Wednesday, February 8, 2023

Selecting Sheep Species for Animal Husbandry

In general, there are two ideal types of sheep, namely the meat type and the wool type. The type of wool sheep is currently not in demand by breeders in Indonesia. This is probably because meat production is still a top priority and Indonesia's tropical climate is not suitable for wearing wool. Based on these conditions, the selection of meat sheep is more suitable for Indonesian conditions. Moreover, coupled with the demand for meat in Indonesia that has not been met. The demand for lamb meat for aqiqah and satay stalls/restaurants is still largely unfulfilled. In addition, the need for Eid al-Adha which is celebrated by Muslims every year can double. The need for exports is no less large, even reaching millions of head each year, such as during the Hajj season for the dam it is estimated that the need will reach 2 million heads.

Southdown sheep
Sheep of the meat or slaughter type have the following characteristics: dense body shape, wide and deep chest, short neck, and straight back and waist lines. In addition, it also has short legs and the whole body is densely muscled. Some of the sheep that belong to the meat type include Southdown, Hampshire and Oxford. Indonesian native sheep cannot be classified into one of the ideal types of the two types above. Even so, sheep in Indonesia generally tend to the type of slaughter or meat. Several sheep are considered native to Indonesia because they have long been cultivated in Indonesia, namely the thin-tailed sheep, fat-tailed sheep, Garut sheep, Wonosobo sheep (dombos) and Batur sheep. 

Dorper sheep
Improvement of genetic quality to increase livestock productivity is also carried out through crossbreeding, for example Suffmer sheep resulting from crossing Merino sheep and Suffolk sheep, then St Croix sheep resulting from crossing West African sheep with local sheep in the Virginia islands in the United States, then Katahdin sheep the result of crossing 3 types of sheep namely St. Croix with Suffolk and Shire sheep. And the popular sheep in Indonesia recently namely Dorper is a cross between the Black Head Persian sheep and the Dorset Horn sheep.

Sheep and goats, although they are quite similar, are actually (species) different. A number of regions in Indonesia have a favorite menu of sheep while other areas have goats. The Special Region of Yogyakarta is an area that has a favorite menu of lamb meat, and you can find lots of stalls or restaurants serving lamb dishes, especially satay. Uniquely in Yogyakarta, even though the name of the stall reads goat satay, the fact is that what is slaughtered or used is lamb. Meanwhile, in areas that are developing Bali cattle breeding, sheep cannot be kept or are prohibited from being raised for fear of Jembrana disease. Areas such as the provinces of South Kalimantan and East Kalimantan are examples of areas where sheep farming is prohibited because it breeds Bali cattle.

Large-scale sheep farming has been carried out in Europe and this should also be done in Indonesia. Integrating sheep farms with energy plantations is a surefire way to create these massive sheep farms. Wood from energy plantations will be a wood pellet product with an export orientation. According to Hawkins Wright's data, from 2020-'21, the demand for wood pellets for the global industry grew by 18.4%, with production only growing 8.4%, especially now with the disappearance of Russia whose volume reached nearly 3 million tons, more details can be read here. While the leaves are used for animal feed, especially sheep farming or it can also be processed into animal feed products such as feed pellets. With the global population predicted to reach 9 billion people in 2050, the need for food, especially protein such as meat, is also increasing as the population increases. Sheep farming and animal feed production are very important as part of fulfilling this food, especially protein, for more details can be read here.   

Friday, February 3, 2023

Green Economy in the Cement Industry Part 2

A number of cement plants can do production well by using only limestone and clay raw materials. This is because the material has fulfilled all the oxides needed in the manufacture of the clinker. The oxides needed are CaO (C), SiO2 (S), Al2O3 (A) and Fe2O3 (F). Limestone itself usually has a CaO (C) content of around 90% and 5% SiO2 (S). But the facts on the ground are that many cement  plants require additional materials to achieve the desired oxide composition or commonly called corrective materials. A number of these corrective materials are high grade limestone which has a CaO content of above 95% as C oxide correction, then silica sand for S oxide correction, then kaolin or bauxite for A oxide correction and iron ore or pyrite for F oxide correction.

