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EP3483321A1 - Fibre meshes with controlled pore sizes - Google Patents

Fibre meshes with controlled pore sizes
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Publication number
EP3483321A1
EP3483321A1EP17201061.3AEP17201061AEP3483321A1EP 3483321 A1EP3483321 A1EP 3483321A1EP 17201061 AEP17201061 AEP 17201061AEP 3483321 A1EP3483321 A1EP 3483321A1
Authority
EP
European Patent Office
Prior art keywords
fibre
fibres
network
segments
mat
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
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Application number
EP17201061.3A
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German (de)
French (fr)
Inventor
Sebastian DOMASCHKE
Alexander Ehret
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Eidgenoessische Materialpruefungs und Forschungsanstalt
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Eidgenoessische Materialpruefungs und Forschungsanstalt
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Filing date
Publication date
Application filed by Eidgenoessische Materialpruefungs und ForschungsanstaltfiledCriticalEidgenoessische Materialpruefungs und Forschungsanstalt
Priority to EP17201061.3ApriorityCriticalpatent/EP3483321A1/en
Priority to EP18800155.6Aprioritypatent/EP3707301A1/en
Priority to PCT/EP2018/080724prioritypatent/WO2019092166A1/en
Publication of EP3483321A1publicationCriticalpatent/EP3483321A1/en
Withdrawnlegal-statusCriticalCurrent

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Abstract

A method for controlling stable pore size, pore shape, overall porosity, mat thickness or mat volume of a random fibre network, comprising a stack of layers of randomly distributed fibres in form of a non-woven mat, with average fibre thickness (d), with a variety of fibre segments between cross-links along the fibres with average fibre segment length (Is) between cross-links, at which different fibres are fixed, should be simplified and made more cost-efficient. This is reached by providing a fibre network, wherein the aspect ratio between fibre segment length (Is) and the fibre diameter (d) is greater than or equal to 5, clamping of the fibre network at at least one margin of the fibre network and application of a tension in at least one direction (x, y) of the fibre network from at least one side, reaching a stretch-expansion of the fibre network due to the inclination of some fibres towards the direction which is perpendicular to the axis of loading, by buckling of fibre segments in the out-of-plane direction, leaving network integrity and fibres undamaged.

Description

Claims (16)

