hate this fucking stupid university
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@ -69,7 +69,7 @@ These {\dcs} are used to then build further {\fgs} until a hierarchy of {\fgs}
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and {\dcs} has been built, converging to a final {\dc}
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and {\dcs} has been built, converging to a final {\dc}
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at the top of the hierarchy.
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at the top of the hierarchy.
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%
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%
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Or in other words we take the traditional FMEA process, and modularise it.
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Or in other words we take the traditional FMEA~\cite{sccs}[pp.34-38] process, and modularise it.
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We break down each stage of reasoning
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We break down each stage of reasoning
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into small manageable groups, and use the results of those groups, as {\dcs}
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into small manageable groups, and use the results of those groups, as {\dcs}
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to build higher level groups.
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to build higher level groups.
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@ -530,7 +530,7 @@ and determine how they affect the operation of the potential divider.
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%which is represented on the diagram, with an asterisk marking
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%which is represented on the diagram, with an asterisk marking
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%which failure modes is modelling (see figure \ref{fig:fg1a}).
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%which failure modes is modelling (see figure \ref{fig:fg1a}).
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%
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%
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For this example we look at single failure modes only.
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%%For this example we look at single failure modes only.
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For each failure mode in our {\fg} `potential~divider',
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For each failure mode in our {\fg} `potential~divider',
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we can assign a {\fc} number (see table \ref{tbl:pdfmea}).
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we can assign a {\fc} number (see table \ref{tbl:pdfmea}).
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Each {\fc} is analysed to determine the `symptom'
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Each {\fc} is analysed to determine the `symptom'
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@ -540,7 +540,7 @@ voltage output from it would float high (+ve).
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This would mean the symptom of the failed potential divider would be voltage high output.
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This would mean the symptom of the failed potential divider would be voltage high output.
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%
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%
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The failure symptom of a high potential divider output is termed `HighPD', and
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The failure symptom of a high potential divider output is termed `HighPD', and
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for it outputing a low voltage `LowPD'. % Andrew asked for this to be defined before the table. ...
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for it outputting a low voltage `LowPD'. % Andrew asked for this to be defined before the table. ...
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%We can now consider the {\fg}
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%We can now consider the {\fg}
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%as a component in its own right, and its symptoms as its failure modes.
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%as a component in its own right, and its symptoms as its failure modes.
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@ -550,6 +550,12 @@ for it outputing a low voltage `LowPD'. % Andrew asked for this to be defined be
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\centering % used for centering table
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\centering % used for centering table
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\begin{tabular}{||l|c|c|l||}
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\begin{tabular}{||l|c|c|l||}
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\hline \hline
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\hline \hline
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% FUCKING HATE HAVING TO REMOVE THE TERM FAILURE SCENARIO HERE....
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% GOOD ENOUGH FOR THE IET/IEEE, but then they live in the real
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% world don't they....
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%\textbf{Failure} & \textbf{Pot.Div} & \textbf{Symptom} \\
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%\textbf{scenario} & \textbf{Effect} & \textbf{Description} \\
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\textbf{Fault} & \textbf{Pot.Div} & \textbf{Derived Component} \\ % \textbf{Symptom} \\
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\textbf{Fault} & \textbf{Pot.Div} & \textbf{Derived Component} \\ % \textbf{Symptom} \\
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\textbf{Mode} & \textbf{Effect} & \textbf{Failure modes} \\ %\textbf{Description} \\
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\textbf{Mode} & \textbf{Effect} & \textbf{Failure modes} \\ %\textbf{Description} \\
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% R & wire & res + & res - & description
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% R & wire & res + & res - & description
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@ -632,19 +638,21 @@ we name this \textbf{PD}.
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This {\dc} will have two failure modes.
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This {\dc} will have two failure modes.
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We use the symbol $\derivec$ to represent the process of taking the analysed
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We use the symbol $\derivec$ to represent the process of taking the analysed
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{\fg} and creating from it a {\dc}.
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{\fg} and creating from it a {\dc}.
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%The creation of the {\dc} \textbf{PD} isrepresented in figure~\ref{fig:dc1}.
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The creation of the {\dc} \textbf{PD} is represented as a
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hierarchy diagram in figure~\ref{fig:dc1}.
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We represent the {\dc} \textbf{PD}, as a DAG in figure \ref{fig:dc1dag}.
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We represent the {\dc} \textbf{PD}, as a DAG in figure \ref{fig:dc1dag}.
