Reinforced HDPE with optimized biochar content for material extrusion additive manufacturing: morphological, rheological, electrical, and thermomechanical insights

Nectarios Vidakis, Markos Petousis, Dimitrios Kalderis, Nikolaos Michailidis, Emmanuel Maravelakis, Vassilios Saltas, Nikolaos Bolanakis, Vassilis Papadakis, Mariza Spiridaki, Apostolos Argyros

Biochar ›› 2024, Vol. 6 ›› Issue (1) : 37. DOI: 10.1007/s42773-024-00314-5

Reinforced HDPE with optimized biochar content for material extrusion additive manufacturing: morphological, rheological, electrical, and thermomechanical insights

Author information +
History +

Abstract

The development of efficient and sustainable composites remains a primary objective of both research and industry. In this study, the use of biochar, an eco-friendly reinforcing material, in additive manufacturing (AM) is investigated. A high-density Polyethylene (HDPE) thermoplastic was used as the matrix, and the material extrusion (MEX) technique was applied for composite production. Biochar was produced from olive tree prunings via conventional pyrolysis at 500 °C. Composite samples were created using biochar loadings in the range of 2.0–10.0 wt. %. The 3D-printed samples were mechanically tested in accordance with international standards. Thermogravimetric analysis (TGA) and Raman spectroscopy were used to evaluate the thermal and structural properties of the composites. Scanning electron microscopy was used to examine the fractographic and morphological characteristics of the materials. The electrical/dielectric properties of HDPE/biochar composites were studied over a broad frequency range (10–2 Hz–4 MHz) at room temperature. Overall, a laborious effort with 12 different tests was implemented to fully characterize the developed composites and investigate the correlations between the different qualities. This investigation demonstrated that biochar in the MEX process can be a satisfactory reinforcement agent. Notably, compared to the control samples of pure HDPE, biochar increased the tensile strength by over 20% and flexural strength by 35.9% when added at a loading of 4.0 wt. %. The impact strength and microhardness were also significantly improved. Furthermore, the Direct current (DC) conductivity of insulating HDPE increased by five orders of magnitude at 8.0 wt. % of biochar content, suggesting a percolation threshold. These results highlight the potential of C-based composites for the use in additive manufacturing to further exploit their applicability by providing parts with improved mechanical performance and eco-friendly profiles.

Highlights

The reinforcement of MEX 3D printed parts with eco-friendly biochar.

Biochar was obtained from olive trees.

Popular high-density polyethylene (HDPE) was the polymeric matrix in the study.

biochar increased the tensile strength by over 20% and the flexural strength by 35.9% at a loading of 4 wt. %.

The DC conductivity of the insulating HDPE increased by five orders of magnitude at 8 wt. % biochar loading.

Keywords

High-density polyethylene / Biochar / Material extrusion 3D printing / Additive manufacturing

Cite this article

Download citation ▾
Nectarios Vidakis, Markos Petousis, Dimitrios Kalderis, Nikolaos Michailidis, Emmanuel Maravelakis, Vassilios Saltas, Nikolaos Bolanakis, Vassilis Papadakis, Mariza Spiridaki, Apostolos Argyros. Reinforced HDPE with optimized biochar content for material extrusion additive manufacturing: morphological, rheological, electrical, and thermomechanical insights. Biochar, 2024, 6(1): 37 https://doi.org/10.1007/s42773-024-00314-5

