These are the types of movement which the arterial wall can perform by
its elasticity in consequence of the shock of the arriving pulse wave.
The mechanical nature of the components on which depends the form of
the sphygmographic curve is, therefore, known. The constructions in
Fig. 5 show how the resulting movement can be found.
[Illustration: Fig. 5]
These curves are constructed in this way. The lines _AB_ represent
the time of the interval of one heart-beat. The straight line _EB_
represents the decreasing volume of the artery and the curves on
_AB_ represent the elastic movement of the arterial wall. Both are
synchronous movements, and a line perpendicular to _AB_ gives the
corresponding points. The points of the resulting movement are found
by arithmetical addition of the two ordinates. The results of these
constructions prove that the curves show the dicrotic elevation only
if the elastic force is great enough to make a vibratory movement
possible. Aperiodic movements do not produce this elevation. The
friction is always great for the movement of the walls of an artery,
and there are only the two possibilities, of a vibratory movement which
dies out quickly, and of an aperiodic movement. This accounts for the
fact that the dicrotic elevation may be missing sometimes, and that in
other cases several secondary elevations may be seen, the number of
which, however, is always limited, and their relative height rapidly
diminishing. It may be remarked that the length of the lines _AB_ seems
essential to the form of the resulting curve. Curves I and III differ
very much in the length of the lines _AB_, while the lines _AE_ are
equal and the vibratory movements are only slightly different. The
resultants, nevertheless, seem to differ very much. It is easy to see
that a different speed of the recording drum will have an effect on
the tracings which is similar to that of a change in the length of
the lines _AB_ in the constructions. This is one more reason why mere
inspection of the curves cannot give a satisfactory result.
These constructions show that the sphygmographic curves must show
great variations, since the amount of blood pumped into the system,
the elasticity of the arteries and friction of the surrounding tissues
are subjected very likely not only to individual but also to local and
temporal variations. But under given conditions only a certain form of
the pulse wave is possible, and this form does not change so long as
these conditions do not change. The sphygmograms in Fig. 6 show some of
the typical forms of the pulse curve.
[Illustration: Fig. 6]
Public-domain text, read in full here on John Shaqi.
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