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\title{\Large Paper 023\\[0.6em]\textbf{A Research Program for Maxwell-Compatible Projection Electromagnetism}\\[0.3em]\large Milestones, kill criteria, and technology transfers for a ten-paper frontier physics track}
\author{JMP0X1B Research Group}
\date{Working paper draft / June 13, 2026}
\begin{document}
\maketitle
\begin{abstract}
The existing JMP0X1B papers form a coherent track: mathematical projection models, admissible currents, scalar and boundary mechanisms, UHV null protocols, FEM discrimination, materials replication, energy-momentum closure, and practical superconducting subsystem translation. This paper turns that track into a managed research program with milestones, kill criteria, artifacts, and technology transfers. It is a governance paper for deciding what to build, what to test, and when to stop.
\end{abstract}

\noindent\textbf{Status.} Draft manuscript for review and revision. This paper is not an empirical claim of new physics or field-ready technology. It is a structured proposal, theory note, protocol, or application architecture intended to be auditable, falsifiable, and publishable with source.

\tableofcontents
\newpage

\section{Problem}
A speculative program needs more than ideas; it needs staged decisions. Without kill criteria, failed experiments become ambiguous. Without technology transfer paths, practical engineering value is lost when speculative physics is excluded. The problem is to make the research program self-correcting.

\section{Model}
The program is represented as a directed graph of work packages. Each node has input artifacts, claims, required evidence, exit conditions, kill criteria, and downstream transfers. Theory nodes feed operator dictionaries; operator nodes feed design atlases; design nodes feed experiments; experiments feed null ledgers and engineering transfers.


\[
  G=(V,E),\qquad v_i=(A_i,C_i,E_i,K_i,T_i),
\]
where $A_i$ are artifacts, $C_i$ claims, $E_i$ evidence gates, $K_i$ kill criteria, and $T_i$ technology-transfer outputs.
\[
  \mathrm{Continue}(v_i)=\mathbf{1}[E_i\ge E_i^{\min}]\cdot \mathbf{1}[K_i=\emptyset].
\]


\section{Claims}
\begin{enumerate}
\item \textbf{Claim 1.} Speculative physics tracks should publish kill criteria before expensive experiments begin.
\item \textbf{Claim 2.} Technology-transfer outputs should be defined for both positive and negative physics outcomes.
\item \textbf{Claim 3.} The projection-electromagnetism program can mature through nulls, bounds, software, metrology, and subsystem spinouts even if no anomaly survives.
\item \textbf{Claim 4.} A research graph makes paper sequencing auditable and prevents disconnected speculation.
\end{enumerate}

\section{Evidence Plan}
Evidence is managerial and technical. The paper proposes a milestone table for theory, simulation, lab, materials, and subsystem tracks. It includes decision gates such as gauge-consistency pass, FEM discrimination pass, UHV null bound pass, cross-lab replication pass, and engineering transfer pass. A first release should include the graph and a public revision history.

\section{JMP0X1B Implementation Surface}
JMP0X1B can encode the research graph as typed work packages connected to artifact digests, review gates, issue trackers, and publication pages. The graph becomes an executable research roadmap.

\subsection*{Illustrative JMP0X1B-style contract}
\begin{verbatim}
record WorkPackage { id: Text, claims: List<Claim>, evidence: List<Gate>, kill: List<KillCriterion>, transfers: List<TechOutput> }
fn decide(pkg: WorkPackage, state: EvidenceState) -> Decision effects{Audit, Governance}
\end{verbatim}


\section{Release And Review Plan}
Release a public roadmap, revision-controlled work-package schema, publication dependencies, and a table of technology outputs generated by null results.

\section{Open Questions}
\begin{itemize}
\item Which work packages should be paused until cheaper controls are complete?
\item How should independent reviewers amend kill criteria?
\item What constitutes enough evidence to leave speculation and enter engineering?
\item How can null-result technology transfers be credited properly?
\end{itemize}

\section{Conclusion}
The research program paper gives the projection track a disciplined operating model. It makes failure productive and success harder to overclaim.

