sweatingbear said:How come the area below the graph of \(\displaystyle \frac 1x\) between \(\displaystyle [1, \infty)\) does not exist, but the solid of revolution below the same graph in that same interval does exist? I do not see the logic.
A solid of revolution is a three-dimensional shape created by rotating a two-dimensional shape around an axis. The resulting solid will have the same cross-sectional area as the original shape at every point along the axis of rotation.
The area below 1/x refers to the region bounded by the curve y = 1/x, the x-axis, and the vertical lines x = 1 and x = a, where a is any positive number. It is also known as the integral of 1/x or the natural logarithm function.
The main difference between a solid of revolution and the area below 1/x is that the solid of revolution is a three-dimensional shape, while the area below 1/x is a two-dimensional region. The solid of revolution is created by rotating a two-dimensional shape, while the area below 1/x is calculated using integration.
The solid of revolution is commonly used in engineering and design, such as creating cylindrical objects like pipes and bottles. The area below 1/x has many applications in physics, economics, and finance, such as calculating the work done by a variable force or determining the natural logarithmic growth of a population or investment.
Yes, there is a relationship between a solid of revolution and the area below 1/x. The integral of 1/x can be used to calculate the volume of a solid of revolution, and the derivative of the integral of 1/x can be used to find the surface area of the solid of revolution.