I have pointed out that the pressure must be such as to bring
the
temperature of melting below that prevailing in the ice at
the
time. We have seen also, that one atmosphere lowers the
melting
point of ice by the 1/140 of a degree Centigrade; more exactly
by
0.0075°. Let us now assume that the skate is so far sunken in
the
ice as to bear for a length of two inches, and for a width of
one-hundredth of an inch. The skater weighs,
279
let us say—150 pounds. If this weight was borne on one
square
inch, the pressure would be ten atmospheres. But the skater
rests
his weight, in fact, upon an area of one-fiftieth of an inch.
The
pressure is, therefore, fifty times as great. The ice is
subjected to a pressure of 500 atmospheres. This lowers the
melting point to -3.75° C. Hence, on a day when the ice is
at
this temperature, the skate will sink in the ice till the
weight
of the skater is concentrated as we have assumed. His skate
can
sink no further, for any lesser concentration of the pressure
will not bring the melting point below the prevailing
temperature. We can calculate the theoretical bite for any
state
of the ice. If the ice is colder the bite will not be so deep.
If
the temperature was twice as far below zero, then the area
over
which the skater's weight will be distributed, when the skate
has
penetrated its maximum depth, will be only half the former
area,
and the pressure will be one thousand atmospheres.
An important consideration arises from the fact that under
the
very extreme edge of the skate the pressure is indefinitely
great. For this involves that there will always be some bite,
however cold the ice may be. That is, the narrow strip of ice
which first receives the skater's weight must partially
liquefy
however cold the ice.
It must have happened to many here to be on ice which was
too
cold to skate on with comfort. The
280
skater in this case speaks of the ice as too hard. In the
Engadine, the ice on the large lakes gets so cold that
skaters
complain of this. On the rinks, which are chiefly used there,
the
ice is frequently renewed by flooding with water at the close
of
the day. It thus never gets so very cold as on the lakes. I
have
been on ice in North France, which, in the early morning, was
too
hard to afford sufficient bite for comfort. The cause of this
is
easily understood from what we have been considering.
We may now return to the experimental results which we
obtained
early in the lecture. The heavy weights slip off the ice at a
low
angle because just at the points of contact with the ice the
latter melts, and they, in fact, slip not on ice but on
water.
The light weights on cold, dry ice do not lower the melting
point
below the temperature of the ice, _i.e._ below -10° C., and
so
they slip on dry ice. They therefore give us the true
coefficient
of friction of metal on ice.
This subject has, more recently been investigated by H.
Morphy,
of Trinity College, Dublin. The refinement of a closed vessel
at
uniform temperature, in which the ice is formed and the
experiment carried out, is introduced. Thermocouples give the
temperatures, not only of the ice but of the aluminium sleigh
which slips upon it under various loads. In this way we may
be
certain that the metal runners are truly at the temperature
of
the ice. I now quote from Morphy's paper
281
"The angle of friction was found to remain constant until
a
certain stage of the loading, when it suddenly fell to about
half
of its original value. It then remained constant for further
increases in the load.
"These results, which confirmed those obtained previously
with
less satisfactory apparatus, are shown in the table below. In
the
first column is shown the load, _i.e._ the weight of sleigh +
weight of shot added. In the second and third columns are
shown,
respectively, the coefficient and angle of friction, whilst
the
fourth gives the temperature of the ice as determined from
the
galvanometer deflexions.
Load. Tan y. y. Temp.
5.68 grams. 0.36±.01 20°±30'
-5.65° C.
10.39 -5.65°
11.96 -5.75°
12.74 -5.60°
13.53 -5.65°
14.31 -5.65°
15.10 grams. 0.17±.01 9°.30'±30'
-5.60°
16.67 -5.55°
19.81 -5.60°
24.52 -5.60°
5.68 grams. 0.36±.01 20°±30'
-5.60°
"These experiments were repeated on another occasion with the
same
result and similar results had been obtained with different
apparatus.
"As a result of the investigation the following points are
clearly shown:—
282
"(1) The coefficient of friction for ice at constant
temperature
may have either of two constant values according to the
pressure
per unit surface of contact.
"(2) For small pressures, and up to a certain well defined
limit
of pressure, the coefficient is fairly large, having the
value
0.36±.01 in the case investigated.
"(3) For pressures greater than the above limit the
coefficient
is relatively small, having the value 0.17±.01 in the
case
investigated."
It will be seen that Morphy's results are similar to those
arrived at in the first experimental consideration of our
subject; but from the manner in which the experiments have
been
carried out, they are more accurate and reliable.
A great deal more might be said about skating, and the
allied
sports of tobogganing, sleighing, curling, ice yachting, and
last, but by no means least, sliding—that unpretentious
pastime
of the million. Happy the boy who has nails in his boots when
Jack-Frost appears in his white garment, and congeals the
neighbouring pond. But I must turn away at the threshold of
the
humorous aspect of my subject (for the victim of the street
"slide" owes his injured dignity to the abstruse laws we have
been discussing) and pass to other and graver subjects
intimately
connected with skating.
James Thomson pointed out that if we apply compressional
stress
to an ice crystal contained in a vessel
283
which also contains other ice crystals, and water at 0°
C., then
the stressed crystal will melt and become water, but its
counterpart or equivalent quantity of ice will reappear
elsewhere
in the vessel. This is, obviously, but a deduction from the
principles we have been examining. The phenomenon is commonly
called "regelation." I have already made the usual regelation
experiment before you when I compressed broken ice in this
mould.
The result was a clear, hard and almost flawless lens of ice.
Now
in this operation we must figure to ourselves the pieces of
ice
when pressed against one another melting away where
compressed,
and the water produced escaping into the spaces between the
fragments, and there solidifying in virtue of its temperature
being below the freezing point of unstressed water. The final
result is the uniform lens of ice. The same process goes on in
a
less perfect manner when you make—or shall I better
say—when you
made snowballs.
