Multimodal Measurement and Diagnosis for Thermowettability in Graphene Channels: From Laboratory Evidence to Operational Control
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Keywords

environment
materials
systems
evidence synthesis
reliability
provenance

Abstract

This critical review examines multimodal measurement and diagnosis in thermowettability in graphene channels, with links to intelligent manufacturing and evidence governance. The organizing question is how global patterns and local anomalies should be combined without hiding rare but consequential failures. Ten or more scholarly and user-supplied records are synthesized through a mechanism-to-decision framework spanning system boundaries, measurement, representation, evaluation, translation, and governance. No experiment, participant dataset, effect estimate, or production result is invented. Particular attention is given to multimodal agreement suppressing discordant evidence that signals failure. The review argues that credible translation requires source-level traceability, explicit validity domains, failure-aware evaluation, and revalidation triggers. Google Scholar-supplied records are retained in structured APA form, and no missing DOI or pagination field is completed by conjecture.

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References

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