图书简介
This third of three volumes includes papers from the second series of NODYCON, which was held virtually in February of 2021. The conference papers reflect a broad coverage of topics in nonlinear dynamics, ranging from traditional topics from established streams of research to those from relatively unexplored and emerging venues of research. These include· Complex dynamics of COVID-19: modeling, prediction and control · Nonlinear phenomena in bio-systems and eco-systems · Energy harvesting · MEMS/NEMS · Multifunctional structures, materials and metamaterials · Nonlinear waves · Chaotic systems, stochasticity, and uncertainty
Chapter 1. Prediction and control of the impact of the onset of influenza season on the spread of COVID-19.- Chapter 2. A fractional order age-structured generalized SEIR model: The role of COVID-19 Symptom Data Challenge dataset.- Chapter 3. Dynamical analysis of a COVID-19 epidemic model with social confinement and acquired immunity loss.- Chapter 4. A cooperative epidemiological model of infectious disease dynamics: A COVID-19 case study.- Chapter 5. Dynamic analysis of a three-strain COVID-19 SEIR epidemic model with general incidence rates.- Chapter 6. Nonlinear phenomena and chaos in a tumor growth model.- Chapter 7. Modeling limbic seizure initiation with an ensemble of delay coupled neorooscillators.- Chapter 8. Mathematical modeling of calcium-mediated exosomal dynamics in neural cells.- Chapter 9. Forward sensitivity analysis of the FitzHugh-Nagumo system.- Chapter 10. Electromagnetic induction on neurons through field coupling and Memristor.- Chapter 11. Variable speed optimization of a vibro-impact capsule system in both the forward and backward directions.- Chapter 12. Finite element modelling of a vibro-impact capsule moving in the small intestine.- Chapter 13. Vibro-impact capsule under different conditions of friction.- Chapter 14. Modeling the Fear induced Spatiotemporal dynamics of three-species Agroecosystems.- Chapter 15. Optimal control in a size structured population model with time dependent diffusion rate.- Chapter 16. On energy harvesting with time-varying frequency by using magneto piezo elastic oscillators with memory.- Chapter 17. Galloping piezoelectric energy harvester for low wind speed.- Chapter 18. Nonlinear resonator based metastructures for vibration attenuation and energy harvesting.- Chapter 19. Dynamic modeling for a mechatronic energy harvesting shock absorbers.- Chapter 20. Bistable electromagnetic energy harvesting enhanced with a resonant circuit.- Chapter 21. An internally-resonant tunable generator for wave energy harvesting.- Chapter 22. Nonlinear dynamics analysis of electric energy regeneration device based on vibration energy recovery.- Chapter 23. Harvesting energy from 2D-array of harvesters.- Chapter 24. Generalized energy balanced method for a combined nonlinear vibration absorber energy harvester with nonlinear energy sink.- Chapter 25. Nonlinear reduced order modelling of a buckled piezoelectric beam for energy harvesting.- Chapter 26. Full-order frequency-domain simulations of nonlinear piezoelectric MEMS.- Chapter 27. Global analysis and experimental dynamics of the 2:1 internal resonance in the higher-order modes of a MEMS microbeam.- Chapter 28. Nonlinear dynamics of NEMS/MEMS elements in the form of beams taking into account the temperature field,radiation exposure,elastoplastic deformations.- Chapter 29. Single input single output MEMS gas sensor.- Chapter 30. Numerical study of acoustic radiation forces to contactless excite a microcantilever.- Chapter 31. Approximate solutions to axial vibrations of nanobars in nonlinear elastic medium.- Chapter 32. Nonlinear modeling for thermal behavior on power integrated circuits.- Chapter 33. Modeling asymmetric hysteresis inspired and validated by experimental data.- Chapter 34. Forced transversal vibrations of von Karman plates with distributed spring-masses.- Chapter 35. Nonlinear natural frequencies of functionally graded axisymmetric annular microplates based on the modified couple stress theory.- Chapter 36. The development of a coupled dynamic model for thermoelastically loaded aluminium composite sandwich plates for satellite applications.- Chapter 37. On the vibration attenuation properties of metamaterial design using negative stiffness elements.- Chapter 38. Long-range resonator-based metamaterials.- Chapter 39. KdV, extended KdV, 5th-order KdV and Gardner equations generalized for uneven bottom versus corresponding Bo
Trade Policy 买家须知
- 关于产品:
- ● 正版保障:本网站隶属于中国国际图书贸易集团公司,确保所有图书都是100%正版。
- ● 环保纸张:进口图书大多使用的都是环保轻型张,颜色偏黄,重量比较轻。
- ● 毛边版:即书翻页的地方,故意做成了参差不齐的样子,一般为精装版,更具收藏价值。
关于退换货:
- 由于预订产品的特殊性,采购订单正式发订后,买方不得无故取消全部或部分产品的订购。
- 由于进口图书的特殊性,发生以下情况的,请直接拒收货物,由快递返回:
- ● 外包装破损/发错货/少发货/图书外观破损/图书配件不全(例如:光盘等)
并请在工作日通过电话400-008-1110联系我们。
- 签收后,如发生以下情况,请在签收后的5个工作日内联系客服办理退换货:
- ● 缺页/错页/错印/脱线
关于发货时间:
- 一般情况下:
- ●【现货】 下单后48小时内由北京(库房)发出快递。
- ●【预订】【预售】下单后国外发货,到货时间预计5-8周左右,店铺默认中通快递,如需顺丰快递邮费到付。
- ● 需要开具发票的客户,发货时间可能在上述基础上再延后1-2个工作日(紧急发票需求,请联系010-68433105/3213);
- ● 如遇其他特殊原因,对发货时间有影响的,我们会第一时间在网站公告,敬请留意。
关于到货时间:
- 由于进口图书入境入库后,都是委托第三方快递发货,所以我们只能保证在规定时间内发出,但无法为您保证确切的到货时间。
- ● 主要城市一般2-4天
- ● 偏远地区一般4-7天
关于接听咨询电话的时间:
- 010-68433105/3213正常接听咨询电话的时间为:周一至周五上午8:30~下午5:00,周六、日及法定节假日休息,将无法接听来电,敬请谅解。
- 其它时间您也可以通过邮件联系我们:customer@readgo.cn,工作日会优先处理。
关于快递:
- ● 已付款订单:主要由中通、宅急送负责派送,订单进度查询请拨打010-68433105/3213。
本书暂无推荐
本书暂无推荐