So in general, currently the materials needed for the production of clinker are limestone, clay, silica sand and iron ore. In its development iron ore can be replaced with slag. The content of Fe2O3 (F) slag is lower than iron ore but the price is cheaper. The slag used mainly comes from the iron and steel industry, commonly known as GBFS or GGBFS. Slag is actually also an additive material that can be added with clinker and gypsum so that it becomes a product (slag) cement. In addition to other slag materials such as fly ash which are also commonly used as a additive, these two materials are commonly called cement supplement materials or SCM (supplementary cementious materials). Fly ash which is very fine does not need to be crushed anymore so it can be mixed directly with clinker and gypsum, while slag from iron or steel industry needs to be crushed again into GGBFS before being mixed with clinker and gypsum. For the need for these additives, in addition to physical aspects such as particle size, chemical aspects, namely slag chemistry and fly ash chemistry, are important parameters that need attention.

The use of SCM such as slag and fly ash above, will reduce the use, especially of fossil fuels. This is because SCM is added to clinker and gypsum so it does not require heat energy. Heat energy itself is needed in the manufacture of clinker, namely in the calciner and rotary kiln. For example, the manufacture of slag cement produces 38% less CO2 emissions than the process for the production of portland cement because less limestone is burned for the production of slag cement than is required for Portland cement. This heat energy currently still uses a lot of fossil fuels and is gradually starting to use renewable energy. Energy derived from biomass such as agricultural waste and animal manure is also starting to be used.

Thursday, January 19, 2023

Production of Cow Dung Briquettes / Pellets as Fuel and Bioeconomy

The use of renewable energy is increasing along with global awareness of environmental and climate issues. Materials that used to be considered waste and polluted the environment, now with the concept of zero waste and circular economy, many have been converted into alternative energy or renewable energy. Large industries such as power plants, cement industry and so on have started to use this renewable energy in the framework of CO2 emission reduction or decarbonization programs. This decarbonization program is increasingly popular and is applied to various lines of life. 

As a real example is the cement industry in the UAE, namely Gulf Cement Co., which uses renewable energy from camel dung. From the results of operational trials it was found that every 2 tons of camel dung can replace 1 ton of coal. The use of animal dung as fuel is actually not a new thing for them, from ancestral stories cow dung has been used as heating or fuel, but many have not thought of camel dung. Gulf Cement Co currently uses 50 tons/day of camel dung as fuel. The UAE has a population of around 9000 camels for milk production, racing and beauty contests. Each camel produces 8 kg of manure per day, more or more than the farmer needs. Through a government program, camel breeders collect the camel dung at collection points. 

Cow dung has also been used as an energy source from the United States, Zimbabwe to China. In Indonesia this should also be done. With each cow producing an average of 15 kg of dung per day (about 2 times that of a camel), this is the same as the conditions in the UAE above, the volume of dung is more or more than what farmers need. The excess of this waste becomes an environmental problem and even has to be thrown into rivers and so on. Hundreds of tons of cow dung every day are not utilized in a number of areas in Indonesia, even though the dung can be used as fuel, especially when processed into briquettes or pellets (dried first). Compaction of cow dung into briquettes or pellets aims to obtain uniform size and shape, compactness, ease of storage and use, as well as saving on transportation costs. And to meet the needs of cement factory materials, such as briquettes / cow dung pellets are needed in large quantities, so large capacity production equipment is needed that works continuously. It is estimated that the need for pellets or briquettes is thousands to tens of thousands of tons every month.

In a cement plant there are 2 places that need heat energy: 1. calciner (where the calcination process occurs), 2. Rotary kiln (the heart of the cement factory, where the clinker is made). Renewable energy, such as briquettes or cow dung pellets, will usually be used in calciners with separate feeding points. Meanwhile, in rotary kilns that require higher heat, cement plants generally still use fossil fuels. The gradual use of renewable energy will reduce environmental pollution and accelerate the global decarbonization program. The cement plant itself can be said to be an industry that processes and destroys waste. This is because the cement plant can process waste such as slag and fly ash as an additive to the cement it produces - more details can be read here and also destroys waste, such as using cow dung as the fuel.

 

Tuesday, January 10, 2023

Wood Pellet Production: With a Rotary Dryer or Belt Dryer?

Air quality is an important factor in environmental health. The better the air quality, the better the environmental quality. Maintaining clean air quality is sometimes not something that is easy and cheap, especially for industry players. The higher the air quality standard used, the greater the effort and cost incurred.

