Building reinforcing method, material and structure
A high-ductility material or a high-ductility covering material is disposed on the outer circumferential surface of a member, such as a column, of a structure so as to confine expansion of apparent volume accompanying rupture of the member, to thereby control rupture of the member. The high-ductility material is a fibrous or rubber sheet material. The high-ductility material is disposed in such a manner as to surround the member. Alternatively, the high-ductility material is spirally wound or rolled on the member.
This application is a continuation application of U.S. patent application Ser. No. 10/089,108 filed Mar. 26, 2002.
TECHNICAL FIELDThe present invention relates to a method, configuration, and material for reinforcing a structure for preventing serious damage to people and property in and around the structure, which would otherwise result from collapse of the structure, even after members (structural components, such as beams, girders, slabs, walls, and columns) of buildings and infrastructures (hereinafter generically called a “structure”) are visibly deformed due to rupture thereof caused by an abruptly imposed external force, such as a seismic force or wind force or an excessive load accompanying demolition, or caused by deficiency in yield strength stemming from deterioration.
BACKGROUND ARTAn external force imposed abruptly by earthquake or the like, or deficiency in yield strength stemming from deterioration has repeatedly caused an abrupt collapse of a structure, resulting in damage to lives and property.
A structure collapses in the following manner. Component members of a structure are ruptured due to excessive load or deficiency in yield strength. Resultant deterioration of stability of the overall fabric of the structure causes significant deformation to the shape of the structure, thereby causing a reduction in the internal space of the structure; i.e., structural collapse. In many cases of collapse of a building, floors fall down in a heap, like a stack of pancakes, or collapse. In many cases of collapse of an elevated bridge, bridge piers are ruptured, resulting in collapse of the bridge. Accordingly, if rupture can be controlled through reinforcement of various members of a structure, such as structural members, to thereby avoid deterioration of the overall structural stability even after the members are ruptured, possible damage to lives and property in and around a structure can be reduced.
Conventionally, in order to attain safety through avoidance of collapse of a structure, the following measures have been employed.
{circle around (1)}) The cross section or the like of a structural member is determined such that the structural member is not ruptured upon imposition of a required load, which is predetermined in consideration of the structural member's own weight and an external force to be abruptly imposed.
{circle around (2)} When an assumed external force to be abruptly imposed after construction of a structure increases or when the yield strength of a structural member decreases due to deterioration or the like, the cross-sectional area or material strength of the structural member is increased. Alternatively, a high-strength member, such as an iron plate or carbon fiber, is disposed around a structural member to thereby enhance energy absorption capability (toughness) until the yield strength or rupture of the structural member is reached.
{circle around (3)} A seismic isolator is installed for a structure so as to decrease a seismic force to be imposed on the structure.
When a structure has been damaged by an external force imposed abruptly by earthquake or the like, the structure is tentatively evaluated for the degree of damage, and access to the structure may be forbidden, depending on the evaluated degree of damage. When an assumed seismic load is increased as a result of revision of design standard, an existing structure is subjected to antiseismic diagnosis, and antiseismic repairs or reinforcement is recommended in the case of a structure judged to run a high risk of seismic collapse.
However, the conventional measures {circle around (1)}-{circle around (3)} are based on a previously assumed level (a design value) of an external force to be imposed abruptly by earthquake or the like. When an external force in excess of the assumed level is imposed on a member, the member is ruptured, resulting in a failure to ensure the overall stability of a structure.
Naturally, expenses, time, and material required for carrying out the conventional measures described above do not reach a level involved in new construction of a structure, but do reach tens of percent of the level. Thus, in many cases, the conventional measures involve excessively high cost. Also, in many cases, the conventional measures require workers skilled in welding, installation of reinforcing bars, finishing, and the like. Hiring such skilled workers is difficult nowadays. Accordingly, even when an existing structure is known to involve a great risk of collapse due to deterioration, or because the structure is designed according to old standard or has been damaged by an external force imposed abruptly by earthquake or the like, in many cases, reinforcement of the structure has been unfeasible, for economic and physical reasons. In a certain case, after occurrence of disaster, such as earthquake, when an examiner(s) entered a damaged structure in order to tentatively evaluate the degree of collapse risk, an aftershock caused the structure to collapse, with the result that the examiner(s) were killed or injured. In another case, when dwellers and users entered a structure which was judged safe in view of minor damage, an aftershock caused the structure to collapse, resulting in heavy casualties.
Specifically, in the case of a small range of deformation (within 2%-3%), the conventional measures described above enable a member to bear a load, to thereby ensure the overall stability of a structure. However, in the case of deformation in excess of the range, a mechanism for bearing a load is lost, resulting in rapid progress of deformation. As a result, collapse of the structure becomes unavoidable. For example, in an example of a column 1 shown in
In the case where a large number of structures must be reinforced immediately after occurrence of an abrupt disaster, such as earthquake, or due to revision of the seismic standard, the conventional measures described above are unsuitable for promptly coping with the situation so as to secure safety.
In view of the above problems involved in the conventional measures, an object of the present invention is to provide a method and configuration of reinforcement which are applied, from the beginning, to various members including structural members of a newly constructed structure or are applied to various members including structural members of an existing structure so as to control rupture for delaying progress thereof and delaying expansion of a spatial rupture region, thereby avoiding complete loss of the load sharing capability of the members, which would otherwise result from local rupture of the members; i.e., thereby enabling the members to share a load with one another to such an extent as to avoid collapse of the structure even after the members are visibly deformed. Another object of the present invention is to practice economy in expenses, time, and material required for reinforcement work as compared with the conventional measures, thereby enabling prompt reinforcement of a large number of structures.
