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− | [[GIZ HERA Cooking Energy Compendium|--> Back to Overview GIZ HERA Cooking Energy Compendium]]
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− | {{Revision|('''Please help to overwork the comments''').}}
| + | [[File:GIZ HERA Cooking Energy Compendium small.png|left|831px|GIZ HERA Cooking Energy Compendium|alt=GIZ HERA Cooking Energy Compendium small.png|link=GIZ HERA Cooking Energy Compendium]]<br/><br/><!-- |
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− | = What are liquid biomass fuels?<br/> =
| + | -->{{#ifeq: {{#show: {{PAGENAME}} |?Hera category}} | Cooking Energy System |'''[[GIZ HERA Cooking Energy Compendium#Cooking Energy Technologies and Practices|Cooking Energy System]]''' {{!}} | [[GIZ HERA Cooking Energy Compendium#Cooking Energy Technologies and Practices|Cooking Energy System]] {{!}} | }} <!-- |
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− | Liquid fuels derived from biomass are sometimes referred to as 'biofuel'.
| + | -->{{#ifeq: {{#show: {{PAGENAME}} |?Hera category}} | Basics |'''[[GIZ HERA Cooking Energy Compendium#Basics about Cooking Energy|Basics]]''' {{!}} | [[GIZ HERA Cooking Energy Compendium#Basics about Cooking Energy|Basics]] {{!}} | }} <!-- |
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− | <u>They can be divided into two main groups:</u>
| + | -->{{#ifeq: {{#show: {{PAGENAME}} |?Hera category}} | Policy Advice |'''[[GIZ HERA Cooking Energy Compendium#Policy Advice on Cooking Energy|Policy Advice]]''' {{!}} | [[GIZ HERA Cooking Energy Compendium#Policy Advice on Cooking Energy|Policy Advice]] {{!}} | }} <!-- |
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− | *Alcohols
| + | -->{{#ifeq: {{#show: {{PAGENAME}} |?Hera category}} | Planning |'''[[GIZ HERA Cooking Energy Compendium#Planning Cooking Energy Interventions|Planning]]''' {{!}} | [[GIZ HERA Cooking Energy Compendium#Planning Cooking Energy Interventions|Planning]] {{!}} | }} <!-- |
− | *Oils
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| + | -->{{#ifeq: {{#show: {{PAGENAME}} |?Hera category}} | ICS Supply |'''[[GIZ HERA Cooking Energy Compendium#Designing and Implementing Improved Cookstoves .28ICS.29 Supply Interventions|Designing and Implementing ICS Supply]]''' {{!}} | [[GIZ HERA Cooking Energy Compendium#Designing and Implementing Improved Cookstoves .28ICS.29 Supply Interventions|Designing and Implementing ICS Supply]] {{!}} | }} <!-- |
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| + | -->{{#ifeq: {{#show: {{PAGENAME}} |?Hera category}} | Woodfuel Supply |'''[[GIZ HERA Cooking Energy Compendium#Designing and Implementing Woodfuel Supply Interventions|Designing and Implementing Woodfuel Supply]]''' {{!}} | [[GIZ HERA Cooking Energy Compendium#Designing and Implementing Woodfuel Supply Interventions|Designing and Implementing Woodfuel Supply]] {{!}} | }} <!-- |
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− | The latter are also called 'plant oil´ or '''straight vegetable oil (SVO)''' to distinguish them from non-renewable fossil oils. Biofuels are generally bioadegrable and have lower sulfur content than liquid fossil fuels. Liquid biofuels are normally marketed by volume (liters, gallons), not by weight (kg, pounds). They are renewable sources of energy, if the biomass is harvested from sustainably managed sources.
