Connector for use in inter-panel connection between shear wall elements
10787832 ยท 2020-09-29
Assignee
Inventors
Cpc classification
E04C5/0645
FIXED CONSTRUCTIONS
E04C5/02
FIXED CONSTRUCTIONS
E04H9/021
FIXED CONSTRUCTIONS
E04C3/18
FIXED CONSTRUCTIONS
E04C5/06
FIXED CONSTRUCTIONS
International classification
E04C3/18
FIXED CONSTRUCTIONS
E04H9/14
FIXED CONSTRUCTIONS
E04C5/06
FIXED CONSTRUCTIONS
Abstract
An apparatus to connect two mass timber (CLT, LVL, or other configurations) shear wall panels, comprising a high load deformation capacity steel connector, wherein the connector comprises a high stiffness that shifts to a low stiffness during a high intensity earthquake or significant wind loading event.
Claims
1. An apparatus comprising: a substantially rectangular steel plate to be placed within a void along a vertical edge of a first of two mass timber shear wall panels and within a collocated void along an abutted vertical edge in a second of the two mass timber shear wall panels, wherein the substantially rectangular steel plate: has an initial stiffness in the absence of being subjected to an earthquake; maintains the initial stiffness when subjected to an earthquake that is less than a service level earthquake or a wind event that is less than an ultimate wind event so that when the substantially rectangular steel plate is placed within the void along the vertical edge of the first of the two mass timber shear wall panels and within the collocated void along the abutted vertical edge in the second of the two mass timber shear wall panels the two mass timber shear wall panels move together as a single body; and decreases in stiffness through ductile deformation of the substantially rectangular steel plate when subjected to an earthquake that is equal to or greater than the service level earthquake or a wind event that is equal to or greater than the ultimate wind event so that when the substantially rectangular steel plate is placed within the void along the vertical edge of the first of the two mass timber shear wall panels and within the collocated void along the abutted vertical edge in the second of the two mass timber shear wall panels the two mass timber shear wall panels move independently with respect to each other.
2. The apparatus of claim 1, further comprising: a second substantially rectangular steel plate to be placed within a second void along the vertical edge of the first of the two mass timber shear wall panels and within a second collocated void along the abutted vertical edge in the second of the two mass timber shear wall panels, wherein the second substantially rectangular steel plate: has an initial stiffness in the absence of being subjected to an earthquake; maintains the initial stiffness when subjected to an earthquake that is less than a service level earthquake or a wind event that is less than an ultimate wind event so that the two mass timber shear wall panels move together as a single body; and decreases in stiffness through ductile deformation of the second substantially rectangular steel plate when subjected to an earthquake that is equal to or greater than the service level earthquake or a wind event that is equal to or greater than the ultimate wind event so that the two mass timber shear wall panels move independently with respect to each other.
3. The apparatus of claim 1, wherein the service level earthquake comprises ground shaking represented by an elastic, 2.5%-damped, acceleration response spectrum that has a mean return period of 43 years, approximately equivalent to a 50% exceedance probability in 30 years.
4. The apparatus of claim 1, wherein the ultimate wind loading event comprises a wind loading event with an ultimate 3-second gust wind speed.
5. The apparatus of claim 1, wherein a measure of a displacement of the two mass timber shear wall panels when the two mass timber shear wall panels move independently with respect to each other is in a range of 4-6% of lateral displacement per height of the two mass timber shear wall panels.
6. The apparatus of claim 1 wherein the substantially rectangular steel plate, when subjected to the earthquake that is equal to or greater than service level earthquake or a wind event that is equal to or greater than ultimate wind event so that when the substantially rectangular steel plate is placed within the void along the vertical edge of the first of the two mass timber shear wall panels and within the collocated void along the abutted vertical edge in the second of the two mass timber shear wall panels the two mass timber shear wall panels move independently with respect to each other, achieves a low stiffness plastic state that allows each of the two mass timber shear wall panels to rotate or rock about a respective base connection point.
7. The apparatus of claim 1, wherein the substantially rectangular steel plate that decreases in stiffness through ductile deformation of the substantially rectangular steel plate when the substantially rectangular steel plate is placed within the void along the vertical edge of the first of the two mass timber shear wall panels and within the collocated void along the abutted vertical edge in the second of the two mass timber shear wall panels decreases in stiffness by buckling to allow each of the two mass timber shear wall panels to rotate or rock about a respective base connection point.