We now come to theories of glacier motion; of which there
are
two. The one refers it mainly to regelation; the other to a
real
viscosity of the ice.
The late J. C. M'Connel established the fact that ice
possesses
viscosity; that is, it will slowly yield and change its shape
under long continued stresses. His observations, indeed, raise
a
difficulty in applying this viscosity to explain glacier
motion,
for he showed that an ice crystal is only viscous in a
certain
structural
284
direction. A complex mixture of crystals such, as we know
glacier
ice to be, ought, we would imagine, to display a nett or
resultant rigidity. A mass of glacier ice when distorted by
application of a force must, however, undergo precisely the
transformations which took place in forming the lens from the
fragments of ice. In fact, regelation will confer upon it all
the
appearance of viscosity.
Let us picture to ourselves a glacier pressing its enormous
mass
down a Swiss valley. At any point suppose it to be hindered
in
its downward path by a rocky obstacle. At that point the ice
turns to water just as it does beneath the skate. The cold
water
escapes and solidifies elsewhere. But note this, only where
there
is freedom from pressure. In escaping, it carries away its
latent
heat of liquefaction, and this we must assume, is lost to the
region of ice lately under pressure. This region will,
however,
again warm up by conduction of heat from the surrounding ice,
or
by the circulation of water from the suxface. Meanwhile, the
pressure at that point has been relieved. The mechanical
resistance is transferred elsewhere. At this new point there
is
again melting and relief of pressure. In this manner the
glacier
may be supposed to move down. There is continual flux of
conducted heat and converted latent heat, hither and thither,
to
and from the points of resistance. The final motion of the
whole
mass is necessarily slow; a few feet in the day or, in
winter,
285
even only a few inches. And as we might expect, perfect
silence
attends the downward slipping of the gigantic mass. The
motion
is, I believe, sufficiently explained as a skating motion.
The
skate is, however, fixed, the ice moves. The great Aletsch
Glacier collects its snows among the highest summits of the
Oberland. Thence, the consolidated ice makes its way into the
Rhone Valley, travelling a distance of some 20 miles. The ice
now
melting into the youthful Rhone fell upon the Monch, the
Jungfrau
or the Eiger in the days when Elizabeth ruled in England and
Shakespeare lived.
The ice-fall is a common sight on the glacier. In great lumps
and
broken pinnacles it topples over some rocky obstacle and
falls
shattered on to the glacier below. But a little further down
the
wound is healed again, and regelation has restored the smooth
surface of the glacier. All such phenomena are explained on
James
Thomson's exposition of the behaviour of a substance which
expands on passing from the liquid to the solid state.
We thus have arrived at very far-reaching considerations
arising
out of skating and its science. The tendency for snow to
accumulate on the highest regions of the Earth depends on
principles which we cannot stop to consider. We know it
collects
above a certain level even at the Equator. We may consider,
then,
that but for the operation of the laws which James Thomson
brought to light, and which his illustrious brother,
286
Lord Kelvin, made manifest, the uplands of the Earth could
not
have freed themselves of the burthen of ice. The geological
history of the Earth must have been profoundly modified. The
higher levels must have been depressed; the general level of
the
ocean relatively to the land thereby raised, and, it is even
possible, that such a mean level might have been attained as
would result in general submergence.
During the last great glacial period, we may say the fate of
the
world hung on the operation of those laws which have concerned
us
throughout this lecture. It is believed the ice was piled up to
a
height of some 6,000 feet over the region of Scandinavia.
Under
the influence of the pressure and fusion at points of
resistance,
the accumulation was stayed, and it flowed southwards the
accumulation was stayed, and it flowed southwards over
Northern
Europe. The Highlands of Scotland were covered with, perhaps,
three or four thousand feet of ice. Ireland was covered from
north to south, and mighty ice-bergs floated from our western
and
southern shores.
The transported or erratic stones, often of great size, which
are
found in many parts of Ireland, are records of these long
past
events: events which happened before Man, as a rational
being,
appeared upon the Earth.
287
A SPECULATION AS TO A PREMATERIAL UNIVERSE [1]
"And therefore...these things likewise had a birth; for
things
which are of mortal body could not for an infinite time
back...
have been able to set at naught the puissant strength of
immeasurable age."—LUCRETIUS, _De Rerum Natura._
"O fearful meditation! Where, alack! Shall Time's best
jewel
from Time's chest lie hid?" —SHAKESPEARE.
IN the material universe we find presented to our senses a
physical development continually progressing, extending to
all,
even the most minute, material configurations. Some
fundamental
distinctions existing between this development as apparent in
the
organic and the inorganic systems of the present day are
referred
to elsewhere in this volume.[2] In the present essay, these
systems as having a common origin and common ending, are
merged
in the same consideration as to the nature of the origin of
material systems in general. This present essay is occupied
by
the consideration of the necessity of limiting material
interactions in past time. The speculation originated in the
difficulties which present themselves when we ascribe to
these
interactions infinite duration in the past. These
difficulties
first claim our consideration.
[1] Proc. Royal Dublin Soc., vol. vii., Part V, 1892.
[2] _The Abundance of Life._
288
Accepting the hypothesis of Kant and Laplace in its widest
extension, we are referred to a primitive condition of wide
material diffusion, and necessarily too of material
instability.
The hypothesis is, in fact, based upon this material
instability.
We may pursue the sequence of events assumed in this
hypothesis
into the future, and into the past.
In the future we find finality to progress clearly indicated.
The
hypothesis points to a time when there will be no more
progressive change but a mere sequence of unfruitful events,
such
as the eternal uniform motion of a mass of matter no longer
gaining or losing heat in an ether possessed of a uniform
distribution of energy in all its parts. Or, again, if the
ether
absorb the energy of material motion, this vast and dark
aggregation eternally poised and at rest within it. The action
is
transferred to the subtle parts of the ether which suffer none
of
the energy to degrade. This is, physically, a thinkable
future.