In the wood pellet industry as an example, especially in the use of dryer. Almost all wood pellet industries in Asia use rotary dryer and almost none use belt dryer. Meanwhile, in Europe belt dryers are widely used because of lower emission than rotary dryers. In addition, belt dryers also have higher efficiency and can work at lower temperatures than rotary dryers. With a number of these advantages, however, belt dryer are also more expensive compared with rotary dryer.

Basically, rotary dryer can also have good performance, especially in terms of emissions if they are designed and operated properly. The use of high-efficiency dust collectors such as cyclones and bag filters can achieve high emission quality standards. However, the higher the efficiency of the dust collector, the higher the power required.

So the choice used actually depends on the expected air emission target. Europe and US/Canada generally have higher air quality standards than countries in Asia. This makes the emission aspect an important concern for them. Meanwhile, in terms of wood pellet production, the priority aspect is efficiency, so that with good performance the dryer can produce dry wood powder product that are suitable for feeding into pelletiser. The quality of the wood pellets as the final result is also very dependent on the quality of the dry powder product from the dryer. Meanwhile, in terms of safety, the high concentration of dust particles so that they can accumulate in a number of places in the wood pellet factory also has a greater potential for fires to occur.

Wood Pellet Export Opportunities
The lack of supply of wood pellets in Europe due to the Russia-Ukraine war caused wood pellet producers from Southeast Asia and North America to try to seize this opportunity. Production of wood pellets from Russia is estimated at around 3 million tonnes/year which previously filled the European market is now banned, so as a result of this ban the stocks of wood pellets in Europe have decreased drastically. The large demand and lack of supply will naturally push up prices, especially when coupled with increases in other energy commodities, so that the price of wood pellets continues to increase. In fact, because of the high price of wood pellets in Europe, wood pellets from Vietnam, which previously planned to be exported to Japan, were diverted to Europe.

It is also predicted that this uncertain condition will not recover in a short time. In 2021 Europe leads the production of wood pellets with production reaching nearly 20 million tons or around 48% of global production, while consumption of wood pellets reaches 24.5 million tons. Meanwhile, according to Hawkin Wright's data for 2020-2021, the growth in global demand for wood pellets has reached 18.4%, while supply or production growth is only 8.4%. Indonesia should have a great opportunity to become a major wood pellet player with its potential. The wood pellet production can be exported to Europe to cover the shortage of supply and in general to meet global demand.

Sunday, January 1, 2023

Green Economy in the Cement Industry

The trend of decarbonization, including the low carbon economy, has penetrated various sectors, including the cement industry. Cement is the most common human-made product in the world, consuming about 0.5 tons per person per year. The cement industry is also a significant contributor to greenhouse gases, reaching 21% (IPCC 2014), with these conditions making it one of the biggest contributors to climate change. And because the cement industry has a history as a major contributor to these greenhouse gas emissions, there are opportunities today to reduce emissions significantly through increasing efficiency and innovation in the industry.

Increasing energy efficiency in cement production will reduce the resulting carbon emissions. Even in the cement industry, the use of energy is also slowly starting to be used as renewable energy or alternative energy, including the use of RDF from municipal waste or household waste, which more or less reduces environmental pollution. While in the production aspect the use of additional materials originating from other industrial waste (circular economy) such as slag and fly ash or SCM (supplementary cementious materials) has also been widely used. The addition of these materials depends on the type of cement to be made and aims to reduce the use of clinker because clinker production requires high costs and produces CO2 gas as a result of calcination. For example, the manufacture of slag cement produces 38% less CO2 emissions than the process for the production of portland cement because less limestone is burned for the production of slag cement than is required for Portland cement. In addition, a number of countries also support the production and use of slag cement in order to support environmentally friendly products. The things above also indicate concern for the environment and sustainability is increasing.

In the cement industry, about 50% of emissions come from the calcination process itself, 40% from fuel for heating the kiln, and the remaining 10% from grinding and transport. Inside the calciner, a calcination process occurs, namely the decomposition of CaCO3 into CaO and CO2 and a little MgCO3 into MgO and CO2. Because the calcination reaction is endothermic, high heat is required, so it is equipped with a burner for burning coal utilizing tertiary air from the cooler and hot gas from the kiln. The release of CO2 due to the reaction in the calciner is a crucial environmental issue in the cement industry, the volume of CO2 gas from calcination is much greater than CO2 from burning fuel (coal) or 50% to 40%.

