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Geometry and Mensuration: Level 1 Test 4
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Question 1 |
In a triangle ΔABC, the side BC is extended up to D. Such that CD= AC, if ∠BAD= 109o and ACB= 72o then the value of ∠ABC is
35o | |
60o | |
40o | |
45o |
Question 1 Explanation:
$ \displaystyle \begin{array}{l}Since,\text{ }AC=CD~\\\angle CAD\text{ }=\angle ADC~=\frac{72}{2}=36\\BAC\text{ }=\text{ }109-36\text{ }=\text{ }73.\\ABC\text{ }=\text{ }180-BAC-ACB\text{ }=\text{ }35.\\Correct\text{ }option\text{ }is\text{ }\left( a \right)\end{array}$
Question 2 |
The area of a square is 2.25 cm2. What is its perimeter?
9.0 cms | |
6.0 cms | |
1.5 cms | |
4.5 cms. |
Question 2 Explanation:
$ \displaystyle \begin{array}{l}Perimeter~=\text{ }4~=\sqrt{area}\\\text{=}\,4\times 2.25~=\text{ }4\times 1.5\text{ }=\text{ }6\text{ }cm\\Correct\text{ }option\text{ }is\text{ }\left( b \right)\end{array}$
Question 3 |
The length of a rectangle is 20% more than its breadth. What will be the ratio of the area of this rectangle to the area of a square whose side is equal to the breadth of the rectangle?
5: 6 | |
6: 5 | |
2: 1 | |
Data inadequate |
Question 3 Explanation:
$ \begin{array}{l}The\,\,required\,\,ratio\,\,will\,\,be\,\,1.2\times breadt{{h}^{2}}:breadt{{h}^{2}}=6:5\\Correct\,\,option\,\,is\,\,(b)\end{array}$
Question 4 |
The sum of three altitudes of a triangle is
equal to the sum of three sides | |
less than the sum of sides | |
greater than the sum of sides | |
twice the sum at sides |
Question 4 Explanation:
Since the question is based on a geometrical identity it must be valid for all triangles.
Thus we can assume an equilateral triangle of side a cm.
Altitude = √3a/2.
Sum of all altitudes = √3a/2 cm
1.5 X 1.73 a= 2.595a cm
Sum of the three sides = 3a cm.
Thus we can assume an equilateral triangle of side a cm.
Altitude = √3a/2.
Sum of all altitudes = √3a/2 cm
1.5 X 1.73 a= 2.595a cm
Sum of the three sides = 3a cm.
Question 5 |
A rectangular carpet has an area of 120sq. metres and a perimeter of 46 metres. The length of its diagonal (in metres) is:
11 | |
13 | |
15 | |
17 |
Question 5 Explanation:
$ \begin{array}{l}Diagonal=\sqrt{lengt{{h}^{2}}+breadt{{h}^{2}}}\\=\sqrt{{{\left( length+breadth \right)}^{2}}-2\,length\times breadth}\\=\sqrt{{{\left( \frac{46}{2} \right)}^{2}}-2\times 120}=17m\end{array}$
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