=124. Fluorin in Bones.=—Fluorin is not only a constituent of mineral
phosphates but also of bones. According to the researches of Carnot
there is often as much as one-half per cent of calcium fluorid in bones
and teeth.[106] Gabriel has suggested a means of determining a minimum
limit of fluorin in bones and teeth by the development of etchings in
comparison with known quantities of pure calcium fluorid. The minimum
quantity of calcium fluorid necessary to produce a distinct etching, in
known conditions, having been determined, the test is applied to known
weights of ignited bone or teeth. He concludes from his results, that
the ash of bones and teeth often contains less than one-tenth per cent
of fluorin. Since, however, there is a loss of fluorin from calcium
fluorid, on ignition, the whole of the fluorin may not have been
available in the tests described.
=125. Note on the Separation of Iron and Aluminum Phosphates from
the Calcium Compound.=—There are many points of difference noted in
the descriptions given by authors of the deportment of the iron, and
aluminum phosphates in presence of a large excess of the calcium salt.
Especially is this true of the statements made by Hess and Glaser[107]
in paragraphs =34= and =35=. The subject is of such importance, from an
analytical point of view, as to merit a careful study.
In this laboratory a thorough investigation of the mutual deportment
of these three phosphates has been made by Brown with the following
results:[108] When a mixture containing a known weight of the salts
was treated exactly as Hess directs, in no case was there a complete
separation of the iron aluminum phosphate from the calcium salt. In
order to discover the cause of the failure, pure solutions of calcium
and iron aluminum phosphates were treated under identical conditions
by the necessary reagents. Fifty cubic centimeters of a solution of
calcium phosphate, containing about one gram of the salt, were treated
with 100 cubic centimeters of water and fifty cubic centimeters of
the commercial ammonium acetate containing 150 grams of the salt in a
liter. An immediate precipitate was produced at ordinary temperature,
and on heating to 60° it became abundant. The addition of ammonium
chlorid, phosphate, and nitrate in successive portions, does not
prevent the precipitation. Making the solution more dilute lessens the
difficulty when twenty cubic centimeters of a ten per cent solution
of ammonium phosphate are first added, followed by the usual quantity
of ammonium acetate; a clear crystalline precipitate is sometimes
observed. Experience also shows that the trouble is not due to an
excess of the ammonium acetate.
In treating a solution of iron aluminum phosphate, in similar
circumstances, with the ammonium acetate, it is found that a complete
precipitation takes place.
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