Let AB be one Asymptote of the Hyperbola EdC; and let AE and BC be parallel to th'other: Let also AE be to BC as 2 to 1; and let the Parallelogram ABDE equal 1. See Fig. 1. And note, that the Letter x every where stands for Multiplication.

Supposing the Reader knows, that EA. αζ. KH. βη. dθ. γχ. δλ. εμ. CB. &c. are in an Harmonic series, or a series reciproca primanorum sue arithmetice proportionalium (otherwise he is referr'd for satisfaction to the 87, 88, 89, 90, 91, 92, 93, 94, 95, prop. Arithm. Infinitor. Wallisij:)

I say	${\displaystyle ABCdEA={\frac {1}{1\times 2}}+{\frac {1}{3\times 4}}+{\frac {1}{5\times 6}}+{\frac {1}{7\times 8}}+{\frac {1}{9\times 10}}}$ &c.	${\displaystyle \scriptstyle {\left.{\begin{matrix}\ \\\\\ \\\ \\\ \\\ \ \end{matrix}}\right\}\,}}$ infinitum.
	${\displaystyle EdCDE={\frac {1}{2\times 3}}+{\frac {1}{4\times 5}}+{\frac {1}{6\times 7}}+{\frac {1}{8\times 9}}+{\frac {1}{10\times 11}}}$ &c.
	${\displaystyle EdCyE={\frac {1}{2\times 3\times 4}}+{\frac {1}{4\times 5\times 6}}+{\frac {1}{6\times 7\times 8}}+{\frac {1}{8\times 9\times 10}}}$ &c.

For (in Fig. 2, & 3) the Parallelog.		And (in Fig. 4.) the Triangl.	Note.
	${\displaystyle CA={\frac {1}{1\times 2}}}$	${\displaystyle EdC={\frac {1}{2\times 3\times 4}}={\frac {\Box dD-\Box dF}{2}}}$	${\displaystyle {\tfrac {1}{2}}CA=dD+dF}$
${\displaystyle dD={\frac {1}{2\times 3}}}$	${\displaystyle dF={\frac {1}{3\times 4}}}$	${\displaystyle Ebd={\frac {1}{4\times 5\times 6}}={\frac {\Box br-\Box bn}{2}}}$	${\displaystyle {\tfrac {1}{2}}dD=br+bn}$
${\displaystyle br={\frac {1}{4\times 5}}}$	${\displaystyle bn={\frac {1}{5\times 6}}}$	${\displaystyle dfC={\frac {1}{6\times 7\times 8}}={\frac {\Box fG-\Box fk}{2}}}$	${\displaystyle {\tfrac {1}{2}}dF=fG+fk}$
${\displaystyle fG={\frac {1}{6\times 7}}}$	${\displaystyle fk={\frac {1}{7\times 8}}}$	${\displaystyle Eab={\frac {1}{8\times 9\times 10}}={\frac {\Box aq-\Box ap}{2}}}$	${\displaystyle {\tfrac {1}{2}}br=aq+ap}$
${\displaystyle aq={\frac {1}{8\times 9}}}$	${\displaystyle ap={\frac {1}{9\times 10}}}$	${\displaystyle bcd={\frac {1}{10\times 11\times 12}}={\frac {\Box cs-\Box cm}{2}}}$	${\displaystyle {\tfrac {1}{2}}bn=cs+cm}$
${\displaystyle cs={\frac {1}{10\times 11}}}$	${\displaystyle cm={\frac {1}{11\times 12}}}$	${\displaystyle def={\frac {1}{12\times 13\times 14}}={\frac {\Box et-\Box el}{2}}}$	${\displaystyle {\tfrac {1}{2}}fG=et+el}$
${\displaystyle et={\frac {1}{12\times 13}}}$	${\displaystyle el={\frac {1}{13\times 14}}}$	${\displaystyle fgC={\frac {1}{14\times 15\times 16}}={\frac {\Box gu-\Box gh}{2}}}$	${\displaystyle {\tfrac {1}{2}}fk=gu+gh}$
${\displaystyle gu={\frac {1}{14\times 15}}}$	${\displaystyle gh={\frac {1}{15\times 16}}}$	&c.	&c.
&c.	&c.