| + | -->{{#ifeq: {{#show: {{PAGENAME}} |?Hera category}} | Climate Change |'''[[GIZ HERA Cooking Energy Compendium#Climate Change Related Issues|Climate Change]]''' | [[GIZ HERA Cooking Energy Compendium#Climate Change Related Issues|Climate Change]] {{!}} | }} <!-- |
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| + | -->{{#ifeq: {{#show: {{PAGENAME}} |?Hera category}} | Extra |'''[[GIZ HERA Cooking Energy Compendium#Climate Change Related Issues|Extra]]''' | [[GIZ HERA Cooking Energy Compendium#Climate Change Related Issues|Extra]] }}<br/> |
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| + | = Introduction = |
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− | Both alcohols and oils require considerable energy input during their production to convert the original feedstock into a liquid fuel: alcohols need to be distilled and oils need to be pressed.
| + | Stoves fueled with alcohol (ethanol and methanol) are not widely used in households. They are mainly used in areas where such stoves and fuels have been fostered and promoted by studies and projects. |
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| + | <br/> |
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| + | = Cooking with Alcohol Stoves = |
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− | = Why deal with the use of liquid biomass as a fuel?<br/> =
| + | A stove to burn alcohol fuels can be very simple. It can be made relatively cheaply in countries with industries producing articles such as aluminium pots, etc. |
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− | <u>Projects promoting the use of liquid biomass fuels for cooking are often driven by this kind of vision:</u> | + | <br/> |
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− | {| border="1" cellpadding="1" cellspacing="1" width="100%"
| + | The main components of the burner are shown here<ref>http://www.hedon.info/BP33_EthanolStovesForMauritius?bl=y</ref>: |
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− | “Instead of cutting down trees for firewood, the smallholder farmer grows crops with oil seeds which he can harvest every year. By pressing the oil, he is generating plant oil which he can either sell to the world market or use for his own cooking needs. Thus, he is protecting the environment, cooking on a powerful modern fuel and is improving his income situation”.
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− | |} | + | <span style="color: rgb(255,0,0)">[[File:Components of a non pressure ethanol stove.png|313px|RTENOTITLE]]</span><br/> |
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| + | Alcohol stoves have a very clean combustion, emit no soot and negligible emissions. Cooking is very fast as heat is available instantly after ignition of the fuel. |
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− | <u>There are several advantages to using liquid biomass fuels:</u> | + | For further advantages and disadvantes of alcohol as a fuel see also the article on<span style="color:#FF0000">[[Cooking with Ethanol and Methanol|Cooking with Ethanol and Methanol.]]</span> |
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− | *First, liquid fuels in general have a cutting-edge advantage over solid fuels when it comes to the use for transport, where the fuel container has to move with the engine. This is not the case in a cook-stove which remains in one place. <span style="color: #008000">(unclear)</span>
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− | *Second, alcohols and oils are more energy-dense than wood. For example, the alcohols methanol and ethanol have an energetic value of approx. 20-23 MJ/kg and 25-30 MJ/kg, respectively. Plant oils are even more energy dense and range between 39 and 50 MJ/kg. Kerosene has usually between 43 and 47 MJ/kg. Air-dry wood, on the other hand ranges around 16 MJ/kg. (Charcoal, however and can range between 27-30 MJ/kg).
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− | *Third, with an appropriate burner that can regulate the mix of oxygen and the fuel, it is easy to burn liquid fuels cleaner than solid fuels as liquid biomass fuels generally have low emissions of particulate matter (soot). Liquid fuels can also be very convenient to use as the power output can be regulated 'by the turn of a knob'. They are clean to handle and easy transport in bulk or in small containers like recycled bottles.
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| + | <br/> |
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| + | = Experiences of Cooking with Ethanol Stoves<br/> = |
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− | However, despite these advantages, the comparative advantage of liquid biomass fuels in relation to a solid fuel needs to be assessed on a case-by-case basis. For example, will the considerable extra effort needed to press oil out of oily seeds or to distill precious alcohol be outweighed by the advantages regarding convenience and clean burning of the liquid biofuel in a cookstove? This is relevant both for the economic viability of using liquid biomass fuels as well as the CO<sub>2</sub>-balance.
