METHOD FOR ATTACHING MOUNTED PARTS TO CONCRETE OR MASONRY
20200224439 ยท 2020-07-16
Inventors
Cpc classification
F16B37/127
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
G06F30/12
PHYSICS
G06F2119/14
PHYSICS
E04G23/0218
FIXED CONSTRUCTIONS
E04B1/41
FIXED CONSTRUCTIONS
E04G21/185
FIXED CONSTRUCTIONS
E04G2023/0262
FIXED CONSTRUCTIONS
F16B5/0642
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16B25/0026
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A method is defined for attaching mounted parts on a mounting substrate, formed of concrete or masonry, having a group of anchors, wherein the following is true for the ratio VSd/NSd of the rated value for the transverse load VSd and of the rated value of the tensile load NSd of at least one anchor in the anchor group: VSd/NSd0.3, preferably VSd/NSd0.6 and particularly preferably VSd/NSd1.0, and wherein the characteristic resistances of these anchors to transverse loading VRk or to tensile loading NRk satisfy the following relationship: VRk/NRk1.1. The at least one anchor of the anchor group is inclined at an angle Anker to the perpendicular to the surface of the mounting substrate in such a manner that the following is true: Anker=k**arc tan (VSd/NSd) for NSd>0, and Anker=k*67.5 for NSd=0, where: 0.8k1.34, providing that Anker75.
Claims
1. A method for attaching mounted parts to a mounting substrate, which is formed of concrete or masonry, using a group of anchors, based on predetermined rated values V.sub.Sd and N.sub.Sd of the transverse load and the tensile load, wherein for the corresponding ratio V.sub.Sd/N.sub.Sd of the rated value of the transverse load V.sub.Sd and the rated value of the tensile load N.sub.Sd of at least a subset of the anchors in the anchor group the following applies: V.sub.Sd/N.sub.Sd0.3, and wherein the characteristic resistances to transverse loading V.sub.Rk or to tensile loading N.sub.Rk, respectively, for at least said subset of anchors satisfy the following relationship: V.sub.Rk/N.sub.Rk1.1, wherein each of the values V.sub.Sd, N.sub.Sd, V.sub.Rk and N.sub.Rk refer to an anchor when mounted perpendicular to the surface of the mounting substrate, wherein the anchors of said subset is are positioned at respective angles of inclination .sub.anchor to the normal to the surface of the mounting substrate in such a manner that the following applies:
.sub.anchor=k**arc tan(V.sub.Sd/N.sub.Sd) for N.sub.Sd>0, and
.sub.anchor=k*67.5 for N.sub.Sd =0, where: 0.6k1.34, provided that .sub.anchor75, wherein the angle of inclination .sub.anchor is to be measured in the plane in which the transverse load V.sub.Sd underlying the rating lies, and wherein in this plane, the orientation of the angle .sub.anchor is chosen such that the angle between a longitudinal axis of the anchor and the vector sum of the rated tensile and transverse loads is smaller than if mounted perpendicular to the mounting substrate surface, and wherein further anchors of the group of anchors, if present, are mounted perpendicular to the mounting substrate surface.
2. The method according to claim 1, where the following applies: k1.2.
3. The method according to claim 1, where the following applies: k0.85.
4. A method for attaching mounted parts to a mounting substrate which is formed of concrete or masonry, using a group of anchors, based on predetermined rated values V.sub.Sd and N.sub.Sd of the transverse load and the tensile load, wherein for the corresponding ratio V.sub.Sd/N.sub.Sd of the rated value of the transverse load V.sub.Sd and the rated value of the tensile load N.sub.Sd of at least a subset of the anchors in the anchor group the following applies: V.sub.Sd/N.sub.Sd0.8. and wherein the characteristic resistances to transverse loading V.sub.Rk or to tensile loading N.sub.Rk, respectively, for at least said subset of anchors satisfy the following relationship: V.sub.Rk/N.sub.Rk1.1, wherein each of the values V.sub.Sd, N.sub.Sd, V.sub.Rk and N.sub.Rk refer to an anchor when mounted perpendicular to the surface of the mounting substrate, wherein the at least one anchor of the anchor group is positioned at respective angles of inclination .sub.anchor of between 35 and 55 to the normal to the surface of the mounting substrate, wherein the angle of inclination .sub.anchor is to be measured in the plane in which the transverse load V.sub.Sd underlying the rating lies, and wherein in this plane, the orientation of the angle .sub.anchor is chosen such that the angle between a longitudinal axis of the anchor and the vector sum of the rated tensile and transverse loads is smaller than if mounted perpendicular to the mounting substrate surface, and wherein further anchors of the group of anchors, if present, are mounted perpendicular to the mounting substrate surface.
