Abstract This paper documents the experimental development of a new spandrel-to-column moment connection detail for progressive collapse resistance in precast concrete building frames. This study focuses on a 10-story prototype precast concrete frame building with perimeter special moment frames (SMF) that are subjected to a ground-floor column removal. The experimental subassembly represents a spandrel-to-column connection on the perimeter SMF near the middle of the building face (i.e. not at the corners). The connection is non-emulative and utilizes unbonded high-strength steel post-tensioning (PT) bars which pass through ducts in the column and are anchored to the spandrels via bearing plates. The proposed design strives for construction simplicity, avoids field welding and/or grouting, and maximizes ductility by allowing the high strength steel bars to act as structural “fuses” when yielding. A full-scale quasi-static pushdown test is performed on two variants of the proposed connection: one with higher moment-rotation capacity and limited ductility, and another with lower capacity and higher ductility. The results show that the connection can reliably achieve its design yield capacity, performs well under service level demands, and can achieve moderate-to-high ductility. The experimental results are then applied to a system-level computational model of the prototype building frame under a column removal scenario. The results of a nonlinear dynamic analysis demonstrate that the system can arrest progressive collapse in the event of a single column loss scenario when either variant of the proposed connection is considered.
[1]
Mark Fintel,et al.
A philosophy for structural integrity of large panel buildings
,
1976
.
[2]
Shalva Marjanishvili,et al.
COMPARISON OF VARIOUS PROCEDURES FOR PROGRESSIVE COLLAPSE ANALYSIS
,
2006
.
[3]
Shao-Bo Kang,et al.
Behaviour of precast concrete beam–column sub-assemblages subject to column removal
,
2015
.
[4]
Paresh V. Patel,et al.
Behavior of wet precast beam column connections under progressive collapse scenario: an experimental study
,
2014
.
[5]
Paresh V. Patel,et al.
Experimental Study on Precast Beam Column Connections Constructed Using RC Corbel and Steel Billet under Progressive Collapse Scenario
,
2015
.
[6]
Paul F. Mlakar,et al.
The Oklahoma City Bombing: Summary and Recommendations for Multihazard Mitigation
,
1998
.
[7]
Norbert J. Delatte,et al.
Ronan Point Apartment Tower Collapse and its Effect on Building Codes
,
2005
.
[8]
N. Null.
Minimum Design Loads for Buildings and Other Structures
,
2003
.
[9]
Fahim Sadek,et al.
An Experimental and Computational Study of Precast Concrete Moment Frames under a Column Removal Scenario
,
2015
.
[10]
L. K. Enstock,et al.
Measurement of impulse from the close-in explosion of doped charges using a pendulum
,
2007
.