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MesoScan NMR Imaging & Analysis System (23 MHz)

$119,000.00

0.5 Tesla NMR system with 2D/3D MRI imaging capabilities and modular temperature/pressure extensions for geological and petroleum research applications.

In stock and ready to ship
SKU: NMS-MESOMR-23

The MesoScan NMR Imaging & Analysis System operates at 0.5 Tesla field strength (23 MHz proton frequency) with a 60 mm bore diameter, providing both relaxation analysis and 2D/3D MRI imaging capabilities in a single platform. This system combines traditional NMR relaxometry measurements with spatial imaging, enabling comprehensive characterization of porous media and fluid dynamics in geological samples.

The system supports modular hardware extensions including high-temperature/high-pressure modules capable of operating up to 40 MPa and low-temperature modules, allowing researchers to simulate reservoir conditions during NMR measurements. The platform is designed for core plug analysis, cement hydration studies, and wettability characterization where both bulk relaxation properties and spatial heterogeneity information are required.

How It Works

Nuclear magnetic resonance imaging operates by placing samples in a strong magnetic field (0.5 Tesla), causing hydrogen nuclei to align with the field. Radiofrequency pulses at the Larmor frequency (23 MHz for protons at this field strength) excite these nuclei, and the subsequent relaxation signals are detected as the nuclei return to equilibrium. The system measures both T1 (longitudinal) and T2 (transverse) relaxation times, which provide information about molecular mobility and surface interactions.

For imaging applications, magnetic field gradients are applied in three spatial dimensions, causing the resonance frequency to vary with position. By systematically varying these gradients and applying Fourier transform analysis to the acquired signals, the system reconstructs 2D or 3D images showing spatial variations in proton density and relaxation properties. The 60 mm bore diameter accommodates standard core plug samples while maintaining sufficient gradient strength for spatial resolution.

The modular design allows integration of temperature and pressure control systems, enabling measurements under simulated reservoir conditions up to 40 MPa pressure. This capability is essential for studying how fluid properties and rock-fluid interactions change under realistic subsurface conditions.

Features & Benefits

0.5 Tesla magnetic field strength
Provides sufficient sensitivity for geological samples while maintaining reasonable system size and operating costs.
60 mm bore diameter
Accommodates standard 1-inch and 1.5-inch core plugs commonly used in petroleum research.
Combined relaxation and imaging capabilities
Enables comprehensive characterization without requiring separate instruments for bulk and spatial measurements.
Modular HTHP extensions up to 40 MPa
Simulates realistic reservoir pressure conditions for accurate fluid behavior studies.
2D/3D MRI imaging modes
Provides spatial resolution of heterogeneity and fluid distribution within porous media samples.
Low-temperature module compatibility
Extends measurement capabilities to frozen or low-temperature sample conditions.
23 MHz proton frequency
Optimized for hydrogen detection in water and hydrocarbon systems typical of geological applications.

Brand

  • Greenwaves Scientific

Field Strength

  • 0.5 T (23 MHz)

Bore Diameter

  • 60 mm

Imaging

  • 2D/3D MRI

Research Domain

  • Materials Science
  • Analytical Chemistry
  • Environmental Monitoring

Automation Level

  • semi-automated

Product Highlights

Feature This Product Category Context
Magnetic Field Strength 0.5 Tesla (23 MHz) Entry-level systems often operate at 0.2-0.3 Tesla fields
Bore Diameter 60 mm diameter Benchtop systems commonly offer smaller bore sizes
Imaging Capability 2D/3D MRI imaging Many NMR systems provide only bulk relaxation measurements
Pressure Rating HTHP module up to 40 MPa Standard systems typically operate at atmospheric pressure
Temperature Control Modular high and low temperature options Basic systems often have limited temperature control
Measurement Modes Combined relaxation analysis and MRI imaging Dedicated systems typically focus on either relaxometry or imaging

The MesoScan system combines NMR relaxometry with MRI imaging at 0.5 Tesla field strength, offering comprehensive porous media characterization. The 60 mm bore accommodates standard core samples while modular pressure/temperature extensions enable reservoir condition simulation up to 40 MPa.

Applications & Use Cases

Petroleum Engineering
Characterizing porosity, permeability, and fluid saturation in core plugs through combined relaxation and imaging measurements.
Geological Research
Analyzing rock wettability and capillary pressure relationships by monitoring fluid distribution and relaxation times under varying conditions.
Materials Science
Monitoring cement hydration kinetics and spatial heterogeneity development through time-resolved NMR imaging.
Environmental Monitoring
Studying contaminant transport in porous media by tracking fluid flow patterns and interaction with mineral surfaces.
Chemical Engineering
Investigating mass transfer processes in packed bed reactors through spatially-resolved relaxation measurements.
Food Science
Characterizing moisture content and distribution in porous food matrices during drying or processing operations.

