In the diagram below, $ \triangle ABC $ and $ \triangle PQR $ are given with $ \hat{A} = \hat{P}, \hat{B} = \hat{Q} $ and $ \hat{C} = \hat{R}. $ DE is drawn such that $ AD = PQ $ and $ AE = PR. $ 10.1 Prove that $ \triangle ADE = \triangle PQR. $ 10.1.2 Prove that $ DE \parallel BC. $ 10.1.3 Hence, prove that $ \frac{AB}{PQ} = \frac{AC}{PR}. $ In the diagram below, $ VR $ is a diameter of a circle with centre $ O. $ S is any point on the circumference. P is the midpoint of RS. The circle with RS as diameter cuts $ VR $ at T. ST, OP and SV are drawn. 10.2.1 Why is $ OP \perp PS? $ 10.2.2 Prove that $ \triangle AROP \parallel \triangle ARVS. $ 10.2.3 Prove that $ ARVS \parallel \triangle ARST. $ 10.2.4 In $ ART $ and $ ASTV, $ $ R_{T}S = V_{T}S = 90^{\circ} $ $ R = 90^{\circ} - T_{SR} $ $ STV \parallel ASTV, $ $ R.T = TS $ $ ST \parallel VT, $ $ ST^{2} = VT imes TR. $

NSC Mathematics Euclidean Geometry: In the diagram below, \( \triang

In the diagram below, $ \triangle ABC $ and $ \triangle PQR $ are given with $ \hat{A} = \hat{P}, \hat{B} = \hat{Q} $ and \( \hat{C} = \hat{R} - NSC Mathematics - Question 10 - 2016 - Paper 2

Question 10

$In-the-diagram-below,-$-\triangle-ABC-$-and-$-\triangle-PQR-$-are-given-with-$-\hat{A}-=-\hat{P},-\hat{B}-=-\hat{Q}-$-and-\(-\hat{C}-=-\hat{R}-NSC Mathematics-Question 10-2016-Paper 2.png$

In the diagram below, $ \triangle ABC $ and $ \triangle PQR $ are given with $ \hat{A} = \hat{P}, \hat{B} = \hat{Q} $ and $ \hat{C} = \hat{R}. $ DE is drawn... show full transcript

Worked Solution & Example Answer:In the diagram below, $ \triangle ABC $ and $ \triangle PQR $ are given with $ \hat{A} = \hat{P}, \hat{B} = \hat{Q} $ and \( \hat{C} = \hat{R} - NSC Mathematics - Question 10 - 2016 - Paper 2

Step 1

Prove that $ \triangle ADE = \triangle PQR. $

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Answer

To prove that ( \triangle ADE = \triangle PQR ), we can use the AA similarity criterion. Given that ( \hat{A} = \hat{P} ) and ( \hat{B} = \hat{Q} ), we can also establish that ( DE ) is proportional to ( PQ ) due to the drawing of DE as having equal lengths. Hence, by the Angle-Angle similarity postulate, we find:

[ \triangle ADE \sim \triangle PQR ]

Step 2

Prove that $ DE \parallel BC. $

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Answer

Given that ( \triangle ADE ) is similar to ( \triangle PQR ), it follows that the corresponding sides and angles are equal. Therefore, by corresponding angles,

If ( \angle ADE = \angle PQR ) and ( \angle ABE = \angle RQP ), then

( DE \parallel BC ) by the Converse of the Corresponding Angles Postulate.

Step 3

Hence, prove that $ \frac{AB}{PQ} = \frac{AC}{PR}. $

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Answer

Since we have established that ( DE \parallel BC ), we can apply the Basic Proportionality Theorem (or Thales' theorem). This theorem states that if a line is drawn parallel to one side of a triangle, then it divides the other two sides proportionally:

[ \frac{AB}{PQ} = \frac{AC}{PR} ]

Step 4

Why is $ OP \perp PS? $

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Answer

The angle ( OP ) is perpendicular to ( PS ) because by the property of circles, a radius drawn to the point of tangency is perpendicular to the tangent. In this context, ( OP ) is the radius, and since S lies on the circumference, ( OP \perp PS ) holds.

Step 5

Prove that $ \triangle AROP \parallel \triangle ARVS. $

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Answer

Since ( P ) is the midpoint of ( RS ) and the line segments ( OP ) and ( VS ) are transversals to the parallel lines, we have:

( \frac{AR}{RO} = \frac{VS}{AR} ) Thus, by the Basic Proportionality Theorem, the triangles are similar, leading to: [ \triangle AROP \parallel \triangle ARVS ]

Step 6

Prove that $ ARVS \parallel ARST. $

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Answer

By properties of parallel lines and similar triangles, since transversals intersect the parallel lines, we can set up the ratio and angles: [ AR ext{ is the same in both triangles. Since angles are preserved,} ARVS \parallel ARST ]

Step 7

In $ ART $ and $ ASTV, $ prove that $ ST^{2} = VT \times TR. $

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Answer

By the Extended Law of Proportions in right triangles and basic circle properties, we have shown that: [ R_{T}S = V_{T}S = 90^{\circ} ext{ which establishes that } ST \text{ is a tangent, leading to } ST^{2} = VT \times TR. ]

In the diagram below, \( \triangle ABC \) and \( \triangle PQR \) are given with \( \hat{A} = \hat{P}, \hat{B} = \hat{Q} \) and \( \hat{C} = \hat{R} - NSC Mathematics - Question 10 - 2016 - Paper 2

Worked Solution & Example Answer:In the diagram below, \( \triangle ABC \) and \( \triangle PQR \) are given with \( \hat{A} = \hat{P}, \hat{B} = \hat{Q} \) and \( \hat{C} = \hat{R} - NSC Mathematics - Question 10 - 2016 - Paper 2

Prove that \( \triangle ADE = \triangle PQR. \)

Prove that \( DE \parallel BC. \)

Hence, prove that \( \frac{AB}{PQ} = \frac{AC}{PR}. \)

Why is \( OP \perp PS? \)

Prove that \( \triangle AROP \parallel \triangle ARVS. \)

Prove that \( ARVS \parallel ARST. \)

In \( ART \) and \( ASTV, \) prove that \( ST^{2} = VT \times TR. \)

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