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Purpose

Traditional spectrophotometry is limited by complex operational procedures, high laboratory dependency and challenges in rapid on-site detection. To address these issues, this study introduces a water quality analysis method that combines a visible-light multispectral sensor with color reactions to determine the concentrations of six substances: ammonia nitrogen, nitrite nitrogen, sulfide, fluoride, formaldehyde, and total residual chlorine.

Design/methodology/approach

A method combining a visible-light multispectral sensor with color reactions was proposed. A constant-current-driven circuit for the light source, a multispectral data acquisition device and corresponding software were developed. The performance was evaluated using single- and multiwavelength regression analyses, and the results were compared with those obtained using traditional spectrophotometry.

Findings

The coefficients of determination (R2) were 0.9786–0.9947 for single-wavelength regression analyses and 0.9910–0.9999 for multiwavelength regression analyses for the six substances. Traditional spectrophotometry yielded R2 values of 0.9770–0.9970. Multiwavelength linear regression therefore offers a viable alternative, featuring streamlined instrument design, reduced costs and enhanced suitability for portable, on-site detection.

Originality/value

This study explores the potential of combining a visible-light multispectral sensor with color reactions for water quality analysis. Multiwavelength linear regression is identified as an effective alternative to traditional spectrophotometry, with significant potential for portable, on-site water quality assessments and substance quantification.

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