References

[1]
Abd El-Aziz ME, Shafik ES, Tawfic ML, Morsi SMM. Biochar from waste agriculture as reinforcement filer for styrene/butadiene rubber. Polym Compos, 2022, 43(3): 1295-1304,
CrossRef Google scholar
[2]
Ahmad M, Rajapaksha AU, Lim JE, Zhang M, Bolan N, Mohan D, Vithanage M, Lee SS, Ok YS. Biochar as a sorbent for contaminant management in soil and water: a review. Chemosphere, 2014, 99: 19-33,
CrossRef Google scholar
[3]
Ahmed MJ, Hameed BH. Insight into the co-pyrolysis of different blended feedstocks to biochar for the adsorption of organic and inorganic pollutants: a review. J Clean Prod, 2020, 265: 121762,
CrossRef Google scholar
[4]
Al-Bayaty SA, Al-Uqaily RAH, Hameed S. Study of thermal degradation kinetics of high density polyethlyene (HDPE) by using TGA technique. AIP Conf Proc, 2020, 2290(1): 20001,
CrossRef Google scholar
[5]
Amalina F, Razak ASA, Krishnan S, Sulaiman H, Zularisam AW, Nasrullah M. Biochar production techniques utilizing biomass waste-derived materials and environmental applications—a review. J Hazardous Mater Adv, 2022, 7: 100134,
CrossRef Google scholar
[6]
Aup-Ngoen K, Noipitak M. Effect of carbon-rich biochar on mechanical properties of PLA-biochar composites. Sustain Chem Pharm, 2020, 15: 100204,
CrossRef Google scholar
[7]
Awad SA. Swelling, thermal and mechanical characterizations of high-density polyethylene/ recycled biochar composites. J Turk Chem Soc Sect A Chem, 2021, 8(4): 1137-1144,
CrossRef Google scholar
[8]
Beydoun K, Klankermayer J. Efficient plastic waste recycling to value-added products by integrated biomass processing. Chemsuschem, 2020, 13(3): 488-492,
CrossRef Google scholar
[9]
Borkar A, Hendlmeier A, Simon Z, Randall JD, Stojcevski F, Henderson LC. A comparison of mechanical properties of recycled high-density polyethylene/waste carbon fiber via injection molding and 3D printing. Polym Compos, 2022, 43(4): 2408-2418,
CrossRef Google scholar
[10]
Brigandi PJ, Cogen JM, Pearson RA. Electrically conductive multiphase polymer blend carbon-based composites. Polym Eng Sci, 2014, 54(1): 1-16,
CrossRef Google scholar
[11]
Cuevas M, Martínez-Cartas ML, Pérez-Villarejo L, Hernández L, García-Martín JF, Sánchez S. Drying kinetics and effective water diffusivities in olive stone and olive-tree pruning. Renew Energy, 2019, 132: 911-920,
CrossRef Google scholar
[12]
Dahal RK, Acharya B, Saha G, Bissessur R, Dutta A, Farooque A. Biochar as a filler in glassfiber reinforced composites: experimental study of thermal and mechanical properties. Compos B Eng, 2019, 175: 107169,
CrossRef Google scholar
[13]
Das O, Sarmah AK, Bhattacharyya D. A novel approach in organic waste utilization through biochar addition in wood/polypropylene composites. Waste Manag, 2015, 38: 132-140,
CrossRef Google scholar
[14]
Das O, Sarmah AK, Bhattacharyya D. Structure–mechanics property relationship of waste derived biochars. Sci Total Environ, 2015, 538: 611-620,
CrossRef Google scholar
[15]
Das O, Bhattacharyya D, Hui D, Lau K-T. Mechanical and flammability characterisations of biochar/polypropylene biocomposites. Compos B Eng, 2016, 106: 120-128,
CrossRef Google scholar
[16]
Das O, Bhattacharyya D, Sarmah AK. Sustainable eco–composites obtained from waste derived biochar: a consideration in performance properties, production costs, and environmental impact. J Clean Prod, 2016, 129: 159-168,
CrossRef Google scholar
[17]
