Qualitative and Quantitative Analysis of Lignocellulosic Biomass using Infrared Spectroscopy. Presented at the CSBE/SCGAB Annual Conference, Rodd's Brudenell River Resort, 2009. ,
Enzyme-retting of flax and characterization of processed fibers, J. Biotechnol, vol.89, pp.193-203, 2001. ,
, Plant Cell Walls. Edition Garland Science, 2010.
Characterisation of hemp (Cannabis sativa L.) roots under different growing conditions, Plant Soil, vol.313, pp.227-235, 2008. ,
Valorizacion de residuos de fibras vegetales como refuerzo de plasticos industriales. Presented at the I Simposio Iberoamericano de Ingenieria de Residuos, 2008. ,
Bio-accumulation and distribution of heavy metals in fibre crops (flax, cotton and hemp), Ind. Crops Prod, vol.19, pp.197-205, 2004. ,
Brevet US n°1001583, 1957. ,
The origin and development of the defibrator process, Sven Papperstidn, vol.56, pp.550-558, 1953. ,
Steam-assisted biomass fractionation. I. Process considerations and economic evaluation, Biomass Bioenergy, vol.14, pp.205-218, 1998. ,
Teneurs totales en «métaux lourds» dans les sols français: résultats généraux du programme ASPITET, Courr. Environ. INRA, pp.39-54, 2000. ,
Accumulators and excluders -strategies in the response of plants to heavy metals, J. Plant Nutr, vol.3, pp.643-654, 1981. ,
Température des cours d'eau : analyse des données et modélisation : application au bassin de la Loire, 2015. ,
Lignocellulosic fiber reinforced composites: Influence of compounding conditions on defibrization and mechanical properties, J. Appl. Polym. Sci, vol.128, pp.1227-1238, 2013. ,
URL : https://hal.archives-ouvertes.fr/hal-01267981
La filière du chanvre industriel, éléments de compréhension macroéconomiques, Oilseeds Fats Crops Lipids, vol.22, p.602, 2015. ,
Comportement thermodynamique et dimensionnel des matériaux textiles soumis à des variations des conditions climatiques, 2009. ,
Plant Fibers as Reinforcement for Green Composites, Natural Fibers, Biopolymers and Their Biocomposites, 2005. ,
Unidirectional hemp and flax EP-and PPcomposites: Influence of defined fiber treatments, J. Appl. Polym. Sci, vol.93, pp.2150-2156, 2004. ,
Cours de Botanique, Librairie Générale de l'Enseignement, 1923. ,
Characterization and comparison of cellulose fiber extraction from rice straw by chemical treatment and thermal steam explosion, J. Clean. Prod, pp.1-8, 2015. ,
Le chanvre industriel -Production et utilisations, Editions France Agricole, 2006. ,
The effect of steam explosion on the production of sugarcane bagasse/polyester composites, Compos. Part Appl. Sci. Manuf, vol.42, pp.364-370, 2011. ,
Utilisation de la spectrométrie infrarouge pour une quantification rapide du taux d'humidité dans des fibres végétales, Rev. Compos. Matér. Avancés, vol.24, pp.81-95, 2014. ,
Plant uptake of inorganic waste constituents. Chanvre industriel, 1983. ,
,
Isolation of nanocellulose from pineapple leaf fibres by steam explosion, Carbohydr. Polym, vol.81, pp.720-725, 2010. ,
Phenomenological kinetics and reaction engineering aspects of steam/aqueous treatments. Presented at the Steam Explosion Techniques: Fundamentals and Industrial Applications, pp.21-58, 1988. ,
Heavy metal tolerance and accumulation of Cd, Cr and Ni by Cannabis sativa L, Plant Soil, vol.256, pp.243-252, 2003. ,
Le composite idéal à fibres et matrice (oxyde, Comment concilier des qualités physiques et chimiques contradictoires ? , in: Annales de Chimie-Science Des Matériaux, pp.673-688, 2005. ,
Influence of steam explosion pretreatment on the composition and structure of wheat straw, BioResources, vol.7, pp.4202-4213, 2012. ,
Investigation of the dislocation of natural fibres by Fouriertransform infrared spectroscopy, Vib. Spectrosc, vol.55, pp.300-306, 2011. ,
