EP1840291A2 - Reinforcing element for concrete structures and concrete structural element using said reinforcing element - Google Patents

Reinforcing element for concrete structures and concrete structural element using said reinforcing element Download PDF

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Publication number
EP1840291A2
EP1840291A2 EP07006679A EP07006679A EP1840291A2 EP 1840291 A2 EP1840291 A2 EP 1840291A2 EP 07006679 A EP07006679 A EP 07006679A EP 07006679 A EP07006679 A EP 07006679A EP 1840291 A2 EP1840291 A2 EP 1840291A2
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EP
European Patent Office
Prior art keywords
reinforcing element
ribs
recesses
filiform body
reinforcing
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.)
Withdrawn
Application number
EP07006679A
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German (de)
French (fr)
Other versions
EP1840291A3 (en
Inventor
Giuseppe De Rossi
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.)
La Matassina Srl
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La Matassina Srl
Priority date (The priority date 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 date listed.)
Filing date
Publication date
Application filed by La Matassina Srl filed Critical La Matassina Srl
Publication of EP1840291A2 publication Critical patent/EP1840291A2/en
Publication of EP1840291A3 publication Critical patent/EP1840291A3/en
Withdrawn legal-status Critical Current

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    • EFIXED CONSTRUCTIONS
    • E04BUILDING
    • E04CSTRUCTURAL ELEMENTS; BUILDING MATERIALS
    • E04C5/00Reinforcing elements, e.g. for concrete; Auxiliary elements therefor
    • E04C5/01Reinforcing elements of metal, e.g. with non-structural coatings
    • E04C5/012Discrete reinforcing elements, e.g. fibres
    • EFIXED CONSTRUCTIONS
    • E04BUILDING
    • E04CSTRUCTURAL ELEMENTS; BUILDING MATERIALS
    • E04C5/00Reinforcing elements, e.g. for concrete; Auxiliary elements therefor
    • E04C5/01Reinforcing elements of metal, e.g. with non-structural coatings
    • E04C5/02Reinforcing elements of metal, e.g. with non-structural coatings of low bending resistance
    • E04C5/03Reinforcing elements of metal, e.g. with non-structural coatings of low bending resistance with indentations, projections, ribs, or the like, for augmenting the adherence to the concrete
    • EFIXED CONSTRUCTIONS
    • E04BUILDING
    • E04CSTRUCTURAL ELEMENTS; BUILDING MATERIALS
    • E04C5/00Reinforcing elements, e.g. for concrete; Auxiliary elements therefor
    • E04C5/07Reinforcing elements of material other than metal, e.g. of glass, of plastics, or not exclusively made of metal
    • E04C5/073Discrete reinforcing elements, e.g. fibres