Our minds suggest no change, and demand none. More than this,
change is unthinkable according to our present ideas of
energy.
Of progress there is an end.
This finality _â parte post_ is instructive.
Abstract
considerations, based on geometrical or analytical
illustrations,
question the finiteness of some physical developments. Thus
our
sun may require eternal time to attain the temperature of the
ether around it, the approach to this condition being assumed
to
be asymptotic in
289
character. But consider the legitimate _reductio ad absurdum_
of
an ember raked from a fire 1000 years ago. Is it not yet
cooled
down to the constant temperature of its surroundings? And we
may
evidently increase the time a million-fold if we please. It
appears as if we must regard eternity as outliving every
progressive change, For there is no convergence or
enfeeblement
of time. The ever-flowing present moves no differently for
the
occurrence of the mightiest or the most insignificant events.
And
even if we say that time is only the attendant upon events,
yet
this attendant waits patiently for the end, however long
deferred.
Does the essentially material hypothesis of Kant and
Laplace
account for an infinite past as thinkably as it accounts for
the
infinite future? As this hypothesis is based upon material
instability the question resolves itself into this:— Is
the
assumption of an infinitely prolonged past instability a
probable
or possible account of the past? There are, it appears to me,
great difficulties involved in accepting the hypothesis of
infinitely prolonged material instability. I will refer here
to
three principal objections. The first may be called a
metaphysical objection; the second is partly metaphysical and
partly physical, the third may be considered a physical
objection, as it is involved directly in the phenomena
presented
by our universe.
The metaphysical objection must have presented itself to
every
one who has considered the question. It may
290
be put thus:—If present events are merely one stage in
an
infinite progress, why is not the present stage long ago
passed
over? We are evidently at liberty to push back any stage of
progress to as remote a period as we like by putting back
first
the one before this and next the stage preceding this, and so
on,
for, by hypothesis, there is no beginning to the progress.
Thus, the sum of passing events constituting the present
universe
should long ago have been accomplished and passed away. If we
consider alternative hypotheses not involving this difficulty,
we
are at once struck by the fact that the future of material
development is free of the objection. For the eternity of
unprogressive events involved in the future on Kant's
hypothesis,
is not only thinkable, but any change is, as observed,
irreconcilable with our ideas of energy. As in the future so
in
the past we look to a cessation to progress. But as we
believe
the activity of the present universe must in some form have
existed all along, the only refuge in the past is to imagine
an
active but unprogressive eternity, the unprogressive activity
at
some period becoming a progressive activity—that
progressive
activity of which we are spectators. To the unprogressive
activity there was no beginning; in fact, beginning is as
unthinkable and uncalled for to the unprogressive activity of
the
past as ending is to the unprogressive activity of the
future,
when all developmental actions shall have ceased. There is no
beginning or ending to the activity of the universe.
291
There is beginning and ending to present progressive
activity.
Looking through the realm of nature we seek beginning and
ending,
but "passing through nature to eternity" we find neither.
Both
are justified; the questioning of the ancient poet regarding
the
past, and of the modern regarding the future, quoted at the
head
of this essay.
The next objection, which is in part metaphysical, is founded
on
the difficulty of ascribing any ultimate reality or potency
to
forces diminishing through eternal time. Thus, against the
assumption that our universe is the result of material
aggregation progressing over eternal time, which involves the
primitive infinite separation of the particles, we may ask,
what
force can have acted between particles sundered by infinite
distance? The gravitational force falling off as the square
of
the distance, must vanish at infinity if we mean what we say
when
we ascribe infinite separation to them. Their condition is
then
one of neutral stability, a finite movement of the particles
neither increasing nor diminishing interaction. They had then
remained eternally in their separated condition, there being
no
cause to render such condition finite. The difficulty
involved
here appears to me of the same nature as the difficulty of
ascribing any residual heat to the sun after eternal time has
elapsed. In both cases we are bound to prolong the time, from
our
very idea of time, till progress is no more, when in the one
case
we can imagine no mutual approximation of the
292
particles, in the other no further cooling of the body.
However,
I will riot dwell further upon this objection, as it does not,
I
believe, present itself with equal force to every mind. A
reason
less open to dispute, as being less subjective, against the
aggregation of infinitely remote particles as the origin of
our
universe, is contained in the physical objection.
In this objection we consider that the appearance presented
by
our universe negatives the hypothesis of infinitely prolonged
aggregation. We base this negation upon the appearance of
simultaneity ~ presented by the heavens, contending that this
simultaneity is contrary to what we would expect to find in
the
case of particles gathered from infinitely remote distances.
Whether these particles were endowed with relative motions or
not
is unimportant to the consideration. In what respects do the
phenomena of our universe present the appearance of
simultaneous
phenomena? We must remember that the suns in space are as
fires
which brighten only for a moment and are then extinguished. It
is
in this sense we must regard the longest burning of the
stars.
Whether just lit or just expiring counts little in eternity.
The
light and heat of the star is being absorbed by the ether of
space as effectually and rapidly as the ocean swallows the
ripple
from the wings of an expiring insect. Sir William Herschel
says
of the galaxy of the milky way:— "We do not know the rate
of
progress of this mysterious chronometer, but it is
nevertheless
certain that it cannot
293
last for ever, and its past duration cannot be infinite." We
do
not know, indeed, the rate of progress of the chronometer, but
if
the dial be one divided into eternal durations the
consummation
of any finite physical change represents such a movement of
the
hand as is accomplished in a single vibration of the balance
wheel.
Hence we must regard the hosts of glittering stars as a
conflagration that has been simultaneously lighted up in the
heavens. The enormous (to our ideas) thermal energy of the
stars
resembles the scintillation of iron dust in a jar of oxygen
when
a pinch of the dust is thrown in. Although some particles be
burnt up before others become alight, and some linger yet a
little longer than the others, in our day's work the
scintillation of the iron dust is the work of a single
instant,
and so in the long night of eternity the scintillation of the
mightiest suns of space is over in a moment. A little longer,
indeed, in duration than the life which stirs a moment in
response to the diffusion of the energy, but only very little.
