PROTECTING CONNECTOR
20230417042 ยท 2023-12-28
Inventors
Cpc classification
E04B1/2403
FIXED CONSTRUCTIONS
International classification
Abstract
The invention teaches a technology to control the load transfer from attachments into building structures and from building structures to attachments to protect building structures and attachments from damages beyond repair. The connector invented for this purpose acts as a fuse. It is inexpensive and easy to manufacture, install, and maintain.
Claims
1. A building comprising at least two building elements, wherein said building elements are attached to each other with at least one connector, wherein the connector comprises at least one free strain element, wherein the free strain element is dimensioned as a yielding part, wherein the free strain element exhibits yielding upon exposure to a predetermined excess force acting on the free strain element, wherein the predetermined excess force is higher than a standard force being calculated according to static and dynamic forces acting on the free strain element under normal environmental conditions (the design basic load).
2. The building of claim 1, wherein the predetermined excess force is calculated such that the yielding of the strain element occurs before components of the building elements and/or regions of the connector outside the free strain element experience irreversible damage under non-standard environmental conditions.
3. The building of claim 1, wherein at least one of the building elements is made of reinforced concrete and the connector is made of a cast-in headed stud profile with at least one profile bolt.
4. The building of claim 3, wherein the strain element is arranged in the profile bolt.
5. The building of claim 4, wherein the profile bolt is exchangeable.
6. The building of claim 3, wherein the strain element is comprised in the headed stud being joined to the profile.
7. The building of claim 6, wherein the headed stud is fitted with at least one bond breaker forming the free strain element.
8. The building of claim 1, wherein a cross section or a length of the free strain element is selected such that the free strain elements yields upon exposure to the excess force.
9. The building of claim 3, wherein at least one straight, hooked, headed, or double headed reinforcing bar instead of a headed stud is welded to the profile.
10. The building of claim 3, wherein the load capacity of the headed stud profile is increased using at least one reinforcing bar with a head, a hook, or a U-shaped loop being separated from or touching the headed stud.
11. The building of claim 3, wherein the capacity of the headed stud profile is increased using at least one reinforcing bar with at least one bond breaker to allow not only sufficient long free strain elements but also higher load capacities by transferring the load from the reinforcing bar into the concrete at a larger embedment depth.
12. A method of erecting a building, wherein at least two building elements are attached to each other with at least one connector, wherein at least one connector comprises at least one free strain element, wherein at least one free strain element is dimensioned as a yielding part, wherein the free strain element exhibits yielding upon exposure to a predetermined excess force acting on the free strain element, wherein the predetermined excess force is higher than a standard force being calculated according to static and dynamic forces acting on the free strain element under normal environmental conditions (the design basic load).
13. The method of claim 12, wherein at least one of the building elements is made of reinforced concrete and the connector is made of a cast-in headed stud profile with at least one profile bolt.
14. The method of claim 13, wherein the strain element is arranged in the profile bolt.
15. The method of claim 14, wherein the profile bolt is exchangeable.
16. The method of claim 13, wherein the strain element is comprised in the headed stud being joined to the profile.
17. The method of claim 13, wherein the headed stud is fitted with at least one bond breaker forming the free strain element.
18. The method of claim 12, wherein a cross section or a length of the free strain element is selected such that the free strain elements yields upon exposure to the excess force.
19. The method of claim 13, wherein at least one straight, hooked, headed, or double headed reinforcing bar instead of a headed stud is welded to the profile.
20. The method of claim 13, wherein the load capacity of the headed stud profile is increased using at least one reinforcing bar with a head, a hook, or a U-shaped loop being separated from or touching the headed stud.
21. The method of claim 13, wherein the capacity of the headed stud profile is increased using at least one reinforcing bar with at least one bond breaker to allow not only sufficient long free strain elements but also higher load capacities by transferring the load from the reinforcing bar into the concrete at a larger embedment depth.
22. A method for protecting a building against damage through excess forces acting on the building, the building comprising at least two building elements, wherein said building elements are attached to each other with at least one connector, wherein at least one connector comprises at least one free strain element, wherein at least one free strain element is dimensioned as a yielding part, wherein the free strain element exhibits yielding upon exposure to a predetermined excess force acting on the free strain element, wherein the predetermined excess force is higher than a standard force being calculated according to static and dynamic forces acting on the free strain element under normal environmental conditions (the design basic load).
