Modeling fish community dynamics in the Florida Everglades: role of temperature variation
Authored by Donald L DeAngelis, HA Al-Rabai'ah, HL Koh, HL Lee
Date Published: 2002
Sponsors:
Intensification of Research in Priority Areas (IRPA)
Platforms:
No platforms listed
Model Documentation:
Other Narrative
Mathematical description
Model Code URLs:
Model code not found
Abstract
Temperature variation is an important factor in Everglade wetlands
ecology. A temperature fluctuation from 17degreesC to 32degreesC
recorded in the Everglades may have significant impact on fish dynamics.
The short life cycles of some of Everglade fishes has rendered this
temperature variation to have even more impacts on the ecosystem. Fish
population dynamic models, which do not explicitly consider seasonal
oscillations in temperature, may fail to describe the details of such a
population. Hence, a model for fish in freshwater marshes of the Florida
Everglades that explicitly incorporates seasonal temperature variations
is developed. The model's main objective is to assess the temporal
pattern of fish population and densities through time subject to
temperature variations. Fish population is divided into 2 functional
groups (FGs) consisting of small fishes; each group is subdivided into
5-day age classes during their life cycles. Many governing sub-modules
are set directly or indirectly to be temperature dependent. Growth, fecundity, prey availability, consumption rates and mortality are
examples. Several mortality sub-modules are introduced in the model, of
which starvation mortality is set to be proportional to the ratio of
prey needed to prey available at that particular time step. As part of
the calibration process, the model is run for 50 years to ensure that
fish densities do not go to extinction, while the simulation period is
about 8 years.
The model shows that the temperature dependent starvation mortality is
an important factor that influences fish population densities. It also
shows high fish population densities at some temperature ranges when
this consumption need is minimum. Several sensitivity analyses involving
variations in temperature terms, food resources and water levels are
conducted to ascertain the relative importance of temperature dependence
terms.
Tags
Individual-based model
growth
Bioenergetics model