BS
Bernhard Steubing
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One strategy to solve the severe environmental problems of Moroccan horticulture, especially water scarcity, is to upgrade agricultural methods by introducing high-tech greenhouses equipped with closed-loop hydroponic systems. However, these technologies are unprecedented in the country, and the implications for the environment remain unknown under local conditions.
Using life cycle assessment with a functional unit of one kilogram of tomatoes at greenhouse gate, this study aimed to predict the environmental impacts and the hotspots of two different closed-loop hydroponic systems if they were deployed in the Souss-Massa region, the biggest producer of the country. 18 mid-point indicators from ReCiPe were used, highlighting the most relevant ones for the region: use of net freshwater (UNFW), terrestrial ecotoxicity (TET), freshwater eutrophication (FE), and global warming (GW). A field trip to Agadir, the capital of the region, also helped to collect different views on the transition to these technologies.
The impact assessment revealed that artificial lighting would be the main contributor to 17 categories due to electricity being generated from oil and coal. To a lesser extent, landfilling of waste would also impact most of the categories. A new scenario with renewable energy showed that the impact from lighting can be drastically reduced by around 80% for GW, TET, and FE and by 34% in the case of UNFW. Contrarily, waste plastic recycling does not significantly influence the LCA results since the more abundant organic waste is a larger contributor.
For Souss-Massa to sustainably transit to hydroponic systems, it is essential that electricity consumption for lighting is drastically reduced and/or switched to clean sources. Organic waste needs to be revalorized by implementing composting processes or biodigesters. Lastly, the field trip exposed some key challenges to transit to more sustainable hydroponic farming systems: gaining the trust of farmers, finding financial support, and promoting collaboration between growers and the local community. ...
Using life cycle assessment with a functional unit of one kilogram of tomatoes at greenhouse gate, this study aimed to predict the environmental impacts and the hotspots of two different closed-loop hydroponic systems if they were deployed in the Souss-Massa region, the biggest producer of the country. 18 mid-point indicators from ReCiPe were used, highlighting the most relevant ones for the region: use of net freshwater (UNFW), terrestrial ecotoxicity (TET), freshwater eutrophication (FE), and global warming (GW). A field trip to Agadir, the capital of the region, also helped to collect different views on the transition to these technologies.
The impact assessment revealed that artificial lighting would be the main contributor to 17 categories due to electricity being generated from oil and coal. To a lesser extent, landfilling of waste would also impact most of the categories. A new scenario with renewable energy showed that the impact from lighting can be drastically reduced by around 80% for GW, TET, and FE and by 34% in the case of UNFW. Contrarily, waste plastic recycling does not significantly influence the LCA results since the more abundant organic waste is a larger contributor.
For Souss-Massa to sustainably transit to hydroponic systems, it is essential that electricity consumption for lighting is drastically reduced and/or switched to clean sources. Organic waste needs to be revalorized by implementing composting processes or biodigesters. Lastly, the field trip exposed some key challenges to transit to more sustainable hydroponic farming systems: gaining the trust of farmers, finding financial support, and promoting collaboration between growers and the local community. ...
One strategy to solve the severe environmental problems of Moroccan horticulture, especially water scarcity, is to upgrade agricultural methods by introducing high-tech greenhouses equipped with closed-loop hydroponic systems. However, these technologies are unprecedented in the country, and the implications for the environment remain unknown under local conditions.
Using life cycle assessment with a functional unit of one kilogram of tomatoes at greenhouse gate, this study aimed to predict the environmental impacts and the hotspots of two different closed-loop hydroponic systems if they were deployed in the Souss-Massa region, the biggest producer of the country. 18 mid-point indicators from ReCiPe were used, highlighting the most relevant ones for the region: use of net freshwater (UNFW), terrestrial ecotoxicity (TET), freshwater eutrophication (FE), and global warming (GW). A field trip to Agadir, the capital of the region, also helped to collect different views on the transition to these technologies.
The impact assessment revealed that artificial lighting would be the main contributor to 17 categories due to electricity being generated from oil and coal. To a lesser extent, landfilling of waste would also impact most of the categories. A new scenario with renewable energy showed that the impact from lighting can be drastically reduced by around 80% for GW, TET, and FE and by 34% in the case of UNFW. Contrarily, waste plastic recycling does not significantly influence the LCA results since the more abundant organic waste is a larger contributor.
For Souss-Massa to sustainably transit to hydroponic systems, it is essential that electricity consumption for lighting is drastically reduced and/or switched to clean sources. Organic waste needs to be revalorized by implementing composting processes or biodigesters. Lastly, the field trip exposed some key challenges to transit to more sustainable hydroponic farming systems: gaining the trust of farmers, finding financial support, and promoting collaboration between growers and the local community.
Using life cycle assessment with a functional unit of one kilogram of tomatoes at greenhouse gate, this study aimed to predict the environmental impacts and the hotspots of two different closed-loop hydroponic systems if they were deployed in the Souss-Massa region, the biggest producer of the country. 18 mid-point indicators from ReCiPe were used, highlighting the most relevant ones for the region: use of net freshwater (UNFW), terrestrial ecotoxicity (TET), freshwater eutrophication (FE), and global warming (GW). A field trip to Agadir, the capital of the region, also helped to collect different views on the transition to these technologies.
