{"id":10970,"date":"2025-10-06T11:02:26","date_gmt":"2025-10-06T09:02:26","guid":{"rendered":"https:\/\/www.cartaecartiere.com\/?p=10970"},"modified":"2025-10-06T11:02:26","modified_gmt":"2025-10-06T09:02:26","slug":"unlocking-the-green-gold-maximizing-tall-oil-yield-with-chemical-solutions","status":"publish","type":"post","link":"https:\/\/www.cartaecartiere.com\/en\/unlocking-the-green-gold-maximizing-tall-oil-yield-with-chemical-solutions\/","title":{"rendered":"Unlocking the green gold: maximizing tall oil yield with chemical solutions"},"content":{"rendered":"\n
Authors: Hannu H\u00e4m\u00e4l\u00e4inen, Pulp Segment Team Leader and Johan Berglund, Senior Product Developer – BIM Kemi<\/em><\/p>\n\n\n\n Derived from the kraft pulping process, tall oil, once underutilised and often burnt for energy, is now recognised as a valuable bio-based raw material. With applications in biofuels, adhesives and pharmaceuticals, its efficient recovery is vital for both economic and environmental sustainability. <\/p>\n\n\n\n Despite its potential, tall oil recovery remains suboptimal in many pulp mills. Losses due to process inefficiencies, foam formation and inadequate separation methods limit the economic and environmental value that could be derived from this resource. In response, several technological advancements, including the strategic use of chemical additives, are helping mills significantly boost their recovery rates without major capital investments.<\/p>\n\n\n\n Tall oil (pine oil) is a resinous liquid formed during kraft pulping when softwood chips react with alkaline liquors, producing soap. This soap is skimmed from black liquor and acidulated to yield crude tall oil (CTO). Historically used for energy, tall oil is now valued for its unique chemical composition and bio-based origin, serving as a precursor for high-value products like biofuels, lubricants and coatings, inks, and pharmaceuticals. <\/p>\n\n\n\n Global demand for renewable fuels has elevated tall oil\u2019s market value, currently estimated at \u20ac2 billion and projected to reach \u20ac3 billion by 2030. Having the right strategy for applying tall oil separation aids has therefore never been so critical to a mill\u2019s financial performance. Even a 1% yield increase can generate hundreds of thousands of euros in added value for a mill.<\/p>\n\n\n\n Despite its value, tall oil recovery in kraft pulp mills is often inefficient. Studies and industry data show that, on average, conventional methods recover only 80\u201390% of available tall oil due to:<\/p>\n\n\n\n These factors lead to 5\u201320% losses of the potential tall oil, impacting profitability and sustainability. Addressing these losses requires a multifaceted approach that combines process optimization with targeted chemical solutions.<\/p>\n\n\n\n There are several methods available for recovering tall oil in kraft pulp mills, each varying in complexity, efficiency, and implementation cost. These methods range from long established mechanical separation techniques to more recent advancements involving chemical additives that enhance each step of the process:<\/p>\n\n\n\n 1. Soap skimming<\/strong>. Soap is skimmed from black liquor during evaporation. While widely used, it\u2019s limited by process conditions and commonly loses 1\u20135% of soap. Typically, this method allows for the recovery of up to 90% of the available soap. It requires continuous process monitoring and adjustment. Without effective soap skimming, tall oil recovery is compromised.<\/p>\n\n\n\n 2. Acidulation<\/strong>. The skimmed soap undergoes acidulation, where it is mixed with an acid to convert the sodium salts into free fatty and resin acids. Though established, it can be slow and inefficient without additives, requiring precise pH and temperature control. The performance of this phase separation determines the final tall oil yield and quality, and there is a risk of quality variation if not optimally managed.<\/p>\n\n\n\n 3. Advanced chemical additives<\/strong>. Recent innovations use targeted chemical solutions to improve each stage of the tall oil recovery process without capital investment, improving yield and product quality. Chemical additives require expert knowledge for dosing and implementation, which is why good cooperation with the chemical supplier, combined with process understanding and on-site support, can unlock significant value from existing operations.<\/p>\n\n\n\n Developed by BIM, the BIM Talloil Maximisation concept, BIM TOMAX, is a comprehensive three-part approach designed to improve tall oil yield through targeted chemical applications. It can increase tall oil yield by up to 20% without requiring major capital investment. The concept improves yield at critical stages of the pulp process, during brown stock washing, recovery and at the tall oil plant.<\/p>\n\n\nFrom by-product to bio-product<\/h2>\n\n\n\n
Challenges of tall oil recovery<\/h2>\n\n\n\n
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Methods of tall oil recovery<\/h2>\n\n\n\n
A chemical-based approach to maximizing tall oil yield<\/h2>\n\n\n\n