formula

We use the Tangent ratio because we already know the opposite (\(y\)) and adjacent (\(x\)) sides:

                \[ \tan \theta = \left( \frac{y}{x} \right) \implies \theta = \tan^{-1} \left( \frac{y}{x} \right) \]
            

Quadrant Awareness

Students must be taught to check their graph. The calculator's \(\tan^{-1}\) function only gives answers between \(-90^\circ\) and \(90^\circ\). You must adjust based on the quadrant:

Quadrant I

\(x > 0\), \(y > 0\)

\(\theta = \tan^{-1}(y/x)\)

\(0^\circ < \theta < 90^\circ\)

Quadrant II

\(x < 0\), \(y > 0\)

\(\theta = 180^\circ + \tan^{-1}(y/x)\)

\(90^\circ < \theta < 180^\circ\)

Quadrant III

\(x < 0\), \(y < 0\)

\(\theta = 180^\circ + \tan^{-1}(y/x)\)

\(180^\circ < \theta < 270^\circ\)

Quadrant IV

\(x > 0\), \(y < 0\)

\(\theta = 360^\circ + \tan^{-1}(y/x)\)

\(270^\circ < \theta < 360^\circ\)

Memory Trick: "All Students Take Calculus" - starting from Quadrant I and moving counterclockwise:

All (All trig functions positive in Quadrant I)

Students (Sine positive in Quadrant II)

Take (Tangent positive in Quadrant III)

Calculus (Cosine positive in Quadrant IV)

4. Interactive "Magnitude & Angle" Lab

🔬

Explore Vector Components

Objective: Adjust the \(x\) and \(y\) components using the sliders. Watch how the vector's magnitude and direction change in real-time.

Horizontal (x): 5.0

Vertical (y): 3.0

Vector Components

\(\begin{pmatrix} 5.0 \\ 3.0 \end{pmatrix}\)

Magnitude (\(|\vec{v}|\))

5.83 units

\(\sqrt{5.0^2 + 3.0^2} = \sqrt{34.0} = 5.83\)

Direction (\(\theta\))

30.96°

\(\tan^{-1}(3.0/5.0) = 30.96^\circ\)

Current Quadrant

Quadrant I

Both x and y are positive. Angle = calculator result.

5. Unit Vectors and Standard Directions

Briefly introduce the concept of "Unit Direction" - vectors with magnitude 1 that point in standard directions.

Standard Unit Vectors

\(\mathbf{i} = \begin{pmatrix} 1 \\ 0 \end{pmatrix}\) - One unit in the \(x\) direction

\(\mathbf{j} = \begin{pmatrix} 0 \\ 1 \end{pmatrix}\) - One unit in the \(y\) direction

Notation Conversion

\(\begin{pmatrix} 3 \\ 4 \end{pmatrix} = 3\begin{pmatrix} 1 \\ 0 \end{pmatrix} + 4\begin{pmatrix} 0 \\ 1 \end{pmatrix} = 3\mathbf{i} + 4\mathbf{j}\)

This notation is common in physics and advanced mathematics.

Unit Vector Calculation

A unit vector in the direction of \(\vec{v}\) is:

\[ \hat{v} = \frac{\vec{v}}{|\vec{v}|} \]

Example: For \(\vec{v} = \begin{pmatrix} 3 \\ 4 \end{pmatrix}\):

\(|\vec{v}| = \sqrt{3^2 + 4^2} = 5\)

\(\hat{v} = \frac{1}{5}\begin{pmatrix} 3 \\ 4 \end{pmatrix} = \begin{pmatrix} 0.6 \\ 0.8 \end{pmatrix}\)

Applications in Physics

Unit vectors are used to separate forces, velocities, and accelerations into components.

Force Example: A 10N force at 30° above horizontal:

\(F_x = 10\cos 30^\circ \approx 8.66N\)

\(F_y = 10\sin 30^\circ = 5N\)

\(\vec{F} = 8.66\mathbf{i} + 5\mathbf{j}\)

6. CSEC Exam Mastery Tips

⚠️

Avoid These Common Mistakes

Calculator Mode

Ensure your calculator is in DEG (Degrees) mode.
CSEC rarely uses radians for vector direction.
Check: \(\tan^{-1}(1)\) should give \(45^\circ\), not \(0.785\) radians.

Exact Values

If a question asks for the "exact magnitude," leave your answer as a surd.
Example: \(\sqrt{34}\) not \(5.83095...\)
Only round when instructed to do so.

Zero Vector

A vector with zero magnitude \(\begin{pmatrix} 0 \\ 0 \end{pmatrix}\) has no specific direction.
Don't try to calculate \(\tan^{-1}(0/0)\) - it's undefined.
The zero vector is the only vector without a direction.

