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H₂O in natural gas production, storage, transportation, and distribution

Reliable moisture measurement for natural gas dehydration applications

行业: 石油与天然气/海事工程
Industrial natural gas facility for moisture measurement applications

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概述

All natural gas contains moisture that must be monitored throughout production, storage, transportation, and distribution. Accurate H₂O measurement helps operators meet gas quality specifications, prevent pipeline corrosion, and avoid costly shipment delays caused by false wet-gas readings. Traditional moisture measurement technologies can be affected by contaminants such as glycol, methanol, compressor oil, and sulfur compounds. Tunable diode laser absorption spectroscopy (TDLAS) provides fast, accurate, and low-maintenance moisture measurements without these interference effects.

The benefits: Fast, interference-free moisture measurement

10-20 sec

typical T90 response time

ASTM D7904

standard test method compliance

Natural gas producers, transporters, and distributors require reliable moisture measurements to maintain gas quality and protect infrastructure. TDLAS technology provides accurate, real-time H₂O monitoring while eliminating many limitations associated with traditional moisture measurement methods. Benefits include:

  • Virtually maintenance-free operation
  • No interference from glycol, methanol, or amines
  • Accurate, real-time moisture measurements
  • No wet-up or dry-down delays
  • Reliable operation in harsh environments
  • Short payback with no consumables
  • NIST-traceable calibration
  • Analog and serial outputs for remote monitoring
  • Analyzer management software included
  • Compliance with ASTM D7904 moisture measurement methodology

The challenge: Measuring moisture in contaminated gas streams

Moisture measurement is critical for ensuring natural gas quality and preventing corrosion in pipelines and equipment. False-positive moisture readings can be extremely costly because gas deliveries may be rejected if the gas is believed to be wet. Natural gas streams frequently contain contaminants such as glycol, methanol, compressor oil, sulfur compounds, and other liquids or solids that can damage sensors or create cross-interference effects.

Traditional chilled mirror analyzers and contact-based electronic moisture sensors can struggle in these conditions. Chilled mirrors are inherently slow and can be influenced by the condensation of other compounds on the mirror surface. Contact sensors are exposed directly to the process stream and may experience errors, interference effects, degradation, or premature failure when exposed to contaminants. These limitations increase operating costs and reduce confidence in the measurement.

Our solution: Proven TDLAS moisture monitoring

Endress+Hauser uses TDLAS, a technology that has been deployed in thousands of natural gas installations worldwide. Because the measurement is laser based, it is not adversely affected by glycol, methanol, amines, H₂S, moisture slugs, or other common natural gas contaminants that challenge conventional technologies.

The rugged design enables reliable operation in natural gas production facilities, gathering systems, pipelines, storage facilities, compression stations, and custody transfer applications. Operators benefit from fast response times, accurate real-time measurements, and minimal maintenance requirements.

Unlike many traditional technologies, Endress+Hauser analyzers do not require routine field calibration. Validation can be easily performed using binary gas blends containing H₂O, supporting long-term measurement confidence while reducing maintenance effort.

Conclusion

Accurate moisture monitoring is a critical component of safe, efficient, and profitable natural gas operations. By combining proven TDLAS technology with a low-maintenance design, Endress+Hauser delivers reliable H₂O measurements even in demanding conditions. The result is greater confidence in gas quality, reduced maintenance effort, faster response to changing conditions, and long-term protection of assets across production, storage, transportation, and distribution networks.

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