Showing posts with label pks. Show all posts
Showing posts with label pks. Show all posts

Thursday, July 30, 2026

Biomass Boiler Testing and Selection of Suitable Biomass Fuel

In line with the trends toward decarbonization and sustainability across various sectors of life, particularly in the processing industries (manufacturing/process industries), the use of biomass boilers has become a realistic option today among boilers that utilize other renewable energy sources. Fossil-fuel-fired boilers—such as solid-fuel boilers (coal), liquid-fuel boilers (industrial diesel), and gas-fired boilers (natural gas)—must be replaced with renewable fuel boilers, namely biomass boilers. Apart from technical factors in the form of operational adjustments from previous fossil-based fuels, the suitability and availability of biomass fuels are important factors. Suitability refers to the technical aspect and availability refers to the economic aspect.

Combustion technology for biomass boilers also continues to develop so that efficiency continues to increase. From the beginning in the form of static grates to dynamic moving grates such as chain grates and reciprocating grates, even fluidized beds. And to get optimal performance, biomass fuel specifications must also match the shape, size, calorific value and dryness. If the specifications do not meet the requirements of the combustion technology in the boiler then of course the performance will not be optimal. For example, chain grates are suitable for using fuel that has a uniform size and low water content such as palm kernel shells, wood chips and wood pellets. Apart from that, biomass fuel with ash content which has a high melting point is highly preferred so that the ash does not melt and clog the chain lattice cavity.

Meanwhile, using a reciprocating grate, this system is very reliable for burning biomass with high moisture content (up to 60%), non-uniform size, and high ash content, such as empty oil palm fruit bunches (EFB), bark, and municipal solid waste (MSW). The combustion system moves back and forth periodically (like a moving staircase that moves back and forth) which functions to mechanically turn and stir the fuel. And for fluidized beds, this system has the highest thermal efficiency (>89%) and is very suitable for biomass with very small size (powder/dust), low calorific value, or fluctuating chemical content such as rice husks, sawdust, and coffee grounds. The biomass particle size must be maintained within certain limits so that it can float and fluidize perfectly with the sand bed media. The ideal particle size for a fluidized bed boiler (FBC) generally ranges from 0.1 mm to 10 mm (maximum 30–50 mm for certain components), depending on the specific type of technology used.

As a country located on the equator with a tropical climate, Indonesia is a biomass paradise in the world; read more here. A wide variety of biomass fuels in large volumes can be sourced in Indonesia. The most readily available biomass fuels in Indonesia today are wood chips, palm kernel shells, and wood pellets. Wood briquettes are also available but in limited quantities. Choosing the right biomass fuel will ensure optimal boiler performance, but of course, the economic factors for each metric ton of high-pressure steam produced are equally important. 

Ideally, biomass fuel is available in large quantities, ensuring affordability and high quality. The price of biomass fuel is influenced by various factors, including availability, location, logistics infrastructure, and transportation costs. Furthermore, if the biomass fuel undergoes processing, such as wood pellets and briquettes, production costs also contribute. Palm kernel shells for industrial boiler use in Indonesia require almost no processing; they are simply collected from palm oil mills or CPO mills, which produce waste in the form of palm kernel shells (PKS).

There is a case study regarding the selection of this biomass fuel involving a multinational company. In a certain country, the company’s boilers operate using wood briquettes—specifically, industrial briquettes produced by a mechanical press. This approach was also planned for the company’s plant in Indonesia. However, because producers of wood briquettes are still very scarce in Indonesia—making it impossible to secure a supply—the company ultimately conducted various experiments and trials with different types of biomass fuels and now operates its boilers using wood pellets. Thus, in addition to technical factors, economic factors are also crucial for ensuring optimal and sustainable biomass boiler operations. The trial phase is a critical step in achieving these conditions. 

Tuesday, June 23, 2026

Palm Oil Mill: Just Replacing Boiler? Or Are You Also Looking for a Solution to Address the Problem of Empty Fruit Bunches and Generate Additional Profits?