So
must an Eternal Being regard the scintillation of the stars
and
the periodic vibration of life in our geological time and the
most enduring efforts of thought. The latter indeed are no
more
lasting than
"... the labour of ants In the light of a million million
of
suns."
But the myriad suns themselves, with their generations, are
the
momentary gleam of lights for ever after extinguished.
294
Again, science suggests that the present process of
material
aggregation is not finished, and possibly will only be when
it
prevails universally. Hence the very distribution of the
stars,
as we observe them, as isolated aggregations, indicates a
development which in the infinite duration must be regarded
as
equally advanced in all parts of stellar space and essentially
a
simultaneous phenomenon. For were we spectators of a system
in
which any very great difference of age prevailed, this very
great
difference would be attended by some such appearance as the
following:—
The aupearance of but one star, other generations being
long
extinct or no others yet come into being; or, perhaps, a
faint
nebulous wreath of aggregating matter somewhere solitary in
the
heavens; or no sign of matter beyond our system, either
because
ungathered or long passed away into darkness.[1]
Some such appearances were to be expected had the aggregation
of
matter depended solely on chance encounters of particles
scattered through infinite space.
For as, by hypothesis, the aggregation occupies an infinite
time
in consummation it is nearly a certainty that each particle
encountered after immeasurable time, and then for the first
time
endowed with actual gravitational potential energy, would
have
long expended this energy
[1] It is interesting to reflect upon the effect which an
entire
absence of luminaries outside our solar system would have had
upon the views of our philosophers and upon our outlook on
life.
295
before another particle was gathered. But the fact that so
many
fires which we know to be of brief duration are scattered
through
a region of space, and the fact of a configuration which we
believe to be a transitory ore, suggest their simultaneous
aggregation here and there. And in the nebulous wreaths
situated
amidst the stars there is evidence that these actually
originated
where they now are, for in such no relative motion, I
believe,
has as yet been detected by the spectroscope. All this, too,
is
in keeping with the nebular hypothesis of Kant and Laplace so
long as this does not assume a primitive infinite dispersion
of
matter, but the gathering of matter from finite distances
first
into nebulous patches which aggregating with each other have
given rise to our system of stars. But if we extend this
hypothesis throughout an infinite past by the supposition of
aggregation of infinitely remote particles we replace the
simultaneous approach required in order to accotnt for the
simultaneous phenomena visible in the heavens, by a succession
of
aggregative events, by hypothesis at intervals of nearly
infinite
duration, when the events of the universe had consisted of
fitful
gleams lighted after eternities of time and extinguished for
yet
other eternities.
Finally, if we seek to replace the eternal instability
involved
in Kant's hypothesis when extended over an infinite past, by
any
hypothesis of material stability, we at once find ourselves
in
the difficulty that from the known properties of matter such
stability must have been
296
permanent if ever existent, which is contrary to fact. Thus
the
kinetic inertia expressed in Newton's first law of motion
might
well be supposed to secure equilibrium with material
attraction,
but if primevally diffused matter had ever thus been held in
equilibrium it must have remained so, or it was maintained so
imperfectly, which brings us back to endless evolution.
On these grounds I contend that the present gravitational
properties of matter cannot be supposed to have acted for all
past duration. Universal equilibrium of gravitating particles
would have been indestructible by internal causes. Perpetual
instability or evolution is alike unthinkable and contrary to
the
phenomena of the universe of which we are cognisant. We
therefore
turn from gravitating matter as affording no rational account
of
the past. We do so of necessity, however much we feel our
ignorance of the nature of the unknown actions to which we
have
recourse.
A prematerial condition of the universe was, we assume, a
condition in which uniformity as regards the average
distribution
of energy in space prevailed, but neterogeneity and
instability
were possible. The realization of that possibility was the
beginning we seek, and we today are witnesses of the train of
events involved in the breakdown of an eternal past
equilibrium.
We are witnesses on this hypothesis, of a catastrophe
possibly
confined to certain regions of space, but which is, to the
motions and configurations concerned, absolutely unique,
reversible to
297
its former condition of potential by no process of which we
can
have any conception.
Our speculation is that we, as spectators of evolution,
are
witnessing the interaction of forces which have not always
been
acting. A prematerial state of the universe was one of
unfruitful
motions, that is, motions unattended by progressing changes,
in
our region of the ether. How extended we cannot say; the
nature
of the motions we know not; but the kinetic entities differed
from matter in the one important particular of not possessing
gravitational attraction. Such kinetic configurations we
cannot
consider to be matter. It was _possible_ to construct matter
by
their summation or linkage as the configuration of the crystal
is
possible in the clear supersaturated liquid.
Duration in an ether filled with such motions would pass in
a
succession of mere unfruitful events; as duration, we may
imagine, even now passes in parts of the ether similar to our
own. An endless (it may be) succession of unprogressive,
fruitless events. But at one moment in the infinite duration
the
requisite configuration of the elementary motions is
attained;
solely by the one chance disposition the stability of all
must
go, spreading from the fateful point.
Possibly the material segregation was confined to one part
of
space, the elementary motions condensing upon transformation,
and
so impoverishing the ether around till the action ceased.
Again
in the same sense as the
298
stars are simultaneous, so also they may be regarded as
uniform
in size, for the difference in magnitude might have been
anything
we please to imagine, if at the same time we ascribe
sufficient
distance sundering great and small. So, too;, will a dilute
solution of acetate of soda build a crystal at one point, and
the
impoverishment of the medium checking the growth in this
region,
another centre will begin at the furthest extremities of the
first crystal till the liquid is filled with loose feathery
aggregations comparable in size with one another. In a
similar
way the crystallizing out of matter may have given rise, not to
a
uniform nebula in space, but to detached nebula, approximately
of
equal mass, from which ultimately were formed the stars.