| + | One of the pioneering efforts in use of low concentration ethanol for cooking and lighting <ref>[http://nariphaltan.org/ruralethanol.pdf Ethano fuel for rural households]</ref><ref>[http://www.nariphaltan.org/ethstove.pdf Development of low concentration ethanol stove]</ref> was done in early 2000s by Nimbkar Agricultural Research Institute<ref>[http://nariphaltan.org Nimbkar Agricultural Research Institute]</ref> in India.<br/> |
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| + | The most documented ethanol stove model is the [http://stoves.projectgaia.com/page.php?page=stoverview CleanCook Stove] by [http://cleancook.com/about-us/ CleanCook Sweden AB,] which is produced in South Africa and promoted mainly by Project Gaia.<br/> |
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| + | The "CleanCook" Stove is available as a single or double-burner model for households and institutions. It is made from aluminium or stainless steel. The CleanCook is a non-pressurized alcohol stove with a refillable fuel canister of a capacity of 1,2 liters.<ref name="http://cleancook.com/productsstove-sales/">http://cleancook.com/productsstove-sales/</ref> The canister contains a porous fiber that adsorbs alcohol and retains it in a manner that prevents spills, leaks, fires and explosions.<ref name="https://en.wikipedia.org/wiki/Project_Gaia#The_CleanCook_Stove">https://en.wikipedia.org/wiki/Project_Gaia#The_CleanCook_Stove</ref> The power output per burner is rated at 1.8 kW at maximum heat, allowing for a cooking time of 4-5 hours. It can burn ethanol and methanol.<ref name="http://cleancook.com/productsstove-sales/">http://cleancook.com/productsstove-sales/</ref><br/> |
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− | = Production of Alcohols<br/> = | + | Up to 2019, 75,000 cleancook stoves have been provided, mainly in Africa.<ref name="http://cleancook.com/about-us/">http://cleancook.com/about-us/</ref><br/> |
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− | Alcohols are commonly produced by energy-intensive distillation of fermented sugar-rich organic matter like sugar cane, maize, grain, cassava, sweet potato etc. These are often staple foods for human nutrition. Straw, grass and wood can also be used, though with less yield. The lightest, simplest alcohol with the lowest flash-point is methanol, followed by ethanol and butanol.
| + | [[File:Hedon1.JPG|left|159px|Hedon1.JPG|alt=Hedon1.JPG]] |
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− | Methanol can also be produced from fossil natural gas at less cost compared to ethanol derived from biomass, but it is highly dangerous.
| + | Project Gaia and its Ethiopian sister organization, Gaia Association, have lab and field tested alcohol stoves since 2005. To date, alcohol stoves have been used by households in Ethiopia, Nigeria, South Africa, Malawi, Madagascar, Mozambique, Vietnam, Brazil and Haiti. Click [http://www.projectgaia.com/page.php?page=resources here] to access country study/project reports. The largest number of households using alcohol stoves is in the UNHCR refugee camps near Jijiga, Eastern Ethiopia where more than 4,000<span style="color:#FF0000"></span> households rely on the CleanCook stove and ethanol fuel as their main source of energy. The UNHCR now aims to scale up to provide ethanol cookstoves and fuel to up to 27,678 households by 2017.<ref name="http://us4.campaign-archive2.com/?u=541b5acf6da7c1b89cf4193b7&id=849ff674b0&e=da11811f02">http://us4.campaign-archive2.com/?u=541b5acf6da7c1b89cf4193b7&id=849ff674b0&e=da11811f02</ref> |
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− | Ethanol can be further processed into [[Gel fuel|gel fuel]], by adding a gelling agent and some more water. Studies in Malawi showed that the heating value of gel fuel was between 16 and 18 MJ/kg. This means that a kg of gel fuel contains approximately the same energy as a kg of dry firewood, or two thirds of charcoal.<span></span>
| + | Project Gaia currently leads four community-based, small-scale ethanol distillation projects in Ethiopia. Also in Brazil and Haiti microdistillery projects are being implemented. These projects aim to allow communities to produce clean cooking fuel using local feedstocks, simultaneously adding value to agricultural markets by taking advantage of co-products of the distillation process<ref>http://www.projectgaia.com/index.php</ref>. |
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− | Economic viability of the production of cooking-appropriate alcohol fuels depends on the scale and degree of purity that needs to be reached: the more water, the less power output when burning the fuel. Worldwide people produce ‘drinking alcohol’ in their backyards. But this alcohol produced at household level usually does not exceed 50% alcohol, the rest is water. It is not suitable as a cooking fuel. Even 70% rubbing alcohol that contains up to 30% water is not recommendable as a fuel, because of the low power output. Rectified ethanol between 90 and 96 % purity is good enough for use in a cookstove, yet difficult to obtain at household level. Fuel-grade ethanol for blending with transport fuel must contain less than 1% water. This last step of distillation is extremely energy intensive and requires sophisticated industrial-size technology and production skills.