DISCLOSURE OF THE INVENTION To achieve the above objects, the present invention is configurationally characterized by utilizing the phenomenon that materials, such as concrete, wood, soil, and brick, which partially constitute various members, including structural members, expand in apparent volume upon rupture. Specifically, expansion of apparent volume is elastically confined by means of high-ductility materials (high-ductility covering materials) disposed around corresponding members including structural members, thereby delaying the progress of rupture and, after termination of imposition of an abrupt external force, thereby enabling the members to share with one another the weight of a structure and to substantially maintain their shapes. An apparent volume appearing herein refers to a volume enclosed by a surface (an enveloping surface) that smoothly envelopes the end and side faces of a member. Expansion of apparent volume resulting from rupture refers to the following phenomenon. As shown in
A first invention (method) is configurationally characterized by disposing a high-ductility material on the outer circumferential surface of a member of a structure so as to confine expansion of apparent volume accompanying rupture of the member, to thereby control rupture of the member.
A second invention (structure) is configurationally characterized by disposing a high-ductility material on the outer circumferential surface of a member of a structure so as to elastically confine expansion of apparent volume accompanying rupture of the member, to thereby control rupture of the member.
In the first and second inventions, the high-ductility material is preferably a fibrous or rubber sheet material (including a tape-like sheet material). In this case, the high-ductility material may be rolled on a core to thereby form a cored roll of high-ductility material (a third invention). In the third invention, a plurality of parting lines, which can be visually or tactilely discriminated from one another, are drawn on one side of the high-ductility material along the length direction of the high-ductility material. The parting lines enable equally dividing the width of the high-ductility material at any one of two or more different pitches, thereby facilitating discrimination in division on a work site and thus contributing to enhancement of work efficiency. In the first or second invention, in consideration of installation conditions and work restrictions in relation to a member to be covered, the high-ductility material can be disposed in such a manner as to surround the member or to be spirally wound or rolled on the member. Alternatively, the high-ductility material can be disposed through application of a rubber or resin viscous-material to the member by appropriate application means, such as spraying. In the first or second invention, the high-ductility material (high-ductility covering material) can be disposed such that a cavity or a weak layer is interposed between the high-ductility material (high-ductility covering material) and the member, thereby avoiding direct rupture of the high-ductility material (high-ductility covering material) by the member and thus enabling the high-ductility material (high-ductility covering material) to yield an elastic confining effect more reliably. As a result of interposition of the cavity or weak layer, the high-ductility material (high-ductility covering material) can elastically confine expansion of apparent volume of the member in a far more reliable manner while maintaining an enveloping surface against diversified rupture form of the member (in
A fourth invention (method) is configurationally characterized by fixedly attaching a high-ductility covering material formed of a raw material having an elastic modulus lower than that of a tie hoop to the outer circumferential surface of an existing column supporting a structure, to thereby cause the high-ductility covering material to bear a load imposed on the column after the column is deformed. In this case, the high-ductility covering material can comprise a plurality of surrounding cores disposed around the column in such a manner as to be arranged at predetermined intervals along a vertical direction, and a fibrous or rubber sheet material connecting the adjacent surrounding cores along the vertical direction, to thereby assume the form of an integral bellows-like reinforcement.
A fifth invention (method) is configurationally characterized in that a high-ductility covering material formed of a raw material having an elastic modulus lower than that of a tie hoop is disposed inside a facing surrounding wall material disposed around an existing column supporting a structure with a cavity interposed between the facing surrounding wall material and the column, to thereby cause the high-ductility covering material to bear a load imposed on the column after the column is deformed. In this case, the high-ductility covering material can comprise a plurality of surrounding cores disposed around the column with the cavity interposed therebetween in such a manner as to be arranged at predetermined intervals along a vertical direction, and a fibrous or rubber sheet material connecting the adjacent surrounding cores along the vertical direction, to thereby assume the form of an integral bellows-like reinforcement.
A sixth invention (structure) is configurationally characterized by fixedly attaching a high-ductility covering material formed of a raw material having an elastic modulus lower than that of a tie hoop to the outer circumferential surface of a column supporting a structure. In this case, preferably, the high-ductility covering material comprises a plurality of surrounding cores disposed around the column in such a manner as to be arranged at predetermined intervals along a vertical direction, and a fibrous or rubber sheet material connecting the adjacent surrounding cores along the vertical direction, to thereby assume the form of an integral bellows-like reinforcement.
A seventh invention (structure) is configurationally characterized in that a high-ductility covering material formed of a raw material having an elastic modulus lower than that of a tie hoop is disposed inside a facing surrounding frame disposed around a column supporting a structure with a cavity interposed between the facing surrounding frame and the column. In this case, preferably, the high-ductility covering material comprises a plurality of surrounding cores disposed around the column with the cavity interposed therebetween in such a manner as to be arranged at predetermined intervals along a vertical direction, and a fibrous or rubber sheet material connecting the adjacent surrounding cores along the vertical direction, to thereby assume the form of an integral bellows-like reinforcement.
BRIEF DESCRIPTION OF DRAWINGS
FIGS. 19(a) and 19(b) are explanatory views showing the relationship between force imposed on and displacement arising on a structure and columns, which serve as members (structural members) of the structure, upon occurrence of earthquake;
As shown in
Core cords 25 are disposed respectively at one end portion 23 and the other end portion 24 of the sheet portion 22 in such a manner as to thread through the end portions 23 and 24 along the longitudinal-length direction. The core cord 25 reinforce one end portion 23 and the other end portion 24 to thereby enhance durability in the tensile direction.
Through-holes 26 for allowing a tie cord 30 to pass through are provided in the vicinity of one end portion 23 and the other end portion 24 while been arranged at predetermined intervals along the length direction of the end portions. Appropriate reinforcement members 27, such as eyelets 28, are provided at the corresponding through-holes 26. The reinforcement members 27 reinforce the circumferential edge portions of the corresponding through-holes 26, whereby the tie cord 30 can be reliably held in a tight condition.
Furthermore, a tonguelike patch 29 having a longitudinal length substantially equal to the width of the sheet portion 22 is sewn on the back side of at least either one end portion 23 or the other end portion 24 of the sheet portion 22 (on the back side of one end portion 23 in the illustrated example) along the length direction of one end portion 23, so that the interface between one end portion 23 and the other end portion 24 can be covered with the patch 29. Notably, one end portion 23 and the other end portion 24 may be each provided with the patch 29, which is not shown, so that the interface between one end portion 23 and the other end portion 24 can be covered with the two layered patches 29.