5. The method according to claim 1, wherein the characteristic resistances to transverse loading V.sub.Rk or to tensile loading N.sub.Rk, respectively, satisfy the following relationship:
V.sub.Rk/N.sub.Rk.
6. The method according to claim 1, wherein the at least one anchor of said subset is guided through a bore in the mounted part, wherein the diameter of the bore exceeds the diameter of the anchor by less than 22%, in a section in which it is accommodated in the bore in the mounted state.
7. The method according to claim 1, wherein at least one anchor of said subset is an anchor within the anchor group, which is closer to an edge, and the anchor group includes an anchor further away from the edge, which is positioned perpendicular to the surface of the mounting substrate.
8. The method according to claim 1, wherein at least one anchor of said subset is an anchor within the anchor group, which is further away from an edge, within the anchor group, and the anchor group includes an anchor, which is closer to the edge, and which is accommodated in an elongate hole in the mounted part and normal to the surface of the mounting substrate.
9. The method according to claim 1, wherein a space is present between the mounted part and the mounting substrate, in which a material is located that is not pressure-pressure-resistant, and for which the following applies.
10. The method according to claim 1, wherein at least one anchor of said subset is formed by a one-piece anchor, which comprises the following: a load introduction region, which is arranged in the region of a leading end of the anchor, and which is suitable for introducing a load into the mounting substrate, a shaft section, a section or an element for securing the anchor to the mounted part in the region of a trailing end, and a power drive for positioning the anchor.
11. The method according to claim 9, wherein the at least one anchor is formed by a two-piece system, which comprises an anchor sleeve and a clamping element, wherein the anchor sleeve is suitable for introducing a load into the mounting substrate and has an internal thread, and wherein the clamping element has a shaft section, which, in the region of its leading end, has an external thread, by means of which it can be screwed into the internal thread of the anchor sleeve in order to transfer a load, comprises a section or an element, for securing the shaft section of the clamping element to the mounted part in the region of a trailing end, and has a power drive for screwing the clamping element into the anchor sleeve.
12. The method according to claim 10, wherein the said section for securing the anchor or the clamping element, respectively, to the mounted part is formed by a screw head, which simultaneously forms the said power drive.
13. The method according to claim 1, wherein the at least one anchor is formed by a two-piece system, which comprises an anchor sleeve and a clamping element, wherein the anchor sleeve is suitable for introducing a load into the mounting substrate, and wherein the clamping element has a shaft section, which, in the region of its leading end, has a stop element comprising a screw head or a screwed-on nut, against which the anchor sleeve can abut in order to transfer a load, and comprises a section or an element for securing the shaft section of the clamping element to the mounted part in the region of a trailing end.
14. The method according to claim 11, wherein a thread is provided on the trailing end of the anchor or of the clamping element, respectively, and the said element for securing the anchor or the clamping element, respectively, is formed by a nut, which can be screwed against the mounted part on the thread.
15. The method according to claim 1, wherein the anchor is formed by a multi-piece system, which comprises the following: a first anchor sleeve, which is suitable for introducing a load into the mounting substrate, a second anchor sleeve, which is suitable for introducing a load into the mounted part, and an elongate clamping element, which is suitable for being guided through the second anchor sleeve and for being inserted into the first anchor sleeve, or for being guided through the latter, and which is suitable for axially clamping the first and the second anchor sleeve in such a manner that the first and the second anchor sleeve generate opposed composite bond stresses in the mounting substrate or mounted part, respectively.