Definitions

  • the invention concerns a reinforcing element for concrete structures and a concrete structural element using said reinforcing element.
  • reinforcing elements are usually included in the concrete mix in order to increase its mechanical characteristics.
  • Said reinforcing elements are commonly called “fibres” and are constituted by variously shaped filiform elements with reduced thickness, only a few centimetres long and made of steel or of a plastic material, which are included in the concrete mix, thus improving its resistance and its behaviour in case of shrinking and cracking.
  • the reinforcing elements deploy their characteristics of binding elements, thus improving the resistance of the mix, especially when the concrete matrix cracks.
  • a reinforcing element carried out according to the known art and widely used for making fibre-reinforced concrete is represented in Figure 1, where it is indicated as a whole by A .
  • the reinforcing elements of this kind have a smooth surface and are therefore characterized by limited resistance against the slipping effect generated in case of cracking of the concrete matrix in which they are dispersed.
  • It comprises a filiform element E with mainly longitudinal development and circular cross section, provided with a plurality of waves G that follow one another on its entire length.
  • Reinforcing elements of the type described above made of a metallic material like for example steel with low carbon percentage or a plastic material, develop higher resistance to slipping since each wave G counteracts the action of the concrete matrix M, thus generating the reactions R illustrated in Figure 2a.
  • a further reinforcing element belonging to the known art is represented in Figure 3, where it is indicated as a whole by H and where it can be observed that it is constituted by a filiform flat strap L having smooth surfaces N.
  • Reinforcing elements of the type described above made of a metallic material like for example steel with low carbon percentage or a plastic material, pose the drawback that the surfaces N, being smooth, do not develop any resistance against slipping out of the concrete matrix in case of cracking.
  • the present invention aims to overcome all the acknowledged drawbacks mentioned above, occurring in the reinforcing elements carried out according to the known art.
  • a reinforcing element for concrete structures that, according to the main claim, comprises a filiform body having at least one shaped section in the vicinity of each end and is characterized in that at least part of the external surface of the filiform body is made rough by a plurality of ribs delimiting recesses created in said filiform body.
  • the filiform body is constituted by a flat strap that defines a mainly longitudinal direction and presents external surfaces provided with a plurality of recesses and ribs that intersect one another.
  • the shaped sections are two and each one of them is created in the vicinity of one end of the filiform body, where it defines a concavity delimited by a profile having an axis of symmetry orthogonal to the surface of the flat strap and to the longitudinal direction defined by said flat strap.
  • each profile of each shaped section it is possible to identify two counteracting surfaces that generate reactions against the concrete matrix in case of cracking of the matrix itself.
  • the flat strap is made of a plastic polymeric material, but it can also be made of metal, preferably steel with low carbon percentage.
  • the reinforcing element that is the subject of the invention achieves higher anchorage capacity and higher resistance to slipping in the concrete matrix where it is immersed compared to reinforcing elements of known type with equal size, due to the presence of the ribs on its surface.
  • the reinforcing element that is the subject of the invention features higher resistance to slipping in case of cracking of the concrete matrix compared to reinforcing elements of known type and consequently it increases the resistance to cracking of the concrete structure in which it is dispersed.
  • the presence of the ribs and recesses does not modify the elasticity of the reinforcing element that thus maintains the rigidity and resistance to elongation that are typical of the initial filiform element from which it derives.
  • the reinforcing element forming the subject of the invention is shown in the axonometric view of Figure 4, where it is indicated as a whole by 1.
  • At least part of the external surface 4 of the filiform body 2 is made rough by a plurality of ribs 5 that delimit recesses 6 created in the filiform body.
  • the filiform body 2 As regards the filiform body 2, it can be observed that it consists of a flat strap 7 defining a mainly longitudinal direction X.
  • the flat strap has rectangular cross section and presents the external surface 4 provided with the ribs 5 and the recesses 6.
  • the filiform body instead of comprising a flat strap with rectangular cross section, may comprise a thread with curved or circular cross section or any filiform element having any shape and section, provided that on at least part of its external surface there are said ribs and said recesses.
  • the recesses 6 have a substantially polygonal shape, in particular the shape of a quadrilateral.
  • said recesses 6 may have any shape.
  • the ribs 5 and the recesses 6 can be obtained by forming the filiform body 2 with a shaped roller and according to the known technique.
  • each of them defines a concavity 9 delimited by a profile 10 having an axis of symmetry Y that is orthogonal to the surface of the flat strap 7, as shown in the detail of Figure 7.
  • the concavities 9 of the shaped sections 3, as shown in Figure 4, are coplanar and face the same direction, while in a construction variant of the reinforced element indicated by 20 shown in Figure 5, the shaped sections 21 are still coplanar, but their concavities 22 face opposite directions.
  • the profile 10, 23 that delimits each concavity 9, 22 has the shape of a trapezium.
  • each concavity can have another shape, for example curved or mixtilinear, not necessarily defining an axis of symmetry.
  • Reinforcing elements 1, 20 carried out according to any of the embodiments of the invention described herein are used to reinforce a concrete structural element 30 shown in Figure 8, in whose concrete matrix 31 a plurality of reinforcing elements 1, 20 subject of the invention are dispersed at random.
  • the reinforcing elements 1, 20 are firmly anchored inside the concrete matrix 31 owing to the presence of the ribs 5 and the recesses 6 that prevent any sliding and slipping when the concrete matrix 31 of the structural element 30 happens to crack as shown in Figure 8.
  • the reinforcing elements 1, 20 that are the subject of the invention feature higher resistance to slipping than the reinforcing elements of known type, which are not provided with the ribs 5 and the recesses 6.
  • the profile 10 that defines it comprises two counteracting surfaces 10a, 10b against which the reactions R are developed when, during the cracking of the matrix 31 shown in Figure 8, the filiform element is subjected to the traction force F.
  • the reinforcing element that is the subject of the invention features the shaped sections that increase resistance in the concrete matrix, compared to the reinforcing elements belonging to the known art.
  • the material of which the reinforcing element is made is preferably constituted by a polymeric plastic material that is easier to obtain and less expensive to produce.
  • the reinforcing element can also be made of any other material, for example ferrous metallic material with low carbon content.
  • the reinforcing element can be carried out with any shape and dimensions, as well as the profiles of the terminal shaped sections and of the ribs and recesses created thereon.