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| + | [http://www.blueflame.no Blue Flame Stoves AS] (Norway) also offer ethanol stoves with single and double burner, mainly for the African Market. [[File:Blueflame ethanol burners.png|right|200pxpx|link=https://www.blueflame.no/our-products/]]They are developed by the Norwegian research & design company Abry & Kavanagh Design AS, and have been manufactured under license in China since 2014. Up until 2019, over 55,000 stoves have been distributed under the Safi brand in Kenya, Tanzania and Madagascar through their partners. SeTAR in South Africa and KEBS in Kenya tested them. The stoves are approved for Green Development’s Carbon Credit program in Madagascar authorized by the World Bank, and field tested by UNCHR in the Dadaab refugee camp in Kenya. In addition, Green Development have in partnership with Samsung Electronics, delivered over 20,000 SAFI branded stoves in Kenya.<ref name="https://www.blueflame.no/our-products/">https://www.blueflame.no/our-products/</ref> |
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| + | = Further Information<br/> = |
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− | Although alcohol can be distilled from a large variety of feedstock with rather simple means, it is rarely possible for a user to produce his or her own ethanol at household level for cooking, as this requires more sophisticated distilling equipment and skills than to produce ‘drinking alcohol’. In some countries, licensing issues also come into play. Small-scale alcohol production units have not yet taken root on a broader scale. If economically viable, they could contribute to local employment generation and ease fuel constraints. For the time being people have to purchase the industrially produced alcohol fuels on the market. Market prices of ethanol are often dictated by the petroleum import price due to the use of ethanol for blending with transport fuels.
| + | *[[Cooking with Ethanol and Methanol|Cooking with Ethanol and Methanol]], article on energypedia |
| + | *[http://hedon.info/ HEDON Household Energy Network]: This network provides information on all aspect of ethanol as a household fuel |
| + | *The [http://cleancookstoves.org/technology-and-fuels/fuels/ ‘Cookstove Fuels’] section of the Global Alliance for Clean Cookstoves |
| + | *[https://projectgaia.com/ Project Gaia homepage] |
| + | *[https://projectgaia.com/ten-years-in-ethiopia/ Ten Years in Ethiopia: A look back at the last decade.] Project Gaia (January 2015) |
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− | For a user, it is a bad deal if he has to pay the same price for a litre of ethanol as for a liter of paraffin, because he gets a third less of the energy content. In places where kerosene or LPG are subsidized, this discrepancy becomes more severe and ethanol a less viable fuel for cooking.
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− | Alcohol fuels are highly flammable. They vaporize and can be ignited at room temperature. The purified ethanol can be used either directly in a stove, or it can be thickened with a gelling agent. The downside of the gelled fuel is that another 15% of water is added, thus diluting the energy value of the gel.
| + | = References = |
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| + | This article was originally published by [http://www.giz.de/fachexpertise/html/2769.html GIZ HERA]. It is basically based on experiences, lessons learned and information gathered by GIZ cook stove projects. You can find more information about the authors and experts of the original “Cooking Energy Compendium” in the [[Imprint - GIZ HERA Cooking Energy Compendium|Imprint]]. |
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− | = Production of Oils =
| + | <references /><br/> |
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− | '''Plant oils are pressed from oil-rich parts of plants''', usually seeds e.g. sunflower, rape, mustard, groundnut, cotton etc. or any nuts from trees like palms, pongamia, tung seeds etc. Seeds that are not suitable for human consumption include jatropha and castor seed.
