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Lyophilisation: difference between revisions

Diff·revision 61 → 62·00:33, 2 Nov 2025

Difference between revision 61 and revision 62 of Lyophilisation. 2 lines changed; the page grew by 32 bytes.

Revision 61 — 09:20, 21 Oct 2025
CounterfeitCato (talk)
cite the trial publication rather than the press release
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Revision 62 — 00:33, 2 Nov 2025
OpenLabelOtto (talk)
expand §Physical basis
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161The evidence available for any particular unregulated product is usually nil. A manufacturer's stability programme conducted under [[Cold chain|cold-chain]] and ICH conditions produces data that support a labelled storage statement; material distributed without such a programme carries a storage recommendation that is, at best, an inference from the behaviour of similar compounds.{{r|ich_q1a}} Community-collated observations of material that appeared to perform normally after warm transit exist but are self-reported, unblinded, and without pre-excursion analytical baselines, and cannot establish the absence of degradation.{{r|ppcommunity}}161The evidence available for any particular unregulated product is usually nil. A manufacturer's stability programme conducted under [[Cold chain|cold-chain]] and ICH conditions produces data that support a labelled storage statement; material distributed without such a programme carries a storage recommendation that is, at best, an inference from the behaviour of similar compounds.{{r|ich_q1a}} Community-collated observations of material that appeared to perform normally after warm transit exist but are self-reported, unblinded, and without pre-excursion analytical baselines, and cannot establish the absence of degradation.{{r|ppcommunity}}
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+163{{main|Temperature excursion}}
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163== Scale-up and transfer ==165== Scale-up and transfer ==
164A cycle developed on a laboratory dryer frequently fails when transferred, and the reasons are well characterised. Radiative heat load differs between a small chamber with a glass door and a large chamber with cold walls, so the distribution of product temperatures differs. Condenser capacity and duct conductance limit the maximum sublimation rate a large dryer can sustain; when the rate approaches that limit, flow through the duct becomes choked and chamber pressure rises above its set point, warming every vial simultaneously. Shelf-temperature uniformity and the flatness of shelves both affect the vial heat transfer coefficient.{{r|rambhatla2003,tang2004}}166A cycle developed on a laboratory dryer frequently fails when transferred, and the reasons are well characterised. Radiative heat load differs between a small chamber with a glass door and a large chamber with cold walls, so the distribution of product temperatures differs. Condenser capacity and duct conductance limit the maximum sublimation rate a large dryer can sustain; when the rate approaches that limit, flow through the duct becomes choked and chamber pressure rises above its set point, warming every vial simultaneously. Shelf-temperature uniformity and the flatness of shelves both affect the vial heat transfer coefficient.{{r|rambhatla2003,tang2004}}