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  • Engineering & Computer Science (AREA)
  • Architecture (AREA)
  • Civil Engineering (AREA)
  • Structural Engineering (AREA)
  • Reinforcement Elements For Buildings (AREA)
  • Forms Removed On Construction Sites Or Auxiliary Members Thereof (AREA)

Abstract

The invention is a reinforcing element (1; 20) for concrete structures comprising a filiform body (2) having one shaped section (3; 21) in the vicinity of each end (2a) and part of the external surface (4) made rough by a plurality of ribs (5) delimiting recesses (6) created in the filiform body (2). The filiform body (2) is a flat strap (7) that defines a mainly longitudinal direction (X) and presents external surfaces (4) on which the ribs (5) ard the recesses (6) are created. The ribs (5) intersect one another.

Description

  • The invention concerns a reinforcing element for concrete structures and a concrete structural element using said reinforcing element.
  • It is known that reinforcing elements are usually included in the concrete mix in order to increase its mechanical characteristics.
  • Said reinforcing elements are commonly called "fibres" and are constituted by variously shaped filiform elements with reduced thickness, only a few centimetres long and made of steel or of a plastic material, which are included in the concrete mix, thus improving its resistance and its behaviour in case of shrinking and cracking.
  • Their presence also makes it possible to reduce and in some cases even to eliminate the use of metal reinforcements.
  • Inside the concrete mix the reinforcing elements deploy their characteristics of binding elements, thus improving the resistance of the mix, especially when the concrete matrix cracks.
  • For these reasons, the main applications of concrete with reinforcing elements, called "fibre-reinforced concrete", are represented by industrial floors, inside coverings of tunnel walls, consolidation of rocky walls and repair of dams and bridges.
  • A reinforcing element carried out according to the known art and widely used for making fibre-reinforced concrete is represented in Figure 1, where it is indicated as a whole by A.
  • It can be observed that it is constituted by a metallic filiform body B with mainly longitudinal development and circular cross section, which terminates with a shaped section C at each end.
  • The reinforcing elements of this kind have a smooth surface and are therefore characterized by limited resistance against the slipping effect generated in case of cracking of the concrete matrix in which they are dispersed.
  • As shown in Figure 1a, only the shaped sections C present at the ends guarantee resistance against slipping when the matrix M cracks, since the traction force F exerted along the filiform body B is counteracted by the reaction R of the concrete against the inclined side C' of the shaped section C.
  • Another reinforcing element belonging to the known art is represented in Figure 2, where it is indicated as a whole by D.
  • It comprises a filiform element E with mainly longitudinal development and circular cross section, provided with a plurality of waves G that follow one another on its entire length.
  • Reinforcing elements of the type described above, made of a metallic material like for example steel with low carbon percentage or a plastic material, develop higher resistance to slipping since each wave G counteracts the action of the concrete matrix M, thus generating the reactions R illustrated in Figure 2a.
  • However, they pose the drawback of being excessively elastic and deformable, just because of the presence of said waves G.
  • A further reinforcing element belonging to the known art is represented in Figure 3, where it is indicated as a whole by H and where it can be observed that it is constituted by a filiform flat strap L having smooth surfaces N.
  • Reinforcing elements of the type described above, made of a metallic material like for example steel with low carbon percentage or a plastic material, pose the drawback that the surfaces N, being smooth, do not develop any resistance against slipping out of the concrete matrix in case of cracking.
  • The present invention aims to overcome all the acknowledged drawbacks mentioned above, occurring in the reinforcing elements carried out according to the known art.
  • In particular, it is a first object of the invention to carry out a reinforcing element for concrete structures that features better resistance against slipping out of the concrete matrix than the reinforced elements of known type.