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− | Presses can range from simple hand-presses (RAM-type) and screw-presses to hydraulic presses requiring tri-phase electricity.
| + | Top of the page |
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− | Once plant oils are pressed, they need to be cleaned, filtered and sometimes refined, before they can be used as fuel in a burner.
| + | [[GIZ HERA Cooking Energy Compendium|--> Back to Overview GIZ HERA Cooking Energy Compendium]] |
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− | Other combustible oils can be processed from animal fats. These are usually refined into biodiesel and biokerosene for use as cooking fuel.
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− | = Competing Uses: 'Food' versus 'Fuel' Debate<br/> =
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− | In the view of the current food versus fuel debate, smallholder farmers have to make decisions on the use of their resources.
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− | <u>As with any other cash crop, farmers have competing options:</u>
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− | *<u>Food versus Fuel</u>: the same crop can be consumed as food or used for fuel for cooking;
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− | *<u>Cash versus Fue</u>l: the same crop can be used for cash income (e.g. soap making) or as fuel for cooking;
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− | *<u>Seed versus Fuel</u>: a special form of “cash versus fuel” is the use of seeds for farmers own planting (or as a commodity sold for planting) rather than for producing oil. This is a particular problem in expansion phases where the value of seed used as planting material is considerably higher than compared to the value of the same seed as raw material for oil.
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− | *<u>Competition for land</u>: the same piece of land can be used to grow a fuel crop or any other crop (e.g. food or cash crop)
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− | *<u>Competition for water</u>: for irrigated production and limited access to water, the scarce resource can be applied to grow various products.
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− | <u>The mode of production of oil plants can accommodate some of the concerns above:</u>
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− | *Intercropping: e.g. jatropha trees are planted within the food producing fields with enough space between them to allow enough light for the food crops;
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− | *Fieldside cropping: e.g. jatropha is planted as a hedge around fields or around the house.
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− | *Use of degraded land: e.g. jatropha grown on land which is no longer suitable for crop production (with lower yields of crop)
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− | *The processing of oil at smallholder level is another important area to be observed. It comprises both the pressing of the oil as well as the filtering of fiber out of the oil.
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− | <u>It is sometimes rational for a farmer NOT to use their liquid biomass as a fuel for cooking:</u>
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− | *Oil is often more valued for soap-making or as food, rather than as fuel.
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− | *Ethanol fetches higher prices on the market for human consumption.
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− | = Cooking with Alcohol Fuels<br/> =
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− | <u>A stove to burn alcohol fuels can be very simple. The main components of the burner are shown here<ref>http://www.hedon.info/BP33_EthanolStovesForMauritius?bl=y</ref>:</u>
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− | <span style="color: rgb(255,0,0)">[[File:Components of a non pressure ethanol stove.png|RTENOTITLE]]</span>
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− | == Cooking with Ethanol<br/> ==
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− | <u>Advantages of cooking with ethanol</u>:
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− | *Very clean combustion without soot, can safely be used indoors
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− | *Heat available instantly after ignition
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− | <u>Disadvantages of cooking with ethanol:</u>
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− | *Low heating value, especially when further diluted with water to make gel-fuel
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− | *Depending on the stove, cooking can take long
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− | *High flammability, burns at low temperatures and might lead to accidents during transport and handling
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− | === Experiences of Cooking with Ethanol<br/> ===
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− | At present, ethanol stoves seem to be more used when promotion is supported by a project. Market forces have not yet pushed ethanol to become a mainstream fuel for daily cooking. With more nations starting their own ethanol production, the uptake of ethanol as cooking fuel is expected to increase.
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− | Ethanol and ethanol-based gel-fuel are quite common in niche applications, where clean combustion and convenience is required: e.g. in camp stoves, when little food has to be cooked or in warmers to keep food warm in restaurants. For day-to-day cooking, there are not many examples of ethanol as a main cooking fuel. Only in countries where ethanol is produced at large scale and is available at affordable prices, is cooking with ethanol more prevalent.
