Find the area of the region bounded by the curve \[{{y}^{2}}=2y-x\] and the y-axis.
Answer
626.7k+ views
Hint: Use the fact that the area bounded by the curve y = f(x), the x-axis and the ordinates x = a and x= b is given by $\int_{a}^{b}{\left| f\left( x \right) \right|dx}$.
Complete step-by-step answer:
Hence, in this question, we are asked to find the area bounded by the curve \[{{y}^{2}}=2y-x\] and the y-axis which means that the region between the abscissas y=a and y=b, hence we can manipulate the above mentioned fact as follows
The area bounded by the curve x = f(y), the y-axis and the abscissas y = a and y= b is given by $\int_{a}^{b}{\left| f\left( y \right) \right|dy}$.
Now, we can write the curve as function of y as follows
f(y) \[=2y-{{y}^{2}}\]
Hence the required area is given by $\int_{a}^{b}{f(y)dy}$.
As mentioned in the question, we have to find the area of the region that is bounded by the curve from the above and the y-axis from the lower side between the two abscissas a and b.
Now, we can find the values of a and b by simply just tequating f(y) with 0 as a and b are those values which are obtained when the given curve cuts the y-axis.
So, we can find the values of a and b as follows
\[\begin{align}
& \Rightarrow 2y-{{y}^{2}}=0 \\
& \Rightarrow 2y={{y}^{2}} \\
& \Rightarrow 2=y \\
\end{align}\]
Hence, the values of y are 0 and 2 and these are the values of a and b respectively.
Now, we can simply form the integral as follows to get the required area of the region.
\[\begin{align}
& \Rightarrow Area=\int_{a}^{b}{f(y)dy} \\
& \Rightarrow Area=\int_{0}^{2}{\left( 2y-{{y}^{2}} \right)dy} \\
& \Rightarrow Area=\int_{0}^{2}{2ydy}-\int_{0}^{2}{{{y}^{2}}dy} \\
& \Rightarrow Area=\int_{0}^{2}{2ydy}-\int_{0}^{2}{{{y}^{2}}dy} \\
& \Rightarrow Area=\left[ {{y}^{2}} \right]_{0}^{2}-\left[ \dfrac{{{y}^{3}}}{3} \right]_{0}^{2} \\
& \Rightarrow Area=\left[ {{2}^{2}}-{{0}^{2}} \right]-\left[ \dfrac{{{2}^{3}}-{{0}^{3}}}{3} \right] \\
& \Rightarrow Area=\left[ 4 \right]-\left[ \dfrac{8}{3} \right] \\
& \Rightarrow Area=\left[ 4-\dfrac{8}{3} \right] \\
& \Rightarrow Area=\left[ \dfrac{12-8}{3} \right] \\
& \Rightarrow Area=\left[ \dfrac{4}{3} \right] \\
\end{align}\]
(as we know that the integral of \[{{x}^{n}}\] is as follows
\[\int{{{x}^{n}}dx=\dfrac{{{x}^{n+1}}}{n+1}}+c\]
Where c is the constant of integration )
Hence, we have
Total area \[=\dfrac{4}{3}\] square units
Note: The students can make an error if they don’t know the basic concepts of integration as without knowing them one could never get to the correct answer.
As in this question, it is very important to know the following result beforehand
The integral of \[{{x}^{n}}\] is as follows
\[\int{{{x}^{n}}dx=\dfrac{{{x}^{n+1}}}{n+1}}+c\]
(Where c is the constant of integration)
Complete step-by-step answer:
Hence, in this question, we are asked to find the area bounded by the curve \[{{y}^{2}}=2y-x\] and the y-axis which means that the region between the abscissas y=a and y=b, hence we can manipulate the above mentioned fact as follows
The area bounded by the curve x = f(y), the y-axis and the abscissas y = a and y= b is given by $\int_{a}^{b}{\left| f\left( y \right) \right|dy}$.
Now, we can write the curve as function of y as follows
f(y) \[=2y-{{y}^{2}}\]
Hence the required area is given by $\int_{a}^{b}{f(y)dy}$.
As mentioned in the question, we have to find the area of the region that is bounded by the curve from the above and the y-axis from the lower side between the two abscissas a and b.
Now, we can find the values of a and b by simply just tequating f(y) with 0 as a and b are those values which are obtained when the given curve cuts the y-axis.
So, we can find the values of a and b as follows
\[\begin{align}
& \Rightarrow 2y-{{y}^{2}}=0 \\
& \Rightarrow 2y={{y}^{2}} \\
& \Rightarrow 2=y \\
\end{align}\]
Hence, the values of y are 0 and 2 and these are the values of a and b respectively.
Now, we can simply form the integral as follows to get the required area of the region.
\[\begin{align}
& \Rightarrow Area=\int_{a}^{b}{f(y)dy} \\
& \Rightarrow Area=\int_{0}^{2}{\left( 2y-{{y}^{2}} \right)dy} \\
& \Rightarrow Area=\int_{0}^{2}{2ydy}-\int_{0}^{2}{{{y}^{2}}dy} \\
& \Rightarrow Area=\int_{0}^{2}{2ydy}-\int_{0}^{2}{{{y}^{2}}dy} \\
& \Rightarrow Area=\left[ {{y}^{2}} \right]_{0}^{2}-\left[ \dfrac{{{y}^{3}}}{3} \right]_{0}^{2} \\
& \Rightarrow Area=\left[ {{2}^{2}}-{{0}^{2}} \right]-\left[ \dfrac{{{2}^{3}}-{{0}^{3}}}{3} \right] \\
& \Rightarrow Area=\left[ 4 \right]-\left[ \dfrac{8}{3} \right] \\
& \Rightarrow Area=\left[ 4-\dfrac{8}{3} \right] \\
& \Rightarrow Area=\left[ \dfrac{12-8}{3} \right] \\
& \Rightarrow Area=\left[ \dfrac{4}{3} \right] \\
\end{align}\]
(as we know that the integral of \[{{x}^{n}}\] is as follows
\[\int{{{x}^{n}}dx=\dfrac{{{x}^{n+1}}}{n+1}}+c\]
Where c is the constant of integration )
Hence, we have
Total area \[=\dfrac{4}{3}\] square units
Note: The students can make an error if they don’t know the basic concepts of integration as without knowing them one could never get to the correct answer.
As in this question, it is very important to know the following result beforehand
The integral of \[{{x}^{n}}\] is as follows
\[\int{{{x}^{n}}dx=\dfrac{{{x}^{n+1}}}{n+1}}+c\]
(Where c is the constant of integration)
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