started on sigma delta
most of it is done in hand drawn in my book
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related_papers_books/DQ_flip_flop_CD4013BE_1360194.pdf
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related_papers_books/DQ_flip_flop_CD4013BE_1360194.pdf
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submission_thesis/CH5_Examples/circuit4004.png
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@ -1647,6 +1647,18 @@ The more we can modularise, the more we decimate the $O(N^2)$ effect
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of complexity comparison.
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\section{Sigma Delta Analogue to Digital Converter ($\Sigma \Delta $ADC)}
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The following example shows the analysis of a mixed analogue and digital circuit.
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\begin{figure}[h]
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\centering
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\includegraphics[width=200pt]{./CH5_Examples/circuit4004.png}
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% circuit4004.png: 562x389 pixel, 72dpi, 19.83x13.72 cm, bb=0 0 562 389
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\caption{Sigma Delta Analogue to Digital Converter}
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\label{fig:sigmadelta}
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\end{figure}
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\section{PT100 Analysis: Double failures and MTTF statistics}
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{
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@ -1956,7 +1968,7 @@ will be determined by the accuracy of $R_2$ and $R_{3}$. It is reasonable to
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take the mean square error of these accuracy figures~\cite{easp}.
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\paragraph{Single Fault FMEA Analysis \\ of PT100 Four wire circuit}
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\paragraph{Single Fault FMEA Analysis of PT100 Four wire circuit}
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\ifthenelse {\boolean{pld}}
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@ -1988,7 +2000,7 @@ for the circuit shown in figure \ref{fig:vd}.
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\paragraph{Proof of Out of Range \\ Values for Failures}
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\paragraph{Proof of Out of Range Values for Failures}
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\label{pt110range}
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Using the temperature ranges defined above we can compare the voltages
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we would get from the resistor failures to prove that they are
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@ -2430,13 +2442,6 @@ This shorts the sense+ to Vcc and the sense- to ground.
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Both values will be out of range.
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\paragraph{ TC 13 : Voltages $R_1$ SHORT $R_3$ OPEN }
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This shorts the sense+ to Vcc and the sense- to ground.
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