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− | In specific circumstances like humanitarian interventions when large numbers of people need to be provided with fuel and stoves, ethanol stoves have a considerable success.
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− | -> Read [http://www.hedon.info/Project-Gaia-Jumpstarting-Emergency-Interventions-for-Sustainable-Development?bl=y reports from Ethiopia and Haiti] | |
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− | The most documented stove model is the CleanCook Stove promoted by Project Gaia:
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− | === CleanCook Ethanol Stove<br/> ===
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− | The "CleanCook" Stove is available as a single burner or two-burner ethanol stove for households. It is a non-pressurized alcohol stove with a refillable fuel canister that contains a permanent, porous, refractory mass that absorbs and retains its liquid fuel in a manner that prevents spilling, leaking, fires and explosions. The power output per burner is rated at 1.5 kW. The ethanol and methanol (denatured to prevent ingestion) can be used as a mix in any proportions. The cost of the single-burner stove in 2010 was 65-70 USD.<ref>http://www.hedon.info/View+Stove?itemId=8969 </ref>
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− | <br/>[[File:Hedon1.JPG|left|Hedon1.JPG]]
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− | In households studied in Ethiopia, the CleanCook became the stove of choice for cooking. Pilot projects started in 2005, and since then the first commercial project have begun.<br/>([http://www.bioenergylists.org/en/taxonomy/term/159 http://www.bioenergylists.org/en/taxonomy/term/159] and [http://www.projectgaia.com/ www.projectgaia.com])
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− | In Brazil, the stove was tested by 100 households, mainly in the vicinity of ethanol distilleries to assure continuous and convenient availability of the fuel. The main fuels used by the households before the study commenced were LPG and fuelwood. In general, the stove was well-received by the participants and they felt that, in terms of cooking time and cost, it was superior to LPG. Numerous families talked of being able to buy ethanol in small quantities, which suited their household economics better than saving for the refueling the LPG cylinder.
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− | === Further Information on Ethanol<br/> ===
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− | *[http://hedon.info/ HEDON Household Energy Network]: This network provides information on all aspect of ethanol as a household fuel. Visit [http://www.hedon.info/ Hedon] and type ‘Ethanol’ in the search box.
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− | == Cooking with Methanol<ref>HEDON/Boiling Point</ref><br/> ==
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− | Methanol-use for cooking is still in its infancy. This is partially due to the fear of the potentially damaging health effects should the fuel be accidentally ingested. Project Gaia had a pilot study in Nigeria with Methanol (made from fossil flare gases): people were mainly satisfied with the stove, but complained that the fuel was not regularly available.
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− | -> [http://www.projectgaia.com/page.php?page=nigeria Cooking with methanol in the CleanCook stove, Nigeria]
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− | === Further Information on Methanol<br/> ===
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− | *[http://hedon.info/ HEDON Household Energy Network]. Visit [http://www.hedon.info/ Hedon] and type ‘Methanol’ in the search box.
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− | = Cooking with Plant Oils<br/> =
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− | Plant oil fuels pose the challenge that they have a high viscosity and only ignite at temperatures above 200° Celsius. Depending on the oil type, simple wick-stoves are not suitable and sometimes preheating of the oil with another fuel that burns at lower temperatures is needed. Pressurizing enhances the performance and power-output, but adds more challenges and cost to the stove.
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− | Plant oil differs from other liquids when used for cooking. Below are some advantages and disadvantages.
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− | <u>Advantages:</u>
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− | *Safety: Plant oil is has a high viscosity and a higher flame point as compared to kerosene. For the user, this has the advantage of safety (it does not ignite spontaneously and is not so explosive when spilled).
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− | *Smell: Most plant oils also do not emit undesirable odours (it does not smell as intensive as kerosene).
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− | *Fast cooking: Plant oil has a high energy content (only 5% less than kerosene). Hence it produces a powerful flame if used in a pressurized stove. Cooking large quantities can be done quickly.
