Chứng minh rằng với mọi góc \(\alpha\left(0^0\le\alpha\le180^0\right)\) ta đều có \(\cos^2\alpha+\sin^2\alpha=1\) ?
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a)
Trên nửa đường tròn đơn vị, lấy điểm M sao cho \(\widehat {xOM} = \alpha \)
Gọi H, K lần lượt là các hình chiếu vuông góc của M trên Ox, Oy.
Ta có: tam giác vuông OHM vuông tại H và \(\alpha = \widehat {xOM}\)
Do đó: \(\sin \alpha = \frac{{MH}}{{OM}} = MH;\;\cos \alpha = \frac{{OH}}{{OM}} = OH.\)
\( \Rightarrow {\cos ^2}\alpha + {\sin ^2}\alpha = O{H^2} + M{H^2} = O{M^2} = 1\)
b) Ta có:
\(\begin{array}{l}\;\tan \alpha = \frac{{\sin \alpha }}{{\cos \alpha }};\;\cot \alpha = \frac{{\cos \alpha }}{{\sin \alpha }}.\\ \Rightarrow \;\tan \alpha .\cot \alpha = \frac{{\sin \alpha }}{{\cos \alpha }}.\frac{{\cos \alpha }}{{\sin \alpha }} = 1\end{array}\)
c) Với \(\alpha \ne {90^o}\) ta có:
\(\begin{array}{l}\;\tan \alpha = \frac{{\sin \alpha }}{{\cos \alpha }};\;\\ \Rightarrow \;1 + {\tan ^2}\alpha = 1 + \frac{{{{\sin }^2}\alpha }}{{{{\cos }^2}\alpha }} = \frac{{{{\sin }^2}\alpha + {{\cos }^2}\alpha }}{{{{\cos }^2}\alpha }} = \frac{1}{{{{\cos }^2}\alpha }}\;\end{array}\)
d) Ta có:
\(\begin{array}{l}\cot \alpha = \frac{{\cos \alpha }}{{\sin \alpha }};\;\\ \Rightarrow \;1 + {\cot ^2}\alpha = 1 + \frac{{{{\cos }^2}\alpha }}{{{{\sin }^2}\alpha }} = \frac{{{{\sin }^2}\alpha + {{\cos }^2}\alpha }}{{{{\sin }^2}\alpha }} = \frac{1}{{{{\sin }^2}\alpha }}\;\end{array}\)
![](https://rs.olm.vn/images/avt/0.png?1311)
Coi BPT là bậc 2 với tham số \(sina;cosa\)
Đặt \(f\left(x\right)=\left(1+sin^2a\right)x^2-2\left(sina+cosa\right)x+1+cos^2a\)
Ta có: \(1+sin^2a>0;\forall a\)
\(\Delta'=\left(sina+cosa\right)^2-\left(1+sin^2a\right)\left(1+cos^2a\right)\)
\(=sin^2a+cos^2a+2sina.cosa-1-sin^2a-cos^2a-sin^2a.cos^2a\)
\(=-sin^2a.cos^2a+2sina.cosa-1\)
\(=-\left(sina.cosa-1\right)^2=-\left(\frac{1}{2}sin2a-1\right)^2\)
\(=-\left(\frac{sin2a-2}{2}\right)^2\)
Do \(sin2a-2< 0;\forall a\Rightarrow\left(\frac{sin2a-2}{2}\right)^2>0;\forall a\)
\(\Rightarrow\Delta'< 0;\forall a\Rightarrow f\left(x\right)>0\) với mọi x và a
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a) \(sin\left(270^o-\alpha\right)=sin\left(-90^o-\alpha\right)=-sin\left(90^o+\alpha\right)\)\(=-cos\alpha\).
b) \(cos\left(270^o-\alpha\right)=cos\left(-90^o-\alpha\right)=cos\left(90^o+\alpha\right)\)\(=-sin\alpha\).
c) \(sin\left(270^o+\alpha\right)=sin\left(-90^o+\alpha\right)=-sin\left(90^o-\alpha\right)\)\(=-cos\alpha\).
d) \(cos\left(270^o+\alpha\right)=cos\left(-90^o+\alpha\right)=cos\left(90^o-\alpha\right)\)\(=sin\alpha\).
![](https://rs.olm.vn/images/avt/0.png?1311)
2.