Characteristic and performance of elementary hemp fibre, Mater. Sci. Appl, vol.1, pp.336-342, 2010. ,
Le chanvre industriel : Réalités d'une plante mythique, 2010. ,
Mécanismes de rétention des métaux lourds en phase solide : cas de la stabilisation des sols contaminés et des déchets industriels, 2006. ,
, Électronique En Sci. Environ, vol.7
Structural changes of Salix miyabeana cellulose fibres during dilute-acid steam explosion: Impact of reaction temperature and retention time, Carbohydr. Polym, vol.119, pp.8-17, 2015. ,
Bayesian separation of spectral sources under non-negativity and full additivity constraints. Signal Process, vol.89, pp.2657-2669, 2009. ,
URL : https://hal.archives-ouvertes.fr/hal-00548756
Comparison of Enzymatically Separated Hemp and Nettle Fibre to Chemically Separated and Steam Exploded Hemp Fibres, J. Ind. Hemp, vol.7, pp.43-59, 2008. ,
Polypropylènes (pp), 2004. ,
Prétraitement du miscanthus x giganteus: vers une valorisation optimale de la biomasse lignocellulosique, Thèse. Nancy, vol.1, 2010. ,
Mechanical and thermal properties of polymer composite based on natural fibers: Moroccan hemp fibers/polypropylene, Mater. Des, vol.49, pp.203-208, 2013. ,
Steam Explosion and Alkali-Oxygen Combined Effect for Degumming of Kenaf Fiber, BioResources, vol.10, pp.5476-5488, 2015. ,
Caractérisation morphologique et chimique du chanvre (Cannabis sativa). Prétraitement à la vapeur et valorisation, 1995. ,
Fibres from semi-retted hemp bundles by steam explosion treatment, Biomass Bioenergy, vol.14, pp.251-260, 1998. ,
URL : https://hal.archives-ouvertes.fr/hal-00302500
The significance of the elastic modulus of wood cell walls obtained from nanoindentation measurements, Compos. Part Appl. Sci. Manuf, vol.35, pp.1345-1349, 2004. ,
Selectivity sequence and competitive adsorption of heavy metals by Brazilian soils, Soil Sci. Soc. Am. J, vol.65, pp.1115-1121, 2001. ,
, Biologie végétale. Les Cormophytes, 7e édition, 2005.
Généralités sur les matériaux composites, 2008. ,
Steam Explosion Impact to Technical Hemp Fiber Diameter, Presented at the Proceedings of the 9th International Scientific and Practical Conference, pp.112-115, 2013. ,
Composites of steam exploded biomass. Presented at the Wood the Best Material for Mankind, pp.79-84, 2013. ,
Investigation of biomass degradation mechanism in pretreatment of switchgrass by aqueous ammonia and sodium hydroxide, Bioresour. Technol, vol.101, pp.8185-8191, 2010. ,
Development of hemp fibre-PP nonwoven composites, Presented at the Proceeding of the 8th Polymers for Advanced Technologies International Symposium, 2005. ,
Development of hemp fibre reinforced polypropylene composite, J. Thermoplast. Compos. Mater, vol.21, pp.165-174, 2008. ,
Water footprints of nations: Water use by people as a function of their consumption pattern, Water Resour. Manag, vol.21, pp.35-48, 2006. ,
Wood and Cellulosic Chemistry, Second Edition, Revised, and Expanded, 2000. ,
Unpolluted fractionation of wheat straw by steam explosion and ethanol extraction, Bioresour. Technol, vol.98, pp.666-676, 2007. ,
Pseudo-lignin formation and its impact on enzymatic hydrolysis, Bioresour. Technol, vol.117, pp.7-12, 2012. ,
Characteristics and potential pedogenetic processes of a Technosol developing on iron industry deposits, J. Soils Sediments, vol.13, pp.555-568, 2013. ,
URL : https://hal.archives-ouvertes.fr/hal-00789535
Impact des métaux lourds sur les interactions plante/ver de terre/microflore tellurique, 2009. ,
Caractérisation expérimentale et numérique du comportement mécanique des agro-composites renforcés par des fibres de chanvre, 2013. ,
Caractérisation des propriétés mécaniques de fibres de chanvre, Matér. Tech, vol.100, pp.451-457, 2012. ,
Application of Steam Explosion as Pretreatment on Lignocellulosic Material: A Review, Ind. Eng. Chem. Res, vol.54, pp.2593-2598, 2015. ,