The sheet portion 22 and the patch 29, which partially constitute the high-ductility material 21, are made of a circumferentially and vertically homogeneous material. Particularly, a fiber material or a rubber material whose ductility is high and whose initial elastic modulus is lower than that of iron and concrete is preferably used. Specifically, a sheet material made of a synthetic fiber material (e.g., TORAYSHEET, the trade name of a product of Toray Industries, Inc.) or a rubber material (e.g., GEOLINER, the trade name of a product of Bridgestone Corp.) having high ductility and strength capable of bearing a load is preferably used.
Thus, the high-ductility material 21 can be wound on, for example, an outer circumferential surface 14 of a column 13 serving as a structural member 15 as shown in
The high-ductility material 21 wound on the column 13 serving as the structural member 15 can be readily maintained in a fixed and surrounding condition by cross-linking the through-holes 26 formed in one end portion 23 and the through-holes 26 formed in the other end portion 24 by means of the tie cord 30 so as to unite the end portions 23 and 24, while the end portions 23 and 24 are lined with the patch 29. In this manner, through simple installation performed within a short period of time, the high-ductility material 21 can maintain such a state as to surround the column 13 completely.
The above-described connection structure is not limited to the illustrated example. A known uniting structure, such as sewing or bonding, can be used as appropriate so long as one end portion 23 and the other end portion 24 can be united in such a manner as not to be separated from each other upon reception of load.
FIGS. 2(a) to 2(c) are cross-sectional view of a main portion of the member 15 of the structure 11 showing an application example of the present invention in which the member 15 is an existing wall 17 formed predominantly of concrete and serving as a structural member.
As shown in
As shown in
As shown in
{circumflex over (1)} Winding is performed while an appropriate tension is applied.
{circumflex over (2)} The elastic high-ductility material 21 and the member 15 are bonded by use of an adhesive, or the overlap portions 21a of the spirally wound high-ductility material 21 are bonded by use of an adhesive or welded together.
{circumflex over (3)} The high-ductility material 21 is fixedly attached to the member 15 by use of a fixing member, such as a nail.
The high-ductility material 21 is fixed at an end portion of the member 15 by the method {circle around (2)} or {circle around (3)} mentioned above. According to an alternative method, as in the case of fixing an end portion of an elastic bandage of medical use, eyelets as shown in
Through employment of the method shown in
A roll of high-ductility material 21 shown in,
In
In this case, the high-ductility material 21 is rolled on the outer circumferential surface of the member 15 such that intermediate layers of the high-ductility material 21 is bonded at a position located opposite the rolling start end portion 42 and the rolling termination end portion 43 with respect to the member 15; specifically, overlap portions 47 and 48 of the first and second layers of the high-ductility material 21 are bonded together by means of the adhesive 35 at a single zonal region extending along the length direction of the member 15.
Specifically, the number of turns N1 required for obtainment of a required strength is represented by the following expression, where T1 is the strength of the high-ductility material 21, and S1 is strain as observed when the high-ductility material 21 produces the strength.
N1=T/T1 1)
The number of turns N2 required for bringing a circumferential deformation to the allowable strain X0 or less is calculated by
N2=(TS1)/(T1X0) 2)
Notably, it is assumed that the sheetlike high-ductility material 21 exhibits a proportional relation between strain and tension until the high-ductility material 21 produces the material strength. Synthetic fiber materials substantially exhibit a proportional relation. When the high-ductility material 21 is to be formed through application of a rubber material or an adhesive material by, for example, spraying, the above-mentioned calculation may be carried out on the basis of the individual tension-strain relation of such a material.
Specifically, when the relation of tension y and strain x of a certain material is expressed by a numerical function y=f(x) or graphically represented, the tension y per layer in the case of N2 turns is expressed by
y=T/N2 3)
Since the allowable strain is X0, the required number of turns N2 can be obtained from the relation T/N2=f(X0); i.e., N2 is obtained as follows.
N2=T/f(X0) 4)
Notably, the optimum number of turns N is N1 or N2, whichever greater, as obtained above.
Specifically, first, the high-ductility material 21 is rolled on a central portion 34 of the member 15 in a manner similar to that shown in
Thus, tension is transmitted among the three-high-ductility materials 21 rolled on the respective portions of the member 15. The width of a bond surface is determined such that the adhesive strength of a bonded portion becomes not less than a required circumferential tension T. In this case, in place of bonding by means of the adhesive 35, any other appropriate connection means, such as sewing or welding, can be employed. In this case, a required number of turns N for the high-ductility material 21 is determined in a manner similar to that for the example shown in
In consideration of installation conditions and work restrictions in relation to the member 15 to be covered, the high-ductility material 21 can be disposed in such a manner as to surround the member 15 or to be spirally wound on the member 15. Alternatively, the high-ductility material 21 can be disposed through application of a rubber viscous-material, such as silicone rubber, or a resin viscous-material, such as vinyl chloride, to the member 15 by appropriate application means, such as spraying, (the rubber and resin viscous-materials include those which contain short fibers of various materials). In this case, if the high-ductility material 21 is configurationally able to surround the member 15 or to be spirally wound on the member 15, an adhesive layer may be formed beforehand on at least one side of the high-ductility material 21, to thereby facilitate surrounding or winding work which involves bonding work. If necessary, an adhesive layer can be formed on the both sides of the high-ductility material 21 beforehand. In the case where the high-ductility material 21 is a covering material formed through application of a rubber or resin viscous-material to the member 15, the rubber or resin viscous-material can be applied manually but is preferably applied through spraying by use of an appropriate spraying device in consideration of work efficiency. When the member 15 is partially damaged or when a partial rupture of the member 15 due to stress concentration is expected, the high-ductility material 21 can be partially disposed on a region of the member 15 including the damaged portion or the portion to be potentially ruptured. In this case, a fibrous high-ductility material 21 having an adhesive layer or a high-ductility material 21 formed through application of a rubber or resin adhesive-material to the member 15 is preferably used.
