Apollonius <Pergaeus>; Lawson, John, The two books of Apollonius Pergaeus, concerning tangencies, as they have been restored by Franciscus Vieta and Marinus Ghetaldus : with a supplement to which is now added, a second supplement, being Mons. Fermat's Treatise on spherical tangencies

Table of contents

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[11.] PROBLEM IV.
Page: 15 ((3))
[12.] PROBLEM V.
Page: 16 ((4))
[13.] The general Solution.
Page: 16 ((4))
[14.] PROBLEM VI.
Page: 17 ((5))
[15.] The general Solution.
Page: 17 ((5))
[16.] PROBLEM VII.
Page: 18 ((6))
[17.] LEMMA I.
Page: 19 ((7))
[18.] PROBLEM VIII.
Page: 19 ((7))
[19.] Mr. Simpſon conſtructs the Problem thus.
Page: 19 ((7))
[20.] PROBLEM IX.
Page: 19 ((7))
[21.] LEMMA II.
Page: 20 ((8))
[22.] LEMMA III.
Page: 20 ((8))
[23.] PROBLEM X.
Page: 20 ((8))
[24.] PROBLEM XI.
Page: 21 ((9))
[25.] PROBLEM XII .
Page: 22 ((10))
[26.] LEMMA IV.
Page: 23 ((11))
[27.] LEMMA V.
Page: 23 ((11))
[28.] PROBLEM XIII.
Page: 23 ((11))
[29.] PROBLEM XIV.
Page: 24 ((12))
[30.] SUPPLEMENT. PROBLEM I.
Page: 26 ((14))
[31.] PROBLEM II.
Page: 26 ((14))
[32.] PROBLEM III.
Page: 26 ((14))
[33.] PROBLEM IV.
Page: 28 ((16))
[34.] PROBLEM V.
Page: 28 ((16))
[35.] PROBLEM VI.
Page: 29 ((17))
[36.] General Solution.
Page: 29 ((17))
[37.] A SECOND SUPPLEMENT, BEING Monſ. DE FERMAT’S Treatiſe on Spherical Tangencies. PROBLEM I.
Page: 31 ((19))
[38.] PROBLEM II.
Page: 32 ((20))
[39.] PROBLEM III.
Page: 33 ((21))
[40.] PROBLEM IV.
Page: 33 ((21))
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          <head xml:id="echoid-head11" xml:space="preserve">PROBLEMS
            <lb/>
          CONCERNING
            <lb/>
          TANGENCIES.</head>
          <head xml:id="echoid-head12" xml:space="preserve">PROBLEM I.</head>
          <p>
            <s xml:id="echoid-s84" xml:space="preserve">THROUGH two given points A and B to deſcribe a circle whoſe radius
              <lb/>
            ſhall be equal to a given line Z.</s>
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          </p>
          <p>
            <s xml:id="echoid-s86" xml:space="preserve">
              <emph style="sc">Limitation</emph>
            . </s>
            <s xml:id="echoid-s87" xml:space="preserve">2 Z muſt not be leſs than the diſtance of the points A and B.</s>
            <s xml:id="echoid-s88" xml:space="preserve"/>
          </p>
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              <emph style="sc">Construction</emph>
            . </s>
            <s xml:id="echoid-s90" xml:space="preserve">With the centers A and B, and diſtance Z, deſcribe two
              <lb/>
            arcs cutting or touching one another in the point E, ( which they will neceſſarily
              <lb/>
            do by the Limitation ) and E will be the center of the circle required.</s>
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          <head xml:id="echoid-head13" xml:space="preserve">PROBLEM II.</head>
          <p>
            <s xml:id="echoid-s92" xml:space="preserve">
              <emph style="sc">Having</emph>
            two right lines AB CD given in poſition, it is required to draw 2
              <lb/>
            circle, whoſe Radius ſhall be equal to the given line Z, which ſhall alſo touch
              <lb/>
            both the given lines.</s>
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          </p>
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            <s xml:id="echoid-s94" xml:space="preserve">
              <emph style="sc">Case</emph>
            1ſt. </s>
            <s xml:id="echoid-s95" xml:space="preserve">Suppoſe AB and CD to be parallel.</s>
            <s xml:id="echoid-s96" xml:space="preserve"/>
          </p>
          <p>
            <s xml:id="echoid-s97" xml:space="preserve">
              <emph style="sc">Limitation</emph>
            . </s>
            <s xml:id="echoid-s98" xml:space="preserve">2Z muſt be equal to the diſtance of the parallels, and the
              <lb/>
            conſtruction is evident.</s>
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          </p>
          <p>
            <s xml:id="echoid-s100" xml:space="preserve">
              <emph style="sc">Case</emph>
            2d. </s>
            <s xml:id="echoid-s101" xml:space="preserve">Suppoſe AB and CD to be inclined to each other, let them be
              <lb/>
            produced till they meet in E, and let the angle BED be biſected by EH, and
              <lb/>
            through E draw EF perpendicular to ED, and equal to the given line Z; </s>
            <s xml:id="echoid-s102" xml:space="preserve">through
              <lb/>
            F draw FG parallel to EH, meeting ED in G, and through G draw GH paral-
              <lb/>
            lel to EF. </s>
            <s xml:id="echoid-s103" xml:space="preserve">I ſay that the circle deſcribed with H center, and HG radius,
              <lb/>
            touches the two given lines: </s>
            <s xml:id="echoid-s104" xml:space="preserve">it touches CD, becauſe EFGH is a </s>
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