振动与冲击
振動與遲擊
진동여충격
JOURNAL OF VIBRATION AND SHOCK
2014年
23期
173-178,189
,共7页
肖同亮%邱洪兴%陶欣%孙建%陈春超
肖同亮%邱洪興%陶訢%孫建%陳春超
초동량%구홍흥%도흔%손건%진춘초
钢-玄武岩纤维复合筋%混凝土框架结构%时程分析%二次刚度%非线性响应
鋼-玄武巖纖維複閤觔%混凝土框架結構%時程分析%二次剛度%非線性響應
강-현무암섬유복합근%혼응토광가결구%시정분석%이차강도%비선성향응
steel-basalt fiber composite bars%reinforced concrete (RC )frames%time history analysis%post-yield stiffness%nonlinear response
钢-纤维复合筋是一种耐腐蚀、具有稳定二次刚度等特性的新型结构材料。开展了钢-玄武岩纤维复合筋混凝土框架结构的非线性地震反应研究工作,由复合筋的应力-应变本构关系出发,利用修正Gauss-Radau积分法推导了杆件单元柔度矩阵,并用于框架结构非线性时程响应分析。参考现行规范设计了一个8度区的普通钢筋混凝土多层框架结构和一个对比钢-玄武岩纤维复合筋混凝土框架结构,比较了两个结构在相同地震输入下结构自振周期变化率、非线性时程响应和杆端出铰时间和位置等抗震性能指标。结果表明:在多遇和罕遇地震动输入下,配置钢-玄武岩纤维复合筋混凝土框架结构的最大弹塑性位移与层间转角等指标比普通钢筋的框架结构有所减小;在罕遇水准的地面运动输入下结构自振周期变化率小于RC框架结构,结构刚度退化和损伤程度更小;杆端出铰时间相对更晚、数量更少且更易形成梁铰塑性耗能机制。钢-玄武岩纤维复合筋可充分利用材料的强度,通过合理配置钢筋与玄武岩纤维的比例能够有效控制框架结构的塑性变形、减小结构残余位移,从而减小重力二阶效应对柱的不利影响,改善结构在大震下的性能,确保大震不倒的安全性能目标。
鋼-纖維複閤觔是一種耐腐蝕、具有穩定二次剛度等特性的新型結構材料。開展瞭鋼-玄武巖纖維複閤觔混凝土框架結構的非線性地震反應研究工作,由複閤觔的應力-應變本構關繫齣髮,利用脩正Gauss-Radau積分法推導瞭桿件單元柔度矩陣,併用于框架結構非線性時程響應分析。參攷現行規範設計瞭一箇8度區的普通鋼觔混凝土多層框架結構和一箇對比鋼-玄武巖纖維複閤觔混凝土框架結構,比較瞭兩箇結構在相同地震輸入下結構自振週期變化率、非線性時程響應和桿耑齣鉸時間和位置等抗震性能指標。結果錶明:在多遇和罕遇地震動輸入下,配置鋼-玄武巖纖維複閤觔混凝土框架結構的最大彈塑性位移與層間轉角等指標比普通鋼觔的框架結構有所減小;在罕遇水準的地麵運動輸入下結構自振週期變化率小于RC框架結構,結構剛度退化和損傷程度更小;桿耑齣鉸時間相對更晚、數量更少且更易形成樑鉸塑性耗能機製。鋼-玄武巖纖維複閤觔可充分利用材料的彊度,通過閤理配置鋼觔與玄武巖纖維的比例能夠有效控製框架結構的塑性變形、減小結構殘餘位移,從而減小重力二階效應對柱的不利影響,改善結構在大震下的性能,確保大震不倒的安全性能目標。
강-섬유복합근시일충내부식、구유은정이차강도등특성적신형결구재료。개전료강-현무암섬유복합근혼응토광가결구적비선성지진반응연구공작,유복합근적응력-응변본구관계출발,이용수정Gauss-Radau적분법추도료간건단원유도구진,병용우광가결구비선성시정향응분석。삼고현행규범설계료일개8도구적보통강근혼응토다층광가결구화일개대비강-현무암섬유복합근혼응토광가결구,비교료량개결구재상동지진수입하결구자진주기변화솔、비선성시정향응화간단출교시간화위치등항진성능지표。결과표명:재다우화한우지진동수입하,배치강-현무암섬유복합근혼응토광가결구적최대탄소성위이여층간전각등지표비보통강근적광가결구유소감소;재한우수준적지면운동수입하결구자진주기변화솔소우RC광가결구,결구강도퇴화화손상정도경소;간단출교시간상대경만、수량경소차경역형성량교소성모능궤제。강-현무암섬유복합근가충분이용재료적강도,통과합리배치강근여현무암섬유적비례능구유효공제광가결구적소성변형、감소결구잔여위이,종이감소중력이계효응대주적불리영향,개선결구재대진하적성능,학보대진불도적안전성능목표。
Steel-fiber-reinforced polymer composite bar (SFCB)is a new kind of reinforcing material.It has some excellent properties,such as,corrosion-resistance and stable post-yield stiffness.Here,the nonlinear seismic response analysis of a steel-basalt fiber composite bars concrete frame was performed including deducing the flexibility matrix of the bar element based on Gauss-Radau integral method and using this matrix for nonlinear time history response analysis of the frame structure.A RC frame and a corresponding SFCB concrete frame were designed in na area subjected to 8 earthquake according to the current code for design of concrete structures.Their aseismic performance indexes,including rates of natural vibration period,nonlinear time history response,and when and where the plastic hinge emerged were compared. The results showed that the SFCB frame has smaller interlayer displacement angle and maximum elasto-plastic displacement than the RC frame does under the frequent and rare earthquake ground motions;under the rare earthquake ground motion,the SFCB frame has a smaller rate of natural vibration period than the RC frame does,with even slighter stiffness degradation and damage level;furthermore,fewer plastic hinges appear at the ends of the members in the SFCB frame at a relatively later time,it is easier to form the beam-hinge plastic energy dissipation mechanism;the steel-basalt fiber composite bars can make full use of the strength of materials by appropriately deploying steel bar and basalt fiber to effectively control the plastic deformation of the frame and decrease the residual displacement of the frame structure,and thus to reduce the gravity second-order effect on columns and improve the aseismic performance of the whole structure.