Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Long-term human impact on alluvial peatland dynamics in temperate climates

View through CrossRef
<p>Peatlands across the globe are experiencing external pressures such as land use change, drainage and climatic changes, but are also directly impacted e.g. through peat harvesting. As a result, the dynamics of these peatlands, and their role in long-term carbon storage, has changed. In contrast to many other regions around the globe, temperate Europe has known a long history of human impact. In the northwest European lowlands, peat growth occurs mostly in floodplains under the form of alluvial peatlands. In central Belgian river valleys, alluvial peatlands developed since the Early Holocene, with a typical peat thickness between 1.5 and 2.5 metres, but reaching values of more than 6 metres at some locations.</p><p>Alluvial peatlands therefore are an important store of soil organic carbon reaching values of up to 2754 t ha<sup>-1</sup>, thus providing an important ecosystem service. However, the fate of this carbon reservoir is challenged through many different types of human actions since at least the Middle Ages including peat cutting for fuel, drainage for land reclamation and changes in catchment hydrology through land use change. For instance, a comparison of field-based peatland carbon budgets for different river valleys indicates that floodplains where cutting of topsoil peat has been important in the Late Holocene, store significantly less carbon (729 ± 397 t ha<sup>-1</sup>) than floodplains where Early to Mid-Holocene peat has been buried by mineral sediments originating from agricultural erosion on hillslopes (1991 ± 877 t ha<sup>-1</sup>). Adequate modelling can provide a powerful tool to study peatland dynamics and the interaction between internal and external processes in peatlands, but unfortunately, there are currently no available modelling tools to study the long-term dynamics of alluvial peatlands.</p><p>A long-term peatland model (Digibog) was adapted to be applicable to the context of alluvial peatlands. Changes were made to both the hydrological and biological modules to include variations in the river water level, flooding, anthropogenic peat cutting and a wide variety of vegetation types, ranging from open meadows to carr forests. In a first step, the Holocene evolution of an alluvial peatland was simulated under the conditions which were typical for lowland Belgium to provide a Holocene peat sequence with an annual resolution. In a second step, this peatland was subjected to a wide set of alternative management scenarios that have been in place since the Middle Ages. The simulations allow to estimate the effect of these scenarios on the peatland dynamics in terms of peatland hydrology, productivity and carbon storage. Based on this modelling study, the sensitivity of these systems to human activities can be quantified. The resultant magnitudes and rates of change under different scenarios can provide useful information for future management of alluvial peatlands and a better understanding of long-term peatland dynamics in general.</p>
Title: Long-term human impact on alluvial peatland dynamics in temperate climates
Description:
<p>Peatlands across the globe are experiencing external pressures such as land use change, drainage and climatic changes, but are also directly impacted e.
g.
through peat harvesting.
As a result, the dynamics of these peatlands, and their role in long-term carbon storage, has changed.
In contrast to many other regions around the globe, temperate Europe has known a long history of human impact.
In the northwest European lowlands, peat growth occurs mostly in floodplains under the form of alluvial peatlands.
In central Belgian river valleys, alluvial peatlands developed since the Early Holocene, with a typical peat thickness between 1.
5 and 2.
5 metres, but reaching values of more than 6 metres at some locations.
</p><p>Alluvial peatlands therefore are an important store of soil organic carbon reaching values of up to 2754 t ha<sup>-1</sup>, thus providing an important ecosystem service.
However, the fate of this carbon reservoir is challenged through many different types of human actions since at least the Middle Ages including peat cutting for fuel, drainage for land reclamation and changes in catchment hydrology through land use change.
For instance, a comparison of field-based peatland carbon budgets for different river valleys indicates that floodplains where cutting of topsoil peat has been important in the Late Holocene, store significantly less carbon (729 ± 397 t ha<sup>-1</sup>) than floodplains where Early to Mid-Holocene peat has been buried by mineral sediments originating from agricultural erosion on hillslopes (1991 ± 877 t ha<sup>-1</sup>).
Adequate modelling can provide a powerful tool to study peatland dynamics and the interaction between internal and external processes in peatlands, but unfortunately, there are currently no available modelling tools to study the long-term dynamics of alluvial peatlands.
</p><p>A long-term peatland model (Digibog) was adapted to be applicable to the context of alluvial peatlands.
Changes were made to both the hydrological and biological modules to include variations in the river water level, flooding, anthropogenic peat cutting and a wide variety of vegetation types, ranging from open meadows to carr forests.
In a first step, the Holocene evolution of an alluvial peatland was simulated under the conditions which were typical for lowland Belgium to provide a Holocene peat sequence with an annual resolution.
In a second step, this peatland was subjected to a wide set of alternative management scenarios that have been in place since the Middle Ages.
The simulations allow to estimate the effect of these scenarios on the peatland dynamics in terms of peatland hydrology, productivity and carbon storage.
Based on this modelling study, the sensitivity of these systems to human activities can be quantified.
The resultant magnitudes and rates of change under different scenarios can provide useful information for future management of alluvial peatlands and a better understanding of long-term peatland dynamics in general.
</p>.

Related Results

Modelling peatland development in temperate alluvial environments
Modelling peatland development in temperate alluvial environments
<p>It is well known that C accumulation rates are much higher when focusing on short-term measurement periods in areas with active peat growth when compared to the ne...
Peatland fire regime across Riau peat hydrological unit, Indonesia
Peatland fire regime across Riau peat hydrological unit, Indonesia
Peatland stretches across approximately 8% of Indonesia’s land area. Peat fire disturbance, which affects the carbon dynamics of the ecosystem, will determine the country's vision ...
Evaluating the thermal effects of peatland restoration using UAV monitoring
Evaluating the thermal effects of peatland restoration using UAV monitoring
Mid-latitude montane peatlands have undergone extensive anthropogenic modifications in past decades. Projects aimed at their restoration represent critical ecological interventions...
Sustainable High-rises
Sustainable High-rises
With the aim to limit the number of ineffective designs, this dissertation has investigated the impact of architectural design strategies on improving the energy performance of and...
THE INTEGRATED PEATLAND MANAGEMENT SYSTEM (IPMS)
THE INTEGRATED PEATLAND MANAGEMENT SYSTEM (IPMS)
Peatland is a rich ecosystem containing many organic components. This ecosystem is composed of plant residue materials that have not undergone a complete decomposition process due ...
Enhancement of community participation in the peatland restoration in Tanjung leban village, Riau province, Indonesia
Enhancement of community participation in the peatland restoration in Tanjung leban village, Riau province, Indonesia
The peatland restoration required participation from various stakeholders, including the community. In Indonesia, the Peatland Restoration Agency used the social approach to enhanc...
Aspects of microbial communities in peatland carbon cycling under changing climate and land use pressures
Aspects of microbial communities in peatland carbon cycling under changing climate and land use pressures
Globally, major efforts are being made to restore peatlands to maximise their resilience to anthropogenic climate change, which puts continuous pressure on peatland ecosystems and ...
STATUS OF PEATLAND FIRE RESEARCH IN INDONESIA
STATUS OF PEATLAND FIRE RESEARCH IN INDONESIA
Peatland fire research has been on the increasing trend since 1997/1998 when fire episode experienced by Indonesia and ASEAN region. Its impact on transboundary haze pollution has ...

Back to Top