  1. Method for controlling stable pore size, pore shape, overall porosity, mat thickness or mat volume of a random fibre network, comprising a stack of layers of randomly distributed fibres in form of a non-woven mat, with fibre thicknesses distributed around a mean fibre diameter (d), with a variety of fibre segments between cross-links along the fibres with fibre segment length (Is) between cross-links, at which different fibres are fixed,
    characterised in
    - providing a fibre network, wherein the aspect ratios between fibre segment lengths (Is) and the fibre diameters (d) of the majority of fibre segments is greater than or equal to 5,
    - clamping of the fibre network at at least one margin of the fibre network and
    - application of a tension in at least one direction (x, y) of the fibre network from at least one side, reaching a stretch-expansion of the fibre network due to inclination of fibres towards a direction, which is perpendicular to the axis of loading, by buckling of fibre segments in an out-of-plane direction (z), while fibre thickness (d) stays unchanged or almost unchanged.
  2. Method according claim 1, wherein the tension applied, resulting in an extension of at least 10% in the one direction (x, y), leading to a thickness increase (in z-direction) of at least 40%.
  3. Method according claim 1, wherein the tension applied, resulting in a volume increase by at least 50%.
  4. Method according one of the preceding claims, wherein the random fibre network is produced by electrospinning or melt spinning.
  5. Method according one of the preceding claims, wherein the mean fibre diameter (d) of the fibres is in the range of 10nm to 10 µm.
  6. Method according one of the preceding claims, wherein the fibre network is cut into pieces with lateral length in the mm to cm range before or after stretch expansion.
  7. Fibre network, comprising a stack of layers of randomly distributed fibres in form of a non-woven mat, with fibre thickness distributed around a mean fibre diameter (d), with a multiplicity of fibre segments between cross-links along the fibres with average fibre segment length (Is) along the fibre between cross-links, at which different fibres are fixed,
    characterized in that,
    the randomly distributed fibres show a damagefree shape, without disruption of crosslinks and breakage of fibres, resulting in undamaged network integrity,
    wherein the aspect ratio between fibre segment lengths (Is) and the fibre diameters (d) of the majority of fibre segments is greater than or equal to 5 and a multiplicity of fibre segments (s) of different segment layers are formed as buckled fibre segments (bs), buckled in an out-of-plane direction (z).
  8. Fibre network according to claim 7, wherein the mean fibre diameter (d) of the fibres is in the range of 10nm to 10 µm and the fibre network is manufactured by electrospinning or a melting process.
  9. Fibre network according to claim 8, wherein the fibres comprising biodegradable and bioactive thermoplastic aliphatic polyester like Poly-L-Lactid (PLLA), Poly-D-Lactid (PDLA) or Poly-(L-co-D/L-Lactid) (PLDLLA).
  10. Fibre network according to claim 8, wherein the fibres comprising thermoplastic polyolefins, polyurethane or aliphatic polyamides.
  11. Use of fibre networks according to one of the claims 7 to 10, in biomedical applications, wherein at least one non-woven mat is placed entirely in or partly protruding out of a lumen of a cavity, in order that the non-woven mat is locked in the lumen after application of an expansion step, forming self-locking wound covers or swabs.
  12. Use of fibre networks according to claim 11, wherein the lumen is a blood vessel and the non-woven mat is controlled expanded therein providing a barrier for particles in the blood flow, in particular in form of an embolic filter.
  13. Use of fibre networks according to claim 11, wherein the lumen is a blood vessel, the hydrophobicity/-philicity of the fibre material is adapted and the non-woven mat is controlled expanded therein in order to realise occlusion of the blood vessel in case of a vascular accident.
  14. Use of a non-woven mat of randomly distributed fibres, expandable with a method according to one of the claims 1 to 6, wherein a multiplicity of unexpanded non-woven mats are used for step-wise filling of gaps and expanded consecutively, before additional unexpanded non-woven mats are placed.
  15. Use of a non-woven mat of randomly distributed fibres, expandable with a method according to one of the claims 1 to 6, wherein the unexpanded non-woven mats are formed in curved or rolled state for placement and before expansion for obtaining a desired shape after expansion.
  16. Use of a non-woven mat of randomly distributed fibres, expandable with a method according to one of the claims 1 to 6, wherein the non-moven mats are forming filters with modifiable pore sizes and therewith permeability.
EP17201061.3A2017-11-102017-11-10Fibre meshes with controlled pore sizesWithdrawnEP3483321A1 (en)

Priority Applications (3)

Application NumberPriority DateFiling DateTitle
EP17201061.3AEP3483321A1 (en)2017-11-102017-11-10Fibre meshes with controlled pore sizes
EP18800155.6AEP3707301A1 (en)2017-11-102018-11-09Fibre meshes with controlled pore sizes
PCT/EP2018/080724WO2019092166A1 (en)2017-11-102018-11-09Fibre meshes with controlled pore sizes

Applications Claiming Priority (1)

Application NumberPriority DateFiling DateTitle
EP17201061.3AEP3483321A1 (en)2017-11-102017-11-10Fibre meshes with controlled pore sizes

Publications (1)

Publication NumberPublication Date
EP3483321A1true EP3483321A1 (en)2019-05-15

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ID=60515103

Family Applications (2)

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EP17201061.3AWithdrawnEP3483321A1 (en)2017-11-102017-11-10Fibre meshes with controlled pore sizes
EP18800155.6AWithdrawnEP3707301A1 (en)2017-11-102018-11-09Fibre meshes with controlled pore sizes

Family Applications After (1)

Application NumberTitlePriority DateFiling Date
EP18800155.6AWithdrawnEP3707301A1 (en)2017-11-102018-11-09Fibre meshes with controlled pore sizes