23. The method of claim 22, further comprising yielding of the yielding part upon action of an excess force on the strain element and/or on the building.
24. The method of claim 22, wherein at least one of the building elements is made of reinforced concrete and the connector is made of a cast-in headed stud profile with at least one profile bolt.
25. The method of claim 24, wherein the strain element is arranged in the profile bolt.
26. The method of claim 24, wherein the profile bolt is exchangeable.
27. The method of claim 24, wherein the strain element is comprised in the headed stud being joined to the profile.
28. The method of claim 27, wherein the headed stud is fitted with at least one bond breaker forming the free strain element.
29. The method of claim 22, wherein a cross section or a length of the free strain element is selected such that the free strain elements yields upon exposure to the excess force.
30. The method of claim 24, wherein at least one straight, hooked, headed, or double headed reinforcing bar instead of a headed stud is welded to the profile.
31. The method of claim 24, wherein the load capacity of the headed stud profile is increased using at least one reinforcing bar with a head, a hook, or a U-shaped loop being separated from or touching the headed stud.
32. The method of claim 24, wherein the capacity of the headed stud profile is increased using at least one reinforcing bar with at least one bond breaker to allow not only sufficient long free strain elements but also higher load capacities by transferring the load from the reinforcing bar into the concrete at a larger embedment depth.
33. A building or a method according to claim 1, wherein counternuts and ratcheting devices at the profile nut provide that load is transferred continuously even after reversed cycles causing yielding of the profile bolt.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE INVENTION
[0018] The invention will now be described with reference to the figures, which in the embodiment relate to protecting connectors capable to protect building structure and attachment from damages beyond repair.
[0019] The components shown have the following reference signs: [0020] (1) Concrete [0021] (2) Headed stud profile (2a) headed stud (2b) profile [0022] (3) Profile bolt [0023] (4) Baseplate [0024] (5) Attachment [0025] (6) Free strain segment/element in air [0026] (7) Free strain segment/element within bond breaker (grease, foam, or sleeve) [0027] (8) Reduced cross section of profile bolt or headed stud [0028] (9) Adjustable nut of profile bolt [0029] (10) Adjustable nut of headed stud [0030] (11) Double headed reinforcing bar as headed stud [0031] (12) Straight, hooked, or headed reinforcing bar as headed stud [0032] (13) U-shaped reinforcing bar loops close to the headed stud [0033] (14) Ratchet devise [0034] (15) Counter nut [0035] (16) Threaded stud [0036] (17) Frame [0037] (18) Tension rod
[0038] To this end, the overall capacity of the connectors is increased and parts of the connectors can be sacrificed in case of overloading due to explosions, storms, and/or earthquakes.
[0039] It is understood that the invention may be embodied in many different forms and should not be construed as being limited to the embodiments set forth herein. Rather these embodiments are provided so that this disclosure will be thorough and complete and will fully convey the invention to those skilled in the art. Indeed, the invention is intended to cover alternatives, modifications and equivalents of these embodiments, which are included within the scope and spirit of the invention as defined in the appended claims. Furthermore, in the following detailed description of the present invention, numerous specific details are set forth in order to provide a thorough understanding of the present invention. However, it will be clear to those of ordinary skill in the art that the invention may be practiced without such specific details.
[0040] Referring now for example to
[0041] In case of overloading, yielding occurs along the free strain segment in a controlled, planned, and designed manner. The yielding part acts as a fuse which is sacrificed to protect the concrete (1) and attachment (5) from damage beyond repair. Moreover, the yielding dissipates energy. The length of the free strain segment is typically eight times its diameter. The described functioning of the free strain segment under tension overloading holds in principle also for the following examples. But only if yielding occurs at the profile bolt (3), easy replacement of this consumed fuse is possible. If yielding occurs at some part of the headed stud profile (2), a new connection may be needed, yet concrete (3) and attachment (5) has been protected.
[0042] Also
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[0046] Reinforcing bars (13) with bond breaker (7) may also be used separately from the headed stud profile as shown in
[0047] Reinforcing bars (13) with bond breaker (7) may also be used touching the headed studs as shown in
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