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%We could represent it algebraically thus: $ \derivec(PotDiv) =
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%We could represent it algebraically thus: $ \derivec(PotDiv) =
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% FUCKING HELL THIS IS REMOVED TOO : CUNTS
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% FUCKING HELL THIS IS to be REMOVED TOO : CUNTS
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% \begin{figure}[h+]
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\begin{figure}[h+]
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% \centering
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\centering
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% \includegraphics[width=200pt,keepaspectratio=true]{./CH4_FMMD/dc1.png} %%% Where the f**king hell is this file ????? in an old paper even in the SYSSAFE2011
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\includegraphics[width=200pt,keepaspectratio=true]{./CH4_FMMD/dc1.png}
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% % dc1.jpg: 430x619 pixel, 72dpi, 15.17x21.84 cm, bb=0 0 430 619
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% dc1.jpg: 430x619 pixel, 72dpi, 15.17x21.84 cm, bb=0 0 430 619
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% \caption{From functional group to derived component}
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\caption{From functional group to derived component, a hierarchical diagram showing how the {\fg} is analysed using the $\derivec$
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% \label{fig:dc1}
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manual process and from this the {\dc} is created.}
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% \end{figure}
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\label{fig:dc1}
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\end{figure}
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% We can now represent the potential divider as a {\dc}.
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% We can now represent the potential divider as a {\dc}.
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@ -674,14 +682,15 @@ We represent the {\dc} \textbf{PD}, as a DAG in figure \ref{fig:dc1dag}.
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% The derived component is defined by its failure modes and
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% The derived component is defined by its failure modes and
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% the functional group used to derive it.
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% the functional group used to derive it.
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% %We can consider this an an orthogonal WHAT???? Group ???? Collection ????
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% %We can consider this an an orthogonal WHAT???? Group ???? Collection ????
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% We now have a {\dc} model for a generic potential divider, and can use it
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We now have a {\dc} model for a generic potential divider, and can use it
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% as a building block for other {\fgs} in the same way as we used the base components $R1$ and $R2$.
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as a building block for other {\fgs} in the same way as we used the base components $R1$ and $R2$.
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%\clearpage
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%\clearpage
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%\paragraph{Failure Mode Analysis of the OP-AMP}
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\paragraph{Failure Mode Analysis of a generic op-amp}
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Let use now consider the op-amp as a {\bc}. According to
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\clearpage
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Let us now consider the op-amp as a {\bc}. According to
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FMD-91~\cite{fmd91}[3-116] an op amp may have the following failure modes (with assigned probabilities):
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FMD-91~\cite{fmd91}[3-116] an op amp may have the following failure modes (with assigned probabilities):
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latch-up(12.5\%), latch-down(6\%), no-operation(31.3\%), low~slew~rate(50\%).
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latch-up(12.5\%), latch-down(6\%), no-operation(31.3\%), low~slew~rate(50\%).
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\nocite{mil1991}
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\nocite{mil1991}
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@ -745,6 +754,11 @@ The two components in this new {\fg} have failure modes.
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\centering % used for centering table
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\centering % used for centering table
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\begin{tabular}{||l|c|c|l||}
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\begin{tabular}{||l|c|c|l||}
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\hline \hline
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\hline \hline
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%% FUCKING HATE HAVING TO REMOVE THE TERM FAILURE SCENARIO --- whats is this the fucking
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%%childrens version
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%\textbf{Failure} & \textbf{Amplifier} & \textbf{Derived component} \\ %Symptom} \\
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% \textbf{Scenario} & \textbf{Effect} & \textbf{Failure Modes} \\ %Description} \\
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%%
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\textbf{Fault} & \textbf{Amplifier} & \textbf{Derived component} \\ %Symptom} \\
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\textbf{Fault} & \textbf{Amplifier} & \textbf{Derived component} \\ %Symptom} \\
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\textbf{Mode} & \textbf{Effect} & \textbf{Failure Modes} \\ %Description} \\
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\textbf{Mode} & \textbf{Effect} & \textbf{Failure Modes} \\ %Description} \\
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% R & wire & res + & res - & description
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% R & wire & res + & res - & description
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@ -903,24 +917,25 @@ The two components in this new {\fg} have failure modes.
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%amplification characteristics from FS2 and FS6 can be considered as low output from the OPAMP for the application
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%amplification characteristics from FS2 and FS6 can be considered as low output from the OPAMP for the application
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%in hand (say milli-volt signal amplification).
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%in hand (say milli-volt signal amplification).