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− | <u>Disadvantages:</u>
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− | *Pre-heating: The advantages on safety and smell come at the expense that it usually needs to be preheated with another fuel (e.g. ethanol or methanol) in order to be ignited. This pre-heating is another cost factor and it consumes time.
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− | *Simmering: The linked disadvantage is that it is difficult to simmer: in a pressurized regulating the plant-oil supply down for small heat poses a challenge.
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− | *Cleaning: Plant oils contain fiber, the amount of which depends on the kind of oil and the quality of the filter method applied. As the oil is burned as gas, the fiber remains behind and tends to clog the burner (depending on the type of stove). This requires regular cleaning of stove and nozzles.
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− | *Noise: if burned in a pressurized system, cooking on plant oil can be quite noisy. It requires muffling of the sound.
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− | | + | {{#set: Hera category=Cooking Energy System}} |
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− | === Experiences of Cooking with Plant Oil<br/> ===
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− | During the last decades, projects have sought to design household appliances for cooking and heating that use plant oil.
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− | <u>Until recently, none of them got beyond the test phase. Some of the reasons for the past failure of plant oil cookers are:</u>
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− | *Plant oil cookers have a rather complicated design which is not easy to construct
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− | *They may require ongoing maintenance
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− | *Production of plant oil is labour-intensive and expensive
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− | *The use of some plant oils as fuels competes with other uses, such as food crops, soap production etc., which are more profitable
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− | *In most cases, production of fuelwood is much easier and much cheaper than production of plant oil
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− | === Protos the Plantoilstove<br/> ===
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− | '''BSH (Bosch und Siemens Hausgeräte GmbH)''' designed a plant oil cooker named "protos" that can use a variety of plant oils; even recycled and filtered oil previously used for frying. Field tests in the Philippines and in Tanzania have shown that households and small enterprises such as restaurants, that were previously cooking on 3-stone fires, can handle the Protos-stove. People stated that they enjoyed the comfort of cooking and said it was like cooking on gas, even if LPG was not available. Based on observations from the field tests, BSH has integrated improvements launched serial production as of May 2010 in Indonesia. Plans are to increase capacity and production in line with demand projections. The success will largely depend on the initial investment costs and the access and affordability of the fuel.
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− | -> Further information on the protos on [http://www.plantoilcooker.com www.plantoilcooker.com]
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− | === Further Information on Plantoil<br/> ===
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− | *Reinhard K. Henning (2006): [http://www.underutilized-species.org/Documents/PUBLICATIONS/jatropha_curcas_africa.pdf Jatropha curcas L. in Africa]. Assessment of the impact of the dissemination of “the Jatropha System” on the ecology of the rural area and the social and economic situation of the rural population (target group) in selected countries in Africa
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− | *This paper gives a good overview on production of the Physic Nut in Africa and the variety of its use. Special attention is paid the use of plant oil as a fuel. An overview of existing cooker models is given including technical details.
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− | *The Jatropha System - An Integrated Approach of Rural Development in Tropical & Subtropical Countries
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− | *[http://www.jatropha.de/ The very comprehensive homepage provides a good overview of the role of Jatropha in different countries, technical aspects of oil extraction, different cooker models developed so far, a selection of projects working in the field of Jatropha use as well as a large amount of literature on the issue.]
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− | = References<br/> =
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− | This article was originally published by [http://www.gtz.de/en/themen/12941.htm GIZ HERA]. It is basically based on experiences, lessons learned and information gathered by GIZ cook stove projects. You can find more information about the authors and experts of the original “Cooking Energy Compendium” in the [[Imprint - GIZ HERA Cooking Energy Compendium|Imprint]].