That an all-knowing Being might have foretold the ultimate
event
at any preceding period by observing the motions of the parts
then occurring, and reasoning as to the train of consequences
arising from these nations, is supposable. But considerations
arising from this involve no difficulty in ascribing to this
prematerial train of events infinite duration. For progress
there
is none, and we can quite as easily conceive of some part of
space where the same Infinite Intelligence, contemplating a
similar train of unfruitful motions, finds that at no time in
the
future will the equilibrium be disturbed. But where evolution
is
progressing this is no longer conceivable, as being
contradictory
to the very idea of progressive development. In this case
Infinite Intelligence
299
_necessarily_ finds, as the result of his contemplation,
the
aggregation of matter, and the consequences arising
therefrom.
The negation of so primary a material property as gravitation
to
these primitive motions of (or in) the ether, probably
involves
the negation of many properties we find associated with
matter.
Possibly the quality of inertia, equally primary, is involved
with that of gravitation, and we may suppose that these two
properties so intimately associated in determining the motions
of
bodies in space were conferred upon the primitive motions as
crystallographic attraction and rigidity are first conferred
upon
the solid growing from the supersaturated liquid. But in some
degree less speculative is the supposition that the new order
of
motions involved the transformation of much energy into the
form
of heat vibrations; so that the newly generated matter, like
the
newly formed crystal, began its existence in a medium richly
fed
with thermal radiant energy. We may consider that the thermal
conditions were such as would account for a primitive
dissociation of the elements. And, again, we recall how the
physicist finds his estimate of the energy involved in mere
gravitational aggregation inadequate to afford explanation of
past solar heat. It is supposable, on such a hypothesis as we
have been dwelling on, that the entire subsequent
gravitational
condensation and conversion of material potential energy,
dating
from the first formation of matter to the stage of star
formation
300
may be insignificant in amount compared with the conversion
of
etherial energy attending the crystallizing out of matter
from
the primitive motions. And thus possibly the conditions then
obtaining involved a progressively increasing complexity of
material structure the genesis of the elements, from an
infra-hydrogen possessing the simplest material
configuration,
resulting ultimately in such self-luminous nebula as we yet
see
in the heavens.
The late James Croll, in his _Stellar Evolution_, finds
objections
to an eternal evolution, one of which is similar to the
"metaphysical" objection urged in this paper. His way out of
the
difficulty is in the speculation that our stellar system
originated by the collision of two masses endowed with
relative
motion, eternal in past duration, their meeting ushering in
the
dawn of evolution. However, the state of aggregation here
assumed, from the known laws of matter and from analogy,
calls
for explanation as probably the result of prior diffusion,
when,
of course, the difficulty is only put back, not set at rest.
Nor
do I think the primitive collision in harmony with the number
of
relatively stationary nebula visible in space.
The metaphysical objection is, I find, also urged by
George
Salmon, late Provost of Trinity College, in favour of the
creation of the universe.—(_Sermons on Agnosticism_.)
A. Winchell, in _World Life_, says: "We have not
301
the slightest scientific grounds for assuming that matter
existed
in a certain condition from all eternity. The essential
activity
of the powers ascribed to it forbids the thought; for all that
we
know, and, indeed, as the _conclusion_ from all that we know,
primal matter began its progressive changes on the morning of
its
existence."
Finally, in reference to the hypothesis of a unique
determination
of matter after eternal duration in the past, it may not be
out
of place to remind the reader of the complexity which modern
research ascribes to the structure of the atom.
302
INDEX
A.
Abney, Sir Wm., on sensitisers, 210.
Abundance of life, numerical, 98-100.
Adaptation and aggressiveness of the organism, 80.
Additive law, the, with reference to alpha rays, 220.
Age of Earth, comparison of denudative and radioactive methods
of
finding, 23-29.
Aletsch glacier, 286.
Allen, Grant, on colour of Alpine plants, 104.
Allen, H. Stanley, on photo-electricity, 203.
Alpha rays, nature of, 214; velocity of, 214; effects of,
on
gases, 214; range of, in air, 215; visualised, 218;
ionisation
curve of, 216; number of, from one gram of radium, 237; number
of
ions made by, 237.
Alpine flowers, intensity of colour of, 102.
Alps, history of, 141; Tertiary denudation of, 148; depth
of
sedimentary covering of, 148; evidence of high pressures and
temperatures in, 149; recent theories of formation of, 150
_et
seq._; upheaval of, 147; age of, 147; volcanic phenomena
attending elevation of, 147.
Andes, trough parallel to, 123; not volcanic in origin, 118.
Angle of friction on ice, 261-265, 281-283; on glass, 261-265.
Animate systems, dynamic conditions of, 67; and transfer
of
energy, 71; and old age, 72; mechanical imitation of, 76, 77.
Animate and inanimate systems compared, 73-75.
Appalachian range, formation of, 120.
Arrhenius, on elevation of continents, 17.
Aryan Era of India, 136.
Asteroids, probable origin of, 175; discovery of, 175;
dimensions
of, 176; orbits of, 176; Mars' moons derived from, 177.
B.
Babbage and Herschel, theory of mountain building, 123.
Babes (and Cornil), size of spores, 98.
Becker, G. F., age of Earth by sodium collection, 14; age
of
minerals by lead ratio, 20.
Berthelot, law of maximum work, 62.
Bertrand, Marcel, section of Mont Blanc Massif, 154.
Beta rays, nature of, 246; accompanied by gamma rays, 247;
production of, by gamma rays, 247; as ionising agents, 249.
Biotite, containing haloes, 223; pleochroism of, 235;
intensified
pleochroism in halo, 235.
Body and mind, as manifestations of progressiveness of the
organism, 86.
Boltwood, age of minerals by lead ratio, 20.
Bose, theory of latent image, 203.
Bragg and Kleeman, on path of the alpha ray, 215; stopping
power,
219; laws affecting ionisation by alpha rays, 220; curve of
ionisation and structure of the halo, 232.
