Quantitative on-line NMR spectroscopy is used to study the kinetics of the reaction of aqueous formaldehyde and urea. The investigation focuses on the formation of low molecular mass compounds during the methylolation step. The experiments were carried out at overall formaldehyde to urea molar ratios between 1:1 and 4:1, pH values between 6 and 8, and temperatures between 313 and 353 K. The experimental data were used to develop a kinetic model based on the true species concentrations. The model describes the experimental data well and can be used to predict the composition of the reacting mixture of aqueous formaldehyde and urea during the methylolation step as a function of time
We used 13C and 1H NMR spectroscopy to examine the equilibrium speciation in formaldehyde−methanol−w...
The reactions of di-hydroxymethylurea with phenol under alkaline (pH = 10), weak (pH = 6) and strong...
A literature survey showed that very few studies into the chromatographic separation of urea formal...
Aqueous and methanolic formaldehyde solutions are industrially important complex reacting mixtures i...
This investigation was carried out on behalf of the Momentive Specialty Chemicals Pty Ltd, Mt Maunga...
In a series ofpreIiminary studies of urea-formaldehyde reactions, the influence of the U:F molar rat...
In this work, two synthesis procedures for the preparation of urea-formaldehyde (UF) resins, based o...
Urea-formaldehyde (UF) resin is used primarily as an adhesive for manufacturing wood panels (medium ...
The production of methylene urea from human urine is an important contribution to the world demand o...
On-line nuclear magnetic resonance spectroscopy (on-line NMR) is a powerful technique for reaction a...
The structural changes during three-step synthesis of low-molar ratio urea–formaldehyde (UF) r...
Quantitative 13C NMR spectroscopy was used to investigate the complex chemical equilibria in ternary...
The current investigation presents the development and application of a Rapid NMR acquisition meth...
Melamine-urea-formaldehyde resins are very important commercially, yet little is known about their s...
Quantitative 13C NMR spectroscopy was used to investigate the complex chemical equilibria in ternary...
We used 13C and 1H NMR spectroscopy to examine the equilibrium speciation in formaldehyde−methanol−w...
The reactions of di-hydroxymethylurea with phenol under alkaline (pH = 10), weak (pH = 6) and strong...
A literature survey showed that very few studies into the chromatographic separation of urea formal...
Aqueous and methanolic formaldehyde solutions are industrially important complex reacting mixtures i...
This investigation was carried out on behalf of the Momentive Specialty Chemicals Pty Ltd, Mt Maunga...
In a series ofpreIiminary studies of urea-formaldehyde reactions, the influence of the U:F molar rat...
In this work, two synthesis procedures for the preparation of urea-formaldehyde (UF) resins, based o...
Urea-formaldehyde (UF) resin is used primarily as an adhesive for manufacturing wood panels (medium ...
The production of methylene urea from human urine is an important contribution to the world demand o...
On-line nuclear magnetic resonance spectroscopy (on-line NMR) is a powerful technique for reaction a...
The structural changes during three-step synthesis of low-molar ratio urea–formaldehyde (UF) r...
Quantitative 13C NMR spectroscopy was used to investigate the complex chemical equilibria in ternary...
The current investigation presents the development and application of a Rapid NMR acquisition meth...
Melamine-urea-formaldehyde resins are very important commercially, yet little is known about their s...
Quantitative 13C NMR spectroscopy was used to investigate the complex chemical equilibria in ternary...
We used 13C and 1H NMR spectroscopy to examine the equilibrium speciation in formaldehyde−methanol−w...
The reactions of di-hydroxymethylurea with phenol under alkaline (pH = 10), weak (pH = 6) and strong...
A literature survey showed that very few studies into the chromatographic separation of urea formal...