\section*{References}
\begin{thebibliography}{99}
\bibitem{jmp001} JMP0X1B Research Group. \emph{Twelve Five-Dimensional Projection Models for Maxwell-Compatible Electromagnetism}. Working paper, 2026. \url{https://research.jmp0x1b.com/papers/twelve-5d-projection-electromagnetism.html}
\bibitem{jmp002} JMP0X1B Research Group. \emph{Electrostatic Projection Couplings in Five-Dimensional Maxwell-Compatible Theory}. Working paper, 2026. \url{https://research.jmp0x1b.com/papers/electrostatic-projection-couplings-5d-electrogravity.html}
\bibitem{jmp003} JMP0X1B Research Group. \emph{Boundary-Flux Electromagnetism on Embedded Four-Manifolds and Null Observables for Capacitor Residuals}. Working paper, 2026. \url{https://research.jmp0x1b.com/papers/boundary-flux-hypersurface-nulls.html}
\bibitem{jmp004} JMP0X1B Research Group. \emph{Gauge-Consistent Effective Currents in Five-Dimensional Projection Electromagnetism}. Working paper, 2026. \url{https://research.jmp0x1b.com/papers/gauge-consistent-projection-currents.html}
\bibitem{jmp005} JMP0X1B Research Group. \emph{Weak-Field Radion Electrogravity from Maxwell-Compatible Five-Dimensional Projections}. Working paper, 2026. \url{https://research.jmp0x1b.com/papers/weak-field-radion-electrogravity.html}
\bibitem{jmp006} JMP0X1B Research Group. \emph{Gauge-Consistent Effective Operators for Five-Dimensional Projection Electromagnetism}. Working paper, 2026. \url{https://research.jmp0x1b.com/papers/gauge-operators-spacefaring.html}
\bibitem{jmp007} JMP0X1B Research Group. \emph{Ultra-High-Vacuum Null Tests of Electrostatic Projection Couplings with Symmetry-Matched Capacitors}. Working paper, 2026. \url{https://research.jmp0x1b.com/papers/uhv-electrostatic-null-tests.html}
\bibitem{jmp008} JMP0X1B Research Group. \emph{Finite-Element Discrimination of Boundary-Flux, Scalar, and Conventional Artifact Forces in Asymmetric Capacitors}. Working paper, 2026. \url{https://research.jmp0x1b.com/papers/fem-capacitor-force-discrimination.html}
\bibitem{jmp009} JMP0X1B Research Group. \emph{Replication and Falsification of Piezoelectric Strain-Driven Superconductivity in Composite Coated Wires}. Working paper, 2026. \url{https://research.jmp0x1b.com/papers/piezoelectric-superconductivity-replication.html}
\bibitem{jmp010} JMP0X1B Research Group. \emph{Energy-Momentum Closure for Microwave Cavity Inertia Claims and Electromagnetic-to-Gravitational Conversion Architectures}. Working paper, 2026. \url{https://research.jmp0x1b.com/papers/energy-momentum-cavity-hfgw.html}
\bibitem{jmp011} JMP0X1B Research Group. \emph{From Speculative Superconducting Claims to Practical Spacecraft Power and Magnetic Subsystems}. Working paper, 2026. \url{https://research.jmp0x1b.com/papers/superconducting-spacecraft-subsystems.html}
\bibitem{wilkinson} M. D. Wilkinson et al. The FAIR Guiding Principles for scientific data management and stewardship. \emph{Scientific Data}, 3:160018, 2016.
\bibitem{prov} World Wide Web Consortium. \emph{PROV-DM: The PROV Data Model}. W3C Recommendation, 2013. \url{https://www.w3.org/TR/prov-dm/}
\end{thebibliography}

\end{document}