As palm oil plantations in Indonesia continue to expand—currently covering approximately 17 million hectares—the demand for palm oil mills is also increasing. About 10 years ago, there were approximately 1,000 palm oil mills in Indonesia, but according to the latest data from the Ministry of Agriculture of the Republic of Indonesia, the number of active palm oil mills (POM) in the country is now estimated to be between 1,200 and 1,500. These palm oil mills are primarily located on Indonesia’s two largest islands: Sumatra (52.69%) and Kalimantan (42.71%), while the remainder are in Sulawesi, Papua, and several other islands, where their presence is relatively small (each accounting for less than 3%). In terms of ownership, the majority of palm oil mills in Indonesia are owned by large private companies (93%), with the remainder owned by state-owned enterprises (7%). A single large private company may own a dozen or even dozens of these palm oil mills. 

One of the main equipments for palm oil mill operations is the boiler. In fact, given the current palm oil mill production process, boilers are mandatory for palm oil mills; more details on the reasons can be found here. Boilers can also be considered the "heart" of a palm oil mill, converting water into high-pressure steam to run the production process and generate electricity for the mill and its employee housing. Like all production equipment, boilers have a lifespan. When a boiler's lifespan is exceeded, it becomes not only uneconomical due to high maintenance and operational costs, but also dangerous.

The average lifespan, which is the technical and economic life of a palm oil mill boiler, is 20 years. Once this lifespan is exceeded, investing in a new boiler becomes more profitable. The majority of palm oil mills in Indonesia use water tube boilers (e.g., Takuma or Vickers). This type of boiler circulates water through hundreds of externally heated pipes fueled by palm oil waste in the form of shells and fibers. Because these pipes interact directly with extreme heat and water scale, these internal components wear out most rapidly. The three main factors affecting the boiler's lifespan are boiler feedwater quality, fuel characteristics, and regular maintenance.

When the time comes to replace the boiler, and considering the mountains of unused empty fruit bunches (EFB), palm oil mills might consider using them as boiler fuel. But given their large size and high moisture content (>60%), how can they do that? This is certainly a reasonable and innovative idea, given the urgency of replacing the boiler and simultaneously facing the problem of biomass waste. Technically, as biomass waste, it can certainly be used, but is it economically feasible to treat or prepare the empty fruit bunches (EfB) until they are ready for use as fuel? This is the challenge.

Proven evidence will dispel any doubts or theoretical narratives. Likewise, a unit that can process empty fruit bunches (EFBs) and also serve as an additional energy source for boiler operations (cogeneration) at the palm oil mill. With this equipment, not only can the problem of empty fruit bunch (EFB) biomass waste be resolved, but the palm kernel shells (PKS), which have been used as boiler fuel along with the fiber, can be 100% sold directly, providing a source of income. Furthermore, the potassium-rich ash content of empty fruit bunches (up to 30%) also has the potential to be used as fertilizer, including for use on the palm oil plantation. For more details, please read here. Visiting and observing the unit in action can also serve as a means of proving the point, thereby increasing the confidence of palm oil mills interested in this solution.

Beyond technical factors, economic considerations will undoubtedly be a crucial consideration in implementing this equipment. By considering several factors, particularly those currently operating in the palm oil industry, a comprehensive and accurate economic analysis can be conducted to reach a decision on use of the equipment. In an era of renewable fuels, efficiency, zero waste, and increased profitability, this equipment, which serves as a supplemental energy source (cogeneration) for the palm oil mill's boiler, is worth considering for palm oil mills currently facing boiler replacement. 

Thursday, June 4, 2026

Not Only Reduce Steam Cost, but Also Reduce Water Treatment Cost for Boiler Feed Water and Even Also Increase Revenue with EFB Cogeneration

Even though biomass waste is abundant in palm oil mills, the use of efficient boilers is also needed. Efficient use of biomass waste according to the type/specifications will also provide additional benefits for palm oil mills. The longer the biomass waste, the more diverse its uses, ideally even zero waste. Apart from mesocarp fiber which is usually used 100% and added with a number of palm kernel shells (PKS) and sometimes also a few empty palm fruit bunches (EFB), an efficient boiler will optimize the type and amount of biomass. For example, PKS as a commodity that can be sold are used as little as possible for boiler fuel, so that more can be sold which increases the profits of the palm oil mill.

Photo taken from here

Is a utility business like buying steam from another company needed? Utility businesses like selling steam, heat, or electricity are indeed starting to emerge; for more details, read here. Certain companies are greatly helped and receive utility products according to their wishes. They do not want the hassle of operating a boiler, including sourcing its fuel. However, for palm oil mills that in their operations produce a lot of biomass waste that can be used as fuel, it is more practical and efficient to operate their own boiler. And this has been a common practice in palm oil mills for a long time. Therefore, cooperating with a utility company to obtain steam and electricity is not an effective solution. The effective solution is the use of an efficient boiler as explained above.

