Enhancing the performance characteristics of Tuned Mass Dampers (TMDs), in particular extending their narrow frequency band of operation, has been the subject of many researches. In the adaptive type of TMDs, the device's properties can be adjusted gradually in response to a slight alteration in the excitation characteristics and physical properties of the main structure. A novel vibration absorbing system, namely Active Tendon Pendulum TMD (AT-PTMD), is proposed in the present study. The device consists of a simple pendulum whose horizontal movement is restricted by a tendon with an adjustable tensile force which is attached to the pendulum's rod. The device is designed and formulated, and its efficiency is assessed numerically and experimentally. For this purpose, a 3-degree of freedom structure is considered. Scrutinizing the responses of the uncontrolled, passively controlled and actively controlled structure shows the appropriate performance of the AT-PTMD in comparison with the passive TMD system in transient vibration reduction, particularly in reducing the total vibrational energy of the structure's response. Considering the achieved results, the proposed AT-PTMD system is capable of reducing the maximum displacement and acceleration of the main structure up to 43% and 37%, respectively, which substantiates its excellence over the common passive vibration absorbing devices. The case study also proves that the utilized mechanism for adjusting the equivalent stiffness of AT-PTMD increases its operating frequency range by 105% compared to common TMDs. Unlike active structural control systems, the suggested approach will not induce structural instability in any operating mode.
机构:
Dongguk Univ, Dept Mech Robot & Energy Engn, 30 Pildong Ro 1 Gil, Seoul 04620, South KoreaDongguk Univ, Dept Mech Robot & Energy Engn, 30 Pildong Ro 1 Gil, Seoul 04620, South Korea
Shin, Ji-Hwan
Kwak, Moon K.
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Dongguk Univ, Dept Mech Robot & Energy Engn, 30 Pildong Ro 1 Gil, Seoul 04620, South KoreaDongguk Univ, Dept Mech Robot & Energy Engn, 30 Pildong Ro 1 Gil, Seoul 04620, South Korea
Kwak, Moon K.
Kim, Soo-Min
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Dongguk Univ, Dept Mech Robot & Energy Engn, 30 Pildong Ro 1 Gil, Seoul 04620, South KoreaDongguk Univ, Dept Mech Robot & Energy Engn, 30 Pildong Ro 1 Gil, Seoul 04620, South Korea
Kim, Soo-Min
Baek, Kwang-Hyun
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Dankook Univ, Dept Mech Engn, 152 Jukjeon Ro, Yongin 16890, Gyeonggi Do, South KoreaDongguk Univ, Dept Mech Robot & Energy Engn, 30 Pildong Ro 1 Gil, Seoul 04620, South Korea
机构:
Southeast Univ, China Pakistan Belt & Rd Joint Lab Smart Disaster, Nanjing, Peoples R China
Southeast Univ, Sch Civil Engn, Nanjing, Peoples R ChinaSoutheast Univ, China Pakistan Belt & Rd Joint Lab Smart Disaster, Nanjing, Peoples R China
Dai, Jun
Xu, Zhao-Dong
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Southeast Univ, China Pakistan Belt & Rd Joint Lab Smart Disaster, Nanjing, Peoples R China
Southeast Univ, Sch Civil Engn, Nanjing, Peoples R ChinaSoutheast Univ, China Pakistan Belt & Rd Joint Lab Smart Disaster, Nanjing, Peoples R China
Xu, Zhao-Dong
Dyke, Shirley J.
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Purdue Univ, Sch Mech Engn, W Lafayette, IN 47907 USA
Purdue Univ, Lyles Sch Civil Engn, W Lafayette, IN 47907 USASoutheast Univ, China Pakistan Belt & Rd Joint Lab Smart Disaster, Nanjing, Peoples R China