Das O, Kim NK, Kalamkarov AL, Sarmah AK, Bhattacharyya D. Biochar to the rescue: Balancing the fire performance and mechanical properties of polypropylene composites. Polym Degrad Stab, 2017, 144: 485-496,
CrossRef Google scholar
[18]
Das O, Kim NK, Sarmah AK, Bhattacharyya D. Development of waste based biochar/wool hybrid biocomposites: flammability characteristics and mechanical properties. J Clean Prod, 2017, 144: 79-89,
CrossRef Google scholar
[19]
Das D, Bordoloi U, Muigai HH, Kalita P. A novel form stable PCM based bio composite material for solar thermal energy storage applications. J Energy Storage, 2020, 30: 101403,
CrossRef Google scholar
[20]
Das C, Tamrakar S, Kiziltas A, Xie X. Incorporation of biochar to improve mechanical thermal and electrical properties of polymer composites. Polymers (basel), 2021,
CrossRef Google scholar
[21]
de Sousa DV, Guimarães LM, Félix JF, Ker JC, Schaefer CERG, Rodet MJ. Dynamic of the structural alteration of biochar in ancient Anthrosol over a long timescale by Raman spectroscopy. PLoS ONE, 2020, 15(3),
CrossRef Google scholar
[22]
DeVallance DB, Oporto GS, Quigley P. Investigation of hardwood biochar as a replacement for wood flour in wood–polypropylene composites. J Elastomers Plast, 2015, 48(6): 510-522,
CrossRef Google scholar
[23]
Dusunceli N, Colak OU. The effects of manufacturing techniques on viscoelastic and viscoplastic behavior of high density polyethylene (HDPE). Mater Des, 2008, 29(6): 1117-1124,
CrossRef Google scholar
[24]
Ferreira GF, Pierozzi M, Fingolo AC, da Silva WP, Strauss M. Tuning sugarcane bagasse biochar into a potential carbon black substitute for polyethylene composites. J Polym Environ, 2019, 27(8): 1735-1745,
CrossRef Google scholar
[25]
Gabhi RS, Kirk DW, Jia CQ. Preliminary investigation of electrical conductivity of monolithic biochar. Carbon N Y, 2017, 116: 435-442,
CrossRef Google scholar
[26]
García Martín JF, Cuevas M, Feng C-H, Álvarez Mateos P, Torres García M, Sánchez S. Energetic valorisation of olive biomass: olive-tree pruning, olive stones and pomaces. Processes, 2020,
CrossRef Google scholar
[27]
Ghoshal S. Polymer/carbon nanotubes (CNT) nanocomposites processing using additive manufacturing (three-dimensional printing) technique: an overview. Fibers, 2017,
CrossRef Google scholar
[28]
Giorcelli M, Khan A, Pugno NM, Rosso C, Tagliaferro A. Biochar as a cheap and environmental friendly filler able to improve polymer mechanical properties. Biomass Bioenergy, 2019, 120: 219-223,
CrossRef Google scholar
[29]
Gulrez SKH, Ali Mohsin ME, Shaikh H, Anis A, Pulose AM, Yadav MK, Qua EHP, Al-Zahrani SM. A review on electrically conductive polypropylene and polyethylene. Polym Compos, 2014, 35(5): 900-914,
CrossRef Google scholar
[30]
Han W, Zhou J, Shi Q. Research progress on enhancement mechanism and mechanical properties of FRP composites reinforced with graphene and carbon nanotubes. Alexandria Eng J, 2023, 64: 541-579,
CrossRef Google scholar
[31]
Idrees M, Jeelani S, Rangari V. Three-dimensional-printed sustainable biochar-recycled PET composites. ACS Sustain Chem Eng, 2018, 6(11): 13940-13948,
CrossRef Google scholar
[32]
Ikram S, Das O, Bhattacharyya D. A parametric study of mechanical and flammability properties of biochar reinforced polypropylene composites. Compos Part A Appl Sci Manuf, 2016, 91: 177-188,
CrossRef Google scholar
[33]
Jang S, Boddorff A, Jang DJ, Lloyd J, Wagner K, Thadhani N, Brettmann B. Effect of material extrusion process parameters on filament geometry and inter-filament voids in as-fabricated high solids loaded polymer composites. Addit Manuf, 2021, 47: 102313,