Various types of cement with different qualities often require specific SCM qualities as well. Under these conditions the review is not only general specifications but down to the chemistry of the material. For example slag from a steel plant or Granulated Blast Furnace Slag (GBFS) with a certain chemical content or fly ash but with a low alkaline content or slag from a nickel smelter not suitable for certain types of cement and so on. To obtain specific SCM such as slag and fly ash is closely related to the particular source of slag and fly ash, although in some cases it is possible to add certain materials to obtain the desired chemical composition.

And in the cement industry, emissions are not easily reduced. Emissions from processes cannot be reduced by optimizing or using only renewable energy or alternative energy. In the cement industry, when following the scenarios developed by the International Energy Agency (IEA) or the Intergovernmental Panel on Climate Change (IPCC), it is clear that to reach the limit of 2 C or even 1.5 C, cabon capture and storage / carbon capture and utilization (CCS / CCU) is needed. However, more is needed if the industry is to meet the ambitious goals set by the Paris agreement. The cement industry is particularly challenged by this target because carbon is generated by the energy used in the process and the calcination process itself. Even if energy-based emissions could be eliminated by switching to carbon-neutral fuels, those calcination process emissions would still be present and would require a carbon capture unit (CCS/CCU).

Europe has become a research center for carbon capture and storage (CCS) and carbon capture and utilization (CCU). From a number of carbon capture technologies, amine-based absorption (organic compounds and functional groups whose contents consist of lone-paired nitrogen atoms) is the most advanced carbon capture technology and has been implemented on a commercial scale. Carbon capture technology seems to play an important role in fighting climate change, especially in the cement industry.

Friday, December 23, 2022

Wood Pellet Stove for the Community

Wood-fired stoves are still commonly found in various regions in Indonesia. In addition to being inefficient, the stove also produces smoke pollution which pollutes the environment and is detrimental to health. Smoke pollution from wood-fired stoves is reported as the cause of death for millions of people in the world each year. In addition, many of the firewood used comes from forest wood which causes deforestation. While the further impact of deforestation is the occurrence of natural disasters such as floods and landslides.

Cooking is one of the important human activities to get food, so it is also important to be able to do well. Included as part of that effort is maintaining fuel sustainability, affordable fuel prices, health and environmental aspects. Currently, most of the fuel for cooking in Indonesia is LPG, but in reality, nearly 80% of the LPG used comes from imports or a value of around 60 trillion rupiah. Pertamina, as the sole producer of LPG in Indonesia, currently supplies tend to decrease. However, the demand for LPG continues to increase. LPG demand in 2011 was recorded at 4.35 million tonnes. This need continues to increase every year until it has doubled to 8.55 million tons in 2021. This condition is certainly not good, because it creates dependence on imports, even though in Indonesia there are a number of resources that can be used to overcome this.

Various things based on Indonesia's potential to overcome this include adding new oil refineries so that LPG production can be boosted, coal gasification to produce DME (Dimethyl Ether) whose characteristics are similar to LPG, or using natural gas with gas pipelines. From an energy independence standpoint, this can be done, especially since the raw materials are sufficiently available, but from a bioeconomic and decarbonization point of view (replacing fossil fuels with renewable energy), which is also increasing, this is not appropriate. Renewable energy should be as much as possible as a solution. Wood pellets are fuel or renewable energy from biomass which is ideal for substituting LPG. As a tropical country, Indonesia is rich in biomass because the sun shines all year round, whereas in sub-tropical countries when it's winter the plants stop growing. It can even be said that the biggest producers of biomass are tropical areas or areas where the equator passes, so as a gift from Allah SWT we must be grateful for it.

An efficient and low emission wood pellet stove is the best solution. Why not just a biomass stove? Why does biomass waste, especially wood waste, need to be processed into wood pellets first? By making wood pellets, in addition to uniform shape and size, dry, high density, it is also easy to store and use. Even in the rainy season it can be difficult to find dry firewood in a number of areas, on the other hand wood pellets can be very practical to use. So with standard products according to the specifications mentioned above, wood pellets will be a superior and renewable solid fuel, so that wood pellet stoves will work optimally. Meanwhile, if the fuel is from any biomass with various specifications, then the performance of the stove will not be optimal.

