Applications
Application Notes
Published: 01 Feb 2023 · Last updated: 03 Aug 2026
Accurate and fast determination of oil and water content in oilseeds is important to breeders, growers and buyers for determining the commercial value of crops such as rape (canola), sunflower, linseed (flax), soya bean and groundnut. Nuclear Magnetic Resonance (NMR) offers a clean, rapid and accurate alternative to traditional wet chemical techniques. Furthermore, calibrations are much easier to maintain than for Near Infra-Red (NIR). NMR is also used for measuring oil yield in the development of improved crop varieties and by seed crushers to measure oil content of the pressed cake and residues to determine extraction efficiency (ISO 10632).
Solvent extraction techniques are commonly used for determination of oil content. However, these methods can be time consuming and require skilled operators and the use of hazardous solvents.
NIR is rapid but only measures the surface layer, so sample grinding may be required for improved reproducibility. In addition, NIR requires calibration using a large number of reference samples that represent a variety of factors including oil and water content, seed or grain type, particle size or colour. Therefore, the results may unknowingly be inaccurate if the sample is outside the range/scope of the calibration.
In contrast:
The MQC+ benchtop Nuclear Magnetic Resonance (NMR) analyser provides an alternative method to wet chemistry and NIR; it is quick and easy to perform, simple to calibrate, and requires minimal sample preparation. As such it is ideal for routine operation without any requirement for additional chemicals, complicated calibrations or specialist operator training.

The oil and water measurement involves differentiating the two analytes on the basis of their NMR relaxation times. The NMR signal from solids within a sample decays rapidly, leaving signals originating only from oil and bound water. Subsequently the signal from the bound water decays leaving that from the oil only. The water is determined by taking the difference between the oil and combined oil + bound water signals. The ISO 10565 method recommends that the water content be less than 10% for all seeds to obtain reliable results. In practice, this value may be a few percent higher depending on the seed type.
As NMR is a comparative technique, a set of calibration standards consisting of real seeds with known oil and water contents must be obtained before measurements can take place. Although only three well characterised seed standards are required, it is recommended that at least six should be used, with oil and water contents that span the concentrations of interest. Oil and water reference values are normally determined using Soxhlet extraction and oven drying respectively.
The quality of the calibration will always be dependent on the accuracy of this reference data. However, NMR is more reproducible than wet chemical methods therefore errors are reduced by analysing more reference samples. Alternatively, a primary calibration for total oil content can be produced by NMR using the pure oil to be analysed.
Samples are poured into glass NMR tubes up to a predefined mark and weighed. Large samples are normally conditioned at room temperature in a stable environment. Measurement time is typically 16 seconds per sample as per the ISO standard methods.
Normally best accuracy is achieved when the standards are of the same species as the measurement samples. However, various seed types with oils that have a similar hydrogen density may lie on the same calibration.
Nine independently-analysed rape seed samples were measured. Their oil content varied from 39% to 51% and their water content varied from 5.2% to 7.1%. Calibrations for oil and water were developed according to ISO 10565 using Oxford Instruments' MultiQuant software, which allows simultaneous measurement of up to four sample parameters.
In addition to oil and water content, it is also possible to quote oil per dry weight and normalised to a particular water content (for example 8 or 9%). The resulting calibrations are shown in Figures 1 and 2.

Fig. 1 — Calibration of oil content of rape seeds in the presence of water (Standard deviation 0.14%)

Fig. 2 — Calibration for water content of rape seeds in the presence of oil (Standard deviation 0.12%)
Instrument repeatability for oil was then tested by measuring one sample ten times without removing it from the instrument. Sample reproducibility was tested for oil content by measuring five different portions of the same sample. Instrument repeatability was shown to be 0.03% and sample reproducibility 0.24% owing to the varying distribution of seed oil contents in each portion. The results from both sets of experiments are shown in Table 1.
| Value | Repeat Measurements | Mean | SD | |||||||||
| 44.25 | 44.29 | 44.25 | 44.22 | 44.23 | 44.26 | 44.27 | 44.22 | 44.23 | 44.22 | 44.18 | 44.24 | 0.03 |
| Value | Portion Measurements | Mean | SD | |||||||||
| 39.5 | 39.7 | 39.2 | 39.4 | 39.5 | 39.8 | 39.5 | 0.24 |
Table 1: Instrument repeatability and sample reproducibility.

In addition the MQC+ has the following advantages:

Oxford Instruments offers various packages especially tailored to the measurement of oil and water in oilseeds and their residues (pressed cake or meals). There are two instruments suitable for this application both of which conform to the industry standard ISO 10565 for a range of sample volumes (given in brackets):
For large sample/seed analysis:
For small, low quantity or single seed analysis:
The MQC+5 (or MQC+23), which can be controlled using its own built-in computer using Microsoft Windows® or via a stand-alone PC, also includes:
In addition you may also wish to purchase:
N.B. The ISO method specifies measurement at a nominal room temperature of 17°C–28°C. Conditioning at 40°C is preferable where precision measurements are required for oil content only.