Showing posts with label Differential Pressure. Show all posts
Showing posts with label Differential Pressure. Show all posts

Industrial Process Pressure Transmitters

industrial pressure transmitter or differential pressure transmitter
One of many variants of industrial pressure transmitters.
Image courtesy Yokogawa USA
The measurement and control of fluid pressure is ubiquitous throughout many industrial processes. Measurements of pressure, directly and indirectly, provide real time information about what is happening in places that cannot be seen, such as inside a pipe, tank, or machine. The very nature of “process” suggests movement and change, the control of which is necessary to produce a consistent desirable outcome. Industrial pressure transmitters employ specific technologies and physical principals to derive a measurement of process pressure, then deliver or transmit, the measured value to a controller or recording device.

Fluid pressure tells a process operator much about what is currently happening. The pressure variable can be used to determine, among many industrial process elements:
  • Degree to which the process is conforming to a recipe or specification
  • Whether machinery is performing within its specified operation range
  • If conditions of the process remain within the bounds established for safety
  • A quantity measurement of flow, mass, or volume
Global industrial processes have widely varying physical arrangements, operating environments, and measurement requirements. Manufacturers of industrial pressure transmitters have responded with an immense array of transmitter technologies, arrangements, and configurations. When selecting the best suited pressure transmitter for your application, consult a sales engineer and consider some of the following:
  • Signal requirements – Type, distance, possible sources of interference
  • Device environment – Hazards, extreme conditions of temperature or corrosion
  • Accuracy and stability of measurement
  • Response time to changes in the process condition
  • Ratings and certifications required for the device
  • Configuration, arrangement, and mounting aspects of the transmitter device
Explore the differing technologies and how they can be best applied to implement or improve your process. Experienced sales engineers are a useful sounding board for discussing your needs. Share you process measurement challenges with them and leverage your own knowledge and experience into an effective solution.

Explanation of Overpressure and Overpressure Protection for Yokogawa DPharp EJX/EJA-E Series Transmitters



This video demonstrates what overpressure is, how it effects pressure transmitters, and the mechanism Yokogawa deploys for overpressure protection for on their DPharp EJX/EJA-E series.

For more information on Yokogawa in Florida, Puerto Rico, or the Caribbean contact Classic Controls. Share your process measurement and control challenges and leverage your own knowledge and experience with their product application expertise.

Continuous Liquid Level Measurement Technologies Used in Industry

magnetic level indicator coupled with guide wave radar level transmitter
Magnetic level indicator coupled with
guide wave radar level transmitter
Courtesy Vega
Although continuous level measurement technologies have the ability to quantify applications for bulk solids, slurries, and granular materials, liquid level technologies stand out as being exceptionally crucial to the foundation of process control. Called “transmitters,” these continuous liquid level measurement devices employ technologies ranging from hydrostatics to magnetostriction, providing uninterrupted signals that indicate the level of liquid in a vessel, tank, or other container.

Hydrostatic devices focus on the equilibrium of dynamic and static liquids. There are three main types of hydrostatic transmitters: 1) displacer, 2) bubbler, and 3) differential pressure.

The displacer transmitters utilize a float placed within the liquid container. With its buoyancy characterized to the liquid and the application, the float, a connecting stem, and a range spring or similar counterbalance represents the liquid level in terms of the movement of the displacer (float). The displacement, or movement, of the assembly is converted into an electric signal for use by the monitoring and control system.

Bubbler transmitters are used for processing vessels that operate at atmospheric pressure. This method introduces a purge gas or an inert gas, e.g. air or dry nitrogen, into a tube extending into the liquid vessel. Precise measurement of the pressure exerted on the gas in the dip tube by the liquid in the tank is used to determine the height of the liquid.

Differential pressure (DP) transmitters rely directly on, in a basic explanation, the pressure difference between the bottom and top of the container. Precise pressure measurement is used to determine the height of the liquid in the tank. One of the most advantageous aspects of DP transmitters is that they can be used in pressurized containers, whereas displacer and bubbler transmitters cannot.

Other examples of level transmitter technologies––which are not hydrostatic devices––are magnetostrictive, capacitance, ultrasonic, laser, and radar.

In magnetostrictive level transmitters the measuring device, a float, has a series of magnets that create a magnetic field around a wire enclosed in a tube. Electrical pulses sent down the wire by the transmitter head product a torsional wave related to the position of the float, which moves with changes in liquid surface level. The transit time of the torsion wave back to the sensing head is measured and the depth of the liquid, as indicated by the float position, can be determined.