Raw materials for the production of wood pellets can use wood wastes from sawmills, wood processing industries and forest wastes. Many of these wastes have not been utilized and even polluted the environment to become useful and have economic value. The production capacity of the wood pellet factory also needs to be determined so that it meets the needs of its use. To meet the needs of the community at the village or sub-district level, a wood pellet factory can be built with a capacity of 500-1000 tons/month.

Regarding reducing CO2 in the atmosphere in line with decarbonization and bio-economy, a number of companies are currently also carrying out carbon projects, namely by making conservation forests as a medium for absorbing CO2 from the atmosphere (carbon sinks) by receiving compensation in the form of carbon credits. The conservation forest is maintained in such a way that the carbon project is a success. The occurrence of deforestation in conservation forest areas is something that must be avoided. To avoid this, the wood pellet stove program can be a solution. Communities around the conservation forest who use wood pellets for their cooking stoves make firewood no longer used and deforestation does not occur.

Saturday, December 17, 2022

Biochar for Palm Oil Nurseries

There are about 250 producers of palm oil seedlings in Indonesia, and with an area of the palm oil plantation reaching around 15 million hectares, these seedling producers are actually not many either. More specifically, Sumatra island has the largest area of palm oil plantations in Indonesia, making it the main economic activity in the area, because 70 percent of palm oil land in Indonesia is in Sumatra. With a cropping pattern, for example, 125 trees per hectare, 125,000 trees are needed for every 1,000 hectares or 1 million hectares for 125 million trees, while 15 million hectares means more than 1.8 trillion palm oil trees with current crude palm oil (CPO) production reaching more than 40 million tons per year. A very large number, of course. But not only the quantity factor, the seed quality factor is prioritized so that it has optimal productivity. Of course, the need for seeds does not necessarily mean millions or trillions of trees at the same time, depending on needs such as new plantings from new plantations (extensification) - which is currently being carried out in Indonesia or rejuvenation of palm oil plantations (replanting) which is carried out periodically.

One of the good palm oil seeds is determined by the quality of the growing media. The growing medium for palm oil seedlings generally consists of topsoil mixed with sand or organic matter to obtain a fertile medium. Compost or manure is often used to improve soil fertility by supplying nutrients to plants. With a tropical climate with high rainfall, nutrients can be easily washed away, besides that, low soil pH is also a separate obstacle for the growth of these seeds. By using biochar, nutrients or plant nutrients become more available, humidity and microbial activity will increase. This makes the quality of the planting medium high quality, so that the resulting palm oil seed products in the form of roots, plant height, number of leaves and plant weight are the parameters observed with the use of biochar which are also getting better.

Compared to using cocopeat, biochar has a number of advantages. Both cocopeat and biochar have uses in agriculture, but there are a number of differences between the two. Cocopeat has uses mainly as a planting medium because of its water holding capacity, while biochar besides having the ability to hold water like cocopeat also raises soil pH, holds or makes nutrients more available (nutrient retention), and also becomes a soil microbial colony so that Organic materials become quickly decomposed and absorbed by plants. Cocopeat will also decompose in a short time like compost, while biochar can survive and not decompose for hundreds of years. Under these conditions, biochar is also used to store CO2 (carbon sequestration) and obtain carbon credits with the carbon sink mechanism.

The palm oil nursery is the starting point that most determines the further growth of the palm oil in the field. The success of growing palm oil plants in the field is largely determined by the quality of the seeds planted. Seedlings that grow well in nurseries have high adaptability in the field. In practice, it has been proven by a number of studies that the use of biochar has a positive effect on palm seed products. The use of biochar in the range of 40% has become the best composition for the planting medium for the palm oil seeds. This should encourage producers of palm oil seeds to use biochar. If there is a need for biochar in large quantities for this purpose, please contact us. We can also provide technical specification data (COA) and also the biochar samples.

Biochar, Soil Health, and the Sustainability of Palm Oil Productivity

Healthy soil is invariably fertile, but fertile soil is not necessarily healthy. Healthy soil teems with life—such as earthworms and other o...