In order to control rupture of the member 15 through confining expansion of apparent volume accompanying the rupture, the high-ductility material 21 must enable the ruptured member 15 to maintain the formation of the enveloping surface 10 even after the member 15 has been ruptured. As seen from
When the high-ductility material 21 is disposed on the outer circumferential surface of the member 15 by the method shown in
It must be remembered that, in addition to the methods and configurations exemplified in FIGS. 4 to 8, the method of forming the high-ductility material 21 by use of application means, such as spraying, involves the following problem. When the high-ductility material 21 is directly bonded to the member 15 without interposition of a cavity therebetween, even after the member 15 is ruptured, the adhesive layer maintains complete bond of the high-ductility material 21 to the outer circumferential surfaces of the rupture pieces 9 shown in
Conceivable measures against the above problem include the use of an adhesive which imparts, to the adhesive layer, an adhesive strength sufficiently lower than the strength of the high-ductility material 21 and the use of an adhesive which imparts, to the adhesive layer, an elastic modulus sufficiently lower than that of the high-ductility material 21, to thereby interpose a weak layer between the member 15 and the high-ductility material 21.
Rupture of the member 15 involves expansion of apparent volume, thereby causing an increase in a compressive force between the member 15 and the high-ductility material 21. Thus, even though the member 15 and the high-ductility material 21 are not bonded together, after the member 15 is ruptured, the ruptured member 15 and the high-ductility material 21 do not slide from each other by virtue of a pressure bearing action. Accordingly, bonding between the member 15 and the high-ductility material 21 is performed merely to prevent the high-ductility material 21 from coming off the member 15 during the period between the disposition of the member 15 and rupture of the member 15. Therefore, an adhesive strength to be induced through bonding may be such a degree as to be able to support the weight of the high-ductility material 21 on the outer circumferential surface of the member 15; i.e., so-called tentative bonding will suffice.
FIGS. 9(a) and 9(b) are schematic perspective views showing an example of the third invention, wherein (a) shows a configurational relationship between the existing column 13 formed of reinforced concrete or the like and adapted to support the floor 12 and the like of the structure (building) 11 schematically shown in
The high-ductility covering material 121 formed of a sheet material 122—which is made of a synthetic fiber material (e.g., TORAYSHEET, the trade name of a product of Toray Industries, Inc.) or a rubber material (e.g., GEOLINER, the trade name of a product of Bridgestone Corp.) having high ductility and strength capable of bearing a load—is preferably used. The high-ductility covering material 121 must maintain such a state as to completely surround the outer circumferential surface 14 of the column 13. Accordingly, after the high-ductility covering material 121 is rolled on the column 13, butt end portions 121a and 121b must be united together against separation from each other upon reception of load and bonded to the outer circumferential surface 14 of the column 13 directly or via interposition by use of adhesive or the like. Specifically, in the case of the sheet material 122 being a synthetic fiber material, the butt end portions 121a and 121b are sewn together by use of a patch applied thereto from behind. In the case of the sheet material 122 being a rubber material, the butt end portions 121a and 121b are bonded or heat-sealed together by use of a rubber patch applied thereto from behind. Preferably, the high-ductility covering material 121 is rolled on the column 13 over the overall length of the column 13. However, the high-ductility covering material 121 may be fixedly rolled on the entire column 13 except an upper portion thereof as needed. A circumferentially and vertically homogeneous material is used as the high-ductility covering material 121. Particularly, a fiber material or a rubber material whose ductility is high and whose initial elastic modulus is lower than that of iron and concrete is preferably used.
In order to prevent the high-ductility covering material 121 rolled on the column 13 from slipping along the outer circumferential surface 14 of the column 13, it is desirable that the high-ductility covering material 121 be reliably fixed to the column 13 by use of adhesive or appropriate fixture means, such as nails or screws.
FIGS. 10(a) and 10(b) are a series of explanatory views showing an example of a fourth invention, wherein (a) is a schematic perspective view; and (b) is a cross-sectional view taken along line Y-Y of (a).
As shown in FIGS. 10(a) and 10(b), a facing surrounding wall material 115 patterned with marble patterns is disposed in such a manner as to surround the column 13 supporting the floor 12 and the like of the structure (building) 11 shown in
In this case, the number of the vertically arranged surrounding cores 133 is determined on the basis of the length of the column 13. The sheet material 134 can be connected to the surrounding cores 133 in such a manner as to surround the surrounding cores 133 along the entire circumference. Alternatively, as shown in
Next, the actions and effects of the present invention will be described.
According to
Such capability of maintaining a certain space 19 can be implemented through control of the phenomenon that concrete, gravel, soil, brick or the like—which is widely used as an element for partially constituting the member 15, such as a structural member, of the structure 11 and which serves as an element for bearing part of a compressive force—exhibits expansion of apparent volume when undergoing deformation upon reception of compressive force or shearing force. Such phenomenon emerges significantly when a portion or the entirety of the member 15, such as a structural member, is ruptured and deformed greatly. The potential expansion of apparent volume of the—member 15, such as a structural member, can be restrained by means of the high-ductility covering material 21. As a result, even after a material which partially constitutes the member 15, such as a structural member, is ruptured, the high-ductility covering material 21 enables the member 15 to bear an external force, thereby effectively preventing the occurrence of a great deformation and resulting collapse of the structure 11.