CrossRef Google scholar
[34]
Junk S, Dorner M, Fleig C. Scholz SG, Howlett RJ, Setchi R. Additive manufacturing of continuous carbon fiber-reinforced plastic components. Sustainable design and manufacturing 2020, 2021 Singapore Springer Singapore 149-159,
CrossRef Google scholar
[35]
Khan A, Savi P, Quaranta S, Rovere M, Giorcelli M, Tagliaferro A, Rosso C, Jia CQ. Low-cost carbon fillers to improve mechanical properties and conductivity of epoxy composites. Polymers (basel), 2017,
CrossRef Google scholar
[36]
Khushnood RA, Ahmad S, Savi P, Tulliani J-M, Giorcelli M, Ferro GA. Improvement in electromagnetic interference shielding effectiveness of cement composites using carbonaceous nano/micro inerts. Constr Build Mater, 2015, 85: 208-216,
CrossRef Google scholar
[37]
Kostenidou E, Kaltsonoudis C, Tsiflikiotou M, Louvaris E, Russell LM, Pandis SN. Burning of olive tree branches: a major organic aerosol source in the Mediterranean. Atmos Chem Phys, 2013, 13(17): 8797-8811,
CrossRef Google scholar
[38]
Krupa I, Novák I, Chodák I. Electrically and thermally conductive polyethylene/graphite composites and their mechanical properties. Synth Met, 2004, 145(2): 245-252,
CrossRef Google scholar
[39]
Kumar S, Panda AK, Singh RK. A review on tertiary recycling of high-density polyethylene to fuel. Resour Conserv Recycl, 2011, 55(11): 893-910,
CrossRef Google scholar
[40]
Kumar S, Ramesh MR, Doddamani M, Rangappa SM, Siengchin S. Mechanical characterization of 3D printed MWCNTs/HDPE nanocomposites. Polym Test, 2022, 114: 107703,
CrossRef Google scholar
[41]
Lee JW, Hawkins B, Li X, Day DM. Lee JW. Biochar fertilizer for soil amendment and carbon sequestration. Advanced biofuels and bioproducts, 2013 New York Springer New York 57-68,
CrossRef Google scholar
[42]
Lehmann J, Rillig MC, Thies J, Masiello CA, Hockaday WC, Crowley D. Biochar effects on soil biota—a review. Soil Biol Biochem, 2011, 43(9): 1812-1836,
CrossRef Google scholar
[43]
Li S, Li D. Carbon fiber reinforced highly filled charcoal powder/ultra high molecular weight polyethylene composites. Mater Lett, 2014, 134: 99-102,
CrossRef Google scholar
[44]
Li X, Gao H, Scrivens WA, Fei D, Xu X, Sutton MA, Reynolds AP, Myrick ML. Reinforcing mechanisms of single-walled carbon nanotube-reinforced polymer composites. J Nanosci Nanotechnol, 2007, 7(7): 2309-2317,
CrossRef Google scholar
[45]
Li X, Song Y, Bian Y, Wang F, Gu C, Yang X, Jiang X. Effects of root exudates on the sorption of polycyclic aromatic hydrocarbons onto biochar. Environ Pollut Bioavailab, 2019, 31(1): 156-165,
CrossRef Google scholar
[46]
Li Z, Fan M, Zhong Z, Du B. Coupling effect of molecular chain displacement and carrier trap characteristics on DC breakdown of HDPE/LDPE blend insulation. Polymers (basel), 2020,
CrossRef Google scholar
[47]
Linares A, Canalda JC, Cagiao ME, García-Gutiérrez MC, Nogales A, Martín-Gullón I, Vera J, Ezquerra TA. Broad-band electrical conductivity of high density polyethylene nanocomposites with carbon nanoadditives: multiwall carbon nanotubes and carbon nanofibers. Macromolecules, 2008, 41(19): 7090-7097,
CrossRef Google scholar
[48]
Mandal S, Adhikari S, Ma H, Kim D-H, Bai Y, Hou D. Progress and future prospects in biochar composites: application and reflection in the soil environment. Crit Rev Environ Sci Technol, 2020,
CrossRef Google scholar
