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Self-assembled DC Resistive Circuits with Self-controlled Voltage-Based Growth

机译:自组装直流电阻电路,具有自控电压基生长

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A new model for analog self-assembly is introduced, the circuit Tile Assembly model (cTAM), in which a supply voltage creates electric "glues" that attach small resistive circuits to a seed to form larger circuits. Component circuits can only attach to the growing circuit if the voltage across the output terminals of the partial assembly exceeds a given threshold. Thus, as the circuit grows, the supply voltage progressively dissipates until additional circuit components can no longer attach. Thus, the supply voltage acts as a finite resource that is used up as the circuit assembles, like nutrientfor bacterial colonies. Assemblies in the shape of resistive ladders and grids are analyzed. For ladder-like circuits, the size of the assembled circuits remain within the order of the logarithm of the ratio of the supply voltage to the threshold, and is inversely proportional to the golden ratio Φ, a universal constant pervasive in architecture, engineering, and biology. For grids, empirical results are presented showing bounded growth and unique terminal assemblies. The model exhibits intriguing properties, such as self-controlled growth without glue or seed programming, and communication at a distance within the assembly without signaling programming. In addition, a generalization of the model is proposed in which construction is driven by energy minimization in response to boundary conditions on the perimeter of the assembly.
机译:介绍了一种新型模拟自组装模型,电路瓦片组装模型(CTAM),其中电源电压产生电动“胶水”,其将小电阻电路连接到种子以形成更大的电路。如果部分组件的输出端子上的电压超过给定阈值,则组件电路仅可以附接到生长电路。因此,随着电路的增长,电源电压逐渐消散,直到附加电路部件不再连接。因此,电源电压用作用作电路组装的有限资源,如营养素为细菌菌落。分析了电阻梯和网格形状的组件。对于梯形电路,组装电路的尺寸仍然在电源电压与阈值的比率的对数之上,并且与金色比率φ,架构,工程和工程中的通用恒定普遍普遍成反比。生物学。对于网格,提出了界限生长和独特的终端组件的经验结果。该模型表现出有趣的性质,例如无胶水或种子编程的自控生长,以及在组件内的距离的通信而没有信令编程。另外,提出了模型的概括,其中响应于组装周边上的边界条件,通过能量最小化驱动结构。

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