Apart from that, regarding boiler feed water to increase efficiency or reduce costs and be environmentally friendly, AOP (Advanced Oxidation Process) technology, namely an electrochemical device, is used. With this method, apart from not using chemicals so it is environmentally friendly, it will also increase the service life of the RO (reverse osmosis) membrane which is the heart of the water treatment unit. Not only will the RO membrane have a longer service life, but also the activated carbon filter and ion exchange resin, which are stages of water treatment. Apart from being environmentally friendly, this technology is also more in line with the sustainability mission.

And regarding boiler operations, even to increase the volume of PKS that can be sold, cogeneration of empty palm fruit bunches (EFB) can be carried out. In this way, the EFB, which have been waste biomass which pollutes the environment and which most palm oil mills have not yet processed, are then burned to produce heat and potassium ash. The potassium content above 30% in the ash will make quality fertilizer that can be sold or used in your own plantation. Meanwhile, the heat from burning EFB is used as additional energy for the boiler (cogeneration). In this way, 100% of PKS can be sold and even exported.

If the use of PKS for boiler fuel reaches 50% then using this technology means that 50% of the  PKS can be recovered or taken back or 100% of the PKS can be sold or even exported. For example, a palm oil mill under normal conditions can sell 2,000 tons of PKS/month, then by using this technology the palm oil mill can sell 4,000 tons of PKS/month. Of course the increase in PKS supply volume is very significant to increase income, for more details read here

Thursday, May 21, 2026

PKS (Palm Kernel Shell) Export Business and New Varieties of Superior Palm Oil Seeds

PKS loading for export

The demand for biomass fuels as renewable energy, including PKS (palm kernel shells), is growing in line with the global decarbonization trend. Likewise, the use of biofuels such as biodiesel is also increasing. Biomass fuels like PKS and biofuels like biodiesel are both carbon-neutral bioenergy products. Both can be produced from palm oil trees. Biofuels like biodiesel are primarily used in the transportation sector, while biomass fuels like PKS are used for power generation or industrial boiler fuel. Palm oil produces its primary product namely crude palm oil and crude palm kernel oil (CPO and CPKO), while the PKS are byproducts or waste, such as EFB (empty fruit bunches) and mesocarp fiber.

Over time, the demand for palm oil has also increased, commensurate with population growth, and its use in the energy sector (biofuel) is even greater than in the food sector. To stabilize prices and avoid sharp fluctuations in palm oil prices, the Indonesian government launched the B-50 program, which uses 50% biodiesel from palm oil and 50% diesel from petroleum. With the B-50 program, palm oil demand has increased by approximately 20% over current average production.

This necessitates increasing palm oil productivity. One such effort is the use of superior seeds. By maximizing CPO production from mesocarp fiber, these superior seeds have thick fiber, thin shells (even shellless), and small kernels. The Psifera variety, with its various unique names by seed producers, is an option for this purpose. These superior seeds are even certified to assure consumers of their quality.

The initially thick PKS of the dura variety, which are favored and most sought after by PKS exporters for use in power plants, will gradually decline. However, considering the slow pace of replanting programs and minimal extensification efforts, the transition from dura to psifera PKS will be lengthy. PKS exporters can still safely export thick dura PKS. The less thin tenera PKS, as a transition to psifera, will likely become more common.

If very thin psifera PKS become commonplace, their calorific value will be low and they will be less desirable for energy applications. If this occurs, special treatment is required to make the psifera PKS more technically and economically viable for energy use. This can be achieved through compaction/densification or processing through torrefaction or pyrolysis to produce higher fixed carbon and calorific value. Furthermore, they can be compacted/densified into pellets or briquettes. 

Biochar Needs for the Iron and Steel Industry

As awareness of climate change and global warming grows, along with the Paris Agreement and Net Zero Emissions (NZE) 2050 targets for decarbonization, the use of biomass to produce biocarbon products is increasing. The iron and steel industry, in particular, faces significant demand, while supply remains limited. This has prompted several large companies to invest in large-scale biocarbon production, particularly biochar/biocoke.

