Title :
Research for the Crane Boom Length Coefficient Considering the Tower Head Flexibility in Rotary Plane
Author :
Guangyun, Zhang ; Peng, Lan ; Nianli, Lu
Author_Institution :
Sch. of Mechatron. Eng., Harbin Inst. of Technol., Harbin, China
Abstract :
When the crane boom length in rotary plane is determined, the traditional methods only consider support condition, non-uniform, boom end lateral displacement constraint effect of amplitude dragline and hoist rope tensile forces. Ignoring tower head elastic deformation will cause false analysis results. The feasible method is following: not only consider support condition, non-uniform, boom end lateral displacement constraint effect of amplitude dragline and hoist rope tensile forces but also consider the tower head flexibility. The tower crane boom in-of-rotary-plane stability is studied, which has a flexible tower head and rope end displacement constraint. By the equivalent elastic support method, the small deflection buckling differential equation of the tower boom with non-conservative loading is established in critical condition. According to the buckling boundary conditions, the expressions for the deflection curve, Euler critical load and length coefficient of the crane boom are obtained in rotary plane after considering the tower head flexibility. Taking a constant section and length boom as an example, the tower head flexibility effect on the length coefficient is analyzed in rotary plane. In the same working case, the boom length coefficient after considering tower head flexibility is larger than the length coefficient without considering tower head flexibility in rotary plane. The worse the tower head rigidity, the larger the boom length coefficient in rotary plane.
Keywords :
buckling; cranes; differential equations; elastic deformation; hoists; mechanical stability; ropes; shear modulus; tensile strength; Euler critical load; amplitude dragline; buckling; crane boom length coefficient; differential equation; elastic deformation; hoist rope; in-of-rotary-plane stability; lateral displacement constraint effect; rigidity; rotary planes; tensile forces; tower head flexibility; Cranes; Differential equations; Force; Magnetic heads; Mathematical model; Poles and towers; Stability analysis; Equivalent elastic support method; Length coefficient; Non-conservative loading; Rotary plane; Tower head flexibility;
Conference_Titel :
Measuring Technology and Mechatronics Automation (ICMTMA), 2011 Third International Conference on
Conference_Location :
Shangshai
Print_ISBN :
978-1-4244-9010-3
DOI :
10.1109/ICMTMA.2011.543