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− | [[Cooking with liquid biomass fuels#What_are_liquid_biomass_fuels.3F|Top of the page]]
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− | [[GIZ HERA Cooking Energy Compendium|--> Back to Overview GIZ HERA Cooking Energy Compendium]]
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| [[Category:Bioalcohol]] | | [[Category:Bioalcohol]] |
− | [[Category:Vegetable_Oil]]
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− | [[Category:Cooking_Energy]]
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− | [[Category:Cooking_Energy_Compendium]]
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| [[Category:Cookstoves]] | | [[Category:Cookstoves]] |
− | [[Category:GIZ]] | + | [[Category:Cooking_Energy_Compendium_(GIZ_HERA)]] |
Cooking Energy System | Basics | Policy Advice | Planning | Designing and Implementing ICS Supply | Designing and Implementing Woodfuel Supply | Climate Change | Extra
Introduction
Stoves fueled with alcohol (ethanol and methanol) are not widely used in households. They are mainly used in areas where such stoves and fuels have been fostered and promoted by studies and projects.
Cooking with Alcohol Stoves
A stove to burn alcohol fuels can be very simple. It can be made relatively cheaply in countries with industries producing articles such as aluminium pots, etc.
The main components of the burner are shown here[1]:
Alcohol stoves have a very clean combustion, emit no soot and negligible emissions. Cooking is very fast as heat is available instantly after ignition of the fuel.
For further advantages and disadvantes of alcohol as a fuel see also the article onCooking with Ethanol and Methanol.
Experiences of Cooking with Ethanol Stoves
One of the pioneering efforts in use of low concentration ethanol for cooking and lighting [2][3] was done in early 2000s by Nimbkar Agricultural Research Institute[4] in India.
The most documented ethanol stove model is the CleanCook Stove by CleanCook Sweden AB, which is produced in South Africa and promoted mainly by Project Gaia.
The "CleanCook" Stove is available as a single or double-burner model for households and institutions. It is made from aluminium or stainless steel. The CleanCook is a non-pressurized alcohol stove with a refillable fuel canister of a capacity of 1,2 liters.[5] The canister contains a porous fiber that adsorbs alcohol and retains it in a manner that prevents spills, leaks, fires and explosions.[6] The power output per burner is rated at 1.8 kW at maximum heat, allowing for a cooking time of 4-5 hours. It can burn ethanol and methanol.[5]
Up to 2019, 75,000 cleancook stoves have been provided, mainly in Africa.[7]
Project Gaia and its Ethiopian sister organization, Gaia Association, have lab and field tested alcohol stoves since 2005. To date, alcohol stoves have been used by households in Ethiopia, Nigeria, South Africa, Malawi, Madagascar, Mozambique, Vietnam, Brazil and Haiti. Click here to access country study/project reports. The largest number of households using alcohol stoves is in the UNHCR refugee camps near Jijiga, Eastern Ethiopia where more than 4,000 households rely on the CleanCook stove and ethanol fuel as their main source of energy. The UNHCR now aims to scale up to provide ethanol cookstoves and fuel to up to 27,678 households by 2017.[8]
Project Gaia currently leads four community-based, small-scale ethanol distillation projects in Ethiopia. Also in Brazil and Haiti microdistillery projects are being implemented. These projects aim to allow communities to produce clean cooking fuel using local feedstocks, simultaneously adding value to agricultural markets by taking advantage of co-products of the distillation process[9].
Blue Flame Stoves AS (Norway) also offer ethanol stoves with single and double burner, mainly for the African Market.
They are developed by the Norwegian research & design company Abry & Kavanagh Design AS, and have been manufactured under license in China since 2014. Up until 2019, over 55,000 stoves have been distributed under the Safi brand in Kenya, Tanzania and Madagascar through their partners. SeTAR in South Africa and KEBS in Kenya tested them. The stoves are approved for Green Development’s Carbon Credit program in Madagascar authorized by the World Bank, and field tested by UNCHR in the Dadaab refugee camp in Kenya. In addition, Green Development have in partnership with Samsung Electronics, delivered over 20,000 SAFI branded stoves in Kenya.[10]
Further Information
References
This article was originally published by GIZ HERA. It is basically based on experiences, lessons learned and information gathered by GIZ cook stove projects. You can find more information about the authors and experts of the original “Cooking Energy Compendium” in the Imprint.
Top of the page
--> Back to Overview GIZ HERA Cooking Energy Compendium