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The impact of power line-related mortality on the Cape Vulture Gyps coprotheres in a part of its range, with an emphasis on electrocution

Published online by Cambridge University Press:  26 July 2011

ANDRÉ F. BOSHOFF*
Affiliation:
Centre for African Conservation Ecology, P O Box 77000, Nelson Mandela Metropolitan University, Port Elizabeth, 6031 South Africa.
JOHAN C. MINNIE
Affiliation:
Centre for African Conservation Ecology, P O Box 77000, Nelson Mandela Metropolitan University, Port Elizabeth, 6031 South Africa.
CRAIG J. TAMBLING
Affiliation:
Centre for African Conservation Ecology, P O Box 77000, Nelson Mandela Metropolitan University, Port Elizabeth, 6031 South Africa.
MICHAEL D. MICHAEL
Affiliation:
Sustainability and Innovation Department, Eskom Holdings Ltd, Private Bag 40175, Cleveland, 2022 South Africa.
*
*Author for correspondence; email: andre.boshoff@nmmu.ac.za
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Summary

The global population of the Cape Vulture Gyps coprotheres, a threatened southern African endemic, is known to be impacted by electrocutions and collisions on power line infrastructure, but to date this impact has not been estimated or quantified. Using data in a national database from the period prior to our study, conducted in the Eastern Cape Province of South Africa, we estimated a mean annual mortality rate from power line-related mortality of around 14 vultures per year. After applying an adjusted rate based on the results of a landowner survey, this estimate increased to around 80 vultures per year (i.e. a 5.7 fold increase). For a number of reasons, the estimated mean annual mortality rate is considered to under-represent the true situation, and must therefore be considered a minimum value. A simple model was constructed and run to investigate the potential impact of the mortality rate from electrocution on the study population. It distinguishes between vulture subpopulations in areas of high and low electrocution threat, and a migratory subpopulation that moves between these two areas. The model, simulated over 50 years and applying a constant theoretical maximum annual growth rate of 2%, indicates positive growth of the population in those areas where the electrocution threat from power lines is low, whereas the population in those areas where this threat is high is predicted to crash to extinction, from electrocution mortality alone, within a 20–35 year period. The regional population is predicted to show positive growth over the 50 year period. However, for a number of reasons that relate to the nature of certain parameters used in the model, the simulations must be considered to be conservative, at best. In addition, other unnatural mortality factors (notably inadvertent poisoning, drowning in high-walled farm reservoirs, harvesting for the traditional medicine trade, local food shortage), which are additive to power line-related mortality have not been taken into account. Management recommendations aimed at obtaining an improved estimate of the mean annual mortality rate from power lines, and at ameliorating the impact of electrocutions on the regional Cape Vulture population, are briefly mentioned. These address the former by documenting ways to improve the quantity and quality of the field data, and the latter by identifying areas where urgnt action needs to be taken to reduce or avoid the electrocution of vultures, by mitigating extant ‘unsafe’ power line infrastructure, and by ensuring that that only ‘safe’ infrastructure is used for new power lines.

Information

Type
Research Articles
Copyright
Copyright © BirdLife International 2011
Figure 0

Figure 1. The Eastern Cape Province of South Africa, which forms the study area. The localities of Cape Vulture Gyps coprotheres roosts (●) and breeding sites (■) that were active during the post-1999 (mainly 2004–2007) period, and of sightings (×) of vultures at and away from these active sites during the 2000–2008 period, are shown. Sightings away from the active sites were made on an opportunistic basis. Source: Boshoff et al. (2009a), this study.

Figure 1

Figure 2. The study area, showing (a) the sites (▲) of known power line-Cape Vulture incidents (electrocutions and collisions) in the 1970s–2008 period, (b) power lines (—) that are ‘unsafe’ or potentially ‘unsafe’ (i.e. that comprise infrastructure that is known to electrocute Cape Vultures), and (c) high electrocution threat (HET) (unshaded) and low electrocution threat (shaded) areas, to the east of 25°S30’E. Sources of data: CIR (WEP-EWT), Eskom and this study.

Figure 2

Figure 3. The localities of commercial stock farms in the Eastern Cape Province whose owners participated in the landowner survey (see text). ● = Farms where vulture-power line incidents were reported during the landowner survey; ○ = farms where no vulture-power line incidents were reported during the land-owner survey. Shading denotes LET (low electrocution threat) areas to the east of 25°S30’E.

Figure 3

Table 1. Cape Vulture power line-related mortality statistics over 13 years (1996–2008), from entries in the Central Incident Register curated by the Wildlife and Energy Programme (WEP) of the Endangered Wildlife Trust (EWT), Johannesburg (see text).

Figure 4

Figure 4. Simulated population trends (based on monthly time step iterations, and for two occupancy scenarios – see text) for the Cape Vulture over the next 50 years in the different parts of the study area: A) resident subpopulation in the low electrocution threat (LET) areas, B) resident subpopulation in the high electrocution threat (HET) area, C) population in the entire study area, and D) population in the high electrocution threat (HET) area (migratory component and resident component combined).