16. (canceled)
17. (canceled)
18. (canceled)
19. (canceled)
20. A method for rating and carrying out an attachment of mounted parts to a mounting substrate, which is formed of concrete or masonry, using a group of anchors, wherein the following applies for the ratio V.sub.Sd/N.sub.Sd of the rated value of the transverse load V.sub.Sd and of the rated value of the tensile load N.sub.Sd of at least one anchor in the anchor group: V.sub.Sd/N.sub.Sd0.3, and wherein the characteristic resistances to transverse loading V.sub.Rk or to tensile loading N.sub.Rk, respectively, for this anchor satisfy the following relationship: V.sub.Rk/N.sub.Rk1.1, wherein each of the values V.sub.Sd, N.sub.Sd V.sub.Rk and N.sub.Rk refer to an anchor when mounted perpendicular to the surface of the mounting substrate, characterized in that it is verified for this anchor as to whether the rated value of the loading exceeds the rated value of the resistances of this anchor with respect to at least one failure mechanism, for the case that this anchor is positioned at an angle of inclination .sub.anchor to the normal to the surface of the mounting substrate in such a manner that the following applies:
.sub.anchor=k**arc tan(V.sub.Sd/N.sub.Sd) for N.sub.Sd>0, and
.sub.anchor=k*67.5 for N.sub.Sd =0, where: 0.6k1.34, preferably 0.81.34, provided that .sub.anchor75, wherein the angle of inclination .sub.anchor is to be measured in the plane in which the transverse load V.sub.Sd underlying the rating lies, which forms the basis for the rating, and wherein in this plane, the orientation of the angle .sub.anchor is chosen such that the angle between a longitudinal axis of the anchor and the vector sum of the rated tensile and transverse loads is smaller than if mounted perpendicular to the mounting substrate surface, and if it is determined that said loading does not exceed the rated value of the resistances of this anchor with respect to said at least one failure mechanism, said at least one anchor in the anchor group is mounted at said angle of inclination .sub.anchor.
21. The method according to claim 20, wherein the following applies: k1.2.
22. The method according to claim 20, wherein the following applies: k0.85.
23. A method for rating and carrying out an attachment of mounted parts to a mounting substrate, which is formed of concrete or masonry, using a group of anchors, wherein the following applies for the ratio V.sub.Sd/N.sub.Sd of the rated value of the transverse load V.sub.Sd and of the rated value of the tensile load N.sub.Sd of at least one anchor in the anchor group: V.sub.Sd/N.sub.Sd0.8. and wherein the characteristic resistances to transverse loading V.sub.Rk or to tensile loading N.sub.Rk, respectively, for this anchor satisfy the following relationship: V.sub.Rk/N.sub.Rk1.1, wherein each of the values V.sub.Sd, N.sub.Sd V.sub.Rk and N.sub.Rk refer to an anchor when mounted perpendicular to the surface of the mounting substrate, characterized in that it is verified for this anchor as to whether the rated value of the loading exceeds the rated value of the resistances of this anchor with respect to at least one failure mechanism, for the case that this anchor is positioned at an angle of inclination .sub.anchor of between 35 and 55 to the normal to the surface of the mounting substrate, wherein the angle of inclination .sub.anchor is to be measured in the plane in which the transverse load V.sub.Sd underlying the rating lies, which forms the basis for the rating, and wherein in this plane, the orientation of the angle .sub.anchor is chosen such that the angle between a longitudinal axis of the anchor and the vector sum of the rated tensile and transverse loads is smaller than if mounted perpendicular to the mounting substrate surface, and if it is determined that said loading does not exceed the rated value of the resistances of this anchor with respect to said at least one failure mechanism, said at least one anchor in the anchor group is mounted at said angle of inclination .sub.anchor.
24. The method according to claim 20, wherein the characteristic resistances to transverse loading V.sub.Rk or to tensile loading N.sub.Rk, respectively, satisfy the following relationship:
V.sub.Rk/N.sub.Rk0.8.
25. The method according to claim 20, wherein the at least one anchor is guided through a bore in the mounted part, wherein the diameter of the bore exceeds the diameter of the anchor by less than 22% in a section in which it is accommodated in the bore in the mounted state.
26. The method according to claim 20, wherein the said anchor is an anchor within the anchor group, which is closer to an edge, within the anchor group, and the anchor group includes an anchor further away from the edge, which is positioned normal to the surface of the mounting substrate.
27. The method according to claim 20, wherein the said anchor is an anchor within the anchor group, which is further away from an edge, within the anchor group, and the anchor group includes an anchor, which is closer to the edge, which is accommodated in an elongate hole in the mounted part and is normal to the surface of the mounting substrate.
28. The method according to claim 22, wherein a space is present between the mounted part and the mounting substrate, in which a material is located, which is not pressure-resistant, and for which the following applies: k1.1.
29. A method for attaching mounted parts to a mounting substrate according to claim 1, which includes a method for rating this mounting attachment according to claim 20.
30. (canceled)
31. The method of claim 1, wherein for the ratio V.sub.Sd/N.sub.Sd of the rated value of the transverse load V.sub.Sd and the rated value of the tensile load N.sub.Sd of at least one anchor in the anchor group the following applies: V.sub.Sd/N.sub.Sd0.6.
32. The method of claim 31, wherein for the ratio V.sub.Sd/N.sub.Sd of the rated value of the transverse load V.sub.Sd and the rated value of the tensile load N.sub.Sd of at least one anchor in the anchor group the following applies: V.sub.Sd/N.sub.Sd1.0.