ĐK: \(2x-y\ge0;y\ge0;y-x-1\ge0;y-3x+5\ge0\)
\(\left\{{}\begin{matrix}xy-2y-3=\sqrt{y-x-1}+\sqrt{y-3x+5}\left(1\right)\\\left(1-y\right)\sqrt{2x-y}+2\left(x-1\right)=\left(2x-y-1\right)\sqrt{y}\left(2\right)\end{matrix}\right.\)
\(\left(2\right)\Leftrightarrow\left(1-y\right)\sqrt{2x-y}+y-1+2x-y-1-\left(2x-y-1\right)\sqrt{y}=0\)
\(\Leftrightarrow\left(1-y\right)\left(\sqrt{2x-y}-1\right)+\left(2x-y-1\right)\left(1-\sqrt{y}\right)=0\)
\(\Leftrightarrow\left(1-\sqrt{y}\right)\left(\sqrt{2x-y}-1\right)\left(1+\sqrt{y}\right)+\left(\sqrt{2x-y}-1\right)\left(1-\sqrt{y}\right)\left(\sqrt{2x-y}+1\right)=0\)
\(\Leftrightarrow\left(1-\sqrt{y}\right)\left(\sqrt{2x-y}-1\right)\left(\sqrt{y}+\sqrt{2x-y}+2\right)=0\)
\(\Leftrightarrow\left[{}\begin{matrix}y=1\\y=2x-1\end{matrix}\right.\) (Vì \(\sqrt{y}+\sqrt{2x-y}+2>0\))
Nếu \(y=1\), khi đó:
\(\left(1\right)\Leftrightarrow x-5=\sqrt{-x}+\sqrt{-3x+6}\)
Phương trình này vô nghiệm
Nếu \(y=2x-1\), khi đó:
\(\left(1\right)\Leftrightarrow2x^2-5x-1=\sqrt{x-2}+\sqrt{4-x}\) (Điều kiện: \(2\le x\le4\))
\(\Leftrightarrow2x\left(x-3\right)+x-3+1-\sqrt{x-2}+1-\sqrt{4-x}=0\)
\(\Leftrightarrow\left(x-3\right)\left(\dfrac{1}{1+\sqrt{4-x}}-\dfrac{1}{1+\sqrt{x-2}}+2x+1\right)=0\)
Ta thấy: \(1+\sqrt{x-2}\ge1\Rightarrow-\dfrac{1}{1+\sqrt{x-2}}\ge-1\Rightarrow1-\dfrac{1}{1+\sqrt{x-2}}\ge0\)
Lại có: \(\dfrac{1}{1+\sqrt{4-x}}>0\); \(2x>0\)
\(\Rightarrow\dfrac{1}{1+\sqrt{4-x}}-\dfrac{1}{1+\sqrt{x-2}}+2x+1>0\)
Nên phương trình \(\left(1\right)\) tương đương \(x-3=0\Leftrightarrow x=3\Rightarrow y=5\)
Ta thấy \(\left(x;y\right)=\left(3;5\right)\) thỏa mãn điều kiện ban đầu.
Vậy hệ phương trình đã cho có nghiệm \(\left(x;y\right)=\left(3;5\right)\)
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a) Ta có: \({\left( {\sin \alpha + \cos \alpha } \right)^2} = {\sin ^2}\alpha + 2\sin \alpha \cos \alpha + {\cos ^2}\alpha = 1 + \sin 2\alpha \;\)
b) \({\cos ^4}\alpha - {\sin ^4}\alpha = \left( {{{\cos }^2}\alpha - {{\sin }^2}\alpha } \right)\left( {{{\cos }^2}\alpha + {{\sin }^2}\alpha } \right) = \cos 2\alpha \;\)
![](https://rs.olm.vn/images/avt/0.png?1311)
\(\dfrac{\left(sina+cosa\right)^2-\left(sina-cosa\right)^2}{sina.cosa}=4\\ VT=\dfrac{sin^2a+2sinacosa+cos^2a-sin^2a+2sinacosa-cos^2a}{sinacosa}\\ =\dfrac{4sinacosa}{sinacosa}=4=VP\)
a: \(S=cos^2a\left(1+tan^2a\right)=cos^2a\cdot\dfrac{1}{cos^2a}=1\)
b: \(VP=\dfrac{1+sin2a-1+sin2a}{\dfrac{1}{2}\cdot sin2a}=\dfrac{2\cdot sin2a}{\dfrac{1}{2}\cdot sin2a}=4=VT\)
Từ M kẻ MP ⊥ Ox, MQ ⊥ Oy
=>
= cosα;
= ![This is the rendered form of the equation. You can not edit this directly. Right click will give you the option to save the image, and in most browsers you can drag the image onto your desktop or another program.](http://img.loigiaihay.com/picture/article/2017/0212/bai-4-sgk-trang-40-hinh-hoc-10_1_1486907286.jpg)
Trong tam giác vuông MPO:
MP2+ PO2 = OM2 => cos2 α + sin2 α = 1