A model for water hyacinth biological control
A Dissertation submitted to the Faculty of Science, University of the Witwatersrand, in fulfilment of the requirements for the degree of Master of Science === Water hyacinth is one of the most invasive aquatic plants in the world. As such, there have been numerous attempts to model and predict its g...
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ndltd-netd.ac.za-oai-union.ndltd.org-wits-oai-wiredspace.wits.ac.za-10539-193512019-05-11T03:40:24Z A model for water hyacinth biological control Hauptfleisch, Kendall Adair Water hyacinth. Weeds--Biological control. A Dissertation submitted to the Faculty of Science, University of the Witwatersrand, in fulfilment of the requirements for the degree of Master of Science Water hyacinth is one of the most invasive aquatic plants in the world. As such, there have been numerous attempts to model and predict its growth. Some of these models incorporate the influence of temperature or nutrients as the two most important determinants of water hyacinth growth. Other models include the effect of biological control on the growth of the plant, but only one model integrates environmental factors (temperature) with the effect of biological control. In this study, I attempt to incorporate temperature, and biological control effects on the growth of water hyacinth into a single model. Temperature-dependent water hyacinth and stage-structured Neochetina weevil population models were constructed in STELLA 9.1.4 and compared against an empirical dataset for two water hyacinth infested sites in South Africa for a two-year period (2004-2006). Although these models may not simulate field water hyacinth populations accurately, they suggest that Neochetina weevils can reduce water hyacinth populations, to below the assumed carrying capacity (70 kg/m2). It appears that the effects of Neochetina larvae are vital in reducing water hyacinth populations, and need to be further explored in order to simulate water hyacinth/weevil systems accurately. 2016-01-20T12:02:15Z 2016-01-20T12:02:15Z 2016-01-20 Thesis http://hdl.handle.net/10539/19351 en application/pdf application/pdf |
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Water hyacinth. Weeds--Biological control. |
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Water hyacinth. Weeds--Biological control. Hauptfleisch, Kendall Adair A model for water hyacinth biological control |
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A Dissertation submitted to the Faculty of Science, University of the Witwatersrand, in fulfilment of the requirements for the degree of Master of Science === Water hyacinth is one of the most invasive aquatic plants in the world. As such, there have been numerous attempts to model and predict its growth. Some of these models incorporate the influence of temperature or nutrients as the two most important determinants of water hyacinth growth. Other models include the effect of biological control on the growth of the plant, but only one model integrates environmental factors (temperature) with the effect of biological control. In this study, I attempt to incorporate temperature, and biological control effects on the growth of water hyacinth into a single model. Temperature-dependent water hyacinth and stage-structured Neochetina weevil population models were constructed in STELLA 9.1.4 and compared against an empirical dataset for two water hyacinth infested sites in South Africa for a two-year period (2004-2006). Although these models may not simulate field water hyacinth populations accurately, they suggest that Neochetina weevils can reduce water hyacinth populations, to below the assumed carrying capacity (70 kg/m2). It appears that the effects of Neochetina larvae are vital in reducing water hyacinth populations, and need to be further explored in order to simulate water hyacinth/weevil systems accurately. |
author |
Hauptfleisch, Kendall Adair |
author_facet |
Hauptfleisch, Kendall Adair |
author_sort |
Hauptfleisch, Kendall Adair |
title |
A model for water hyacinth biological control |
title_short |
A model for water hyacinth biological control |
title_full |
A model for water hyacinth biological control |
title_fullStr |
A model for water hyacinth biological control |
title_full_unstemmed |
A model for water hyacinth biological control |
title_sort |
model for water hyacinth biological control |
publishDate |
2016 |
url |
http://hdl.handle.net/10539/19351 |
work_keys_str_mv |
AT hauptfleischkendalladair amodelforwaterhyacinthbiologicalcontrol AT hauptfleischkendalladair modelforwaterhyacinthbiologicalcontrol |
_version_ |
1719081842198446080 |