8. The apparatus of claim 1, wherein the substantially rectangular steel plate when placed within the void along the vertical edge of the first of the two mass timber shear wall panels and within the collocated void along the abutted vertical edge in the second of the two mass timber shear wall panels achieves a clearly defined load at which the substantially rectangular steel plate changes from the initial stiffness to the decreased stiffness to allow displacement of a wall comprising the two mass timber shear wall panels when subjected to the earthquake that is equal to or greater than the service level earthquake or the wind event that is equal to or greater than the ultimate wind event.
9. The apparatus of claim 8, wherein the clearly defined load is a proportional limit of the substantially rectangular steel plate where a linear-elastic yield strain of metal in the substantially rectangular steel plate is attained and beyond which a non-linear inelastic strain develops in the metal of the substantially rectangular steel plate.
10. The apparatus of claim 9, wherein the proportional limit of the substantially rectangular steel plate is a force level of approximately 2 kips.
11. The apparatus of claim 1, wherein the substantially rectangular steel plate that decreases from the initial stiffness through ductile deformation of the substantially rectangular steel plate comprises steel leaves in the substantially rectangular steel plate that provide the initial stiffness in the substantially rectangular steel plate beginning to buckle and yield to provide the decrease in stiffness in the substantially rectangular steel plate.
12. The apparatus of claim 1, wherein the substantially rectangular steel plate has a plurality of substantially parallel slots, wherein each of the plurality of substantially parallel slots of the substantially rectangular steel plate has a width at a midpoint of the slot that is greater than a width at either of an end of the slot by which the slot is tapered from the midpoint to either end of the slot, and wherein the substantially rectangular steel plate having the initial stiffness that decreases through ductile deformation of the substantially rectangular steel plate comprises the substantially rectangular steel plate having the initial stiffness that decreases through buckling of the substantially rectangular steel plate about the plurality of substantially parallel slots of the substantially rectangular steel plate.
13. The apparatus of claim 1, wherein the substantially rectangular steel plate has a plurality of substantially parallel slots, wherein the plurality of substantially parallel slots of the substantially rectangular steel plate are oriented horizontally, and wherein the substantially rectangular steel plate to be placed within the two mass timber shear wall panels along respective abutted vertical edges of the mass timber shear wall panels is positioned, when in place, such that the abutted vertical edges of the mass timber shear wall panels are at a midpoint of each of the plurality of substantially parallel slots of the substantially rectangular steel plate.
14. An apparatus comprising: a first substantially rectangular steel plate to be placed within a void along a vertical edge of a first of two mass timber shear wall panels and within a collocated void along an abutted vertical edge in a second of the two mass timber shear panels, wherein the first substantially rectangular steel plate: has a plurality of substantially parallel slots, each of which is tapered from a midpoint of the slot to an end of the slot; has an initial stiffness in an absence of being subjected to an earthquake; maintains the initial stiffness when subjected to an earthquake that is less than a service level earthquake or a wind event that is less than an ultimate wind event so that when the first substantially rectangular steel plate is placed within the void along the vertical edge of the first of the two mass timber shear wall panels and within the collocated void along the abutted vertical edge in the second of the two mass timber shear wall panels the two mass timber shear wall panels move together as a single body; and decreases in stiffness through buckling of the substantially rectangular steel plate about the plurality of substantially parallel slots of the substantially rectangular steel plate when subjected to an earthquake that is equal to or greater than the service level earthquake or wind event that is equal to or greater than the ultimate wind event so that when the first substantially rectangular steel plate is placed within the void along the vertical edge of the first of the two mass timber shear wall panels and within the collocated void along the abutted vertical edge in the second of the two mass timber shear wall panels the two mass timber shear wall panels move independently with respect to each other.
