System, apparatus and methods for precast architectural panel connections
10151108 ยท 2018-12-11
Inventors
Cpc classification
International classification
Abstract
Architectural precast concrete construction relies on mechanical connectors at discrete location that may be damaged in a blast or seismic event, posing specific design problems to the engineer. These problems can be overcome with proper detailing. The performance of precast concrete cladding wall panel connection details may be enhanced by incorporating a specific connection hardware, herein described, that deforms elastically or inelastically to accommodate relative displacements due to building motion and/or energy associated with blast pressures.
Claims
1. A system for protecting the interior of a building, the system comprising: a precast panel mounted on to a structure of the building; a bracket connected to a structural beam of the building, the bracket capable of bracing the precast panel with a threaded rod; a first crushing tube and a second crushing tube, each of the first and second crushing tubes placed on either side of the bracket on the threaded rod.
2. The system as set forth in claim 1, wherein a first crushing tube is placed on a first side of the bracket and a second crushing tube is place on a second side of the bracket.
3. The system as set forth in claim 2, wherein the first and second crushing tubes are each tightened against the bracket by using an adjusting nut for each of the first and second crushing tubes.
4. The system as set forth in claim 1, wherein the threaded rod is connected to the precast panel via an embedded U-shaped bar that has a welded plate to allow the passage of the threaded rod.
5. The system as set forth in claim 1, wherein the first and second crushing tubes each have a width ranging between 3.8 inches to 8.2 inches, a depth ranging between 1.8 inches to 4.2 inches and a length ranging between 3.8 inches to 12.2 inches.
6. The system as set forth in claim 1, wherein the threaded rod has a diameter ranging between 0.6 inches to 1.3 inches.
7. An impact absorbing apparatus, comprising: an architectural precast panel capable of being mounted to a structure; a threaded rod capable of being secured to the architectural precast panel on one end and a to a structural beam within the interior of the structure on another end; a first crushing tube and a second crushing tube together, capable of bracketing the structural beam on each of a first side and a second side of the structural beam.
8. The apparatus as set forth in claim 7, further comprising: a bearing capable of supporting the weight of the architectural precast panel to the structure.
9. The apparatus as set forth in claim 7, wherein the structure comprises a multistory building.
10. The apparatus as set forth in claim 7, wherein the structure comprises a one-story building.
11. The apparatus as set forth in claim 7, wherein the impact comprises at least one of a seismic event, an explosion blast, and wind shear.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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OVERVIEW OF THE SELECTED REFERENCE CHARACTERS
(11) TABLE-US-00001 Pre-cast panel 110 Pre-cast panel width 112 Pre-cast panel distance from 114 pre-cast panel to structure Pre-cast panel to panel gap 116 Building floor 120 Perimeter Structural Beam 130 Bracket 140 Threaded Rod 150 Adjusting Nut 160 Bearing Connection 170 Crushing Tube 180 Coil Spring 200
DETAILED DESCRIPTION
(12) Referring to the figures wherein like reference numerals denote like structure throughout the specification the following representative embodiments are now described. The notation or characters A,B,C etc represent a repetition of the same element.
(13) Now referring to
(14) Now referring to
(15) Now referring to
(16) Now referring to
(17) Now referring to
(18) Now referring to
(19) Now referring to
(20)
(21) Table-1 given below shows variation of yield with load for an 8.0 inch crushing tube.
(22) TABLE-US-00002 TABLE 1 8 inches S.N Load PSI delta 1 500 100 0 2 1550 500 0 3 2850 1000 1/32 4 3550 1250 1/32 5 4175 1500 3/64 6 4850 1750 1/16 7 5500 2000 1/16 8 6800 2500 9 8175 3000 5/32 10 9450 3500 7/32 11 10750 4000 12 10750 4000 5/16 13 10750 4000 14 10750 4000 7/16 15 11400 4250 16 10750 4000 9/16 17 10750 4000 11/16 18 10750 4000 13/16 19 10750 4000 20 10750 4000 1 21 10750 4000 1 22 10750 4000 1
(23) Table-2 given below shows variation of yield with load for an 8.5 inch crushing tube.
(24) TABLE-US-00003 TABLE 2 8.5 inches S.N Load PSI delta 1 1550 500 0 2 2850 1000 0 3 4175 1500 1/32 4 4850 1750 1/16 5 5500 2000 1/16 6 6800 25000 3/32 7 8175 3000 8 9450 3500 3/16 9 10750 4000 10 11400 4250 5/16 11 11400 4250 12 11400 4250 13 11400 4250 14 11400 4100 15 11000 4000 15/16 16 10750 4000 1 1/16 17 10750 4000 1 3/16
(25) Table-3 given below shows variation of yield with load for a 9.0 inch crushing tube.
(26) TABLE-US-00004 TABLE 3 9.0 inches S.N Load PSI delta 1 1550 500 0 2 2850 1000 0 3 4175 1500 1/32 4 4850 1750 1/16 5 4850 2000 1/16 6 6800 2500 3/32 7 8175 3000 8 9450 3500 3/16 9 10750 4000 10 12050 4500 5/16 11 12050 4500 12 13400 5000 13 14041 5250 14 13400 5000 15 13400 5000 15/16 16 12700 4750 1 1/16 17 12700 4750 1 3/16
(27) The moment carrying capacity of a steel member Mp also called the plastic moment for the section of the tube wall can be calculated by the formula: M.sub.P=Fy (Yield Stress) *z (Plastic section modulus); M.sub.P=57,290*b*0.188.sup.2/4; M.sub.P=506*b: Where b=Tube Length.
(28) Further the yield load P on the whole tube can be calculated by the formula:
P*0.62=4M.sub.P(1/2.625), thus P=2.46M.sub.P
(29) By assuming a 10% over strength factor, P=1245.3*1.1*b=1370*b
(30) For b (Tube Length)=4 inches: P=5480 Pounds
(31) For b (Tube Length)=12 inches: P=16440 Pounds
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(33) Referring to Table-4 which represents the mill certificate showing the results for manufactured productASTM A500 GR B-2010, wherein T represents the thickness of the crushing tube as manufactured. All the material products were tested for variation in size, mechanical and chemical properties under various thermal conditions. A 0.188 inch thickness crushing tube was used as the base sample for comparison purposes. The mill certificate certifies the products to be of the desired good quality and indicates the yield strength of the specific material used for the crushing tube.
(34) TABLE-US-00005 TABLE 4 Tensile Y.P S.N Heat No. T L (psi) (psi) 1. 472005537 0.188 40 65,702 46,977 2. 473005414 0.250 20 67,008 47,853 3. 473005419 0.250 40 65,267 46,290 4. 473002067 0.188 20 70,199 57,290 5. 473002067 0.188 40 70,199 57,290 6. 473005414 0.250 20 67,008 47,863
(35) Persons skilled in the art will recognize that many modifications and variations are possible in the details, materials, and arrangements of the parts and actions which have been described and illustrated in order to explain the nature of this inventive concept and that such modifications and variations do not depart from the spirit and scope of the teachings and claims contained therein.
(36) All patent and non-patent literature cited herein is hereby incorporated by references in its entirety for all purposes.