Such an action will be described with reference to FIG. 14(a) showing an example of application of the present invention to the beam (girder) 16, which is one of the members (structural members) 15 shown in
The high-ductility material 21 is disposed on the outer circumferential surface 14 of the member 15, such as a structural member, in such a manner as to surround the member 15 or to be spirally wound or rolled on the member 15. Thus, when a portion of the member 15 or the entire member 15 is ruptured upon reception of bending, shearing, or compression with a resultant deformation accompanied by expansion of volume, the elasticity of the high-ductility material 21 causes imposition of a circumferential compressive force on the member 15. The circumferential compressive force has the effect of restraining expansion of apparent volume of the member 15, thereby functioning against the deformation of the member 15 caused by bending, shearing, or compression. As a result, even after the member 15 is ruptured, the ruptured member 15 can resist bending, shearing, or compression imposed thereon. Furthermore, the disposed high-ductility material 21 can be easily removed.
When the high-ductility covering material 121 is to be used as in the fourth invention, the high-ductility covering material 121 is rolled, in a fixedly surrounding condition as shown in
In this case as well, even at a load in excess of toughness limit, the reinforcing high-ductility material 121 can impart an upper-load support function capable of supporting a required load. Accordingly, as shown in
When, as in the case of the fifth invention and as shown in FIGS. 10(a) and 10(b), the facing surrounding wall material 115 is disposed in such a manner as to surround an existing column 13 supporting the structure 11 shown in
In this case, preferably, the high-ductility covering material 131 includes a plurality of surrounding cores 133 disposed around the column 13 with the cavity 117 interposed therebetween in such a manner as to be arranged at predetermined intervals along the vertical direction, and the sheet material 134 made of a synthetic fiber material or a rubber material and connecting the adjacent surrounding cores 133 along the vertical direction, to thereby assume the form of the integral bellows-like reinforcement 132. Notably, the third invention can also use the high-ductility covering material 131 in place of the high-ductility covering material 121.
The disposition of the high-ductility covering material 131 within the cavity 117 interposed between the column 13 and the facing surrounding wall material 115 yields the following effect: for the deformation of the column 13 made of reinforced concrete before the toughness limit of the column 13 is reached, no load is imposed on the high-ductility covering material 131; and the subsequent deformation is coped with by means of ductility of the high-ductility covering material 131; i.e., the high-ductility covering material 131 encloses the deformed column 13, thereby enabling the deformed column 13 to bear a load. Thus, as in the case of the third invention, as shown in
Next, the tensile strength that a high-ductility material or a high-ductility covering material used in the present invention must assume, together with calculation examples, will be specifically described. Notably, when a member (e.g., a column), such as a structural member, is ruptured into concrete lumps and deformed reinforcing bars, the dynamic behavior of the ruptured member in the form of lumps and deformed reinforcing bars becomes complicated. Since the whole of concrete lumps and deformed reinforcing bars can generally be regarded as granular materials having internal friction, the high-ductility material must has a dynamic function for serving as a net or enclosure for retaining a ruptured member (e.g., a ruptured column) to thereby become resistant to an axial force. Also, the high-ductility material must not be broken when a pressure induced by the axial force within the enclosure is imposed thereon.
P/A={(1+sin φ)·S}/(1−sin θ) 5)
The relation between the confining pressure S and a tension Ts per unit width is expressed by the following expression, where D is the horizontal diameter of the container 5.
Ts=(DS)/2 6)
In order to yield an expected effect, the high-ductility material (high-ductility covering material) according to the present invention assumes strength as calculated below. Assuming that a ruptured column of reinforced concrete corresponds to granular materials mentioned above and on the basis of the relations expressed above by Expressions 5) and 6), a strength T required for avoiding rupture of the high-ductility material (high-ductility covering material) upon reception of an axial force P required for avoiding collapse of a structure is expressed by the following expression, where B is the cross-sectional area of a top portion of the column.
T={(1−sin φ)D·P}/{2(1+sin φ)B} 7)
The axial force P required for avoiding collapse of a structure can be calculated by
P=fW/Np 8)
-
- where W is the total weight of a portion of the structure above the floor concerned; Np is the total number of columns of the floor concerned; and f is the safety factor in consideration of variations in load to bear per column. These parameters can be calculated on the basis of a specific plan of the structure.
As described above, the required tensile strength of a high-ductility material can be calculated. However, in view of prevention of occurrence of an excessive deformation of a structure through suppression of a circumferential strain of the high-ductility material to an allowable value or less, the required number of turns or the required thickness of the high-ductility material can be determined from Expression 2) or 4) by use of the required strength T as calculated by Expression 7) and the allowable strain X0 of the high-ductility material.
Next will be described an example of calculation in relation to a specific structure by use of the calculation expressions described above. Among reinforced concrete structures which are generally seen in Japan, buildings which were constructed in or before 1980 usually have a weight of approx. 11.8 kN m2 per floor. Among these buildings, a medium-sized four-story building having a floor area of 200 m2 per story and 12 columns each having a head-portion cross-sectional area of 3500 cm2 is taken as an example and subjected to the calculation as follows.
Total weight to bear W=200×11.8×4=9440 kN
Axial force per column P=2×9440/12=1573 kN
It is to be noted that calculation by Expression 8) employed f=2.
Required strength of high-ductility material (high-ductility covering material) T=327 N/mm
It is to be noted that calculation by Expression 7) employed φ=40 degrees, D=67 cm, B=3500 cm2, and P=1573 kN, where D is a diameter of a cross-sectional area B.
An example of a textile sheet material having the above-calculated required strength is TORAYSHEET (the trade name of a product of Toray Industries, Inc.) Model NSB2000 (thickness 4.7 mm). Since TORAYSHEET Model 800T (thickness 1.26 mm) has a strength of 283 N/mm, TORAYSHEET Model 800T arranged in two layers can endure a tensile strength of 566 N/mm, thus indicating sufficient applicability to reinforcement of the above example structure. An example of a rubber sheet material is GEOLINER (the trade name of a synthetic-polymer/vulcanized-rubber product of Bridgestone Corp.). GEOLINER exhibits a strength test result of 13.2 N/mm2. GEOLINER having a thickness of approx. 2.5 cm exhibits the required strength.