[49]
Manyà JJ. Pyrolysis for biochar purposes: a review to establish current knowledge gaps and research needs. Environ Sci Technol, 2012, 46(15): 7939-7954,
CrossRef Google scholar
[50]
Matykiewicz D. Biochar as an effective filler of carbon fiber reinforced bio-epoxy composites. Processes, 2020,
CrossRef Google scholar
[51]
Mazzanti V, Malagutti L, Mollica F. FDM 3D printing of polymers containing natural fillers: a review of their mechanical properties. Polymers (basel), 2019,
CrossRef Google scholar
[52]
Meyer S, Glaser B, Quicker P. Technical, economical, and climate-related aspects of biochar production technologies: a literature review. Environ Sci Technol, 2011, 45(22): 9473-9483,
CrossRef Google scholar
[53]
Mostafa SA, Faried AS, Farghali AA, El-Deeb MM, Tawfik TA, Majer S, Abd Elrahman M. Influence of nanoparticles from waste materials on mechanical properties, durability and microstructure of UHPC. Materials, 2020,
CrossRef Google scholar
[54]
Musa ET, Hamza A, Ahmed AS. Investigation of the mechanical and morphological properties of high-density polyethylene (hdpe)/leather waste composites. IOSR J Appl Chem, 2017, 10(01): 48-58,
CrossRef Google scholar
[55]
Nan N, DeVallance DB, Xie X, Wang J. The effect of bio-carbon addition on the electrical, mechanical, and thermal properties of polyvinyl alcohol/biochar composites. J Compos Mater, 2015, 50(9): 1161-1168,
CrossRef Google scholar
[56]
Nanda S, Dalai AK, Berruti F, Kozinski JA. Biochar as an exceptional bioresource for energy, agronomy, carbon sequestration, activated carbon and specialty materials. Waste Biomass Valorization, 2016, 7(2): 201-235,
CrossRef Google scholar
[57]
Noman M, Sanginario A, Jagdale P, Castellino M, Demarchi D, Tagliaferro A. Pyrolyzed bamboo electrode for electrogenerated chemiluminescence of Ru (bpy)32+. Electrochim Acta, 2014, 133: 169-173,
CrossRef Google scholar
[58]
Pawlak A, Galeski A. Plastic deformation of crystalline polymers: the role of cavitation and crystal plasticity. Macromolecules, 2005, 38(23): 9688-9697,
CrossRef Google scholar
[59]
Petousis M, Michailidis N, Papadakis V, Mountakis N, Argyros A, Spiridaki M, Moutsopoulou A, Nasikas NK, Vidakis N. The impact of the glass microparticles features on the engineering response of isotactic polypropylene in material extrusion 3D printing. Mater Today Commun, 2023,
CrossRef Google scholar
[60]
Pk G, Tee KF, Gimbun J, Chin SC. Biochar in cementitious material—a review on physical, chemical, mechanical, and durability properties. AIMS Mater Sci, 2023, 10(3): 405-425,
CrossRef Google scholar
[61]
Richard S, Rajadurai JS, Manikandan V. Influence of particle size and particle loading on mechanical and dielectric properties of biochar particulate-reinforced polymer nanocomposites. Int J Polym Anal Charact, 2016, 21(6): 462-477,
CrossRef Google scholar
[62]
Romero-García JM, López-Linares JC, del Contreras M, Romero I, Castro E. Exploitation of olive tree pruning biomass through hydrothermal pretreatments. Ind Crops Prod, 2022, 176: 114425,
CrossRef Google scholar
[63]
Saltas V, Vallianatos F, Gidarakos E. Charge transport in diatomaceous earth studied by broadband dielectric spectroscopy. Appl Clay Sci, 2013, 80–81: 226-235,
CrossRef Google scholar
[64]
Shah AR, Imdad A, Sadiq A, Malik RA, Alrobei H, Badruddin IA. Mechanical, thermal, and fire retardant properties of rice husk biochar reinforced recycled high-density polyethylene composite material. Polymers (basel), 2023,