Such large-scale production naturally requires abundant biomass feedstock. Specifically, in Indonesia, biocoke/biochar production from palm kernel shells (PKS) reportedly began last year. PKS was chosen because it is a readily available biomass waste product from palm oil mills. PKS and palm oil mill production in Indonesia is estimated to be around 12.5 million tons/year, but because some of the PKS is used as boiler fuel, the estimated usable PKS or remaining boiler fuel is around 6.25 million tons/year. To increase the supply of PKS from palm oil mills, cogeneration of empty fruit bunches (EFB) can be used. For more details, read here.

In addition to the PKS, biocoke/biochar and even black pellets (torrified pellets) are also produced using wood from energy plantations. Energy plantations with short-rotating crops like calliandra and gliricidia have great potential to produce this wood. Currently, wood pellets (white pellets) are being produced from these wood plantations. For more details on whether wood from energy plantations is better for wood pellets (white pellets) or biocoke/biochar/charcoal, read here.

Biocoke, biochar, and charcoal are used in the iron and steel industry as a substitute for coal-based coke in blast furnaces, while wood pellets (white pellets) and torrified pellets (black pellets) are used in power plants using both cofiring and fulfiring. In addition to their higher calorific value (around 20% higher than wood pellets (white pellets)), torrefied pellets (black pellets) are also hydrophobic, allowing them to be stored outdoors, like coal.

In today's era, the use of biocoke / biochar / charcoal to replace coal coke in blast furnaces is becoming important. Biocoke / biochar / charcoal derived from biomass is a renewable material that is sustainable as a reducing agent or fuel in blast furnaces. The chemical reaction will separate oxygen atoms from iron atoms and this will emit CO2. This will convert iron ore (Fe2O3) into crude (pig) iron.

However, the difference lies in the fact that the carbon source used as a reducing agent or fuel in a blast furnace comes from renewable and sustainable sources, making it a carbon-neutral process. Conversely, using coke from coal, as it comes from a fossil source, makes it a carbon-positive process. Similarly, using natural gas, a fossil fuel, as a carbon source for the reducing agent or fuel in a blast furnace, despite its lower carbon intensity, is considered less carbon intensive. 

Monday, April 27, 2026

Washed PKS for Decarbonization of Iron and Steel Plants

The steel industry contributes 8% of global CO2 emissions, with each ton of steel produced producing an average of 1.85 tons of CO2 emissions. Compared to iron ore mining, iron and steel production contributes significantly more to CO2 emissions. Decarbonization efforts in the steel industry begin with the use of renewable energy for smelting. Biomass-based fuels, such as charcoal, which has a high carbon value, can replace the use of coke derived from coal. The use of hydrogen from renewable energy sources is the ultimate decarbonization target for the steel industry.

Currently, the steel industry largely uses coal as an energy source or reducing agent. This coal is processed into coke and used in blast furnaces. It is estimated that approximately 70% of global steel production uses the blast furnace or BF-BO process, and in China, over 90% of steel production uses the BF-BOF process. To reduce carbon intensity, natural gas is used as the fuel. The use of natural gas as a gaseous fuel also acts as a transition medium and, because it is derived from fossil fuels, is also a carbon-positive fuel.

Nearly all CO2 emissions in the steel production sector come from blast furnaces (BFs), which refine iron ore into crude iron or pig iron. The challenge is significant: there are approximately 1,850 steel mills worldwide, with approximately 1,000 using blast furnaces, producing approximately 1.5 billion tons of pig iron annually.

The use of charcoal in a blast furnace not only reduces carbon dioxide (CO2) emissions but also sulfur dioxide (SO2) emissions due to its very low sulfur content (approximately 100 times lower) than coke. Likewise, the use of limestone is reduced, thereby automatically reducing slag production. This also makes the blast furnace's operation acidic.

The use of biomass-based carbon fuel (biocarbon) in the form of charcoal has a better climate impact because it is carbon-neutral. Furthermore, technically, because it is a solid fuel, similar to coke derived from coal, it requires little or no changes or modifications to the smelting furnace. However, the availability of high-quality charcoal, large volumes, and a continuous supply remain major constraints.

This makes the use of charcoal to replace coal-based coke in blast furnaces crucial. Charcoal, derived from biomass, is a renewable, sustainable material used as a reducing agent or fuel in blast furnaces. The chemical reaction separates oxygen atoms from iron atoms, emitting CO2. This converts iron ore (Fe2O3) into crude (pig) iron.

