CHAPTER XVI: THE DETERMINATION OF THE CURVE OF GIVEN LENGTH AND GIVEN END-POINTS, WHOSE CENTER OF GRAVITY LIES LOWEST.
- 216 Statement of the problem.
- 217 The necessary conditions
- 218 The number of catenaries having a prescribed length that may be through two given points with respect to a fixed directrix.
- 219 The constants uniquely determined.
Article 216.
To solve the problem of this Chapter, let the
-axis be taken vertically with the positive direction upward, and denote by
the length of the whole curve. If the coordinates of the center of gravity are
, then
is determined from the equation
, where 
The problem is: So determine
and
as functions of
that the first integral will be a minimum while the second integral retains a constant value. (See Art. 16).
The property that the center of gravity is to lie as low as possible must also be satisfied for every portion of the curve; for if this were not true, then we could replace a portion 1 2 of the curve by a portion of the same length but with a center of gravity that lies lower, with the result that the center of gravity of the whole curve could be shoved lower down, and consequently the original curve would not have the required minimal property.
We have here


and therefore


We exclude once for all the case where the two given points lie in the same vertical line, because then the integral for
does not express for every case the absolute length of the curve ; for example, when a certain portion of the curve overlaps itself. Similarly we exclude the case where the given length
is exactly equal to the length between the two points on a straight line ; for, in this case, the curve cannot be varied and at the same time retain the constant length.
Article 217.
Since
must be positive, a minimum being required, it follows that
. Since further,
and
vary in a continuous manner along the whole curve, and since these quantities differ from the direction-cosines only through the factor
, which varies in a continuous manner, it follows that the curve changes everywhere its direction in a continuous manner.
The function
is the same as the function
which appeared in Art. 7, except that here we have
instead of
in that problem. Since the differential equation here must be the same as in the problem just mentioned, we must have as the required curve

the equation of a catenary.
Since
, it follows that
is a positive constant. For
we have the value
![{\displaystyle S=\int _{t_{0}}^{t_{1}}{\sqrt {x'^{2}+y'^{2}}}{\text{d}}t={\frac {\beta }{2}}{\big [}e^{t_{1}}+e^{-t_{1}}-(e^{t_{0}}+e^{-t_{0}}){\big ]}}](https://wikimedia.org/api/rest_v1/media/math/render/svg/d8f23f81baedf3c57670eed6fb689ebc530f7bf6)
Article 218.
We have next to investigate whether and how often a catenary may be passed through two points and have the length
that is, whether and in how many different ways it is possible to determine the constants
in terms of
and the coordinates of the given points. If we denote the coordinates of these points by
, then is


![{\displaystyle S={\frac {\beta }{2}}{\big [}e^{t_{1}}+e^{-t_{1}}-(e^{t_{0}}+e^{-t_{0}}){\big ]}}](https://wikimedia.org/api/rest_v1/media/math/render/svg/ccb789a6f7618a6f35e12b73581e952ae7d5f783)
It follows that
![{\displaystyle a_{1}-a_{0}=\pm \beta (t_{1}-t_{0})\qquad b_{1}-b_{0}={\frac {\beta }{2}}{\big [}e^{t_{1}}+e^{-t_{1}}-(e^{t_{0}}+e^{-t_{0}}){\big ]}}](https://wikimedia.org/api/rest_v1/media/math/render/svg/29e6f945fa50d1e18944351eba2da9010f3ca4e0)
We have assumed that
, and consequently we have to take the upper or lower sign according as
or
. It is clear that we may always take
, since we may interchange the point
with the point
, and vice versa.
We shall accordingly take the upper sign. If we write

then
is a positive quantity and we have





Since this derivative is continuously positive, the expression
varies in a continuous manner from
to
, while
increases from
to
. Hence for every real value of
there is one and only one real value of
which is situated between
and
, and vice versa to every value of
situated between
and
there is one and only one real value of
. Since we excluded the case where
was equal to the length along a straight line between the two given points, it follows that
is always greater than
and consequently
is in reality a proper fraction. Hence
is uniquely determined through
.
Article 219.
We have further

or

The right-hand side is a given positive quantity which we may denote by
. It is seen that
![{\displaystyle {\frac {\text{d}}{{\text{d}}\mu }}\left({\frac {2\mu }{e^{\mu }-e^{-\mu }}}\right)=-2{\frac {[(\mu -1)e^{\mu }+(\mu +1)e^{-\mu }]}{(e^{\mu }-e^{-\mu })^{2}}}}](https://wikimedia.org/api/rest_v1/media/math/render/svg/389ad65ac3fd96e703d0ac3925b1ee73b36564b7)
By its definition
is always greater than
. If
is situated between 1 and
, the right-hand side of the equation is always negative. Since further the differential quotient of the expression
is never less than
while
varies from
to
, it is seen that this expression increases continuously when
varies from
to 1; hence the differential quotient of
is continuously negative, and consequently
for 
Consequently the expression
, or the quantity
, continuously decreases from 1 to 0 while
takes the values from 0 to
, and therefore to every value of
lying between 0 and 1 there is one and only one value of
situated between 0 and
.
Since by hypothesis
is always a positive proper fraction, it follows from the above that
is uniquely determined through the given quantities. Through
and
and the other given quantities we may also determine uniquely
; and consequently if
is taken sufficiently large, it is possible to lay one and only one catenary between the given points which satisfies the given conditions.
If, then, there exists a curve which is a solution of the problem, this curve is a catenary. We have not yet proved that in reality for this curve the first integral is a minimum. The sufficient criteria for this will be developed in the next Chapter.