The impact assessment revealed that artificial lighting would be the main contributor to 17 categories due to electricity being generated from oil and coal. To a lesser extent, landfilling of waste would also impact most of the categories. A new scenario with renewable energy showed that the impact from lighting can be drastically reduced by around 80% for GW, TET, and FE and by 34% in the case of UNFW. Contrarily, waste plastic recycling does not significantly influence the LCA results since the more abundant organic waste is a larger contributor.
For Souss-Massa to sustainably transit to hydroponic systems, it is essential that electricity consumption for lighting is drastically reduced and/or switched to clean sources. Organic waste needs to be revalorized by implementing composting processes or biodigesters. Lastly, the field trip exposed some key challenges to transit to more sustainable hydroponic farming systems: gaining the trust of farmers, finding financial support, and promoting collaboration between growers and the local community.
The Netherlands has faced rapidly increasing housing prices over the previous years. As a counter measure, the government is aiming to increase the construction of new houses from around 70 thousand annually to 100 thousand annually, to achieve 900 thousand new houses by 2030. At the same time the world is facing a climate crisis and the Netherlands has pledged to decrease its emissions by at least 50% in 2030 in respect to 1990. The country must therefore reduce the impact of new built houses to be able to build more while reducing the total emissions.
Currently most houses are built with reinforced concrete which is generally not seen as a sustainable construction method due to the carbon emissions related to cement production. Building houses with cross-laminated timber panels or lightweight steel frames are proposed alternatives with a lower expected carbon footprint. This study was set up to perform a life cycle assessment of a steel and a timber building to compare their impact and find out under which circumstances building with steel or timber is a more sustainable option. A case study was found of a timber building and a hypothetical alternative was designed with steel frames which were both studied under three scenarios. The scenarios represent the choices that could be made regarding material production and waste treatment, ordered from worst-case, to expected, to best-case scenario.
When including the climate impact of construction, the treatment of waste, end-of-life benefits and carbon storage, the timber building performed better than the steel building in every scenario regarding global warming. However, waste treatment, end-of-life benefits and carbon storage are all dependent on future processes and emissions happening after 2030. When only the construction is included, the steel building outperformed the timber variant in the expected and best-case scenario. For this reason, building more houses with lightweight steelframes produced with at least 50% recycled steel would be the most beneficial for the Netherlands to reach its 2030 climate goals. When taking a longer timespan into consideration, timber buildings are the preferred choice due to the carbon storage effect, as long as the forests are replanted sustainably.
Either alternative was found to be a better alternative than the current houses built with reinforced concrete. If all houses built before 2030 were made with the alternative production methods this could save at least 20 Megaton of CO2 emissions. Because the alternatives researched made efficient use of materials, no significant issues were found for the demand of wood or steel in the Netherlands. In fact, steel demand is likely to decrease due to the reduced need for reinforcement steel. Further improvement on both alternatives is possible by increasing the potential lifespan of the buildings and reducing the emissions related to energy use in the production of materials.
The outcomes of this study may influence decision making depending on the weight the Dutch government gives to its climate goals of 2030 versus its total impact on climate change. Constructing steelframe houses may reduce construction emissions by 4% compared to timber by 2030 but would result in 64% more emission in 2100 due to the missed-out carbon storage. In general, the construction industry can improve a lot by increased use of low-carbon alternatives such as lightweight recycled steel and biobased materials.
...
Currently most houses are built with reinforced concrete which is generally not seen as a sustainable construction method due to the carbon emissions related to cement production. Building houses with cross-laminated timber panels or lightweight steel frames are proposed alternatives with a lower expected carbon footprint. This study was set up to perform a life cycle assessment of a steel and a timber building to compare their impact and find out under which circumstances building with steel or timber is a more sustainable option. A case study was found of a timber building and a hypothetical alternative was designed with steel frames which were both studied under three scenarios. The scenarios represent the choices that could be made regarding material production and waste treatment, ordered from worst-case, to expected, to best-case scenario.
When including the climate impact of construction, the treatment of waste, end-of-life benefits and carbon storage, the timber building performed better than the steel building in every scenario regarding global warming. However, waste treatment, end-of-life benefits and carbon storage are all dependent on future processes and emissions happening after 2030. When only the construction is included, the steel building outperformed the timber variant in the expected and best-case scenario. For this reason, building more houses with lightweight steelframes produced with at least 50% recycled steel would be the most beneficial for the Netherlands to reach its 2030 climate goals. When taking a longer timespan into consideration, timber buildings are the preferred choice due to the carbon storage effect, as long as the forests are replanted sustainably.
Either alternative was found to be a better alternative than the current houses built with reinforced concrete. If all houses built before 2030 were made with the alternative production methods this could save at least 20 Megaton of CO2 emissions. Because the alternatives researched made efficient use of materials, no significant issues were found for the demand of wood or steel in the Netherlands. In fact, steel demand is likely to decrease due to the reduced need for reinforcement steel. Further improvement on both alternatives is possible by increasing the potential lifespan of the buildings and reducing the emissions related to energy use in the production of materials.