However, the difference lies in the fact that the carbon source used as a reducing agent or fuel in a blast furnace comes from renewable and sustainable sources, making it a carbon-neutral process. Conversely, using coke from coal, as it comes from a fossil fuel, is a carbon-positive process. Similarly, using natural gas as a carbon source for reducing agents or fuel in a blast furnace, although it is said to have lower carbon intensity, is also considered a carbon-neutral process.

The use of charcoal or biocarbon materials for metallurgy or steelmaking has actually been commonplace for some time. In the early 1900s, global charcoal production reached its peak, exceeding 500,000 tons. In the 1940s, charcoal production declined to nearly half its early 1900s levels due to the replacement of other carbon materials, such as coke from coal, in the manufacture of steel and other metals.

Charcoal is a fuel and reducing agent derived from biomass that has significant potential for use during this transition phase. Palm kernel shells (PKS) are a potential biomass raw material for charcoal production. Palm kernel shells (PKS) are available in the millions of tons, ensuring a reliable supply. Charcoal, a product of biomass carbonization or pyrolysis, has a high calorific value, high fixed carbon content, and stability. However, another factor, ash chemistry, influences the quality of the resulting steel. This is somewhat similar to the ash chemistry of wood pellets from calliandra or gliricidia energy plantations.

When used as a reducing agent in blast furnaces, charcoal must have a low phosphorus content, while wood pellets from calliandra or gliricidia energy plantations must have low potassium, sodium, and chlorine content. The potassium, sodium, and chlorine content of wood pellets affects the quality of the wood pellets and their use in power generation. Pulverized combustion power plants, widely used worldwide, will reject wood pellets with this quality. Similarly, blast furnaces will reject charcoal with a high phosphorus content.

To achieve this quality, low-phosphorus content, the palm kernel shells (PKS) must first be washed. After washing, the phosphorus content decreases, and they are then dried and pyrolyzed, or carbonized, to produce palm kernel shell charcoal (PKSC). The same applies to wood pellets. The only difference is that wood pellet production doesn't involve pyrolysis or carbonization; instead, after drying and achieving the desired particle size, the pellets undergo biomass densification in a pelletizer.

Steel production requires an average of 6,000 MJ of energy per ton (equivalent to 50 kg of hydrogen) or 200 kg of charcoal, and requires approximately 600-800 kg of woody biomass as raw material. With a calorific value nearly identical to woody biomass, this is equivalent to using palm oil mills (PKS), which are plantation or agro-industrial waste.

Meanwhile, demand for low-carbon steel is growing rapidly as steel industries and governments worldwide commit to reducing carbon emissions from fossil fuels. The use of charcoal or biocarbon in blast furnaces is a key component of low-carbon steel production, as 100% of the steel is not yet produced using renewable energy. 

Maximizing Palm Oil Mill Profits with Cogeneration Utilization of EFB (Empty Fruit Bunch) and Export of PKS (Palm Kernel Shells)

As a profit-oriented company, maximizing profits is a natural and ongoing endeavor. Besides increasing efficiency, innovation can also be pursued, creating or developing new businesses. This is especially true if the innovations involved in creating new businesses also address environmental issues, such as utilizing palm oil mill biomass waste. In palm oil mills, empty fruit bunch (EFB) waste is generally underutilized, or if utilized, it is still suboptimal or inadequate, such as composting empty fruit bunches (EFB).

Empty fruit bunches (EFB) are a significant biomass waste product from palm oil mills, accounting for approximately 22% of the total production, but are generally underutilized and pollute the environment. Utilizing EFB through cogeneration will not only address the problem of EFB, but also generate heat or energy to replace the use of palm kernel shells (PKS) as boiler fuel, and also produce high-quality organic potassium ash fertilizer.

If the PKS used for boiler fuel reaches 50%, then using this technology means that 50% of the PKS can be recovered, or 100% of the PKS can be sold or exported. For example, a palm oil mill normally sells 3,000 tons of PKS per month. With this technology, the mill can sell 6,000 tons of PKS per month. This would certainly increase the supply of PKS significantly.

Even if applied on a larger/macro scale, namely in Indonesia with CPO production of around 50 million tons/year, the actual production of PKS is around 12.5 million tons/year. However, with the current practice of utilizing PKS as boiler fuel, say reaching 50% of PKS production, the actual amount of PKS that can be sold/exported by palm oil mills is 6.25 million tons/year. Now, with the use of this technology or the installation of equipment (EFB furnace cogeneration), the amount of PKS that can be sold/exported will be close to or equal to the PKS production in the mass balance or diagram above (not subtracting the amount burned in the palm oil mill boiler).