The nominal strength of TORAYSHEET is reached at a strain of 15%. Before the nominal strength is reached, strain and tension are in a proportional relation. Thus, when TORAYSHEET Model 800T is used in two layers, a strain at which the required strength is reached is calculated as 327/566×15%=8.7%. When the circumferential strain is to be suppressed to 5% or less, TORAYSHEET Model 800T may be used in four layers. In this case, a strain that occurs at the required strength can be rendered 327/(283×4)×15%=4.3%. In the case of a high-ductility material formed of a rubber material, tension and strain are in a nonlinear relation. However, as in the case of the above calculation example, the thickness of the high-ductility material required for suppressing the strain of the high-ductility material to an allowable strain or less can be calculated through utilization of the gist of Expressions 3) and 4) described previously.
Particularly, the present invention can cope with deformation involving a strain of not less than 2% (the rupture strain of iron). Particularly, a high-ductility material (a high-ductility covering material) formed of a synthetic fiber sheet material can cope with deformation involving a strain of up to 15%; and a high-ductility material (a high-ductility covering material) formed of a rubber sheet material can cope with deformation involving a strain of 100% or greater (up to 690%, which is an upper limit in view of quality characteristics of material). Experiment has shown that, even when the above-mentioned sheet material used as reinforcement is ruptured, a peripheral sound portion of the sheet material causes propagation of a ruptured region to become sluggish; as a result, rupture can be controlled even under deformation involving an axial strain of 50% or greater.
As shown in FIGS. 19(a) and (b), upon occurrence of an earthquake, an inertia force is imposed on the structure 11, with a resultant occurrence of displacement. Accordingly, a force F is repeatedly imposed on the columns 13, which serve as members (structural members) 15, thereby causing occurrence of a displacement X while energy is being absorbed.
As seen from FIGS. 20(a) and 20(b), the member (e.g., the column 13) 15, such as a structural member, reinforced according to the present invention exhibits a large amount of absorbed energy to thereby endure large deformation. When kinetic energy which is stored in the structure 11 as a result of reception of seismic action is all absorbed through irreversible motion, such as friction arising within the structure 11 and between the structure 11 and peripheral ground G, vibration of the structure 11 stops. Because of a large amount of absorbed energy per cycle, the member (e.g., the column 13) 15 reinforced according to the present invention exhibits better vibration-damping effect; i.e., termination of vibration in a smaller number of cycles, or in a shorter period of time, as compared with the case of an unreinforced structure or a structure reinforced by a conventional method. Also, since control of rupture of a member suppresses the upper limit of load to be propagated to a peripheral region, large deformation/strain can be caused to arise under such loading conditions, thereby restricting the amount of input to a structure of an abrupt external force induced by earthquake or the like; i.e., thereby yielding a so-called seismic isolation effect.
Furthermore, the present invention can be applied to tentative reinforcement for a structure until the structure is rebuilt or undergoes required reinforcement work. Specifically, the present invention can be used effectively not only as measures against collapse of a building in the course of demolition of the building but also as emergency measures against increased danger in relation to potential earthquake under a state in which, in the course of reinforcement work by a conventional method continuing for a long period of time, a strength unbalance is present between structural portions which have already been reinforced and those which are to be reinforced. Also, the present invention allows reduction in the size and material strength of various component members, including structural members, of a structure, so that construction costs can be reduced as compared with the case of a conventional method.
Also, the present invention yields the following collapse prevention effect: after reinforcement of the present invention is used as a cloth form in the course of casting concrete, the clothe form is left unremoved.
As described above, in the case where a high-ductility material or a high-ductility covering material is fixedly attached to each of various members, including structural members, of a structure according to the present invention, upon start of the displacement of the column, a load is imposed on the high-ductility material or the high-ductility covering material. However, even when the structure collapses as a result of rupture or dislocation of a tie hoop(s), the load can be supported while a space is maintained between a ceiling and a floor or between floors, thereby yielding a lifesaving fail-safe effect upon occurrence of earthquake or the like.
Even when members, including structural members, of a structure are deformed greatly, the present invention enables the deformed members to maintain a function for supporting the weight of the structure, thereby enabling absorption of a greater amount of vibration energy as compared with the case of reinforcement by a conventional method or no reinforcement employed and thus yielding a vibration-damping effect for damping vibration of the structure induced by an earthquake motion. Furthermore, since control of rupture of a member suppresses the upper limit of load to be propagated to a peripheral region, large deformation/strain can be caused to arise under such loading conditions, thereby restricting the amount of input to a structure of an abrupt external force induced by earthquake or the like; i.e., thereby yielding a so-called seismic isolation effect.
The present invention can be used effectively not only as measures against collapse of a building in the course of demolition of the building but also as emergency measures against increased danger in relation to potential earthquake under a state in which, in the course of reinforcement work by a conventional method continuing for a long period of time, a strength unbalance is present between structural portions which have already been reinforced and those which are to be reinforced. That is, the present invention can be favorably applied to tentative reinforcement for a structure until the structure is rebuild or undergoes required reinforcement work.
The present invention enables performance of reinforcement work within a short period of time, thereby attaining low installation work cost. Also, the present invention allows reduction in the size and material strength of various members including structural members to thereby cut material costs greatly, so that construction costs for a structure itself can be reduced as compared with the case of a conventional method.
The present invention enables easy, prompt performance of reinforcement work without need of skilled workers and easy reinforcement for a partially damaged member. Through storage of high-ductility material or high-ductility covering material together with a bonding member, such as adhesive, emergency reinforcement can be promptly performed for a large number of structures upon occurrence of disaster, such as earthquake. Reinforcement work according to the present invention may be performed in parallel with emergency work for evaluation of the degree of collapse risk, whereby, even when an examiner(s) is involved in the collapse of a structure under examination due to aftershock or the like, the risk of his/her being killed or injured can be greatly decreased.
In the case where a high-ductility covering material is disposed in a cavity interposed between a column and a facing surrounding wall material, no load is imposed on the high-ductility covering material before the toughness limit of the column is exceeded; in other words, a load is imposed on the high-ductility covering material after the toughness limit is exceeded with a resultant rupture or dislocation of a tie hoop(s). However, even after a structure collapses, the load can be supported while a space is maintained between a ceiling and a floor or between floors, thereby yielding a lifesaving fail-safe effect.