The outcomes of this study may influence decision making depending on the weight the Dutch government gives to its climate goals of 2030 versus its total impact on climate change. Constructing steelframe houses may reduce construction emissions by 4% compared to timber by 2030 but would result in 64% more emission in 2100 due to the missed-out carbon storage. In general, the construction industry can improve a lot by increased use of low-carbon alternatives such as lightweight recycled steel and biobased materials.
...
The Netherlands has faced rapidly increasing housing prices over the previous years. As a counter measure, the government is aiming to increase the construction of new houses from around 70 thousand annually to 100 thousand annually, to achieve 900 thousand new houses by 2030. At the same time the world is facing a climate crisis and the Netherlands has pledged to decrease its emissions by at least 50% in 2030 in respect to 1990. The country must therefore reduce the impact of new built houses to be able to build more while reducing the total emissions.
Currently most houses are built with reinforced concrete which is generally not seen as a sustainable construction method due to the carbon emissions related to cement production. Building houses with cross-laminated timber panels or lightweight steel frames are proposed alternatives with a lower expected carbon footprint. This study was set up to perform a life cycle assessment of a steel and a timber building to compare their impact and find out under which circumstances building with steel or timber is a more sustainable option. A case study was found of a timber building and a hypothetical alternative was designed with steel frames which were both studied under three scenarios. The scenarios represent the choices that could be made regarding material production and waste treatment, ordered from worst-case, to expected, to best-case scenario.
When including the climate impact of construction, the treatment of waste, end-of-life benefits and carbon storage, the timber building performed better than the steel building in every scenario regarding global warming. However, waste treatment, end-of-life benefits and carbon storage are all dependent on future processes and emissions happening after 2030. When only the construction is included, the steel building outperformed the timber variant in the expected and best-case scenario. For this reason, building more houses with lightweight steelframes produced with at least 50% recycled steel would be the most beneficial for the Netherlands to reach its 2030 climate goals. When taking a longer timespan into consideration, timber buildings are the preferred choice due to the carbon storage effect, as long as the forests are replanted sustainably.
Either alternative was found to be a better alternative than the current houses built with reinforced concrete. If all houses built before 2030 were made with the alternative production methods this could save at least 20 Megaton of CO2 emissions. Because the alternatives researched made efficient use of materials, no significant issues were found for the demand of wood or steel in the Netherlands. In fact, steel demand is likely to decrease due to the reduced need for reinforcement steel. Further improvement on both alternatives is possible by increasing the potential lifespan of the buildings and reducing the emissions related to energy use in the production of materials.
The outcomes of this study may influence decision making depending on the weight the Dutch government gives to its climate goals of 2030 versus its total impact on climate change. Constructing steelframe houses may reduce construction emissions by 4% compared to timber by 2030 but would result in 64% more emission in 2100 due to the missed-out carbon storage. In general, the construction industry can improve a lot by increased use of low-carbon alternatives such as lightweight recycled steel and biobased materials.
Currently most houses are built with reinforced concrete which is generally not seen as a sustainable construction method due to the carbon emissions related to cement production. Building houses with cross-laminated timber panels or lightweight steel frames are proposed alternatives with a lower expected carbon footprint. This study was set up to perform a life cycle assessment of a steel and a timber building to compare their impact and find out under which circumstances building with steel or timber is a more sustainable option. A case study was found of a timber building and a hypothetical alternative was designed with steel frames which were both studied under three scenarios. The scenarios represent the choices that could be made regarding material production and waste treatment, ordered from worst-case, to expected, to best-case scenario.
When including the climate impact of construction, the treatment of waste, end-of-life benefits and carbon storage, the timber building performed better than the steel building in every scenario regarding global warming. However, waste treatment, end-of-life benefits and carbon storage are all dependent on future processes and emissions happening after 2030. When only the construction is included, the steel building outperformed the timber variant in the expected and best-case scenario. For this reason, building more houses with lightweight steelframes produced with at least 50% recycled steel would be the most beneficial for the Netherlands to reach its 2030 climate goals. When taking a longer timespan into consideration, timber buildings are the preferred choice due to the carbon storage effect, as long as the forests are replanted sustainably.
Either alternative was found to be a better alternative than the current houses built with reinforced concrete. If all houses built before 2030 were made with the alternative production methods this could save at least 20 Megaton of CO2 emissions. Because the alternatives researched made efficient use of materials, no significant issues were found for the demand of wood or steel in the Netherlands. In fact, steel demand is likely to decrease due to the reduced need for reinforcement steel. Further improvement on both alternatives is possible by increasing the potential lifespan of the buildings and reducing the emissions related to energy use in the production of materials.
The outcomes of this study may influence decision making depending on the weight the Dutch government gives to its climate goals of 2030 versus its total impact on climate change. Constructing steelframe houses may reduce construction emissions by 4% compared to timber by 2030 but would result in 64% more emission in 2100 due to the missed-out carbon storage. In general, the construction industry can improve a lot by increased use of low-carbon alternatives such as lightweight recycled steel and biobased materials.