CrossRef Google scholar
[65]
Shen Y, Yoshikawa K. Recent progresses in catalytic tar elimination during biomass gasification or pyrolysis—a review. Renewable Sustain Energy Rev, 2013, 21: 371-392,
CrossRef Google scholar
[66]
Suljovrujic E, Micic M, Milicevic D. Structural changes and dielectric relaxation behavior of uniaxially oriented high density polyethylene. J Eng Fiber Fabr, 2013, 8(3): 155892501300800320,
CrossRef Google scholar
[67]
Sundarakannan R, Arumugaprabu V, Manikandan V, Vigneshwaran S. Mechanical property analysis of biochar derived from cashew nut shell waste reinforced polymer matrix. Mater Res Express, 2020, 6(12),
CrossRef Google scholar
[68]
Tamayo-Vegas S, Muhsan A, Liu C, Tarfaoui M, Lafdi K. The effect of agglomeration on the electrical and mechanical properties of polymer matrix nanocomposites reinforced with carbon nanotubes. Polymers (basel), 2022,
CrossRef Google scholar
[69]
Tareq R, Akter N, Azam MdS. Ok YS, Tsang DCW, Bolan N, Novak JM. Chapter 10—biochars and biochar composites: low-cost adsorbents for environmental remediation. Biochar from biomass and waste, 2019 Elsevier 169-209
[70]
Tomczyk A, Sokołowska Z, Boguta P. Biochar physicochemical properties: pyrolysis temperature and feedstock kind effects. Rev Environ Sci Biotechnol, 2020, 19(1): 191-215,
CrossRef Google scholar
[71]
Tsubota T, Tsuchiya S, Kusumoto T, Kalderis D. Assessment of biochar produced by flame-curtain pyrolysis as a precursor for the development of an efficient electric double-layer capacitor. Energies (basel), 2021, 14(22): 7671,
CrossRef Google scholar
[72]
Väisänen T, Das O, Tomppo L. A review on new bio-based constituents for natural fiber-polymer composites. J Clean Prod, 2017, 149: 582-596,
CrossRef Google scholar
[73]
van de Werken N, Tekinalp H, Khanbolouki P, Ozcan S, Williams A, Tehrani M. Additively manufactured carbon fiber-reinforced composites: state of the art and perspective. Addit Manuf, 2020, 31: 100962,
CrossRef Google scholar
[74]
Vidakis N, Petousis M, Kourinou M, Velidakis E, Mountakis N, Fischer-Griffiths PE, Grammatikos S, Tzounis L. Additive manufacturing of multifunctional polylactic acid (PLA)—multiwalled carbon nanotubes (MWCNTs) nanocomposites. Nanocomposites, 2021, 7(1): 184-199,
CrossRef Google scholar
[75]
Vidakis N, Petousis M, Maniadi A. Sustainable additive manufacturing: mechanical response of high-density polyethylene over multiple recycling processes. Recycling, 2021, 6(1): 1-14,
CrossRef Google scholar
[76]
Vidakis N, Petousis M, Tzounis L, Velidakis E, Mountakis N, Grammatikos SA. Polyamide 12/multiwalled carbon nanotube and carbon black nanocomposites manufactured by 3D printing fused filament fabrication: a comparison of the electrical, thermoelectric, and mechanical properties. C (basel), 2021, 7(2): 38,
CrossRef Google scholar
[77]
Vidakis N, Petousis M, Velidakis E, Mountakis N, Fischer-Griffiths PE, Grammatikos S, Tzounis L. Fused filament fabrication three-dimensional printing multi-functional of polylactic acid/carbon black nanocomposites. C (basel), 2021, 7(3): 52,
CrossRef Google scholar
[78]
Vidakis N, Petousis M, Velidakis E, Spiridaki M, Kechagias JD. Mechanical performance of fused filament fabricated and 3d-printed polycarbonate polymer and polycarbonate/ cellulose nanofiber nanocomposites. Fibers, 2021, 9(11): 74,
CrossRef Google scholar
[79]