The demand for palm kernel shells (PKS) is increasing in line with the global decarbonization trend. In fact, PKS is a major competitor for wood pellets in the global biomass fuel market. Large PKS users come from Japan and Europe. PKS exports to Japan typically reach around 10,000 tons per shipment, while those to Europe typically reach a minimum of 30,000 tons per shipment due to the longer distances and the use of handymax or even panamax vessels. Cogeneration of empty fruit bunch (EFB) furnaces with palm oil mill boilers will increase the volume of PKS that can be sold or exported. Implementing this technological innovation, besides being the fastest and most practical, also offers multiple benefits, making it worthy of consideration. It could even become a trend and even a standard operating procedure in Indonesia's approximately 1,000 palm oil mills.

Sunday, January 4, 2026

Energy Sources for Data Centers: Between Growth and Sustainability and the Role of Bioenergy

Data centers are physical facilities that house computer systems and related infrastructure, such as servers and storage, used to store and process data. They form the foundation of a nation's computing power and are a core dependency in building large-scale Artificial Intelligence (AI). AI data centers, in particular, are particularly energy-intensive. According to the International Energy Agency (IEA), a typical AI data center currently uses as much energy as 100,000 households, while large AI centers currently consume about 20 times that amount (2 million households).

The computing power needed to support AI growth is also doubling approximately every 100 days. For example, Malaysia, it is not surprising that data center energy consumption in Malaysia is projected to soar to more than 5,000 MW by 2035, which is 40 percent of Peninsular Malaysia's current power capacity, or 11.1 percent of Malaysia's projected power capacity in 2035. Meanwhile, in Indonesia. Meanwhile, the projection of data center electricity consumption in Indonesia has increased significantly, predicted to reach 5,200 MW in 2034 and could even reach 12,000 MW in 2033. And the current capacity in 2025 is only around 274 MW and with a predicted growth of 16.8% per year, it can reach the target of >2,000 MW in 2029.

There are at least two main drivers of growth in the data center industry. First, demand-side factors include the growth of cloud computing and AI, along with the increasing global demand for data storage and processing capacity for everyday tasks like social networking, e-commerce, and data storage. Second, supply-side factors include the availability of resources such as electricity and water, fiber optic connectivity, and land availability.

In the growing data center industry, high or wasteful energy consumption has contributed to rising electricity prices for residents and small businesses. Each country should learn from these case studies as they strive to strike a balance between growth and sustainability. For example, in Georgia, the fastest-growing data center market in the country, Georgia Power reports that 80 percent of the projected 8,200 MW increase in energy demand by 2030 is related to planned data centers opening in the state. To address the increased demand, base electricity rates have been raised and new nuclear power plant (NPP) are under construction.

Georgia is an attractive market for data centers, given its relatively low electricity prices, with industrial electricity rates about 42 percent below the US national average. Significant tax relief was also promised, with at least $163 million in state collections eliminated and local sales tax annually starting in 2022. However, starting in 2023, the average Georgia Power residential customer will pay $43 more per month following a base rate increase. To address this challenge, a Senate bill was introduced to protect residential and commercial customers from higher electricity bills due to the utility's significant investment in AI-powered energy needs.

Efforts to address the increasing energy demand for data centers while reducing their environmental impact are necessary. Typical approaches include optimizing Power Use Effectiveness (PUE) and related metrics, as well as shifting to renewable energy. The use of renewable energy for data centers remains limited, or even at a small capacity of less than 5%. Renewable energy sources still prioritize solar and intermittent wind.

Industry participants also state that the intermittent nature of solar energy (at least without a well-developed battery storage system) does not make it an ideal energy source for data centers, given the need to keep data centers running 24/7. With limited solar generating capacity, data centers often rely on backup diesel generators. While renewable diesel (biodiesel and green diesel) is an available option, there are currently no regulations encouraging this transition.

Biomass as an energy source, or bioenergy, for data centers is still very limited. This biomass can be used directly in biomass power plants, where the CFB type is very common, or through co-firing in coal-fired power plants. Furthermore, biomass can be utilized as an energy source and biochar production through pyrolysis technology, as is the case with this US company. The syngas from pyrolysis serves as a carbon-neutral energy source, and biochar is the primary product for carbon capture and sequestration (CCS), resulting in carbon-negative operations. 