Practical Tips

Calibration

Perform daily field stability checks using a standard water reference sample before beginning sample measurements.

Field drift can significantly affect relaxation time quantification and measurement reproducibility.

Maintenance

Keep the bore tube and sample area clean and dry between measurements to prevent cross-contamination.

Residual fluids can contribute unwanted signals and affect subsequent measurement accuracy.

Best Practices

Allow samples to reach thermal equilibrium with the measurement temperature before data acquisition.

Temperature variations affect relaxation times and can introduce measurement artifacts during acquisition.

Troubleshooting

If signal quality degrades, check for nearby ferromagnetic objects or new sources of RF interference.

The NMR measurement is sensitive to magnetic field disturbances and radio frequency noise.

Data Quality

Use multiple signal averages for samples with low proton content to improve signal-to-noise ratio.

Geological samples often have limited fluid content requiring longer acquisition times for adequate sensitivity.

Safety

Verify pressure vessel integrity and relief valve operation before high-pressure measurements.

High-pressure modules require careful inspection to prevent equipment damage or safety hazards.

Best Practices

Document sample saturation history and preparation methods for reproducible measurements.

Sample preparation significantly affects NMR results and proper documentation enables measurement validation.

Calibration

Verify imaging gradient calibration using phantom samples with known geometric dimensions.

Accurate spatial measurements require properly calibrated gradient systems for dimensional accuracy.

Setup & Operation Guide

  1. Site Preparation and Installation
    Ensure adequate floor loading capacity (consult specifications) and position system away from ferromagnetic objects and RF interference sources.
  2. Magnet Conditioning
    Allow magnet to reach thermal equilibrium and verify field stability before attempting measurements.
  3. Probe Calibration
    Calibrate RF pulse widths and receiver gain using standard reference samples provided with the system.
  4. Sample Preparation
    Prepare core plugs or test samples ensuring proper diameter fit within the 60 mm bore and consistent saturation conditions.
  5. Gradient Calibration
    Verify imaging gradient linearity and strength using phantom samples with known geometry and properties.
  6. Module Integration
    Install and test temperature/pressure modules if required, verifying seal integrity and control system operation.
  7. Measurement Protocol Setup
    Configure pulse sequences, acquisition parameters, and imaging protocols based on sample properties and measurement objectives.

What's in the Box

  • MesoScan NMR main console unit
  • Magnet assembly with bore tube
  • RF probe and sample holder system
  • Computer workstation with analysis software
  • Standard reference samples for calibration
  • Power cables and interconnect hardware
  • User manual and installation guide
  • Site preparation specifications (typical)

Warranty & Support

ConductScience provides a standard 1-year manufacturer warranty covering parts and labor, with technical support for installation and operation training.

Compliance & Standards

ASTM D7171 System supports NMR-based porosity measurements commonly performed according to this standard test method.
API RP40 Imaging capabilities support core analysis workflows described in this recommended practice for formation evaluation.
ISO 12185 NMR relaxometry functions support petroleum product analysis methods outlined in this standard.
Q

What sample sizes are compatible with the 60 mm bore diameter?

A

The system accommodates standard 1-inch (25.4 mm) and 1.5-inch (38.1 mm) diameter core plugs with lengths up to approximately 50 mm, leaving clearance for sample holders and potential pressure vessels.

Q

How does the 23 MHz frequency compare to higher-field systems for geological samples?

A

The 23 MHz frequency provides adequate sensitivity for most geological applications while offering better penetration depth in conductive samples and reduced susceptibility artifacts compared to higher-field systems.

Q

What spatial resolution can be achieved with the imaging capability?

A

Spatial resolution depends on sample properties and measurement time, but typical values range from 100-500 micrometers for geological samples, consult product datasheet for specific imaging protocols.

Q

Can the system measure both water and oil phases simultaneously?

A

Yes, the system can differentiate between water and oil phases through relaxation time differences and chemical shift when appropriate pulse sequences are used.

Q

What maintenance requirements should be expected for the magnet system?

A

Permanent magnet systems typically require minimal maintenance beyond temperature stability monitoring and periodic field homogeneity checks, consult service manual for detailed schedules.

Q

How quickly can pressure/temperature conditions be changed during experiments?

A

Equilibration times depend on sample properties and desired conditions, but typical pressure changes require 15-30 minutes for stabilization before measurement acquisition.

Q

What data formats are provided for analysis and export?

A

The system typically provides standard NMR data formats compatible with common analysis software packages, consult technical specifications for specific format details.

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MesoScan NMR Imaging & Analysis System (23 MHz)
$119,000.00
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