Capacitance transmitters are best applied to liquids that have high dielectric constants. Essentially, changes in the capacitance of the sensor / tank / liquid assembly will vary proportionately with the liquid level. The change in capacitance is measured and converted to an appropriate electrical signal.

Ultrasonic level transmitters emit ultrasonic energy from the top of the vessel toward the liquid. The emissions are reflected by the liquid surface and them time required for the signal to return to the source is used to determine the distance to the liquid surface.

Laser level transmitters operate similarly to an ultrasonic level transmitter. However, instead of using ultrasound signals, they use pulses of light.

Radar level transmitters involve microwaves emitting downward from the top of the container to the liquid’s surface and back again; the measurement is the entire time-frame. One variable radar level measurement echoes capacitance measurements: they both involve dielectric contact of liquid.

The precise measurement of transmit time for a wave or pulse of energy is employed in several of the technologies, the measurement of pressure in others. Each technology has a set of attributes making it an advantageous selection for a particular range of applications. Share your liquid level measurement challenges with an application expert, combining you process knowledge with their product application expertise to develop effective solutions.





Pressure Measurement Handbook From Yokogawa

industrial process control pressure transmitter
Pressure Transmitter
Courtesy Yokogawa
The impact of pressure on industrial processes would be difficult to understate. Pressure is an element of process control that can affect performance and safety. Understanding pressure concepts and how to effectively measure pressure within a process are key to any operator's success.

Yokogawa, a globally recognized leader in process measurement and control, has made available a handbook on pressure that covers a range of useful topics. The content starts with the very basic concepts and moves quickly to practical subjects related to process measurement and control.

The handbook will prove useful to readers at all levels of expertise. Share your process measurement challenges with application specialists, combining your process knowledge with their product application expertise to develop effective solutions.


Hydrostatic Level Measurement

submersible pressure sensor transmitter
Submersible Pressure Transmitter
VEGA
Liquid level can be inferred by accurately measuring the pressure produced by the height of a fluid column and knowing the density of the liquid measured. The measurement is comparative in nature, referencing some external pressure as a zero point. The zero point can be the surrounding atmospheric pressure, tank pressure, or the pressure exerted by another column of liquid contained elsewhere.

There are uncountable application scenarios, each with its own set of special conditions. Proper instrument selection, installation and calibration are essential to generating reliable and accurate results.

The VEGA hydrostatic pressure transmitters are specially designed to provide level measurements across a wide range of liquids with different properties. Some units provide media temperature measurement as well. The product centers around three basic units, with numerous variants and options that can be used to configure an instrument for any application.

Browse the document included below to see application examples, setup instructions, and the extensive array of configurations available with these pressure transmitters from VEGA. Contact product specialists to share your application challenges and get effective solutions.


Capabilities of the Yokogawa DPharp Pressure Transmitter

DPharp Pressure Transmitter
DPharp Pressure Transmitter
(courtesy of Yokogawa)
The Yokogawa DPharp digital sensor uses two single crystal silicon resonators vibrating at their natural frequencies. When pressure is applied, one of the resonators goes into tension, while the other goes into compression mode.  The CPU directly counts the sensor output frequencies without any additional A/D conversion. Due to the excellent elastic properties of silicon material, the DPharp sensor exhibits greater linearity and repeatability, with no inherent hysteresis. The resonant sensors also provides a large output signal resulting in greater sensitivity and higher turndown. 

Long term, accurate and stable measurement in real world conditions is fundamental to realize reliable and efficient plant operation. Transmitters in the field are subjected to continuous variations of ambient and process temperature, static and overpressure conditions affecting their accuracy. The long term stability of the transmitter is a measure of performance drift and dependent on the sensor technology. Total accuracy and long term stability determine the recalibration interval for the devices according to the acceptable performance levels. 

Additionally, the DPharp digital sensor has the unique ability to simultaneously measure static pressure and differential pressure. The multi-sensing platform enables real-time dynamic compensation for unmatched precision and forms the basis for implementation of advanced diagnostics. The information is available through various digital communication protocols, providing additional knowledge about your process. The multi-sensing functionality, with guaranteed accuracy of static pressure signal, allows the process to operate with fewer devices and delivering reduced lifecycle costs.


For more information on the Yokogawa DPharp, contact:
Classic Controls, Inc.
5095 South Lakeland Drive
Lakeland, Florida 33813
Phone: 863.644.3642
Fax: 863.648.0484
Email: sales@classiccontrols.com