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% For this amplifier configuration we have three {\dc} failure modes; {\em AMP\_High, AMP\_Low, LowPass}. % see figure~\ref{fig:fgampb}.
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For this amplifier configuration we have three {\dc} failure modes; {\em AMP\_High, AMP\_Low, LowPass}. % see figure~\ref{fig:fgampb}.
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% This model now has two stages of analysis hierarchy,
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This model now has two stages of analysis hierarchy,
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% as represented in figure~\ref{fig:dc2}.
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as represented in figure~\ref{fig:dc2}.
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%
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From the analysis in table \ref{tbl:ampfmea1} we can create the {\dc} {\em NONINVAMP}, which
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From the analysis in table \ref{tbl:ampfmea1} we can create the {\dc} {\em NONINVAMP}, which
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represents the failure mode behaviour of the non-inverting amplifier.
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represents the failure mode behaviour of the non-inverting amplifier.
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% \begin{figure}[h]
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\begin{figure}[h]
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% \centering
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\centering
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% \includegraphics[width=225pt]{./CH4_FMMD/dc2.png}
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\includegraphics[width=225pt]{./CH4_FMMD/dc2.png}
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% % dc2.png: 635x778 pixel, 72dpi, 22.40x27.45 cm, bb=0 0 635 778
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% dc2.png: 635x778 pixel, 72dpi, 22.40x27.45 cm, bb=0 0 635 778
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% \caption{Hierarchy representing the two stage FMMD analysis of the non-inverting amplifier}
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\caption{Hierarchy representing the two stage FMMD analysis
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% \label{fig:dc2}
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(i.e. two `$\derivec$' processes taking {\fgs} and creating {\dcs}) for the non-inverting amplifier}
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% \end{figure}
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\label{fig:dc2}
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\end{figure}
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We can represent the hierarchy as an Euler diagram as well, where the curves
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We can also represent the hierarchy as an Euler diagram, where the curves
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define the components and {\dcs} used to form {\fgs}, see figure~\ref{fig:eulerfmmd}.
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define the components and {\dcs} used to form the INVAMP model, see figure~\ref{fig:eulerfmmd}.
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\begin{figure}[h]
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\begin{figure}[h]
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\centering
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\centering
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@ -1023,8 +1038,9 @@ Component & A building block, this may be a {\bc} or a {\dc}. \\%or manufacture
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%this would be both a {\em{\dc}} and a {\fg}. \\
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%this would be both a {\em{\dc}} and a {\fg}. \\
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%{\em Constraint} & This object must have a defined set of failure~modes. \\ \hline
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%{\em Constraint} & This object must have a defined set of failure~modes. \\ \hline
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%%A part failure mode is the way in which a component fails "functionally" on component level. Often a part has only a few failure modes.
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Failure mode & A way in which a component can fail. \\ \hline
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Failure mode & A failure mode~\cite{sccs}[p.8] is the way in which a component may fail functionally (i.e. the way in which it can fail to perform
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its intended function). A component will typically have few failure modes. \\ \hline
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Functional Grouping & A collection of
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Functional Grouping & A collection of
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components with a functional purpose.
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components with a functional purpose.
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@ -1039,10 +1055,12 @@ Derived Component & A theoretical component, created to represent the failure
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{\em Constraint} & This object must have a defined set of failure~modes. \\ \hline
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{\em Constraint} & This object must have a defined set of failure~modes. \\ \hline
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% UNITARY STATE NOT DISCUSSED HERE NOW......
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% Unitary State & A component with `unitary~state' failure modes, means that it cannot fail
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% with more than one of its failure modes at a time.\\ \hline
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Unitary State & A component with `unitary~state' failure modes, means that it cannot fail
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with more than one of its failure modes at a time.\\ \hline
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%%%% TOLD TO REMOVE THIS BUT FUCKING HATE TO HAVE TO DO IT
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% Failure Scenario & A single failure mode (or a combination), used to
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% Failure Scenario & A single failure mode (or a combination), used to
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% determine failure mode effects on a {\fg}.
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% determine failure mode effects on a {\fg}.
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\\
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\\
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@ -1054,7 +1072,7 @@ with more than one of its failure modes at a time.\\ \hline
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\end{table}
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\end{table}
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\subsection{Parts, Components and Base Components.}
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\paragraph{A discussion on the terms Parts, Components and Base Components.}
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A component is anything we use to build a %a product or
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A component is anything we use to build a %a product or
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system.
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system.
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It could be something quite complicated
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It could be something quite complicated
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