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设计方法为低功率,低电压无感应器的楚亚混沌振荡器
Chandan Kumar Choubey1, Amit Gupta2, Aruna Pathak3
1Symbiosis Institute of Technology, Pune Campus, Symbiosis International (Deemed University), Pune, Maharashtra, India.
MethodsX
|June 12, 2025
概括
这项研究介绍了一个低功率,低电压的Chua.
科学领域:
- 电子 电子 电子 电子 电子 电子 电子
- 非线性动力学是一种非线性动力学.
- 集成电路设计 集成电路设计
背景情况:
- 楚亚的混乱振荡器是研究混乱的一个基本电路.
- 现有的设计经常受到高功耗和电压要求的影响.
- 动态值金属氧化物半导体 (DTMOS) 技术为低功耗,低电压电路实现提供了潜力.
研究的目的:
- 设计和建模一个低功率,低电压的楚亚的混乱振荡器.
- 使用DTMOS技术实现电路,以提高效率.
- 为了实现无感应器的设计,以简化制造.
主要方法:
- 采用基于DTMOS的双X第二代电流输送器 (DXCCII) 作为主要的活跃块.
- 使用DXCCII块实现了Chua二极管和合成电感器.
- 使用PSPICE与TSMC 180nm CMOS技术模拟拟了拟议的电路.
主要成果:
- 实现低压偏差为±0.2V,最低功耗为1.58μW.
- 成功设计了一个无感应器的Chua振荡器,只使用两个DXCCII.
- 通过模拟验证了混乱行为和V-I特征,证实了理论预测.
结论:
- 拟议的基于DTMOS的Chua振荡器可显著降低功率和电压.
- 无电感器的设计简化了制造和集成.
- 这项工作证明了DTMOS技术在高效的混乱电路设计中的有效性.
关键词:
一个混乱的信号信号.乔亚的电路电路.在 DTMOS 技术方面,DXCCIIII DXCCIIII DXCCIIII DXCCIIII DXCCII DXCCII DXCCII DXCCII DXCCII DXCCII DXCCII DXCCII DXCCII DXCCII DXCCII DXCCII DXCCII DXCCII DXCCII DXCCII DXCCII DXCCII DXCCII DXCCII DXCCII DXCCII DXCCII DXCCII DXCCII DXCCII DXCCII DXCCII DXCCII DXCCII DXCCII DXCCII DXCCII DXCCII DXCCII DXCCII DXCCII DXCCII DXCCII DXCCII DXCCII DXCCII使用基于DTMOS的DXCCII的低功率,低电压,无电感器的楚亚混乱振荡器的设计方法.低功率电路的电路是低功率的.非线性电路是一种非线性电路.更多相关视频
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