How to Calculate the Side Length in Similar Triangles?

Triangles are fascinating shapes in geometry, and understanding how to work with similar triangles can be incredibly useful. Similar triangles are triangles that have the same shape but may differ in size. This means their corresponding angles are equal, and their corresponding sides are in proportion.

Key Concept: Proportionality

The main idea behind similar triangles is proportionality. If two triangles are similar, the ratio of the lengths of their corresponding sides is the same. This can be written as:

$frac{a_1}{a_2} = frac{b_1}{b_2} = frac{c_1}{c_2}$

where $a_1$, $b_1$, and $c_1$ are the sides of the first triangle, and $a_2$, $b_2$, and $c_2$ are the corresponding sides of the second triangle.

Example Problem

Let’s say we have two similar triangles, Triangle A and Triangle B. Triangle A has sides of lengths 3 cm, 4 cm, and 5 cm. Triangle B has a side corresponding to the 3 cm side of Triangle A that is 6 cm long. We want to find the lengths of the other two sides of Triangle B.

Step-by-Step Solution

  1. Identify Corresponding Sides: We know that the 3 cm side of Triangle A corresponds to the 6 cm side of Triangle B.
  2. Set Up Proportions: Since the triangles are similar, the proportions of the sides are equal. Let’s set up the proportion for the 4 cm side of Triangle A:

$frac{3}{6} = frac{4}{x}$

where $x$ is the length of the corresponding side in Triangle B.
3. Solve the Proportion: Cross-multiply to solve for $x$:

$3x = 6 times 4$

$3x = 24$

$x = 8$

So, the side of Triangle B corresponding to the 4 cm side of Triangle A is 8 cm.

  1. Repeat for the Other Side: Now, let’s find the side corresponding to the 5 cm side of Triangle A:

$frac{3}{6} = frac{5}{y}$

where $y$ is the length of the corresponding side in Triangle B.

$3y = 6 times 5$

$3y = 30$

$y = 10$

So, the side of Triangle B corresponding to the 5 cm side of Triangle A is 10 cm.

Conclusion

To find the side lengths in similar triangles, you use the property of proportionality. By setting up and solving proportions, you can determine the lengths of the unknown sides. This concept is not only fundamental in geometry but also has practical applications in real-world problems, such as in engineering and architecture.

3. CK-12 – Similar Triangles

Citations

  1. 1. Khan Academy – Similar Triangles
  2. 2. Math is Fun – Similar Triangles

Related

(2) O3 + H → O2 + OH k2 = 1.78×10^-11 cm^3 s^-1 (3) O + OH → O2 + H k3 = 4.40×10^-11 cm^3 s^-1 (5) O + HO2 → O2 + OH k5 = 3.50×10^-11 cm^3 s^-1 (6) H + HO2 → O2 + H2 k6 = 5.40×10^-12 cm^3 s^-1 (9) OH + HO2 → O2 + H2O2 k9 = 4.00×10^-11 cm^3 s^-1 (10) HO2 + HO2 → O2 + H2O2 k10 = 2.50×10^-12 cm s^-1 (11) O + O2 + M → O3 + M k11 = 1.05×10^-34 cm^6 s^-1 (14) H + O2 + M → HO2 + M k14 = 8.08×10^-32 cm^6 s^-1 (15) H + H + M → H2O + M k15 = 3.31×10^-27 cm^6 s^-1 (16) O2 + hv → 2 O k16 = (1.26×10^-8 s^-1) φ (17) H2O + hv → H + OH k17 = (3.4×10^-6 s^-1) φ (18) O3 + hv → O2 + O k18 = (7.10×10^-5 s^-1) φ

Table 1 Reactions, rate constants and activation energies used in the model* No. Reaction kopt (M⁻¹ s⁻¹) 1 OH + H₂ → H + H₂O 3.74 x 10⁷ 2 OH + HO₂ → HO₂ + OH⁻ 5 x 10⁹ 3 OH + H₂O₂ → HO₂ + H₂O 3.8 x 10⁷ 4 OH + O₂ → O₂ + OH 9.96 x 10⁹ 5 OH + HO₂ → O₂ + H₂O 7.1 x 10⁹ 6 OH + OH → H₂O₂ 5.3 x 10⁹ 7 OH + e⁻aq → OH⁻ 3 x 10¹⁰ 8 H + O₂ → HO₂ 2.0 x 10¹⁰ 9 H + HO₂ → H₂O₂ 2.0 x 10¹⁰ 10 H + H₂O₂ → OH + H₂O 3.44 x 10⁷ 11 H + OH → H₂O 1.4 x 10¹⁰ 12 H + H → H₂ 1.94 x 10¹⁰ 13 e⁻aq + O₂ → O₂⁻ 1.9 x 10¹⁰ 14 e⁻aq + O₂ → HO₂⁻ + OH⁻ 1.3 x 10¹⁰ 15 e⁻aq + HO₂ 2.0 x 10¹⁰ 16 e⁻aq + H₂O₂ 1.1 x 10¹⁰ 17 e⁻aq + HO₂ → OH + OH⁻ 1.3 x 10¹⁰ 18 e⁻aq + H⁺ → H 2.3 x 10¹⁰ 19 e⁻aq + e⁻aq → H₂ + OH⁻ + OH⁻ 2.5 x 10⁹ 20 HO₂ + O₂ → O₂ + HO₂ 1.3 x 10⁹ 21 HO₂ + HO₂ → O₂ + H₂O₂ 8.3 x 10⁵ 22 HO₂ + HO₂ → O₂ + OH + H₂O 3.7 23 HO₂ + HO₂ → O₂ + O₂ + OH + H₂O 7 x 10⁵ s⁻¹ 24 H⁺ + O₂⁻ → HO₂ 4.5 x 10¹⁰ 25 H⁺ + O₂⁻ → O₂ 2.0 x 10¹⁰ 26 H⁺ + OH⁻ 1.4 x 10¹¹ 27 H⁺ + HO₂⁻ 2 x 10¹⁰ 28 H₂O₂ → HO₂ + H⁺ + OH⁻ 2.5 x 10⁻⁵ s⁻¹ 29 H₂O₂ → H⁺ + OH⁻ 1.4 x 10⁻⁷ s⁻¹ 30 O₂ + O₂ → O₂ + HO₂ + OH⁻ 0.3 31 O₂ + H₂O₂ → O₂ + OH + OH 16 32

(2) O3 + H → O2 + OH k2 = 1.78×10^-11 cm^3 s^-1 (3) O + OH → O2 + H k3 = 4.40×10^-11 cm^3 s^-1 (5) O + HO2 → O2 + OH k5 = 3.50×10^-11 cm^3 s^-1 (6) H2O + O → 2 OH k6 = 5.40×10^-12 cm^3 s^-1 (9) OH + HO2 → O2 + H2O k9 = 4.00×10^-11 cm^3 s^-1 (10) HO2 + HO2 → O2 + H2O2 k10 = 2.50×10^-12 cm s^-1 (11) O + O2 + M → O3 + M k11 = 1.05×10^-34 cm^6 s^-1 (14) H + O2 + M → HO2 + M k14 = 8.08×10^-32 cm^6 s^-1 (15) OH + H + M → H2O + M k15 = 3.31×10^-27 cm^6 s^-1 (16) O2 + hv → 2 O k16 = (1.26×10^-8 s^-1) φ (17) H2O + hv → H + OH k17 = (3.4×10^-6 s^-1) φ (18) O3 + hv → O2 + O k18 = (7.10×10^-8 s^-1) φ