  • It is another object of the invention to carry out a reinforcing element where said improved resistance against slipping is not accompanied by higher, undesired elasticity and compliance of the reinforcing element in longitudinal direction.
  • The objects described above have been achieved through the construction of a reinforcing element for concrete structures that, according to the main claim, comprises a filiform body having at least one shaped section in the vicinity of each end and is characterized in that at least part of the external surface of the filiform body is made rough by a plurality of ribs delimiting recesses created in said filiform body.
  • According to the embodiment of the invention described herein, the filiform body is constituted by a flat strap that defines a mainly longitudinal direction and presents external surfaces provided with a plurality of recesses and ribs that intersect one another.
  • The shaped sections are two and each one of them is created in the vicinity of one end of the filiform body, where it defines a concavity delimited by a profile having an axis of symmetry orthogonal to the surface of the flat strap and to the longitudinal direction defined by said flat strap.
  • In each profile of each shaped section it is possible to identify two counteracting surfaces that generate reactions against the concrete matrix in case of cracking of the matrix itself.
  • The flat strap is made of a plastic polymeric material, but it can also be made of metal, preferably steel with low carbon percentage.
  • Advantageously, the reinforcing element that is the subject of the invention achieves higher anchorage capacity and higher resistance to slipping in the concrete matrix where it is immersed compared to reinforcing elements of known type with equal size, due to the presence of the ribs on its surface.
  • For this reason, the reinforcing element that is the subject of the invention features higher resistance to slipping in case of cracking of the concrete matrix compared to reinforcing elements of known type and consequently it increases the resistance to cracking of the concrete structure in which it is dispersed.
  • Still advantageously, a further increase in the resistance to slipping of the reinforced elements and thus in the mechanical resistance of the entire concrete structure is guaranteed by the terminal shaped sections whose profiles defining a concavity allow them to be better anchored to the concrete matrix.
  • Still advantageously, the presence of the ribs and recesses does not modify the elasticity of the reinforcing element that thus maintains the rigidity and resistance to elongation that are typical of the initial filiform element from which it derives.
  • The aims and advantages described above will be highlighted in greater detail in the description of a preferred embodiment of the invention, with reference to the attached drawings, wherein:
    • Figures from 1 to 3 show reinforcing elements carried out according to the known art;
    • Figures 1a and 2a show details of application of the reinforced elements belonging to the known art shown in Figures 1 and 2;
    • Figure 4 shows an axonometric view of the reinforcing element that is the subject of the invention;
    • Figure 4a shows an enlarged view of a detail of Figure 4;
    • Figure 5 shows an axonometric view of a construction variant of the reinforcing element that is the subject of the invention;
    • Figures 6 and 7 show two different enlarged details of the reinforcing element shown in Figure 4;
    • Figure 8 shows a concrete structural element while cracking, reinforced through the insertion of reinforcing elements carried out according to the invention.
  • The reinforcing element forming the subject of the invention is shown in the axonometric view of Figure 4, where it is indicated as a whole by 1.
  • It can be observed that it comprises a filiform body 2 having a shaped section 3 in the vicinity of each end.
  • According to the invention, at least part of the external surface 4 of the filiform body 2 is made rough by a plurality of ribs 5 that delimit recesses 6 created in the filiform body.
  • The ribs 5 intersect one another as illustrated in particular in Figure 6, which shows an enlarged detail of Figure 4.
  • As regards the filiform body 2, it can be observed that it consists of a flat strap 7 defining a mainly longitudinal direction X.
  • In this embodiment of the invention the flat strap has rectangular cross section and presents the external surface 4 provided with the ribs 5 and the recesses 6.