Brecciendecke, sheet of the, 154.
Brdche, sheet of the, 154.
Burrard and Hayden on the Himalaya, 138; sections of the
Himalaya, 139.
C.
Canals and "canali," 166; curvature of, and path of a
satellite,
188 _et seq._; double and triple accounted for, 186, 187;
doubling of, 195; disappearance and reappearance of, 196-198;
photography of, 198; not due to cracks, 167; not due to
rivers,
167; of Mars, double nature of, 166, 170; crossing dark
regions
of planet's surface, 168; of Mars, Lowell's views on, 168 _et
seq._; shown on Lowell's map, investigation of, 192 _et
seq._;
radiating, explanation of, 193, 194; number of, 194; developed
by
secondary disturbances, 194; nodal development of, due to
raised
surface features, 195.
Chamberlin and Salisbury, the Laramide range, 121.
Clarke, F. W., estimate of mass of sediments, 9; age of Earth
by
sodium collection, 14; average composition of sedimentary and
igneous rocks, 42; on average composition of the crust, 126;
solvent denudation of the continents, 17, 40.
Claus, protoplasm the test of the cell, 67; abortion of
useless
organs, 69.
Coefficient of friction, definition of, 262; deduction of,
from
angle of friction, 263; abnormal values on ice, 261-265, 282;
for
various substances, 265.
Continental areas, movements of, 144.
Cornil and Babes, size of spores, 98.
Croll, James, dawn of evolution, 301.
Crust of the Earth, average composition of, 126; depth of
softening in, 128.
Curie, definition of the, 256.
D.
Dana, on mountain building, 120.
Dawson, reduction of surface represented by Laramide range, 123.
Deccan traps, 137
_déferlement_, theory of, 155; explanation of, 155 _et
seq._;
temperature involved in, 156.
Deimos, dimensions of, 177; orbit of, 577.
De Lapparent, exotic nature of the Préalpes, 150.
De Montessus and the association of earthquakes with
geosynclines, 142.
Denudation as affected by continental elevation, 17;
factors
promoting, 30 _et seg._; relative activity in mountains and
on
plains, 35-40; solvent, by the sea, 40; the sodium index of,
46-50; thickness of rock-layer removed from the land, 51.
De Quincy, System of the Heavens, 200.
Dewar, Sir James, latent image formed at low temperatures, 202.
Dixon, H. H., and AGnadance of Life, 60.
Double canals, formation by attraction of a satellite, 585-187.
Douglass, A. E., observations on Mars, 167.
Dravidian Era of India, 135.
E.
Earth, early history of, 3, 4; dimensions of, relative to
surface
features, 117.
Earth's age determined by thickness of sediments, 5;
determined
by mass of the sediments, 7; determined by sodium in the
ocean,
12; determined by radioactive transformations, 19;
significance
of, 2.
Earthquakes associated with geosynclincs, 142.
Efficiency, tendency to maximum, in organisms, 113, 114.
Elements, probable wide diffusion of rare, 230; rarity of
radioactive, 241.
Elster and Geitel, photo-electric activity and absorption,
207;
photo-electric properties of gelatin, 212; Emanation of
radium,
therapeutic use of, 256-259; advantages of, in medicine, 256;
volume of, 257; how obtained, 257; use of, in needles, 258.
Equilibrium amount, meaning of, 254, 255.
Evolution and acceleration of activity, 79; of the universe
not
eternal a pane ante, 298.
F.
Faraday and ionisation, 57.
Finality of progress a part, post, 289.
Flahault, experiments on colour of flowers, 108.
Fletcher, A. L., proportionality of thorium and uranium, 26,
G.
Galileo, discovery of Jupiter's moons, 162.
Gamma rays, nature of, 247: production of, by beta rays, 247;
as
ionising agents, 249.
Geddes and Thomson, hunger and living matter, 71.
Geiger, range of alpha rays in air, 215; ionisation affected
by
alpha rays in air, 216; on "scattering," 217; scattering and
the
structure of the halo, 232.
Geikie, Sir A., uniformity in geological history, 15.
Geosynclines, 119; association with earthquakes and
volcanoes,
142; of the tethys, 142; radioactive heat in, due to
sediments,
130; temperature effects due to lateral compression of, 131.
Glacial epoch, phenomena of, 287.
Glacier motion, cause of. 285.
Glossopteris and Gangamopteris flora, 136.
Gondwanaland, 136.
Gradient of temperature in Earth's surface crust, 126.
H.
Haimanta period of India, 135.
Halley, Edmund, finding age by saltness of ocean, 13.
Hallwachs, photo-electric activity and absorption, 207.
Haloes, pleochroic, finding age of rocks by, 21; due to
uranium
and thorium families, 227; radii of, 227; over-exposed and
underexposed, 228; intimate structure of, 229 _et seq._;
artificial, 229; tubular, in mica, 230; extreme age of, 231;
effect of nucleus on structure of, 232; inference from
spherical
form of, in crystals, 233; structure of, unaffected by
cleavage,
235; origin of the name "pleochroic,"235; colouration due to
iron, 235; colouration not due to helium, 236; age Of, 236;
slow
formation of, 237, 238; number of rays required to build,
237;
and age of the Earth, 238-241.
Hayden, H.H., geology of the Himalaya, 134, 138, 139.
Heat-tendency of the universe, 62.
Heat emission from the Earth's surface, 126; from average
igneous
rock due to radioactivity, 126.
Helium and the alpha ray, 214, 222; colouration of halo not
due
to, 236.
Hering, E., and physiological or unconscious memory, 111.
Herschel and Babbage theory of mountain building, 123.
Herschel, Sir W., on galaxy of milky way, 293.
Hertz, negative electrification discharged by light, 204.
Himalaya, geological history of, 134-139.
Hobbs, on association of earthquakes and geosynclines, 143.
Holmes, A., original lead in minerals, 20; age of Devonian, 21.
Horst concerned in Alpine _déferlement_, objections to, 156.
