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A rectangular box with lid ABCD is given in FIGURE (i) below - NSC Mathematics - Question 7 - 2017 - Paper 2
Question 7
A rectangular box with lid ABCD is given in FIGURE (i) below. The lid is opened through 60° to position HKCD, as shown in the FIGURE (ii) below. EF = 12 cm, FG = 6 c... show full transcript
Worked Solution & Example Answer:A rectangular box with lid ABCD is given in FIGURE (i) below - NSC Mathematics - Question 7 - 2017 - Paper 2
Step 1
Step 2
7.2 Determine KL, the perpendicular height of K, above the base of the box.
Answer
To find KL, we employ trigonometric ratios using triangle KCB:
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We know that the angle between the lid and the base is 60°.
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By using the sine function:
[ KP = KC \cdot \sin(60°) ]
Substituting the known lengths:
[ KP = 6 \cdot \sin(60°) \approx 3.0 \text{ cm} ]
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Knowing that KP + CL = KL, where CL = 8 cm:
[ KL = KP + CL = 3.0 + 8 = 11.0 \text{ cm} ]
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Thus, the height KL above the base of the box is:
KL = 11.0 cm.
Step 3
7.3 Hence, determine the value of \(\frac{\sin KDL}{\sin DLK}\).
Answer
For this step, we need to apply the sine rule in triangle KDL:
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We know:
- DK = 6 cm (height from K to D)
- DL = 12 cm (the length from D to L)
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As this forms a right triangle, we can use the sine rule:
[ DK^2 = 6^2 + 12^2 ]
This leads to:
[ DK = \sqrt{36 + 144} = \sqrt{180} \approx 13.42 \text{ cm} ]
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Now substituting in the sine ratio:
[ \frac{\sin KDL}{\sin DLK} = \frac{KL}{DK} = \frac{11.0}{13.42} \approx 0.82 ]
The final value is approximately:
(\frac{\sin KDL}{\sin DLK} \approx 0.82.