When a cored roll of high-ductility material according to the present invention is used, a user can easily know the maximum number of overlap turns of the high-ductility material wound spirally on a member without use of equipment, such as a measuring tool. Thus, the material can be efficiently wound on a member. Such easy winding work means that a newly constructed member or an existing member can be reinforced promptly and accurately by use of a cored roll of high-ductility material and that cored rolls of high-ductility material can be stored for effective use upon occurrence of disaster. The number of turns of a high-ductility material to be wound on a member is determined according to a maximum load which the member must bear. However, the number of turns vary depending on a structure to which the high-ductility material is applied. Even in such a case, a cored roll of high-ductility material according to the present invention can cope with any number of turns ranging from a single turn to multiple turns, which the same high-ductility material is used. Thus, cored rolls of high-ductility material can be stored without consideration of application structures and can be applied to any structures upon occurrence of disaster. Particularly, in the case of a cored roll of high-ductility material on which a plurality of parting lines are drawn such that they can visually or tactilely be discriminated from one another, the parting lines can be easily discriminated from one another on a work site. In the case where the parting lines each assume the form of a protrusion, winding is performed while an edge portion of a layer of the high-ductility material is aligned with the protrusion of the underlying layer of the high-ductility material, thereby facilitating winding in a reliable condition and thus effectively contributing to enhancement of work efficiency.
Notably, when a high-ductility material is spirally wound or rolled on a member according to the present invention while facing layers of the high-ductility material are bonded at a zonal region extending along the length direction of the member, the following effect is yielded. Even when a certain layer of the high-ductility material is ruptured, the residual layers prevent immediate loss of tension.
INDUSTRIAL APPLICABILITYAs described above, the present invention can be applied to a structure or the like constructed of concrete, wood, soil, brick or the like.
Claims
1. A method for reinforcing a structure comprising:
- disposing a high-ductility material having an initial elastic modulus lower than an elastic modulus of concrete on an outer circumferential surface of a member of the structure so as to elastically restrain expansion of apparent volume accompanying rupture of the member, to thereby control rupture of the member and support a portion of a load of the structure after rupture of the member.
2. The method for reinforcing a structure according to claim 1, wherein the high-ductility material comprises a fiber origin or rubber origin sheet material.
3. The method for reinforcing a structure according to claim 1, wherein the high-ductility material comprises a fiber origin or rubber origin tape-like sheet material is wound spirally on the member while overlapping at overlap portions.
4. The method for reinforcing a structure according to claim 1, wherein an adhesive layer is formed on at least one side of the high-ductility material, and the high-ductility material is affixed to the member via the adhesive layer.
5. The method for reinforcing a structure according to claim 3, wherein the high-ductility material is wound on the member such that the overlap portions are bonded together and/or such that the high-ductility material is bonded to a surface of the member at at least a single zonal region extending along a length direction of the member.
6. The method for reinforcing a structure according to claim 1, wherein the high-ductility material comprises a fiber origin or rubber origin sheet material and is rolled tightly on the member by a plurality of turns to thereby be rolled in layers such that at least a rolling start end portion of the high-ductility material is bonded to a corresponding portion of an outer surface of the member while a rolling termination end portion of the high-ductility material is bonded to a corresponding portion of an underlying layer of the high-ductility material.
7. The method for reinforcing a structure according to claim 6, wherein the high-ductility material is rolled on the member such that intermediate layers of the high-ductility material are bonded together at at least a single zonal region extending along a length direction of the member.
8. The method for reinforcing a structure according to claim 1, wherein the high-ductility material comprises a fiber origin or rubber origin tape-like sheet material and is wound spirally while overlapping an overlap portion and is combined with being rolled tightly on the member by a plurality of turns to thereby be rolled in layers such that at least a rolling start end portion of the high-ductility material is bonded to a corresponding portion of an outer surface of the member while a rolling termination end portion of the high-ductility material is bonded to a corresponding portion of an underlying layer of the high-ductility material.
9. The method for reinforcing a structure according to claim 8, wherein the high-ductility material comprises a fiber origin or rubber origin tape-like sheet material and is spirally wound on the member along an overall length of the member while overlapping at overlap portions before or after the high-ductility material is rolled on the member at upper and lower end portions of the member by being rolled tightly on the member by a plurality of turns to thereby be rolled in layers such that at least a rolling start end portion of the high-ductility material is bonded to a corresponding portion of an outer surface of the member while a rolling termination end portion of the high-ductility material is bonded to a corresponding portion of an underlying layer of the high-ductility material.
10. The method for reinforcing a structure according to claim 1, wherein the high-ductility material is formed through application of a rubber or resin viscous-material to the member.
11. The method for reinforcing a structure according to claim 1, wherein the high-ductility material is disposed such that a cavity or a weak layer is interposed between the high-ductility material and the member.
12. A configuration for reinforcing a structure comprising:
- a high-ductility material having an initial elastic modulus lower than an elastic modulus of concrete configured to be disposed on an outer circumferential surface of a member of the structure so as to elastically restrain expansion of apparent volume accompanying rupture of the member, to thereby control rupture of the member and support a portion of a load of the structure after rupture of the member.
13. The configuration for reinforcing a structure according to claim 12, wherein the high-ductility material comprises a fiber origin or rubber origin sheet material.
14. The configuration for reinforcing a structure according to claim 12, wherein the high-ductility material comprises a fiber origin or rubber origin tape-like sheet material configured to be wound spirally on an outer surface of the member in a fixed and overlapping condition.
15. The configuration for reinforcing a structure according to claim 12, wherein an adhesive layer is formed on at least one side of the high-ductility material, and the high-ductility material is configured to be affixed to the member via the adhesive layer.
