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Journal articles
Magazine articles
TAPPI News, Paper360º March/April 2020

TAPPI News, Paper360º March/April 2020

Conference papers
How A Major Pulp & Paper Manufacturer Reduced MRO Inventory Using RCM Principles, 20PEERS Conference

How A Major Pulp & Paper Manufacturer Reduced MRO Inventory Using RCM Principles, 20PEERS Conference

Journal articles
Magazine articles
Open Access
Production and characterization of furanic bio-oil from Kawayan kiling (Bambusa vulgaris Schrad ex. Wendl) using molten citric acid in an open system, TAPPI Journal August 2024

ABSTRACT: The burning of fossil fuels poses many threats to the environment. These predicaments have led to a continuous search for alternative sources and production of energy, and biomass is considered the most abundant renewable energy source. In this study, the potential to produce furanic bio-oil from the cellulose of Bambusa vulgaris was explored. The proximate chemical analysis of bamboo was determined using TAPPI Standards. Cellulose was isolated through dewaxing, delignification, and alkaline treatments. The furanic bio-oil was produced by mixing cellulose and citric acid in a solvent-free environment. The effects of the digestion time (120 min, 180 min, and 240 min) on the yield and characteristics were determined. The chemical compositions were determined using Fourier transform infrared (FTIR) spectroscopy and gas chromatography-mass spectrometry (GCMS). B. vulgaris has the following chemical composition: alpha-cellulose (57.42 ± 0.40), holocellulose (78.84 ± 0.52), lig-nin (28.85 ± 0.17), hot water extractives (3.99 ± 0.08), organic extractives (0.77 ± 0.04), ash (4.67 ± 0.02), and moisture (12.98 ± 0.22). The bio-oil yield was affected by the digestion time. The highest yield was obtained at 180 min, followed by 120 min, and 240 min with 88.59%, 59.28%, and 49.96%, respectively. The peaks in the FTIR spectra corresponded to the compounds determined by the GCMS analysis. The dominant chemicals were furans (29.19%), ketones (26.31%), and carboxylic acids (19.26%). The bio-oil obtained at 180-min digestion time has the following properties: sulfur content (0.032 wt%), kinematic viscosity (1.03 mm2/s), specific gravity (0.925), copper corrosion test (No. 1a), pH (2.753), and water content (not detected). Overall, the obtained values from the properties and chemical characterization can be the basis for investigating its performance for biofuel production and utilization. This study is aligned with the Bamboo Industry’s Strategic Science and Technology Plan for the Philippines to develop other value-added products from bamboo and to achieve Sustainable Development Goal 7 (SDG 7) as determined by the United Nations.

Journal articles
Open Access
Conversion of paper-grade pulp from rice straw into dissolving pulp, TAPPI Journal June 2025

ABSTRACT: About 1,165 million metric tons of rice straw is generated every year worldwide, which can be a good source for the circular bioeconomy. In this research paper, the paper-grade pulp from rice straw was converted to dissolving-grade pulp by fractionation in a biorefinery initiative. Rice straw was cooked at an optimum condition of 8% potassium hydroxide (KOH) charge for 120 min at 150°C and produced a pulp yield of 47.2% with a kappa number of 18.5. Subsequently, D0(EP)D1 bleaching was carried out for the produced pulp, and the brightness of the pulp reached to 82.4%. From the black liquor, 16.5% of the lignin and 11.9% of the hemicellulose were isolated for producing biobased products and chemicals, and then the spent liquor was used for soil amendment. The bleached pulp was fractionated in a Bauer McNett fiber classifier. The pulp fibers retained on 16-, 30-, and 50-mesh screens were used as a longer fiber fraction pulp, and pulp fibers retained on 100- and 200-mesh screens were used as a shorter fiber pulp. The longer and shorter fiber fraction pulps were analyzed for cellulose, R10, pentosan, and viscosity. The long fiber fraction pulps were characterized by higher cellulose (88.2% vs. 83.1%) and lower pentosan (11.3% vs. 13.0%) content than the shorter fiber fraction pulps. The longer fiber fraction was further treated with cold KOH to remove residual hemicellulose. The KOH extraction reduced pentosan content in pulp to 6.3% and increased á-cellulose content to 91.3%. The short fiber fraction was converted to monomeric sugars using cellulase enzymes with varying reaction time, temperature, and consistency. The efficiency of cellulase activity was assessed through glucose yield and residual dry weight. A temperature of 45°C, 5.0 pH, 5% consistency, and 6 filter paper units/gram (FPU/g) o.d. pulp resulted in maximum sugar conversion of 85.7%.

Journal articles
Walki’s New Investment in Steinfurt to Support Customers’ Transition to Circular Packaging Materials

A new state-of-the-art production line at Walki Group’s Steinfurt plant, Germany, will support customers in the transition to sustainable and circular fibre-based packaging materials.

Journal articles
Ahlstrom Continues to Support UNICEF’s Educational Work Through Ahlström Collective Impact

Ahlstrom, as a member of Ahlström Collective Impact continues to support UNICEF’s global educational program in 2024. Ahlström Collective Impact’s total investment to UNICEF in 2024 is close to EUR 800,000. Ahlström Collective Impact is a joint responsibility initiative by a group of companies and foundations, and Ahlstrom is one of the members and founding partners of the initiative.

Journal articles
Optimized LC Pulping System for Recycled Paper: Voith's BluePulpLC Enables Significant Resource Savings

Voith, a leading full-line supplier in the paper industry, presents its optimized LC (low-consistency) pulping system for recycled paper. The previous TwinPulp system has undergone extensive further development, with the focus on improving efficiency and reducing costs.

Journal articles
Kimberly-Clark Names Craig Slavtcheff Chief Research and Development Officer

Robert Long to retire after 45 distinguished years in CPG

Journal articles
Evonik and Steinbeis Papier Join Forces to Reduce CO2 Emissions in Recycled Paper

Evonik and Steinbeis Papier have signed an agreement for the supply of Evonik’s carbon-neutral hydrogen peroxide (H2O2) for recycled paper production. The use of this “Way to GO2”-certified H2O2 will enable Steinbeis Papier to further reduce emissions along its value chain, in accordance with the company’s ambitious sustainability strategy.