Hyperion, dimensions of, 177.
I.
Ice, melting of, by pressure, 267 _et seq._; expansion of
water
in becoming, 267; lowering of melting-point by pressure, 267;
fall of temperature under pressure, 268 _et seq._; viscosity
of,
284.
Igneous rocks, average composition of, 43.
Inanimate actions, dynamic conditions of, 61.
Inanimate systems, secondary effects in, 63-65; transfer
of
energy into, 66.
Indian geology, equivalent nomenclature of, 139.
Initial recombination of ions due to alpha rays, 221, 222,
231;
and structure of the halo, 231.
Insect life in the higher Alps, 104, 105; destruction of, on
the
Alpine snows, 106.
Ionisation by alpha ray, density of, 221; importance in
chemical
actions, 250; in living cell, 250.
Ions, number of, produced by an alpha ray, 237.
Isostasy, 53; and preservation of continents, 53.
Ivy, inconspicuous blossoms of, 107; delay in ripening
seed,
107.
K.
Kant and Laplace, material hypothesis of, does not account
for
the past, 290.
Kelvin, Lord, experiment on effects of pressure on ice, 268-270.
Kleeman and Bragg. See Bragg.
Klopstock introduces skating into Germany, 273.
L.
Lakes, cause of blue colour of, 55.
Land, movements of the, 53, 54.
Laukester, Ray, the soma and reproductive cells, 85.
Lapworth, structure of the Scottish Highlauds, 153.
Latent heat of water, 266.
Latent image, formed at low temperatures, 202; Bose's theory
of,
203; photo-electric theory of, 204, 209 _et seq._
Least action, law of, 66.
Lembert and Richards, atomic weight of lead, 27.
Length of life dependent on conditions of structural
development,
93; dependent on rate of reproduction, 94.
Life-curves of organisms having different activities, 92.
Life, length of, 91.
Life waves of a cerial, 95; of Ausaeba, 87; of a species, 90.
Light, effects of, in discharging negative electrification,
204;
chemical effects of, 205; experiment showing effect of, in
discharging electrified body, 205.
Lindemann, Dr., duration of solar heat, 29.
Lowell, Percival, observations on Mars, 167 _et seq._; map
of
Mars, reliability of, 198.
Lucretius, birth-time of the world, 1.
Lugeon, formation of the Préalpes, 171; sections in the
Alps,
154.
Lyell, uniformity in geological history, 15.
M.
Magee, relative areas of deposition and denudation, 16.
Mars, climate of, 170; position in solar system, 174, 175;
dimensions of satellites of, 177; snow on, 169; water on,
169;
clouds on, 169; atmosphere of, 170; melting of snow on, 170;
dimensions of canals, 171; signal on, 172; times of
opposition,
164; orbit of, 165; distance from the Earth, 165; eccentricity
of
his orbit, 165; observations of, by Schiaparelli, 165, 166;
Lowell's observations on, 167 _et seq._
Maxwell, Clerk, changes made under constraints, 65; on
conservation of energy, 61.
M'Connel, J. C., viscosity and rigidity of ice, 284.
Memory, physiological, 111, 112.
Metamorphism, thermal, in Alpine rocks, 132, 149
Millicurie, definition of, 256.
Molasse, accumulations of, 148.
Morin, coefficients of friction, 265.
Morphy, H., experiments on coefficient of friction of ice, 281.
Mountain-building and the geosynclines, 119-121; conditioned
by
radioactive energy, 125; energy for, due to gravitation, 122;
reduction of surface attending, 123; depression attending,
123;
instability due to thermal effects of compression, 132;
igneous
phenomena attending, 132; rhythmic character of, accounted
for,
133; movements confined to upper crust, 122; movements due to
compressive stresses in crust, 122; movements, rhythmic
character
of, 121.
Mountain ranges built of sedimentary materials, 118.
Müller, J., coefficient of friction of skate on ice, 265, 274.
Muth deposits of India, 135.
N.
Newton, Professor, of Yale, on origin of Mars' satellites, 177.
Nucleus, dimensions of, 237; amount of radium in, 238.
Nummulitic beds of Himalaya, 138.
O.
Ocean, amount of rock salt in, 50; cause of black colour of,
55;
estimated mass of sediments in, 48; increase of bulk due to
solvent denudation, 52; its saltness due to denudation, 41.
Old age and death, 82-85; not at variance with progressive
activity, 83.
Organic systems, origin of, 78.
Organic vibrations, 86 _et seq._
Organism and accelerative absorption of energy, 79; and
economy,
109-111; and periodic rigour of the environment, 94,95.
Organism and sleep, 95; ultimate explanation of rythmic
events
in, 96, 97; law of action of, 68 _et seq._; periodicity of;
and
law of progressive activity, 82 _et seq._
P.
Penjal traps, 135.
Pepys and skating, 273.
Perry, coefficient of friction of greased surfaces, 265.
Phobos, dimensions of, 177; orbit of, 177.
Photoelectric activity and absorption, 207; persists at
low
temperatures, 208, 209; not affected by solution, 213.
Photo-electric experiment, 205; sensitiveness of the hands,
207;
theory of latent image, 204, 209 _et seq._
Photographic reversal, experiments on, by Wood, 211; theory
of,
210.
Piazzi, discovery of first Asteroid, 175.
Pickering, W. H., observations on Mars, 167.
Planet, slowing of axial rotation of, 189.
Plant, expectant attitude of, 109.
Pleochroic haloes, measurements of, 224; theory of, 224
_et
seq._; true form of, 226; radius of, and the additive law,
225;
absence of actinium haloes, 225; see _also_ Haloes; mode of
occurrence of, 223 _et seq._
Poole, J. H. J., proportionality of thorium and uranium, 26.
Poulton, uniformity of past climate, 17.
Pratt, Archdeacon, and isostasy, 53.
Préalpes, exotic nature of, 150, 151.
Prematerial universe, nature of a, 297, 300.
