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008 140403t2012 my a f m 000 0 eng d
020 _aTHE0006129(Local)
039 9 _a201905151543
_baida
_c201404091154
_dtraining4
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_dtraining4
_c201404031207
_dtraining4
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_ztraining4
040 _aUMP
090 _aTJ216.5 .E58 2012 rs Bc.
100 0 _aEnti Nashila Riazuddin
245 1 0 _aInput shaping and PID controller for rotary crane /
_cEnti Nashila Riazuddin
260 _aKuantan, Pahang :
_bUMP,
_c2012
300 _axviii, 96 p. :
_bill. ;
_c30 cm. + 1 CD-ROM
502 _aProject paper ( Bachelor of Electrical Engineering ( Electronics) ) -- Universiti Malaysia Pahang - 2012
504 _aBibilography : p. 84-87
520 3 _aThe rotary cranes are widely used in common industrial structures such as construction sites and automotive tracks to transfer loads and materials. The rotary crane controlling process is difficult without method because the motion expected to be faster. One of the current problems in industry and building construction is that rotary cranes became larger and higher. So they need to be faster to achieve acceptable transfer times. But unfortunately, rotary cranes with large structures that are moving at high speed are always associated undesirable payload oscillations resulting from the system dynamics. The purpose of controlling the rotary crane is transporting the load faster without causing any excessive swing at the final position. Rotary cranes have very strong structures in order to lift heavy payloads. The oscillations of the loads must be reduced to prevent hazards for people and equipment in the work place. In this work, two types of controllers are studied which is input shaping and PID controller. The input shaping controller and PID controller is developed to control the horizontal motion of pendulum and arm position in rotary cranes to reduce the sway angle of the rope to its set point during the transportation process and time response specification. It is developed to control the sway of load to correcting the radial and rotational motion of cranes and the oscillation damping PID controllers for damping the oscillation angles of the loads. LabVIEW and MATLAB software was used to develop input shaping and Proportional Integral Derivative (PID) controller and to simulate the system response. The simulation results demonstrate the effectiveness of the proposed method.
650 0 _aRotary crane
999 _aVIRTUA40
_c4611
_d4617
999 _aVTLSSORT0080*0200*0400*0900*1000*2450*2600*3000*5020*5040*5200*6500*9992