Guidance Scheme of Magnetic Nanoparticles with Artificial Potential Field

被引:0
|
作者
Kim, Yong-gyu [1 ]
Park, Ji-ho [1 ]
Yoon, Jungwon [1 ]
机构
[1] Gwangju Inst Sci & Technol, Sch Integrated Technol, 123 Cheomdangwagi Ro, Gwangju 61005, South Korea
关键词
Guidance; navigation; and control;
D O I
10.23919/ICCAS52745.2021.9650011
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
Targeted drug delivery (TDD) is performed using various different technologies such as micro-robots, encapsulation and nanoparticles. Among them, magnetic drug targeting has been developed as a plausible approach to significantly improve the efficiency of drug delivery. Although there have been many researches on the guidance of nanoparticles to a target area, it is still difficult to control the nanoparticles using magnetic force due to their small size, which makes their movements highly dependent on the environmental factors such as fluid flow. Therefore, this paper proposes a guidance scheme for nanoparticles using the artificial potential field, which is a powerful method used for path planning of mobile robots. Through this method, if the particles' initial positions and velocities are randomized; we can obtain an optimized trajectory by updating each particle's position vector. Moreover, by implementing the potential field as a magnetic force, the particle trajectory obtained through the simulation can be implemented in a real experiment. In the current research we have presented only an open loop control scheme. However, if we use a feedback device with a high enough resolution, for instance Magnetic Particle Imaging (MPI), the suggested scheme can enhance significantly the efficiency of drug delivery.
引用
收藏
页码:2086 / 2088
页数:3
相关论文
共 50 条
  • [21] Automatic Navigation Scheme for Micro-Robot Using Magnetic Potential Field Through Field Free Point
    Kim, Yonggyu
    Park, Myungjin
    Lee, Hosu
    Yoon, Jungwon
    IEEE ACCESS, 2024, 12 : 30135 - 30145
  • [22] The behavior of magnetic nanoparticles in liquid in magnetic field
    Kovalenko, V. F.
    Petrychuk, M. V.
    Moldovan, B. N.
    Antonyuk, O. A.
    Tkach, E. T.
    FUNCTIONAL MATERIALS, 2006, 13 (04): : 640 - 644
  • [23] Effect of magnetic nanoparticles on magnetic field homogeneity
    郭斯琳
    易文通
    李壮壮
    Chinese Physics B, 2023, 32 (05) : 224 - 228
  • [24] The heating of magnetic nanoparticles in a rotating magnetic field
    Usov, Nikolai A.
    Serebryakova, Olga N.
    Gubanova, Elizaveta M.
    NANOSCALE AND MICROSCALE THERMOPHYSICAL ENGINEERING, 2020, 24 (01) : 20 - 28
  • [25] Effect of magnetic nanoparticles on magnetic field homogeneity
    Guo, Si-Lin
    Yi, Wen-Tong
    Li, Zhuang-Zhuang
    CHINESE PHYSICS B, 2023, 32 (05)
  • [26] A unification of artificial potential function guidance and optimal trajectory planning
    Henshaw, CG
    Guidance and Control 2005, 2005, 121 : 219 - 233
  • [27] Autonomous Collision Avoidance Method Based on improved Artificial Potential Field in the Traffic Separation Scheme waters
    Guo, Shiyu
    Lyu, Hongguang
    Liu, Wei
    Fu, Chunda
    SEVENTH INTERNATIONAL CONFERENCE ON TRAFFIC ENGINEERING AND TRANSPORTATION SYSTEM, ICTETS 2023, 2024, 13064
  • [28] TECTONIC MODELLING IN AN ARTIFICIAL MAGNETIC FIELD
    LUCHITSK.IV
    BONDAREN.PM
    DOKLADY AKADEMII NAUK SSSR, 1967, 174 (05): : 1173 - &
  • [29] Chains of artificial atoms in a magnetic field
    Díaz, JG
    Planelles, J
    JOURNAL OF PHYSICAL CHEMISTRY B, 2004, 108 (09): : 2873 - 2879
  • [30] An Artificial Potential Field Model with Constraints
    Li Xiang
    Xing Qinghua
    Dong Tao
    PROCEEDINGS OF THE 31ST CHINESE CONTROL CONFERENCE, 2012, : 4680 - 4683