Country Status (2)

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EP (2)EP3483321A1 (en)
WO (1)WO2019092166A1 (en)

Families Citing this family (2)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
CN113333750B (en)*2021-05-312022-08-02西北有色金属研究院Preparation process of metal fiber porous material with three-dimensional negative Poisson's ratio
DE102021208606B4 (en)*2021-08-062025-02-06Friedrich-Alexander Universität Erlangen-Nürnberg, Körperschaft des öffentlichen Rechts Process for producing a polymer nonwoven fabric

Citations (13)

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Publication numberPriority datePublication dateAssigneeTitle
US20040153117A1 (en)2003-01-302004-08-05Clubb Thomas L.Embolic filters with controlled pore size
US20040153118A1 (en)2003-01-302004-08-05Clubb Thomas L.Embolic filters having multiple layers and controlled pore size
US20040153119A1 (en)2003-01-302004-08-05Kusleika Richard S.Embolic filters with a distal loop or no loop
US20050142331A1 (en)*2003-12-312005-06-30Kimberly-Clark Worldwide, Inc.Nonwovens having reduced poisson ratio
WO2011153304A1 (en)2010-06-022011-12-08Cook Medical Technologies, LLCOcclusion device
US20140114266A1 (en)*2012-10-222014-04-24Ams Research CorporationOstomy Implant System and Method
GB2514074A (en)*2011-09-062014-11-19Univ MaltaStents with zero poisson's ratio cells
WO2014205306A1 (en)2013-06-202014-12-24Syracuse UniversityShape-memory-actuated materials for accelerated healing of orthopedic injuries
US20150073324A1 (en)*2013-09-102015-03-12The Procter & Gamble CompanyCell forming structures
US20150257763A1 (en)2014-03-122015-09-17Cook Medical Technologies LlcOcclusion device
AU2015201164B2 (en)*2009-11-232016-06-30Boston Scientific Scimed, Inc.Patterned implant and method
CN107217390A (en)*2017-06-092017-09-29东华大学A kind of utilization high-temperature fusion method of electrostatic spinning prepares device, method and the purposes of auxetic filament fiber
CN107268185A (en)*2017-06-092017-10-20东华大学A kind of method that blend spinning prepares the flexible auxetic materials of rock-steady structure

Patent Citations (14)

* Cited by examiner, † Cited by third party
Publication numberPriority datePublication dateAssigneeTitle
US20040153118A1 (en)2003-01-302004-08-05Clubb Thomas L.Embolic filters having multiple layers and controlled pore size
US20040153119A1 (en)2003-01-302004-08-05Kusleika Richard S.Embolic filters with a distal loop or no loop
US20040153117A1 (en)2003-01-302004-08-05Clubb Thomas L.Embolic filters with controlled pore size
US20050142331A1 (en)*2003-12-312005-06-30Kimberly-Clark Worldwide, Inc.Nonwovens having reduced poisson ratio
AU2015201164B2 (en)*2009-11-232016-06-30Boston Scientific Scimed, Inc.Patterned implant and method
WO2011153304A1 (en)2010-06-022011-12-08Cook Medical Technologies, LLCOcclusion device
EP2575637A1 (en)2010-06-022013-04-10Cook Medical Technologies LLCOcclusion device
GB2514074A (en)*2011-09-062014-11-19Univ MaltaStents with zero poisson's ratio cells
US20140114266A1 (en)*2012-10-222014-04-24Ams Research CorporationOstomy Implant System and Method
WO2014205306A1 (en)2013-06-202014-12-24Syracuse UniversityShape-memory-actuated materials for accelerated healing of orthopedic injuries
US20150073324A1 (en)*2013-09-102015-03-12The Procter & Gamble CompanyCell forming structures
US20150257763A1 (en)2014-03-122015-09-17Cook Medical Technologies LlcOcclusion device
CN107217390A (en)*2017-06-092017-09-29东华大学A kind of utilization high-temperature fusion method of electrostatic spinning prepares device, method and the purposes of auxetic filament fiber
CN107268185A (en)*2017-06-092017-10-20东华大学A kind of method that blend spinning prepares the flexible auxetic materials of rock-steady structure