  • In other embodiments of the invention the filiform body, instead of comprising a flat strap with rectangular cross section, may comprise a thread with curved or circular cross section or any filiform element having any shape and section, provided that on at least part of its external surface there are said ribs and said recesses.
  • It can be observed in particular in Figure 6 that the recesses 6 have a substantially polygonal shape, in particular the shape of a quadrilateral.
  • It is obvious, however, that in different embodiments said recesses 6 may have any shape.
  • Indicatively, the ribs 5 and the recesses 6 can be obtained by forming the filiform body 2 with a shaped roller and according to the known technique.
  • As regards the shaped sections 3, in Figures 4a and 7 it can be observed that each of them defines a concavity 9 delimited by a profile 10 having an axis of symmetry Y that is orthogonal to the surface of the flat strap 7, as shown in the detail of Figure 7.
  • In particular, the concavities 9 of the shaped sections 3, as shown in Figure 4, are coplanar and face the same direction, while in a construction variant of the reinforced element indicated by 20 shown in Figure 5, the shaped sections 21 are still coplanar, but their concavities 22 face opposite directions.
  • In both embodiments the profile 10, 23 that delimits each concavity 9, 22 has the shape of a trapezium.
  • Obviously in other embodiments of the invention the profile that delimits each concavity can have another shape, for example curved or mixtilinear, not necessarily defining an axis of symmetry.
  • Reinforcing elements 1, 20 carried out according to any of the embodiments of the invention described herein are used to reinforce a concrete structural element 30 shown in Figure 8, in whose concrete matrix 31 a plurality of reinforcing elements 1, 20 subject of the invention are dispersed at random.
  • The reinforcing elements 1, 20 are firmly anchored inside the concrete matrix 31 owing to the presence of the ribs 5 and the recesses 6 that prevent any sliding and slipping when the concrete matrix 31 of the structural element 30 happens to crack as shown in Figure 8.
  • In this way the reinforcing elements 1, 20 that are the subject of the invention feature higher resistance to slipping than the reinforcing elements of known type, which are not provided with the ribs 5 and the recesses 6.
  • Furthermore, said higher resistance to sliding is obtained without modifying the elasticity of the reinforcing element 1, 20 in longitudinal direction when this is subjected to the traction generated when the concrete matrix 31 tends to crack as shown in Figure 8.
  • Higher resistance is also guaranteed by the profile of the shaped sections 3, 21 that define the concavities 9, 20.
  • In fact, with reference to the detail shown in Figure 4a, it can be observed that in the shaped section 3 the profile 10 that defines it comprises two counteracting surfaces 10a, 10b against which the reactions R are developed when, during the cracking of the matrix 31 shown in Figure 8, the filiform element is subjected to the traction force F.
  • In this way the reinforcing element that is the subject of the invention features the shaped sections that increase resistance in the concrete matrix, compared to the reinforcing elements belonging to the known art.
  • It is clear, therefore, that the reinforcing element that is the subject of the invention, in both the embodiments described, achieves all the set objects.
  • As regards the material of which the reinforcing element is made, it is preferably constituted by a polymeric plastic material that is easier to obtain and less expensive to produce.
  • It is evident, however, that the reinforcing element can also be made of any other material, for example ferrous metallic material with low carbon content.
  • In the construction phase the reinforcing element can be carried out with any shape and dimensions, as well as the profiles of the terminal shaped sections and of the ribs and recesses created thereon.
  • Further construction variants different from those described and illustrated in the attached drawings must be considered protected by the present patent, provided that they fall within the scope of the following claims.
  • Where technical features mentioned in any claim are followed by reference signs, those reference sings have been included for the sole purpose of increasing the intelligibility of the claims and accordingly such reference signs do not have any limiting effect on the interpretation of each element identified by way of example by such reference signs.