Friday, October 24, 2025

Export of PKS and Wood Pellets for Biomass Power Plants and BECCS in Japan

In Japan, with approximately 290 biomass power plants, the transition to BECCS should be faster, but it's just a matter of policy and regulation. Installing CCS (Carbon Capture and Storage) units at biomass power plants makes the plant's operation carbon-negative, or carbon dioxide removal (CDR) mode. The amount of carbon captured and stored, separating it from the atmosphere, can earn carbon credits that can be used for CCS operations at biomass power plants. Decarbonization to achieve the 2050 Net Zero Emissions (NZE) climate targets and the Paris Agreement are the driving force.

And because biomass power plants always require biomass fuel for their operations, this presents an opportunity for Indonesia to supply wood pellets and palm kernel shells (PKS). Power plants in Japan, most or the majority of biomass fuel comes from imports, such as the Kanda Biomass Power Plant (Kanda Biomass Energy) in Kanda City, northeast of Chiyoda, Tokyo. Kanda Biomass Energy uses three types of biomass: wood pellets (60 percent), palm kernel shells (PKS) (30 percent), and wood chips (10 percent). Wood pellets are imported from British Columbia, Canada and Vietnam, palm kernel shells (PKS) from Indonesia, and wood chips are imported locally from northern Kyushu. This facility consumes approximately 170,000 tons of wood pellets, then 120,000 tons of palm kernel shells (PKS), and 60,000 tons of wood chips per year.

Biomass power plants in Japan generally use fluidized bed combustion (FBC) technology in their boilers. The reasons for using this technology are higher fuel flexibility, high efficiency due to good mixing, relatively low combustion temperatures, which minimize the problem of ash deposits due to melting and the use of excess air. It also further increases efficiency and reduces flue gas production. FBC technology is suitable for large capacities above 20 MW. Over time, this technology has been divided into two types: bubbling fluidized bed (BFB) and circulating fluidized bed (CFB). Generally, the differences between the two are not significant, such as fuel size, unit construction, and air-fuel ratio. Palm kernel shells (PKS) are more suitable for CFB power plants because they are less than 4 cm in size. Power plants in Japan, in particular, that use PKS or palm kernel shells as fuel because they use CFB technology.

With relatively low operating temperatures of 650-900°C, ash problems can be minimized. Certain biomass fuels sometimes have high ash content and ash chemistry that can potentially damage the generating unit. Furthermore, fuel cleanliness is also very important, this is because technically certain impurities such as metals can block the air pores in the perforated plate of the FBC unit, even though air, especially oxygen, is absolutely necessary for the combustion process and also maintains the fluidized fuel bed condition. These fuel cleanliness requirements must be met by the supplier or seller of the biomass fuel. Therefore, the buyer requires the amount of impurities (impurities/contaminants) that can be accepted is very small, namely around less than 1%. PKS cleaning is done by sieving either manually or mechanically. For more details on biomass fuel cleanliness issues can be read here.

The demand for biomass fuel is predicted to continue to increase. And biomass power plants continue to expand, with an estimated 6 GW of additional power plants projected to be installed in Japan by 2030, with an installed capacity of 7.3 GW by 2024. In fact, 11 new power plants are scheduled to come online by 2025, increasing annual biomass fuel demand by approximately 1.1 million tons. If Indonesia could also supply wood pellets to Japan by maximizing forest residue, sawmill waste, or other wood processing industry waste, that would be extraordinary.

As an estimate of forest waste utilization, for example, a production forest with an area of ​​200,000 hectares (approximately 2,000 km2) and because it is located in a tropical area with an average woody biomass growth rate of 20 tons/hectare/year, then the forest will produce 4,000,000 tons/year of wood every year from new growth. An area of ​​200,000 hectares may seem very large, but with Indonesia having almost 70 million hectares of production forest, an area of ​​200,000 hectares is only 0.29%.

For example, we set the default setting for wood utilization from production forests: 35% for building materials, furniture, flooring, etc., 30% for paper, tissue, and packaging, with 5% of the harvested wood remaining in the forest. Furthermore, 15% of sawmill waste (sawdust, chips, etc.) is used for wood pellet production, and the remaining sawmill waste is sent to pulp and paper mills and engineered wood industries.

