From this table it will be seen that the flow of water in the soil
varied in rate, being slower during the first five days than in the
succeeding fifteen days. After twenty days the flow dropped again to the
beginning rate and then fell below, but remained quite constant during
the following nineteen days. For the sake of uniformity in units of
measure the daily quantity of flow should be given in kilograms when the
hourly flow is given in grams.
=167. Causes of Water Movement in the Soil.=—The movement of water in a
soil as explained by Whitney[116] is due to two forces, _viz._,
gravitation and surface tension.
The force of gravitation in a given locality is always uniform, both in
direction and magnitude per unit volume of water.
Surface tension is the tendency of any exposed water surface to pull
itself together. It may act in any direction, according to
circumstances, and may thus sometimes help and sometimes antagonize the
force of gravitation.
According to the law of surface tension any particle of moisture tends
to assume the smallest possible area. This tendency is a constant
definite force per unit of surface at a given temperature. In the soil
this constant strain on the free surface of water particles serves, in a
high degree, to move them from place to place, in harmony with the
requirements of the different portions of the field.
When a soil is only slightly moist the water clings to its grains in the
form of a thin film. When these soil particles are brought together the
films of water surrounding them unite, one surface being in contact with
the soil particles and the other exposed to the air. If more water enter
the soil the film thickens until finally, when the point of saturation
is reached, all the space between the soil particles becomes filled with
water, and surface tension within the soil is thus reduced to zero.
Gravity then alone acts on the water and with a maximum force.
In a cubic foot of ordinary soil the total surface of the soil particles
will be at least 50,000 square feet. It follows that when the soil is
only slightly moist the exposed water surface of the films surrounding
the soil particles approximates that of the particles themselves. If
such a mass of slightly moist soil be brought in contact with a like
mass saturated with water, the films of water at the point of contact
will begin to thicken in the nearly dry soil at the expense of the water
content of the saturated mass. The water will thus be moved in any
direction.
During evaporation the surface tension near the surface of the soil is
increased, and water is thus drawn from below. In like manner, when rain
falls on a somewhat dry soil, the surface tension is diminished and the
greater surface tension below pulls the moisture down even when
gravitation would not be sufficient for that purpose.
Public-domain text, read in full here on John Shaqi.
Reviews
Reviews
No reviews yet
Be the first to share your thoughts on this work.
Elsewhere in the archive
Join the Discussion
Join the discussion
Sign in to leave a comment or review.
Sign InorCreate an account