Claims (15)

  1. Reinforcing element (1; 20) for concrete structures, comprising a filiform body (2) having at least one shaped section (3; 21) in the vicinity of each end (2a), characterized in that at least part of the external surface (4) of said filiform body (2) is made rough by a plurality of ribs (5) delimiting recesses (6) created in said filiform body (2).
  2. Reinforcing element (1; 20) according to claim 1), characterized in that said ribs (5) intersect one another.
  3. Reinforcing element (1; 20) according to claim 1), characterized in that said filiform body (2) is a flat strap (7) that defines a mainly longitudinal direction (X) and presents external surfaces (4) on at least one of which said ribs (5) and said recesses (6) are created.
  4. Reinforcing element according to claim 1), characterized in that said filiform body (2) is a thread with substantially circular cross section defining a mainly longitudinal direction and provided with said ribs and said recesses on at least one part of its side surface.
  5. Reinforcing element (1; 20) according to any of the claims from 1) to 4), characterized in that said recesses (6) have a substantially polygonal shape.
  6. Reinforcing element (1; 20) according to claim 1), characterized in that said shaped sections (3; 21) are two and each one of them defines a concavity (9; 22) delimited by a profile (10; 23) having an axis of symmetry.
  7. Reinforcing element (1) according to claim 6), characterized in that said concavities (9) are coplanar and face the same direction.
  8. Reinforcing element (20) according to claim 6), characterized in that said concavities (22) are coplanar and face opposite directions.
  9. Reinforcing element (1; 20) according to claim 6), characterized in that said profile (10; 23) has the shape of a trapezium.
  10. Reinforcing element (1; 20) according to any of the preceding claims, characterized in that it is made of a synthetic material.
  11. Reinforcing element (1; 20) according to claim 10), characterized in that said synthetic material is a polymer.
  12. Reinforcing element (1; 20) according to any of the claims from 1) to 10), characterized in that it is made of a metallic material.
  13. Reinforcing element (1; 20) according to claim 12), characterized in that said metallic material is steel with low carbon percentage.
  14. Concrete structural element (30) using a plurality of reinforcing elements (1; 20), each one comprising a filiform body (2) having at least one shaped section (3; 21) in the vicinity of each end (2a), characterized in that at least part of the external surface (4) of said filiform body (2) is made rough by protruding ribs (5) delimited by recesses (6).
  15. Concrete structural element (30) according to claim 14), characterized in that said filiform body (2) is a flat strap (7) made of a polymeric synthetic material, wherein said shaped sections (3; 21) are two and each one of them defines a concavity (9; 22) delimited by a trapezoidal profile (10; 23) having an axis of symmetry (Y).
EP07006679A 2006-03-31 2007-03-30 Reinforcing element for concrete structures and concrete structural element using said reinforcing element Withdrawn EP1840291A3 (en)

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
ITVI20060093 ITVI20060093A1 (en) 2006-03-31 2006-03-31 REINFORCEMENT ELEMENT FOR CONCRETE STRUCTURES AND STRUCTURAL ELEMENT IN CONCRETE THAT USE THIS REINFORCEMENT ELEMENT

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EP1840291A2 true EP1840291A2 (en) 2007-10-03
EP1840291A3 EP1840291A3 (en) 2008-07-30

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Cited By (9)

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KR100885962B1 (en) 2007-07-05 2009-02-26 재단법인 포항산업과학연구원 Steel shear reinforcing band for concrete flat slab structural system
WO2010009687A1 (en) * 2008-07-23 2010-01-28 Karl-Hermann Stahl Method for producing steel fibers
WO2012080323A3 (en) * 2010-12-15 2012-11-08 Nv Bekaert Sa Steel fibre for reinforcing concrete or mortar having an anchorage end with at least three straight sections
WO2012080326A3 (en) * 2010-12-15 2012-11-15 Nv Bekaert Sa Steel fibre for reinforcing concrete or mortar having an anchorage end with at least two bent sections
US8871020B2 (en) 2009-06-12 2014-10-28 Nv Bekaert Sa High elongation fibres
US9045901B2 (en) 2009-06-12 2015-06-02 Nv Bekaert Sa High elongation fibre with good anchorage
KR101711843B1 (en) * 2015-09-11 2017-03-07 주식회사 금강 A Truss Deck Slab Mixed with Reinforcement for Concrete
KR101711842B1 (en) * 2015-09-11 2017-03-07 주식회사 금강 A Reinforcement for Concrete
EP3419947A4 (en) * 2016-02-22 2019-10-16 ABC Polymer Industries, LLC Fibers for reinforcing concrete