And it is estimated that 35.3% of the 3.8 million tons/year of wood waste annually goes to wood pellet factories (approximately 1.34 million tons annually). In some locations the actual percentage is much lower because paper mills and engineered wood industries use more raw materials with the same raw materials as wood pellet factories. Therefore, in general, wood pellet factories are not located in locations that already have demand or existing use for pulp and paper and engineered wood industries. With the high water content, drying is necessary for wood pellet production, so the estimated wood pellet production is 650,000 tons/year. With the size of a handymax vessel that can carry 25,000 tons/shipment, this means 26 shipments are needed to Japan each year, or with a panamax vessel that can carry 50,000 tons/shipment, this means 13 shipments to Japan each year. 

Wednesday, October 22, 2025

Opportunities to Supply Biomass Fuels to Japan

Loading palm kernel shells / PKS for export

Japan currently operates approximately 290 biomass power plants. Its installed capacity is 7.3 GW, but only 4.96 GW (~68% of installed capacity) are actively operating, with peak electricity output reaching 2024. A projected 6 GW of additional power plants are expected by 2030, but several slowdowns have occurred due to power reductions and even closures. This has occurred at the Taketoyo JERA plant, which reduced its operating level or power output, and the Suzukawa plant, which was closed due to economic pressures. Despite this, plans for new biomass power plants remain strong, with 11 new plants scheduled to be operational by 2025, which could increase annual biomass fuel demand by approximately 1.1 million tons. The need for biomass fuel is a business opportunity that must be exploited, especially since biomass fuel for biomass power plants in Japan is largely imported. Here are two examples of brief profiles of biomass power plants in Japan :

1. Renova

Renova is a 75 MW biomass power plant located at Omaezaki Port in the southernmost part of Shizuoka Prefecture. The biomass fuel used in the Renova plant is wood pellets and palm kernel shells (PKS).

Fuel quality and sustainability are key concerns for Renova, for example, in palm kernel shells (PKS), where the presence of foreign impurities and moisture content must be within acceptable limits or as low as possible. Meanwhile, for wood pellets, technical aspects such as density and the percentage of fine particles are of concern. This is why Renova feels the need to encourage investment in fuel testing and analysis.

The renewable energy facility had previously delayed its commercial operation twice due to the need for additional time for final adjustments to the boiler and turbine to ensure stable operation. Initially scheduled for December 2023, Renova stated that the launch was also delayed in December 2024, and finally began operations in early 2025. These modifications were necessary to ensure long-term stable operation.

Renova is the largest shareholder in Omaezakikou with a 38% stake. Chubu Electric Power Co. Inc. is second with 34%, while Mitsubishi Electric Financial Solutions Corp. and Suzuyo Shoji Co. Ltd. hold 18% and 10%, respectively. The company is also exploring alternative biomass fuels, such as empty fruit bunches (EFB), to diversify its biomass fuel supply and control costs with lower purchase prices.

2. Kanda

Biomass Energy in Kanda City, northeast of Chiyoda, Tokyo. Inaugurated in June 2021, this 75 MW facility operates exclusively on biomass. With an annual capacity of approximately 500 million kWh, the plant generates enough renewable electricity to meet the electricity needs of 170,000 households.

Kanda Biomass Energy utilizes three types of biomass: wood pellets (60 percent), palm kernel shells (PKS) (30 percent), and wood chips (10 percent). This fuel mix reduces greenhouse gas emissions into the atmosphere by 670,000 tons per year compared to a coal-fired power plant with the same capacity. Wood pellets are imported from British Columbia, Canada, and Vietnam, palm kernel shells (PKS) from Indonesia, and wood chips are sourced locally from northern Kyushu.

The plant has three dedicated fuel tanks for storing wood pellets. Biomass is fed into a circulated fluidized bed (CFB) boiler, which converts it into superheated steam to drive a power-generating turbine. The steam is then cooled, condensed, and recycled back into the system, ensuring efficient and sustainable electricity generation for residential and industrial users in the region.

The Kanda Biomass power plant is owned by Renova (43.07%), Sumitomo Forestry (41.5%), Veolia Japan (10%), Kyuden Mirai Energy (5%), and Mihara Group (0.43%). The biomass power plant was originally developed by Nippon Steel Engineering, Renova, and Sumitomo Heavy Industries.

Biomass Boiler Testing and Selection of Suitable Biomass Fuel

In line with the trends toward decarbonization and sustainability across various sectors of life, particularly in the processing industries ...