Prestwich and thickness of rigid crust, 128; history of
the
Pyrenees, 140.
Primitive organisms, interference of, 89; life-curves of, 88.
Proctor and orbits of Asteroids, 176.
Protoplasm, encystment of, 68.
Purana Era of India, 134.
Pyrenees, history of, 140.
R.
Radioactive elements concerned in mountain building, 125.
Radioactive layer, failure to account for deep-seated
temperatures, 127; assumed thickness of, 128; temperature at
base
of, due to radioactivity, 129; in the upper crust of the
Earth,
125; thickness of, 126-128.
Radioactive treatment, physical basis of, 251.
Radioactivity and heat emission from average igneous rock,
126;
rarity of, established by haloes, 241, 243.
Radium, chemical nature and transmutation of, 244-245;
emanation
of, 245; rays from, 253, 254; table of family of, 253; period
of,
253; small therapeutic value of, 254.
Radium C, therapeutic value of, 254; rays from. 254;
generation
of, 254.
Rationality, conditions for development of, 163.
Rays, similarity in nature of gamma, X, and light rays,
248;
effects on living cell, 251; penetration of, 251.
Reade, T. Mellard, finding age of ocean by calcium sulphate, 13.
Recumbent folds, formation of, 155 _et seq._
Regelation, 284; affecting glacier motion, 285.
Reversal, photographic, explanation of, 211.
Richards and Lembert, atomic weight of lead, 27.
Richter, Jean Paul, Dream of the Universe, 200.
Rock salt in the ocean, amount of, 13.
Rocks, average composition of, 43; radioactive heat from,
126;
rate of solution of, 36.
Russell, I. C., river supply of sediments, 10.
Rutherford, Sir E., determination of age of minerals, 19, 20;
age
of rocks by haloes, 22; derivation of actinium, 226;
artificial
halo, 229; number of alpha rays from one gram of radium, 237.
S.
Salt range deposits of India, 134. 135.
Saltness of the ocean due to denudation, 41-46.
Salisbury (and Chamberlin), the Larimide range, 121.
Salmon, Rev. George, on creation, 301.
Satellite, velocity of, in its orbit, 191; method of finding
path
of, over a rotating primary, 189 _et seq._; direct and
retrograde, 178; ultimate end of, 178; path of, when falling
into
primary, 179; effect of Mars' atmosphere on infalling
satellite,
179; stability of close to primary, 180; effects of, on crust
of
primary, 180 _et seq._
Schiaparelli, observations on Mars, 165 166.
Schmidt, C., original depth of Alpine layer, 131-148;
structure
of the Alps, 152.
Schmidt, G. C., on photo-electricity, 207, 208; effect of
solution on photo-electric activity, 213.
Schuchert, C., average area of N. America during geological
time,
16.
Sedimentary rocks, average composition of, 43; mass of,
determined by sodium index, 47.
Sedimentation a convection of energy, 133.
Sediments, average river supply of, 11; on ocean floor, mass
of,
48; average thickness of, 49; precipitation of, by dissolved
salts, 56-58; radioactivity of 130; radioactive heat of,
influential in mountain building, 130, 131; rate of
collecting,
7; determination of mass of, 8; river supply of, 10; total
thickness of, 6.
Semper, energy absorption of vegetable and animal systems, 78.
Sensitisers, effects of low temperature on, 210.
Simplon, radioactive temperature in rocks of, before
denudation,
132.
Skates, early forms of, 273; principles of construction of,
273
_et seq._; action of, on ice, 276; bite of, 278-280.
Skating not dependent on smoothness of ice, 260; history
of,
273.
Skating only possible on very few substances, 279.
Soddy, F., on isotopes, 24.
Sodium, deficiency of, in sediments, 44; discharge of
rivers,
14.
Soils, formation of, 37-39; surface area exposed in, 39.
Sollas, W. J., age of Earth by sodium in ocean, 14; thickness
of
sediments, 6.
Spencer, on division of protoplasm, 67.
Spores, number of molecules in, 97.
Stevenson, Dr. Walter C., and technique of radioactive
treatment,
259.
Stoletow, photo-electric activity anal absorption, 207.
Stopping power of substances with reference to alpha rays, 219.
Struggle for existence, dynamic basis of, 80.
Strutt, Prof. the Hon. R. J., age of geological periods,
20;
radioactivity of zircon, 223.
Sub-Apennine series of Italy, 148.
Suess, nature of earthquakes. 143.
Survival of the fittest and the organic law, 80.
T.
Talchir boulder-bed, 136.
Temperature gradient in Earth's crust, 126.
Termier, section of the Pelvoux Massif, 254.
Tethys, early extent of, 135-137; geosynclines of, 142.
Thermal metamorphism in Alpine rocks, 132, 149.
Thomson, James, prediction of melting of ice by pressure, 267.
Thorium and uranium, proportionality of, in older rocks, 26.
Triple canals, formation of, by attraction of a satellite, 187.
Tyndall, colour of ocean water, 55.
U.
Uniformitarian view of geological history, 15-18.
Universe, simultaneity of the, 293-295.
Uranium-radium family of elements, table of, 253.
V.
Val d'Hérens, earth pillars of, 33.
Van Tillo, nature of continental rock covering, 9.
Vegetable and animal systems, relative absorption of energy
of,
78.
Vegetative organs, struggle between, 105, 106.
Volcanoes and mountain ranges, 118; associated with
geosynclines,
142; Oligocene and Miocene of Europe, 147.
W.
Weinschenk and thermal metamorphism, 132,
149.
Weismaun, encystment of protoplasm, 68; length of life and
somatic cells, 96; origin of death, 83; tendency to early
reproductiveness, 98.
Wilson, C. T. R., visualised alpha rays, 218.
Winchell, progressive changes of matter not eternal, 302.
Wood, R. W., on photographic reversal, 211.
Z.
Zircon, radioactivity of, 223; as nucleus of halo, 223.