15. An apparatus comprising: a first, and a second, substantially rectangular steel plate, a first portion of the first, and the second, substantially rectangular steel plate to be embedded within a first of two adjacent mass timber shear wall panels, and a second portion of the first, and the second, substantially rectangular steel plate to be embedded within a second of the two adjacent mass timber shear wall panels, wherein each substantially rectangular steel plate: has an initial stiffness in an absence of being subjected to an earthquake; maintains the initial stiffness when subjected to an earthquake that is less than a service level earthquake or a wind event that is less than an ultimate wind event so that when the respective first portion of the first, and the second, substantially rectangular steel plates, and the respective second portion of the first, and the second, substantially rectangular steel plates are embedded within the first and the second of the two adjacent mass timber shear wall panels the two mass timber shear wall panels move together as a single body; and decreases in stiffness through ductile deformation of the substantially rectangular steel plate when subjected to an earthquake that is equal to or greater than the service level earthquake or a wind event that is equal to or greater than the ultimate wind event so that when the respective first portion of the first, and the second, substantially rectangular steel plates, and the respective second portion of the first, and the second, substantially rectangular steel plates are embedded within the first and the second of the two adjacent mass timber shear wall panels the two mass timber shear wall panels move independently with respect to each other.
16. The apparatus of claim 15, wherein a first volume of panel material is removed from the first mass timber shear wall panel to make room for the first portion of the first substantially rectangular steel plate to be embedded within the first mass timber shear wall panel, wherein a second volume of panel material is removed from the first mass timber shear wall panel to make room for the first portion of the second substantially rectangular steel plate to be embedded within the first mass timber shear wall panel, and wherein the first portion of the first, and the second, substantially rectangular steel plates to be embedded within the first mass timber shear wall panel, comprises the first portion of the first, and the second, substantially rectangular steel plates to be embedded within the respective first and second volumes of panel material that are removed from the first mass timber wall panel.
17. The apparatus of claim 16, wherein the first and second volumes of panel material that are removed from the first mass timber shear wall panel comprises a respective removed first and second volumes of panel material greater in width, and length, of the first portion of the first and second substantially rectangular steel plates to be embedded within the mass timber sheer wall panel.
18. The apparatus of claim 17, wherein a depth of the volume of panel material that is removed from the first mass timber shear wall panel is equal to or greater than a thickness of the respective first and second substantially rectangular steel plates.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Embodiments are illustrated by way of example, and not by way of limitation, and can be more fully understood with reference to the following detailed description when considered in connection with the figures in which:
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DETAILED DESCRIPTION
(17) Embodiments of the invention involve a connector to join two mass timber shear wall panels (or simply mass timber panels) that performs acceptably during a seismic event such as an earthquake or high wind load. Embodiments of the connector should be easy to install, and easily replaced after the building experiences a seismic event, to allow the building to be more easily erected and easier to repair following the seismic event. In one embodiment of the invention, the connector has high initial stiffness to minimize wall racking displacement under low and moderate intensity earthquakes. (Racking resistance of wood shear walls is a major factor in determining the response of the shear walls to wind and seismic forces; the less resistance, the greater the racking displacement. When a wall panel is subjected to a racking force, the connectors distort, and the racking force imposes a horizontal displacement on the lateral system).
(18) One embodiment of the invention achieves a clearly defined load at which the stiffness of the connector changes from a high initial stiffness to a low stiffness to allow high displacement capacity of a wall comprising mass timber shear panels when the building is subjected to a significant seismic event. The clearly defined load is the proportional limit of the connector where the linear-elastic yield strain of metal is attained and beyond which non-linear inelastic strains develop. In one embodiment, the ideal performance of the connector yields an elastic (reversible)-plastic (irreversible) load-deflection curve for an envelope curve. A representative curve is illustrated in the chart 600 of
(19) In structural engineering, a shear wall is a structural system composed of rigid wall panels (also known as shear panels) to counter the effects of in-plane lateral load acting on a structure. Wind and seismic loads are the most common loads that shear walls are designed to carry. Under several building codes, including the International Building Code (where it is called a bearing or frame wall line) the designer is responsible for engineering an appropriate quantity, length, and arrangement of shear wall lines in both orthogonal directions of the building to safely resist the imposed lateral loads. Shear walls can located along the exterior of the building, within the interior of the building or a combination of both.
(20) Plywood sheathing is the conventional material used in wood (timber) stud framed shear walls, but with advances in technology and modern building methods, other prefabricated options have made it possible to insert multi-story shear panel assemblies into narrow openings within the building floor plate or at the exterior face of the floor plate. Mass timber shear panels in the place of structural plywood in shear walls has proved to provide stronger seismic resistance.