Influence of steam explosion on the thermal stability of cellulose fibres, Polym. Degrad. Stab, vol.96, pp.1582-1588, 2011. ,
La steam explosionapplication en tant que prétraitement de la matière lignocellulosique, Biotechnol. Agron. Société Environ, vol.14, pp.561-566, 2010. ,
Sebertia acuminata: a hyperaccumulator of nickel from New Caledonia, Science, vol.193, pp.579-580, 1976. ,
Pb(II) and Cd(II) by the addition of rice straw derived biochar to a simulated polluted Ultisol, J. Hazard. Mater. 229, vol.230, 2012. ,
Are natural fiber composites environmentally superior to glass fiber reinforced composites?, Compos. Part Appl. Sci. Manuf, vol.35, pp.371-376, 2004. ,
Steam explosion of sugarcane bagasse as a pretreatment for conversion to ethanol, Biomass Bioenergy, vol.14, pp.277-287, 1998. ,
Optimisation des cultures d'agromine du Cd et du Zn sur des Technosols construits, 2016. ,
URL : https://hal.archives-ouvertes.fr/tel-01754659
Measuring crystallinity of laser cleaned silk by X-ray diffraction, E-Preserv. Sci, vol.2, pp.31-37, 2005. ,
Steam explosion of flax -A superior technique for upgrading fibre value, Biomass Bioenergy, vol.14, pp.237-249, 1998. ,
, , 1997.
The effect of steam explosion treatment on technical hemp fibres, Proceedings of the International Scientific and Practical Conference, pp.230-237, 2015. ,
Capillarity of flax/linseed (Linum usitatissimum L.) and fibre hemp (Cannabis sativa L.) straw fractions, Ind. Crops Prod, vol.14, pp.41-50, 2001. ,
Study of changes in cellulose fine structure in the wet state during tracheid wall component removal by sodium chlorite pulping, 1972. ,
Biorefinery of Cannabis sativa using one-and twostep steam treatments for the production of high quality fibres, Ind. Crops Prod, vol.37, pp.275-283, 2012. ,
URL : https://hal.archives-ouvertes.fr/hal-00904888
Biorefining lignocellulosic biomass via the feedstock impregnation rapid and sequential steam treatment, 2011. ,
, Le Chanvre Industriel -Guide technique, 2007.
International fiber science and technology series, 2007. ,
Industrial hemp (Cannabis sativa L.) growing on heavy metal contaminated soil -fibre quality and phytoremediation potential, Ind. Crops Prod, vol.16, pp.33-42, 2002. ,
Biomaterials Strategy of RENAULT GROUP, 2016. ,
The cytoskeletal basis of plant growth and form, 1991. ,
Effect of enzyme treatment and steam explosion on tensile properties of single hemp fiber, Presented at the 12th International Symposium on Wood and Pulping Chemistry (ISWPC), Madison, Etats-Unis d'Amérique, p.80, 2003. ,
Method and apparatus for explosively defibrating cellulosic fiber, p.4163687, 1979. ,
Future sources of organic raw materials, Presented at the Proc. Chemrawn Conf, pp.611-625, 1978. ,
Abrégé de biochimie appliquée, 2009. ,
Marschner's Mineral Nutrition of Higher Plants, 2012. ,
Process of making integral insulating board with hard welded surfaces, 1931. ,
Apparatus for and process of explosion fibration of lignocellulose material, 1928. ,
Process and apparatus for desintegration of wood and the like, 1926. ,
De la fibre végétale à la fibre textile, 2008. ,
Evaluacion de tres variedades de cañamo (Cannabis sativa var. sativa) bajo tres densidades de siembra para la obtencion de fibra, 2005. ,
The effect of fibre and coupling agent content on the mechanical properties of hemp/polypropylene composites, Compos. Interfaces, vol.14, pp.837-848, 2007. ,
Influence of the growth stage of industrial hemp on the yield formation in relation to certain fibre quality traits, Ind. Crops Prod, vol.13, pp.49-56, 2001. ,
Ultrastructural Changes in Poplar Cell Wall during Steam Explosion Treatment, Holzforschung, vol.45, pp.175-179, 1991. ,
URL : https://hal.archives-ouvertes.fr/hal-00310296
