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Rheological Characterization of TME 419 Cassava Mash–Water Slurries: Implications for the Design of a Mechanized Fufu Processor

Ikemesit Orok, Benjamin Reuben Etuk, Saviour Henry

Abstract

Fufu, a fermented and gelatinized cassava dough, is a dietary staple for hundreds of millions of people across sub-Saharan Africa, yet its production remains overwhelmingly manual because the engineering data required to design processing equipment are largely unavailable. The gelatinization step, in which fermented cassava mash is cooked with water under continuous agitation, is the principal obstacle to mechanization and depends directly on the flow behaviour of the mash–water slurry. This study reports the first systematic rheological characterization of mash–water slurries of TME 419, the dominant improved cassava variety in Nigeria, across a processing-relevant design space. Apparent viscosity was measured with a six-speed rotational viscometer for four cassava mash masses (200, 300, 400 and 500 g) combined with eleven water volumes (300–800 mL), yielding mash-to-water ratios of 0.25–0.67 g mL−1, at ambient temperature (32 °C). All slurries exhibited pronounced pseudoplastic (shear-thinning) behaviour, with apparent viscosity decreasing by a factor of 2.6–2.8 between shear rates corresponding to 100 and 600 rpm and well described by the power-law model. At a fixed water volume of 300 mL, apparent viscosity rose non-linearly from 5.37 Pa·s (200 g) to 19.33 Pa·s (500 g), a 260 % increase, demonstrating an exponential sensitivity of viscous resistance to solid loading. Conversely, for a constant 500 g mash load, increasing the water volume from 300 to 800 mL reduced apparent viscosity by 73.3 %. A mixture density of 1111 kg m−3 was determined. The mash- to-water ratio is identified as the master design variable, and the data are translated into quantitative guidelines for impeller selection, motor and gearbox sizing, and incremental water management in batch fufu processors, providing a quantitative bridge between artisanal fufu preparation and engineered, reproducible food manufacturing.

Keywords

Cassava; Fufu; TME 419; Rheology; Pseudoplastic flow; Apparent viscosity; Mixing; Food process equipment design

References

Ameur, H., Kamla, Y., Sahel, D., 2018. Performance of helical ribbon and screw impellers for mixing viscous fluids in cylindrical reactors. ChemEngineering 2 (2), 26. https://doi.org/10.3390/chemengineering2020026 AOAC, 2014. Official Methods of Analysis of the Association of Official Analytical Chemists, 18th ed. AOAC International, Washington, DC. ASTM D445, 2017. Standard Test Method for Kinematic Viscosity of Transparent and Opaque Liquids (and Calculation of Dynamic Viscosity). ASTM International, West Conshohocken, PA. ASTM D792, 2014. Standard Test Methods for Density and Specific Gravity (Relative Density) of Plastics by Displacement. ASTM International, West Conshohocken, PA. Awoyale, W., Maziya-Dixon, B., Oyedele, H., Adesokan, M., Alamu, E.O., 2023. Biophysical and textural attributes as selection indices for replacing the adopted cassava variety with the improved genotype to produce fufu. Front. Sustain. Food Syst. 7, 1272724. https://doi.org/10.3389/fsufs.2023.1272724 Beleia, A., Butarelo, S.S., Silva, R.S.F., 2006. Modeling of starch gelatinization during cooking of cassava (Manihot esculenta Crantz). LWT – Food Sci. Technol. 39 (4), 400–405. https://doi.org/10.1016/j.lwt.2005.02.011 Chhabra, R.P., Richardson, J.F., 2008. Non-Newtonian Flow and Applied Rheology: Engineering Applications, 2nd ed. Butterworth-Heinemann/Elsevier, Oxford. Chisenga, S.M., Workneh, T.S., Bultosa, G., Alimi, B.A., 2019. Progress in research and applications of cassava flour and starch: a review. J. Food Sci. Technol. 56 (6), 2799–2813. https://doi.org/10.1007/s13197-019-03814-6 Deniran, I.A., Oyelere, O.E., Oyegbade, S.A., Akinduro, W.O., Adelaja, O.A., 2022. Comparison of functional properties of fufu powder and sensory evaluation of the dough produced from TME 419, TME 693 and IBAO 11371 cassava varieties. J. Food Nutr. Sci. 10 (6), 178– 184. Falana, A., Akintola, A.S., Balogun, O.E., 2025. Rheological characterization of cassava starch under shear stress with magnetic particle enhancement. Int. J. Res. Innov. Appl. Sci. 10 (3), 20–35. https://doi.org/10.51584/IJRIAS.2025.100300 Fann Instrument Company, 2013. Model 35 Viscometer Instruction Manual. Fann Instrument Company, Houston, TX. Holdsworth, S.D., 1993. Rheological models used for the prediction of the flow properties of food products: a literature review. Trans. Inst. Chem. Eng. C 71, 139–179. Karim, O.R., Akintayo, O.A., 2021. Morphological and chemical characteristics of different cassava varieties in relation to the quality attributes of their gari. J. Microbiol. Biotechnol. Food Sci. 11 (3), e2879. https://doi.org/10.15414/jmbfs.2879 Katoh, S., Horiuchi, J.I., Yoshida, F., 2015. Biochemical Engineering: A Textbook for Engineers, Chemists and Biologists, 2nd ed. Wiley-VCH, Weinheim. Ojewumi, M.E., Oyeyemi, K.G., Emetere, M.E., Okeniyi, J.O., 2018. Data on the rheological behavior of cassava starch paste using different models. Data Brief 19, 2163–2177. https://doi.org/10.1016/j.dib.2018.06.112 Onyenwoke, C.A., Simonyan, K.J., 2014. Cassava post-harvest processing and storage in Nigeria: a review. Afr. J. Agric. Res. 9 (53), 3853–3863. https://doi.org/10.5897/AJAR2013.8261 IJEMT Otuu, O.O., Omenyi, S.N., 2022. Performance evaluation of cassava flash drying in a vertical upward pneumatic conveying dryer. Nnamdi Azikiwe University Research Repository, Awka, Nigeria. Oyewole, O.B., Odunfa, S.A., 1992. Effect of processing variables on cassava fermentation for fufu production. Trop. Sci. 32, 231–240. Oyeyinka, S.A., Adeloye, A.A., Smith, S.A., Adesina, B.O., Akinwande, F.F., 2019. Physicochemical properties of flour and starch from two cassava varieties. Agrosearch 19 (1), 28–45. https://doi.org/10.4314/agrosh.v19i1.3 Steffe, J.F., 1996. Rheological Methods in Food Process Engineering, 2nd ed. Freeman Press, East Lansing, MI. Wasiu, A., Hakeem, O., Ayodele, A.A., Michael, A., Emmanuel, O.A., Busie, M.D., 2022. Correlation of the quality attributes of fufu flour and the sensory and instrumental texture profiles of the cooked dough produced from different cassava varieties. Int. J. Food Prop. 25 (1), 326–343. https://doi.org/10.1080/10942912.2022.2026955

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