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EP0608013A2 (en) 1993-01-21 1994-07-27 Robert Hugo Jacob Over Reinforcement fibre for reinforcing concrete
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Publication number Priority date Publication date Assignee Title
EP0608013A2 (en) 1993-01-21 1994-07-27 Robert Hugo Jacob Over Reinforcement fibre for reinforcing concrete
US6060163A (en) 1996-09-05 2000-05-09 The Regents Of The University Of Michigan Optimized geometries of fiber reinforcement of cement, ceramic and polymeric based composites

Cited By (20)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
KR100885962B1 (en) 2007-07-05 2009-02-26 재단법인 포항산업과학연구원 Steel shear reinforcing band for concrete flat slab structural system
EA018742B1 (en) * 2008-07-23 2013-10-30 Цент Унд Цент Гмбх Унд Ко. Кг Method for producing steel fibers
WO2010009687A1 (en) * 2008-07-23 2010-01-28 Karl-Hermann Stahl Method for producing steel fibers
US9630226B2 (en) 2008-07-23 2017-04-25 Cent & Cent Gmbh & Co. Kg Method for producing steel fibers
US9045901B2 (en) 2009-06-12 2015-06-02 Nv Bekaert Sa High elongation fibre with good anchorage
US8871020B2 (en) 2009-06-12 2014-10-28 Nv Bekaert Sa High elongation fibres
CN103261544A (en) * 2010-12-15 2013-08-21 贝卡尔特公司 Steel fibre for reinforcing concrete or mortar having an anchorage end with at least three straight sections
EA024218B1 (en) * 2010-12-15 2016-08-31 Нв Бекаэрт Са Steel fibre for reinforcing concrete or mortar having an anchorage end with at least three straight sections
CN103261542A (en) * 2010-12-15 2013-08-21 贝卡尔特公司 Steel fibre for reinforcing concrete or mortar having an anchorage end with at least two bent sections
US8962150B2 (en) 2010-12-15 2015-02-24 Nv Bekaert Sa Steel fibre for reinforcing concrete or mortar having an anchorage end with at least two bent sections
WO2012080326A3 (en) * 2010-12-15 2012-11-15 Nv Bekaert Sa Steel fibre for reinforcing concrete or mortar having an anchorage end with at least two bent sections
AU2011343412B2 (en) * 2010-12-15 2016-04-14 Nv Bekaert Sa Steel fibre for reinforcing concrete or mortar having an anchorage end with at least two bent sections
CN103261544B (en) * 2010-12-15 2016-06-01 贝卡尔特公司 That strengthen for reinforcing concrete or mortar and there is the steel fibre of anchored end with the straight part of at least three
JP2014506223A (en) * 2010-12-15 2014-03-13 ナムローゼ・フェンノートシャップ・ベーカート・ソシエテ・アノニム Steel fibers for reinforcing concrete or mortar with anchored ends with at least two bend areas
US9435122B2 (en) 2010-12-15 2016-09-06 Nv Bekaert Sa Steel fibre for reinforcing concrete or mortar having an anchorage end with at least three straight sections
EA025712B1 (en) * 2010-12-15 2017-01-30 Нв Бекаэрт Са Steel fibre for reinforcing concrete or mortar having an anchorage end with at least two bent sections
WO2012080323A3 (en) * 2010-12-15 2012-11-08 Nv Bekaert Sa Steel fibre for reinforcing concrete or mortar having an anchorage end with at least three straight sections
KR101711842B1 (en) * 2015-09-11 2017-03-07 주식회사 금강 A Reinforcement for Concrete
KR101711843B1 (en) * 2015-09-11 2017-03-07 주식회사 금강 A Truss Deck Slab Mixed with Reinforcement for Concrete
EP3419947A4 (en) * 2016-02-22 2019-10-16 ABC Polymer Industries, LLC Fibers for reinforcing concrete

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