X-ray diffraction study of fibrous polymers. I. Degree of paracrystallinity -a new parameter for characterizing fibrous polymers, Polymer, vol.21, pp.1403-1409, 1980. ,
Relating nanoindentation to macroindentation of wood, 2009. ,
Phytoremédiation des sols contaminés -Des plantes pour guérir... les sols, in: La Chimie et La Nature, EDP Sciences, p.300, 2012. ,
Ecosystem services provided by soils of urban, industrial, traffic, mining, and military areas (SUITMAs), J. Soils Sediments, vol.15, pp.1659-1666, 2015. ,
URL : https://hal.archives-ouvertes.fr/hal-01486416
Urban soils, Encyclopedia of Soils in the Environment. D. Hillel, pp.202-208, 2005. ,
URL : https://hal.archives-ouvertes.fr/hal-02102774
Application of Bayesian Non-negative Source Separation to Mixture Analysis in Spectroscopy, AIP Conference Proceedings, pp.237-244, 2004. ,
URL : https://hal.archives-ouvertes.fr/hal-00456989
Bayesian analysis of spectral mixture data using Markov Chain Monte Carlo Methods, Chemom. Intell. Lab. Syst, vol.81, pp.137-148, 2006. ,
URL : https://hal.archives-ouvertes.fr/hal-00022304
Eucalyptus nitens: nanomechanical properties of bark and wood fibers, Appl. Phys. A, vol.108, pp.1007-1014, 2012. ,
Hemp Strands: PP Composites by Injection Molding: Effect of Low Cost Physico-chemical Treatments, J. Reinf. Plast. Compos, vol.25, pp.313-327, 2006. ,
Full exploitation of Cannabis sativa as reinforcement/filler of thermoplastic composite materials, Compos. Part Appl. Sci. Manuf, vol.38, pp.369-377, 2007. ,
Chemical modification of hemp, sisal, jute, and kapok fibers by alkalization, J. Appl. Polym. Sci, vol.84, pp.2222-2234, 2002. ,
Convention unique sur les stupéfiants de 1961, Comportement thermo-hydromécanique du bois : Applications technologiques et dans les structures. Presses polytechniques et universitaires romandes, 1961. ,
The astysphere and urban geochemistry -a new approach to integrate urban systems into the geoscientific concept of spheres and a challenging concept of modern geochemistry supporting the sustainable development of planet earth, vol.16, pp.539-545, 2009. ,
Effects of thermal and enzymatic treatments and harvesting time on the microbial quality and chemical composition of fibre hemp (Cannabis sativa L.), Biomass Bioenergy, vol.32, pp.392-399, 2008. ,
, Perspectives Agricoles de l'OCDE et de La FAO 2016-2025
Production d'éthanol à partir de biomasse lignocellulosique, Oil Gas Sci. Technol, vol.54, pp.67-94, 1999. ,
Carbon storage potential in natural fiber composites, Resour. Conserv. Recycl, vol.39, pp.325-340, 2003. ,
Optimising industrial hemp fibre for composites, Compos. Part Appl. Sci. Manuf, vol.38, pp.461-468, 2007. ,
Functionalization, compatibilization and properties of polypropylene composites with Hemp fibres, Compos. Sci. Technol, vol.66, pp.2218-2230, 2006. ,
Explosive pretreatment of lignocellulosic residues with high-pressure carbon dioxide for the production of fermentation substrates, Biotechnol. Bioeng, vol.25, pp.3149-3161, 1983. ,
The chemistry involved in the steam treatment of lignocellulosic materials, Quím. Nova, vol.26, pp.863-871, 2003. ,
Mobilité des métaux dans les systèmes sol-plante-biochar, 2014. ,
Tolérance et accumulation des métaux lourds par la végétation spontanée des friches métallurgiques: vers de nouvelles méthodes de biodépollution, 2006. ,
Intégration de Matériaux Verts dans les véhicules, 2016. ,
Humanity's transformation of earth's soil: Pedology's new frontier, Soil Sci, vol.172, pp.957-967, 2007. ,
Matériaux composites à base de fibres de chanvre, 2011. ,
Caracterizacion quimica de fibras de plantas herbaceas utilizadas para la fabricacion de pastas de papel de alta calidad, 2006. ,
The effect of lignin as a compatibilizer on the physical properties of coconut fiber-polypropylene composites, Eur. Polym. J, vol.36, pp.1483-1494, 2000. ,