(21) With reference to
(22) The mass timber wall panels 105A, 105B stand on a base support 120, e.g., a top edge of a lower story wall (such as a mass timber panel), or a foundation, for example, a foundation wall, a ground level floor, or upper story floor. The mass timber wall panels 105A, 105B are each connected to the base support 120 by a respective tie-down 110A, 110B. In one embodiment, the wall panels extend vertically one or more stories or levels from base support 120. Generally speaking, in one embodiment, the wall panels are rectangular, with dimensions greater in height than in width. In one embodiment, the wall panels 105A, 105B are centrally supported on base support 120 at the location of a tie-down 110A, 110B. In other words, each wall panel 105A, 105B is coupled to the base support 120 by a tie-down 110A, 110B, and the tie down is located equidistant from the left and right vertical edges of the wall panel. Essentially, the wall panel is balanced on the supporting tie-down. During a low intensity seismic or other loading event the adjacent wall panels can rock to one side or the other, and back again as a rigid unit (as illustrated in
(23) A service level earthquake, or service level earthquake shaking, may be defined as ground shaking represented by an elastic, 2.5%-damped, acceleration response spectrum that has a mean return period of 43 years, approximately equivalent to a 50% exceedance probability in 30 years. As for ultimate wind events, over the years, wind speed maps have changed from fastest mile to 3-second gust and then to ultimate 3-second gust wind speeds. A comparison of American Society of Civil Engineers (ASCE) 7-93 (fastest mile) wind speeds, ASCE 7-05 (3-second gust) ASD wind speeds, and ASCE 7-10 (3-second gust) ultimate wind speeds is provided in Table C26.5-6 of the ASCE 7-10 commentary.
(24) Regarding the embodiment illustrated in
(25) In one embodiment, an interlocking shear key 706A, 706B is located at the lower left and right corners of the connector 700. A connector can be stacked on top of/above another connector, so that shear keys 706A, 706B of the connector on top fit into recesses 707A, 707B located at the upper left and right corners of the connector below. The keys interlock the stacked connector plates together to increase stiffness/performance as if it were one continuous steel plate element.
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(27) The connector 800 was modeled using ABAQUS in an iterative procedure, with several refinements to improve the overall performance. It is believed that the performance of the connector is dependent on the thickness of the steel plate, the overall length of the individual leaves 805 (4 inches in
(28) The above described embodiments, place the connectors on opposing outside faces of the mass wall panels. Under small to medium racking deformations the plate metal elements are stabilized from rotating or buckling out-of-plane by bearing against the wooden panels. At large racking deformations and high strains, the individual metal plate elements are allowed to rotate out of plane. These connectors are depicted as relatively thin, perforated, metal sheets that are attached to the wall segments (i.e., nailed, bolted, or screwed, etc.), at a plurality of locations or otherwise attached or adhesively bonded to adjacent wall panels 105A and 105B. In one embodiment, the metal sheets are comprised of sheet steel product manufactured to ASTM A1011, but the steel alloy can be changed and the relative dimensions of the connector can be modified to compensate for the change in mechanical properties.
(29) An alternative embodiment 200 of a mass timber-to-mass timber wall connector 101 is illustrated in
(30) In another embodiment 400, with reference to
(31) According to one embodiment 500, with reference to
(32) A connector according to an embodiment of the invention is envisioned to be developed like a widget, similar to products manufactured by Simpson Strong-Tie. The manufacturer of the connector will pre-qualify through testing a range of suitable connectors. A designer first designs a wall for a building and determines the mass timber panels require a certain amount of shear force capacity on the inter-panel seam for the wall. The designer then specifies how many connectors and what size are required to meet the wall design. It is envisioned that the connectors in various sizes and shapes are available for viewing via website or catalog, and the designer selects a number of connectors of appropriate size and shape. These connectors are then attached to the two panels in the field as the building is being erected. In one embodiment, one or more connectors are attached according to such factors as the dimensions and strength of the connectors, and the dimensions of the mass timber wall panels. In one embodiment, a minimum total cumulative length of the attached connectors, in a vertical direction, is met or exceeded, based on such factors as the dimensions and weight of the mass timber wall panels, and various building codes and zoning codes.
(33) Although embodiments of the invention have been described and illustrated in the foregoing illustrative embodiments, it is understood that present disclosure has been made only by way of example, and that numerous changes in the details of implementation of the invention can be made without departing from the spirit and scope of embodiments of the invention, which is only limited by the claims that follow. Features of the disclosed embodiments can be combined and rearranged in various ways.