Non-Patent Citations (13)

* Cited by examiner, † Cited by third party
Title
BLAKENEY ET AL.: "Cell infiltration and growth in a low density, uncompressed three-dimensional electrospun nanofibrous scaffold", BIOMATERIALS, vol. 32, no. 6, 2011, pages 1583 - 1590, XP027568276
BOWLIN, G.: "Enhanced porosity without compromising structural integrity: the nemesis of electrospun scaffolding", JOURNAL OF TISSUE SCIENCE & ENGINEERING, vol. 2, 2011, pages 103e, XP055112070, DOI: doi:10.4172/2157-7552.1000103e
COBURN, J. ET AL.: "Biomimetics of the extracellular matrix: an integrated three-dimensional fiber-hydrogel composite for cartilage tissue engineering", SMART STRUCTURES AND SYSTEMS, vol. 7, no. 3, 2011, pages 213 - 222, XP055172968, DOI: doi:10.12989/sss.2011.7.3.213
FANG, J. ET AL.: "Applications of electrospun nanofibers", CHINESE SCIENCE BULLETIN, vol. 53, no. 15, 2008, pages 2265 - 2286
JOSHI, V.S. ET AL.: "Macroporosity enhances vascularization of electrospun scaffolds", JOURNAL OF SURGICAL RESEARCH, vol. 183, no. 1, 2013, pages 18 - 26
KERR-PHILLIPS, T.E. ET AL.: "Electrospun rubber fibre mats with electrochemically controllable pore sizes", JOURNAL OF MATERIALS CHEMISTRY B, vol. 3, no. 20, 2015, pages 4249 - 4258
KI, C.S. ET AL.: "Development of 3-D nanofibrous fibroin scaffold with high porosity by electrospinning: implications for bone regeneration", BIOTECHNOLOGY LETTERS, vol. 30, no. 3, 2008, pages 405 - 410, XP019570029
LEE, J.B. ET AL.: "Highly porous electrospun nanofibers enhanced by ultrasonication for improved cellular infiltration", TISSUE ENG PART A, vol. 17, no. 21-22, 2011, pages 2695 - 702
SHIM, I.K. ET AL.: "Novel three-dimensional scaffolds of poly((L)-lactic acid) microfibers using electrospinning and mechanical expansion: fabrication and bone regeneration", JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART B-APPLIED BIOMATERIALS, vol. 95b, no. 1, 2010, pages 150 - 160
SIMONET, M. ET AL.: "Ultraporous 3D polymer meshes by low-temperature electrospinning: Use of ice crystals as a removable void template", POLYMER ENGINEERING AND SCIENCE, vol. 47, no. 12, 2007, pages 2020 - 2026
TZEZANA, R.; E. ZUSSMAN; S. LEVENBERG: "A Layered Ultra-Porous Scaffold for Tissue Engineering, Created via a Hydrospinning Method", TISSUE ENGINEERING PART C-METHODS, vol. 14, no. 4, 2008, pages 281 - 288
VAQUETTE, C.; J.J. COOPER-WHITE: "Increasing electrospun scaffold pore size with tailored collectors for improved cell penetration", ACTA BIOMATERIALIA, vol. 7, no. 6, 2011, pages 2544 - 2557, XP028199373, DOI: doi:10.1016/j.actbio.2011.02.036
ZHU ET AL.: "Electrospun fibrous mats with high porosity as potential scaffolds for skin tissue engineering", BIOMACROMOLECULES, vol. 9, no. 7, 2008, pages 1795 - 1801, XP055066926, DOI: doi:10.1021/bm800476u

Also Published As

Publication numberPublication date
EP3707301A1 (en)2020-09-16
WO2019092166A1 (en)2019-05-16

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