Interface Modification and Mechanical Properties of Natural Fiber-Polyolefin Composite Products, J. Reinf. Plast. Compos, vol.24, pp.121-130, 2005. ,
Caracterización de fibras vegetales utilizadas como refuerzo en matrices termoplásticos, 2008. ,
Properties of hemp fibre cottonised by biological modification of hemp hackling noils, FIBRES Text. East. Eur, vol.12, pp.58-60, 2004. ,
An Empirical Method for Estimating the Degree of Christallinity of Native Cellulose Using the X-Ray Diffractometer, Text. Res. J, vol.29, pp.786-794, 1959. ,
Ethanol Production in Hawaii: Processes, Feedstocks, and Current Economic Feasibility of Fuel Grade Ethanol Production in Hawaii, 1994. ,
Steam explosion for biomass pre-treatment, Dan. Technol. Inst, 2013. ,
Agronomy of fibre hemp (Cannabis sativa L, Europe. Ind. Crops Prod, vol.11, pp.107-118, 2000. ,
Effects of water states on steam explosion of lignocellulosic biomass, Bioresour. Technol, vol.199, pp.155-163, 2016. ,
A review of bast fibres and their composites. Part 1 -Fibres as reinforcements, Compos. Part Appl. Sci. Manuf, vol.41, pp.1329-1335, 2010. ,
Characteristics of degraded cellulose obtained from steam-exploded wheat straw, Carbohydr. Res, vol.340, pp.97-106, 2005. ,
Chemical and physical modification of hemp fibres by steam explosion technology, IOP Conf. Ser. Mater. Sci. Eng, vol.49, p.12053, 2013. ,
Retting process of some bast plant fibres and its effect on fibre quality -a review, BioResources, vol.6, pp.5260-5281, 2011. ,
Effects of chemical-physical pre-treatment processes on hemp fibres, Presented at the Bioresource Hemp, pp.13-16, 2000. ,
Effects of chemical-physical pre-treatment processes on hemp fibres for reinforcement of composites and for textiles, Ind. Crops Prod, vol.24, pp.113-118, 2006. ,
Comparison of composites made from fungal defibrated hemp with composites of traditional hemp yarn, Ind. Crops Prod, vol.25, pp.147-159, 2007. ,
Origin of Clothing Lice Indicates Early Clothing Use by Anatomically Modern Humans in Africa, Mol. Biol. Evol, vol.28, pp.29-32, 2011. ,
Morphological characterization of steam-exploded hemp fibers and their utilization in polypropylene-based composites, Bioresour. Technol, vol.58, pp.203-215, 1996. ,
URL : https://hal.archives-ouvertes.fr/hal-00310777
Steam explosion of woody hemp chenevotte, Int. J. Biol. Macromol, vol.17, pp.395-404, 1995. ,
URL : https://hal.archives-ouvertes.fr/hal-00310715
,
Study of Structural Morphology of Hemp Fiber from the Micro to the, Nanoscale. Appl. Compos. Mater, vol.14, pp.89-103, 2007. ,
Evaluation of elastic modulus and hardness of crop stalks cell walls by nano-indentation, Bioresour. Technol, vol.101, pp.2867-2871, 2010. ,
Characterisation of cellulose treated by the steam explosion method. Part 1: Influence of cellulose resources on changes in morphology, degree of polymerisation, solubility and solid structure, Polym. Int, vol.22, pp.73-83, 1990. ,
The effect of steam explosion treatment on the separation of lotus fiber, Adv. Mater. Res, pp.2307-2312, 2013. ,
Procédés de fractionnement de la matière végétale -Application à la production de polysaccharides du son et de la paille de blé, 2011. ,
ANNEXES XV Images réalisées au MEB des différents lots de fibres. (1) Fibres non traitées ; (2) Fibres explosées (Profil 1) après imprégnation de 24 heures à l'eau ; (3) Fibres explosées (Profil 1) après imprégnation de 24 heures à la soude (4 %) ; (4) Fibres explosées (Profil 1) après imprégnation de 10 minutes à l'eau ; (5) Fibres explosées (Profil 1) sans imprégnation préalable ; (6) Fibres explosées (Profil 2) juste après humidification des fibres, Pics caractéristiques de la cellulose, des hémicelluloses et de la lignine, 2009. ,