16. The configuration for reinforcing a structure according to claim 14, wherein the high-ductility material is configured to be wound on the member such that the overlap portions are bonded together and/or such that the high-ductility material is bonded to a surface of the member at at least a single zonal region extending along a length direction of the member.
17. The configuration for reinforcing a structure according to claim 12, wherein the high-ductility material comprises a fiber origin or rubber origin sheet material and is configured to be rolled tightly on the member in a plurality of layers such that at least a rolling start end portion of the high-ductility material is bonded to a corresponding portion of an outer surface of the member while a rolling termination end portion of the high-ductility material is bonded to a corresponding portion of an underlying layer of the high-ductility material.
18. The configuration for reinforcing a structure according to claim 12, wherein the high-ductility material comprises a fiber origin or rubber origin tape-like sheet material and is configured to be disposed such that it is wound spirally on an outer surface of the member in a fixed and overlapping condition and is combined with being rolled tightly on the member in a plurality of layers such that at least a rolling start end portion of the high-ductility material is bonded to a corresponding portion of an outer surface of the member while a rolling termination end portion of the high-ductility material is bonded to a corresponding portion of an underlying layer of the high-ductility material.
19. The configuration for reinforcing a structure according to claim 18, wherein the high-ductility material is configured to be spirally wound on the member alone an overall length of the member such that it is wound spirally on an outer surface of the member in a fixed and overlapping condition before or after the high-ductility material is rolled on the member at upper and lower end portions of the member by being rolled tightly on the member in a plurality of layers such that at least a rolling start end portion of the high-ductility material is bonded to a corresponding portion of an outer surface of the member while a rolling termination end portion of the high-ductility material is bonded to a corresponding portion of an underlying layer of the high-ductility material.
20. The configuration for reinforcing a structure according to claim 12, wherein the high-ductility material comprises a covering material configured to be formed in a layered condition through application of a rubber or resin viscous-material to the member.
21. The configuration for reinforcing a structure according to claim 12, wherein the high-ductility material is configured to be disposed such that a cavity or a weak layer is interposed between the high-ductility material and the member.
22. A cored roll of high-ductility material comprising:
- a core having a predetermined length and an outside diameter; and the high-ductility material having a predetermined length and rolled on the core, the high-ductility material having an initial elastic modulus lower than an elastic modulus of concrete and configured to be disposed on an outer circumferential surface of a member of a structure to elastically restrain expansion of apparent volume accompanying rupture of a member of the structure, to thereby control rupture of the member and support a portion of a load of the structure after rupture of the member; and
- a plurality of parting lines drawn on one side of the high-ductility material along a length direction of the high-ductility material, the parting lines configured to enable equal division of a width of the high-ductility material at any one of two or more different pitches.
23. The cored roll of high-ductility material according to claim 22, wherein the parting lines are configured to be visually or tactilely discriminated from one another.
24. A method for reinforcing a structure comprising:
- fixedly attaching a high-ductility covering material having an initial elastic modulus lower than an elastic modulus of concrete to an outer circumferential surface of a member of the structure, to thereby support a load of the member after deformation of the member.
25. A method for reinforcing a structure comprising:
- disposing a high-ductility covering material having an initial elastic modulus lower than an elastic modulus of concrete inside a facing surrounding wall material around a member of the structure with a cavity interposed between the facing surrounding wall material and the member, to thereby support a load of the member after deformation of the member.
26. A configuration for reinforcing a structure comprising:
- a high-ductility covering material having an initial elastic modulus lower than an elastic modulus of concrete configured to be fixedly attached to an outer circumferential surface of a member of the structure to elastically restrain expansion of apparent volume after rupture of the member, to thereby control rupture of the member and support a portion of a load of the structure after rupture of the member.
27. A configuration for reinforcing a structure comprising:
- a high-ductility covering material having an initial elastic modulus lower than an elastic modulus of concrete configured to be disposed inside a facing surrounding frame disposed around a member of the structure with a cavity interposed between the facing surrounding frame and the member, to thereby support a load of the member after deformation of the member.
28. A high-ductility material comprising:
- a high-ductility covering material having an initial elastic modulus lower than an elastic modulus of concrete configured to be disposed on an outer circumferential surface of a member of a structure to thereby elastically support a load of the member after deformation of the member; and
- an adhesive layer formed on at least one side of the high-ductility covering material, the high-ductility material configured to be affixed to the member via the adhesive layer.
29. A high-ductility material comprising:
- a high-ductility covering material having an initial elastic modulus lower than an elastic modulus of concrete configured to be disposed on an outer circumferential surface of a member of a structure to thereby elastically support a load of the member after deformation of the member, wherein the high-ductility material is configured to be wound on the member such that overlap portions are bonded together and/or such that the high-ductility material is bonded to a surface of the member at at least a single zonal region extending along a length direction of the member.
30. A method for reinforcing a structure comprising:
- disposing a high-ductility material having an initial elastic modulus lower than an elastic modulus of concrete on an outer circumferential surface of a member of the structure with a weak layer or a cavity interposed between the material and the member to restrain expansion of apparent volume accompanying rupture of the member, to thereby control rupture of the member and support a portion of the load of the structure after rupture of the member.
31. A method for reinforcing a structure comprising:
- disposing a high-ductility material having an initial elastic modulus lower than an elastic modulus of concrete on a portion of an outer circumferential surface of a member of the structure to elastically restrain expansion of apparent volume accompanying rupture of the member, to thereby control rupture of the member and support a portion of the load of the structure after rupture of the member.
32. The method for reinforcing a structure according to claim 11, wherein said cavity or weak layer substantially comprises air.
33. The method for reinforcing a structure according to claim 25, wherein said cavity is disposed between said high-ductility covering material and said member.
34. The configuration for reinforcing a structure according to claim 27, wherein said high-ductility covering material is disposed on the inner surface of said surrounding frame.
Type: Application
Filed: Aug 22, 2005
Publication Date: Dec 29, 2005
Inventor: Shunichi Igarashi (Chiba)
Application Number: 11/209,385