33. The method according to claim 1, where the following applies: 0.8<k<1.34.
34. The method according to claim 1, where the following applies: k<1.15.
Description
BRIEF DESCRIPTION OF THE FIGURES
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DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0115] Further advantages and features of the invention follow from the following description, in which the invention is described on the basis of an exemplary embodiment with reference to the enclosed drawings.
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[0117] A transverse load with a rated value V.sub.Sd and a tensile load N.sub.Sd, which are distributed evenly with respect to the corresponding loads V.sub.Sd,1, N.sub.Sd,1 with regard to the upper anchor and V.sub.Sd,2, N.sub.Sd,2 with regard to the lower anchor, acts on the mounted part 10, i.e. the following relations apply: V.sub.Sd,1=V.sub.Sd,2= V.sub.Sd, N.sub.Sd,1=N.sub.Sd,2= N.sub.Sd. The resultant or total load is inclined at an angle of arc tan (V.sub.Sd/N.sub.Sd)=40 to the surface normal.
[0118] In the exemplary embodiment of
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[0120] A solution for these difficulties is shown in
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[0122] Finally,
[0123] A further aspect of the present invention relates to a computer program product, which includes a plurality of instructions, which, when executed on a computer system, output a GUI via a display device, as is shown in an exemplary manner in
[0124] The results of the rating calculation corresponding to the input values and parameters are displayed on the right-hand side of the GUI of
[0125] The computer program, however, can also propose ratings in which the anchor is not positioned normally, but at an angle .sub.anchor to the surface normal of the mounting substrate 12. In the embodiment as shown, the program automatically proposes a rating for an inclined mounting, when certain criteria are met. Such a criterion can be that the rating regulations cannot be satisfied with a normal mounting of the anchor. A further criterion can be that a significantly improved load-bearing capacity can be anticipated in the case of an inclined mounting, for example in cases in which a threshold with regard to the ratio V.sub.Sd/N.sub.Sd is exceeded, or a threshold for V.sub.Rk//N.sub.Rk is not reached. It is advantageous in some cases to consider a design that has a better load-bearing capacity, even if the rating regulations in the case of the planned mounting attachment are also satisfied with a normal mounting. This can prompt the user, for example, to consider a mounting with anchors of a smaller cross section. In some embodiments, the computer program itself can also propose the suitable, generally most cost-efficient anchors, by means of which the mounting attachment can be realized, by utilizing the possibility of an inclined mounting.
[0126] It can be seen in the screenshot shown in
[0127] It goes without saying that officially recognized rating regulations do not yet exist for a suitable mounting of anchors in concrete. When reference is thus made in connection with
[0128] In a simplified embodiment of the computer program, provision can be made for only one rating to be executed for a predetermined alternative standard mounting angle, for example a mounting angle of 45. The rating can be executed upon request, i.e. in response to a user input, and/or can be executed automatically. An automatic execution can be considered, for example, when due to the mounting position (closeness to edge, lever arm, etc.) and due to the loads underlying the rating, in particular tensile forces and transverse forces, there are indications that the load-bearing capacity would be increased with a mounting at the alternative standard mounting angle as compared to the normal mounting. It is also possible for the rating calculation for the mounting to be executed as a matter of course at the alternative standard mounting angle and for the result to be displayed, or at least to be displayed if it promises an improved load-bearing capacity.
[0129] The above-described method is not limited to a specific type of anchor. In fact, the term anchor is to be understood broadly in the present disclosure, and it can be formed by a one-piece anchor in the strictest sense, as well as by two- or three-piece systems, which will be briefly described below.
[0130] In
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[0135] As shown in
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[0137] It is to be noted that all embodiments with a concrete thread, which introduce the load that is to be transferred into the concrete via a bonding mechanism, can likewise be embodied with a composite anchor, which transfers the load into the concrete via a composite mass. It is furthermore to be noted that the above-described embodiments are to be considered to be purely exemplary and as not limiting the invention, and that the described features can be significant in any combination.
LIST OF REFERENCE NUMERALS
[0138] 10 mounted part [0139] 12 mounting substrate [0140] 14 anchor [0141] 16 elongate hole [0142] 20, 22, 24, 26 fields of the GUI [0143] 28 metric thread [0144] 30 washer [0145] 32 nut [0146] 34 anchor sleeve [0147] 36 threaded rod [0148] 38 external thread [0149] 40 first anchor sleeve [0150] 42 second anchor sleeve [0151] 44 screw [0152] 46 head