Caldon 280CiRN LEFM ultrasonic liquid flowmeter

Reliable custody transfer measurements for liquid hydrocarbons

Applications

  • Direct proving
  • Custody transfer
  • Leak detection
  • Refinery inlet and outlet
  • Offloading
  • Import and export metering

Benefits

  • Industry-leading 8-path chordal design for optimal linearity and repeatability, with dramatically reduced sensitivity to swirl and asymmetry effects
  • 5-diameter minimum upstream pipe run and no requirement for flow conditioner, reducing total cost of ownership
  • Enhanced provability via reduced-nozzle design, which improves meter stability and repeatability
  • Reduced-nozzle design that enables continued confidence in measurements through transitional Reynolds regimes in high-viscosity fluid applications
  • Transducers that are isolated from the process and outside the pressure boundary for ease of service
  • No recalibration or zeroing required if transducer is replaced
  • In-house transducer manufacturing for maximum quality control
  • Continuous logging capabilities
  • Optional corrosion-, adhesion-, and contamination-resistant internal coating

Features

  • Available sizes: 6 to 36 in
  • Linearity: ±0.10% over 15:1 nominal flow range
  • No minimum limit on Reynolds number
  • Advanced signal processing with real-time diagnostic analysis
  • Internal resistance temperature detector (RTD) for thermal expansion compensation
  • G3 electronics with rich I/O and integral SD card
  • Electronics that can be mounted integrally or remotely (on pipe)
  • Caldon USM Advisor™ diagnostic software
  • Compliance with API MPMS Chapter 5.8, International Organization of Legal Metrology (OIML) Recommendation R 117-1 Edition 2019 (E) Accuracy Class 0.3, Measuring Instruments Directive (MID) 2014/32/EU, and NACE MR0175

How it improves performance

The Caldon™ 280CiRN LEFM ultrasonic liquid flowmeter features an 8-path, reduced-nozzle design that enables continued confidence in measurement performance through transitional Reynolds regimes where fullbore ultrasonic meters are susceptible to increased uncertainty from dramatic changes in flow profile. The reduced-nozzle design smooths the transition from turbulent to laminar flow profiles, allowing the meter to operate with no minimum Reynolds number limitation. This design also improves provability and repeatability, with a reduction in required volume relative to a fullbore meter.