In figure, AB is a chord of the circle and AOC is its diameter such that `angleACB=50^(@)`. If AT is the tangent to the circle at the point A, then `angleBAT` is equal to A. `45^(@)`B. `60^(@)`C. `50^(@)`D. `55^(@)`

In figure, AB is a chord of the circle and AOC is its diameter such th

1.	In figure, AB is a chord of the circle and AOC is its diameter such that `angleACB=50^(@)`. If AT is the tangent to the circle at the point A, then `angleBAT` is equal to A. `45^(@)`B. `60^(@)`C. `50^(@)`D. `55^(@)`
Answer» Correct Answer - C In figure, AOC is a diameter of the circle. We know that, diameter subtends `90^(@)` at the circle. So, `angleABC=90^(@)` In `DeltaACB, angleA+angleB+angleC=180^(@)` [since, sum of all angles of a triangle is `180^(@)` `rArrangleA+90^(@)+50^(@)=180^(@)` `rArrangleA+140=180` `rArrangle=180^(@)-140^(@)=40^(@)` `angleAorangleOAB=40^(@)` Now, AT is the tengent to the circle at point A. So, OA is perpendicular to AT. `:.angleOAT=90^(@)` [from figure] `rArrangleOAB+angleBAT=90^(@)` On putting `angleOAB=40^(@),` we get `rArrangleOAB+angleBAT=90^(@)` Hence, the value of `angleBAT` is `50^(@)`

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In figure, AB is a chord of the circle and AOC is its diameter such that `angleACB=50^(@)`. If AT is the tangent to the circle at the point A, then `angleBAT` is equal to A. `45^(@)`B. `60^(@)`C. `50^(@)`D. `55^(@)`

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