7. Worked Example: Finding \(|\vec{v}|\) and \(\theta\)

Problem: Find the magnitude and direction of the vector \(\vec{v} = \begin{pmatrix} -4 \\ 3 \end{pmatrix}\).

Magnitude:

\[ |\vec{v}| = \sqrt{(-4)^2 + (3)^2} = \sqrt{16 + 9} = \sqrt{25} = \mathbf{5 \text{ units}} \]

Initial Angle Calculation:

\[ \tan \theta = \frac{3}{-4} = -0.75 \]

\[ \theta = \tan^{-1}(-0.75) \approx -36.87^\circ \]

Quadrant Analysis:

\(x = -4\) (negative), \(y = 3\) (positive) → Quadrant II

The calculator gave \(-36.87^\circ\), which is in Quadrant IV.

Angle Adjustment:

For Quadrant II: \(\theta = 180^\circ + \text{(calculator result)}\)

\[ \theta = 180^\circ + (-36.87^\circ) = 180^\circ - 36.87^\circ = \mathbf{143.13^\circ} \]

8. Practice Mission: "The Flight Path"

A plane flies with a velocity vector \(\mathbf{v} = \begin{pmatrix} 120 \\ 50 \end{pmatrix}\) km/h. Calculate the speed of the plane (the magnitude of velocity) and the angle of climb (direction from the horizontal).

Speed: 130 km/h, Angle: 22.6°

Speed: 170 km/h, Angle: 67.4°

Speed: 125 km/h, Angle: 24.0°

Solution:
Speed (Magnitude):
\[ |\mathbf{v}| = \sqrt{120^2 + 50^2} = \sqrt{14400 + 2500} = \sqrt{16900} = 130 \text{ km/h} \]
Angle (Direction):
\[ \tan \theta = \frac{50}{120} = \frac{5}{12} \approx 0.4167 \]
\[ \theta = \tan^{-1}(0.4167) \approx 22.6^\circ \text{ above horizontal} \]
Since both components are positive, the vector is in Quadrant I, so no adjustment is needed.

Find the magnitude and direction of the vector \(\mathbf{u} = \begin{pmatrix} -6 \\ -8 \end{pmatrix}\).

Magnitude: 10, Direction: 53.1°

Magnitude: 10, Direction: 126.9°

Magnitude: 10, Direction: 233.1°

Magnitude: 14, Direction: 233.1°

Solution:
Magnitude:
\[ |\mathbf{u}| = \sqrt{(-6)^2 + (-8)^2} = \sqrt{36 + 64} = \sqrt{100} = 10 \]
Initial Calculation:
\[ \tan \theta = \frac{-8}{-6} = \frac{4}{3} \approx 1.333 \]
\[ \theta = \tan^{-1}(1.333) \approx 53.1^\circ \]
Quadrant Analysis:
\(x = -6\) (negative), \(y = -8\) (negative) → Quadrant III
For Quadrant III: \(\theta = 180^\circ + 53.1^\circ = 233.1^\circ\)
Final Answer: Magnitude = 10, Direction = 233.1°

Which of the following vectors has the greatest magnitude?

\(\begin{pmatrix} 5 \\ 12 \end{pmatrix}\)

\(\begin{pmatrix} 8 \\ 9 \end{pmatrix}\)

\(\begin{pmatrix} -7 \\ -10 \end{pmatrix}\)

\(\begin{pmatrix} 0 \\ 13 \end{pmatrix}\)

Solution:
Calculate magnitudes:
1. \(\sqrt{5^2 + 12^2} = \sqrt{25 + 144} = \sqrt{169} = 13\)
2. \(\sqrt{8^2 + 9^2} = \sqrt{64 + 81} = \sqrt{145} \approx 12.04\)
3. \(\sqrt{(-7)^2 + (-10)^2} = \sqrt{49 + 100} = \sqrt{149} \approx 12.21\)
4. \(\sqrt{0^2 + 13^2} = \sqrt{169} = 13\)
Vectors 1 and 4 both have magnitude 13, which is the greatest among the options.
Note: Both \(\begin{pmatrix} 5 \\ 12 \end{pmatrix}\) and \(\begin{pmatrix} 0 \\ 13 \end{pmatrix}\) have magnitude 13.

Formula Recap

Magnitude

\[ |\vec{v}| = \sqrt{x^2 + y^2} \]

Always positive

Direction

\[ \theta = \tan^{-1}\left(\frac{y}{x}\right) \]

Adjust for quadrant

Quadrant Rules

QII: \(+180^\circ\)

QIII: \(+180^\circ\)

QIV: \(+360^\circ\)

Unit Vector

\[ \hat{v} = \frac{\vec{v}}{|\vec{v}|} \]

Magnitude = 1