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Feasibility studies on genuine process samples: what was measured, how well it correlated, and what your chemistry gets before anything is installed.
A Gekko feasibility study answers one question: can Raman measure your parameter, in your chemistry, at the accuracy you need. Real samples, a chemometric model built for your matrix, and a report that states what works and what does not - before any instrument commitment.
The study runs in the Gekko lab on the benchtop Spectrally X1 LAB - the same measurement and model stack that later runs on the Spectrally X1 INLINE at your line. What you see in the report is what the analyzer will read in production.
Resins are not a generic matrix. Every result on this page comes from measurements on real industrial samples - process resins pulled from reactors during polycondensation, finished-product portfolios, resin solutions in organic solvent. Each study correlates the Raman spectrum with the method you trust today - rotational viscometry, titration - and reports the agreement it found.

Representative process samples - vials, cans, reactor pulls - or existing spectra and reference datasets.
Full-spectrum models - band ratios, regression, CNN - correlated against your reference method, not against assumptions.
Spectra, band assignments, model metrics versus reference values, and a clear result: positive, partial or negative.
The study runs before any instrument decision. If the measurement does not hold up, the report says so.
Three results from feasibility work on resin and formaldehyde matrices - each measured on genuine process samples and validated against the customer's reference method.
Mean absolute error around 0.03 pp for phenol and 0.21 pp for formaldehyde versus the standard reference method - real-time tracking of the key reagents and a cleaner endpoint.
Chemometric models at R² > 0.99 with prediction error near 0.2 mg KOH/g - faster QC and far less dependence on lab titration.
Regression models at R² > 0.99 with uncertainty around ±0.25 Pa·s - a live read on the condensation endpoint and tighter spec control.
The studies are anonymized by policy - no producer names, no locations. Everything else stays: the chemistry, the numbers and the limitations, including the ones that still need work before a pilot.
A resin and dispersion producer controlled the two key quality parameters of its alkyd resins - viscosity and acid value - by offline viscometry and titration, with results arriving hours later. The study ran in two stages on alkyd resin in organic solvent (white spirit D40, xylene): at-line in 5 ml vials, then in-line with an immersion probe at about 2 scans per minute, without sample preparation.

An amino resin producer runs polycondensation in batch reactors and controls viscosity by rotational viscometry in the lab - with dead time between sampling and result. The study ran on-site: samples pulled from the reactor during polycondensation were measured in parallel on the Raman system and the viscometer, in a signal window of roughly 340-1650 cm⁻¹.
A wood-panel resin producer controls UF and MUF viscosity by manual sampling and offline rotational viscometry - against a polycondensation whose viscosity climbs slowly, then accelerates sharply. The study measured in-line across 20-400 cP in a 400-1600 cm⁻¹ window, at up to 10 scans per minute.
A MUF producer needed a product reference standard and a direct indication of the reaction endpoint - the moment urea stops reacting - correlated with viscosity, to steer polycondensation. Measurements ran with an immersion probe in a laboratory reactor.
The feasibility registry spans eleven industrial segments. Results are reported as measured: positive, partial or negative. Partial means feasible with stated conditions - usually more reference data or a pilot. One study came back negative, and the report said so.
Run on real customer samples across eleven industrial segments.
Alkyd, UF and MUF viscosity, and the MUF reaction endpoint - detailed above.
Plus 12 partial - feasible, with the conditions stated in the report.
Where the measurement did not hold up, the report said so.
The sequence is the same whether the study runs in the Gekko lab or on-site at your plant with a mobile unit.
Study samples are read in parallel on the Raman system and the method you trust today - rotational viscometry, titration. The model is only as good as its agreement with those values, and that agreement is what the report shows.
At-line in vials for screening, an immersion probe for process-like conditions, or on-site measurement at the reactor with a mobile unit. The four studies above used all three.
Batch offsets, sparse reference data, probe mounting issues - whatever the study finds goes in the report, together with what is needed to close it before a pilot.
Every study closes with the same set of deliverables - the same ones the four resin studies above produced.
Measured spectra with band assignments, model performance against your reference values, and a clear statement of the result.
A chemometric model scoped to your chemistry - full-spectrum regression, CNN or band-ratio descriptor - with its validity range stated.
Where the measurement should sit - immersion probe in the reactor or in the circulation line - and the recommended hardware configuration for a pilot.
Open items and what closes them - additional reference batches, model extension, probe mounting - so the pilot decision rests on facts.
A positive study transfers to the process as Spectrally X1 INLINE with the immersion Spectrally X1 PROBE and its self-cleaning module, with Spectrally OS turning the spectrum into process values for your control system. The model built in the study becomes the starting point for pilot calibration under dynamic process conditions - the same chemistry, the same bands, on your line.

Send representative samples or R&D data from your PF, UF, MUF/MF or UFC process. We measure them against your reference method, build a chemometric model on your matrix and report the result - positive, partial or negative - before any hardware commitment.