Vidakis N, Petousis M, Maniadi A, Papadakis V. MEX 3D printed HDPE / TiO 2 nanocomposites physical and mechanical properties investigation. J Compos Sci, 2022, 6: 209,
CrossRef Google scholar
[80]
Vidakis N, Petousis M, Maniadi A, Papadakis V. The impact of zinc oxide micro-powder filler on the physical and mechanical response of high-density polyethylene composites in material extrusion 3D printing. J Compos Sci, 2022, 6(10): 315,
CrossRef Google scholar
[81]
Vidakis N, Kalderis D, Petousis M, Maravelakis E, Mountakis N, Bolanakis N, Papadakis V. Biochar filler in MEX and VPP additive manufacturing: characterization and reinforcement effects in polylactic acid and standard grade resin matrices. Biochar, 2023, 5(1): 39,
CrossRef Google scholar
[82]
Vidakis N, Petousis M, Michailidis N, David C, Mountakis N, Papadakis V, Sfakiotakis E, Sagris D, Spiridaki M, Argyros A. Optimized PCL/CNF bio-nanocomposites for medical bio-plotted applications: rheological, structural, and thermomechanical aspects. Bioprinting, 2023, 36: e00311,
CrossRef Google scholar
[83]
Wang L, Ok YS, Tsang DCW, Alessi DS, Rinklebe J, Mašek O, Bolan NS, Hou D. Biochar composites: emerging trends, field successes and sustainability implications. Soil Use Manag, 2022, 38(1): 14-38,
CrossRef Google scholar
[84]
Wang Y, Liu X, Lan T, Yang Q, Cong S, Lin Y. Corn stalk biochar-reinforced high-density polyethylene material: flame-retardant and anti-aging properties. Fibers Polymers, 2023, 24(5): 1771-1779,
CrossRef Google scholar
[85]
Yang D, Zhang H, Wu J, McCarthy ED. Fibre flow and void formation in 3D printing of short-fibre reinforced thermoplastic composites: an experimental benchmark exercise. Addit Manuf, 2021, 37: 101686,
CrossRef Google scholar
[86]
Zhang Q, Cai H, Ren X, Kong L, Liu J, Jiang X. The dynamic mechanical analysis of highly filled rice husk biochar/high-density polyethylene composites. Polymers (basel), 2017,
CrossRef Google scholar
[87]
Zhang Q, Cai H, Yang K, Yi W. Effect of biochar on mechanical and flame retardant properties of wood—plastic composites. Results Phys, 2017, 7: 2391-2395,
CrossRef Google scholar
[88]
Zhang Q, Yi W, Li Z, Wang L, Cai H. Mechanical properties of rice husk biochar reinforced high density polyethylene composites. Polymers (basel), 2018,
CrossRef Google scholar
[89]
Zhang Q, Cai H, Yi W, Lei H, Liu H, Wang W, Ruan R. Biocomposites from organic solid wastes derived biochars: a review. Materials, 2020,
CrossRef Google scholar
[90]
Zhang Q, Xu H, Lu W, Zhang D, Ren X, Yu W, Wu J, Zhou L, Han X, Yi W, Lei H. Properties evaluation of biochar/high-density polyethylene composites: emphasizing the porous structure of biochar by activation. Sci Total Environ, 2020, 737: 139770,
CrossRef Google scholar
[91]
Zhang Q, Zhang D, Lu W, Khan MU, Xu H, Yi W, Lei H, Huo E, Qian M, Zhao Y, Zou R. Production of high-density polyethylene biocomposites from rice husk biochar: effects of varying pyrolysis temperature. Sci Total Environ, 2020, 738: 139910,
CrossRef Google scholar
[92]
Zhang Q, Zhang D, Xu H, Lu W, Ren X, Cai H, Lei H, Huo E, Zhao Y, Qian M, Lin X, Villota EM, Mateo W. Biochar filled high-density polyethylene composites with excellent properties: towards maximizing the utilization of agricultural wastes. Ind Crops Prod, 2020, 146: 112185,
CrossRef Google scholar
[93]
Ziegler D, Palmero P, Giorcelli M, Tagliaferro A, Tulliani J-M. Biochars as innovative humidity sensing materials. Chemosensors, 2017,
CrossRef Google scholar

Accesses

Citations

Detail

Sections
Recommended

/