With trace analysis capability, the FID is ideal for ASU safety and quality control applications.
The FID is a high specification Flame Ionization Detector (FID) based analyzer that provides a robust and high accuracy solution to trace Total Hydrocarbon (THC) measurements, ensuring gas stream inflammability levels are closely monitored.
It is optimized for quality control in pure oxygen, nitrogen, hydrogen, argon, helium, air or carbon dioxide, delivering an adaptable solution designed to meet the needs of diverse applications, from cryogenic air separation plants to dry ice manufacturers. The use of highly stable low-noise FID sensing ensures it delivers an accuracy unsurpassed by many contemporary solutions.
When you work in applications like air separation, product validation or process control, you require an analytical solution that delivers highly reliable, accurate and low-noise measurements of Total Hydrocarbons (THC). Safe, non-explosive conditions must be maintained, so a proven trace measurement sensing technology is a must. The ability to perform quality THC control checks in pure O2, N2, Ar, He, air or CO2is also important, so a single, adaptable on-site solution is preferred. No matter your application needs, you’ll also want an analyzer that can reduce ongoing costs and deliver remote interaction through diverse communications platforms. We don’t believe you should have to compromise.
The FID fully addresses trace accuracy and stability through the use of its industry-leading patented FID sensing technology, delivering a highly reliable, low-noise answer to THC monitoring. This device delivers peace of mind through an integrated automatic fuel shut-off valve function that ensures if the flame is extinguished, fuel feed lines are automatically closed. The FID also adapts to meet the needs of quality control checks, allowing you to integrate a single solution for diverse site needs. In addition to high-performance functionality, the FID’s user-friendly, low-maintenance operation makes it a no compromise analyzer you can depend on.
FIDs are able to adapt to meet and adapt to changing measurement needs, through a choice of three measurement range options. In addition to its gas measurement capabilities, the FID can also deliver measurements for other background gases or multiple background gas applications (upon request), delivering even greater adaptability to suit site needs. Finally, operational flexibility is maximized through a range of remote communication options including RS232 ASCII and 4-20mA outputs.
Our systems team has the expertise and applications knowledge you need to see your project through from start to finish. If you want to integrate your FID analyzer in a gas analysis system for optimum performance, get in touch with us before you start.
It’s easy to find the product you need for your application with Servomex
Get in touch to tell us what you need and the application you plan to use it for
Our expert team will help you select the right product package, ensuring you have the accessories and support to get the best performance from your analyzer
Your analyzer will be assembled in one of our state-of-the-art engineering centers and rapidly dispatched to your site
The FID is designed to provide the flexible benefits demanded by a wide array of applications.
The FID offers three measurement ranges in low or high setting modes, with automatic range change and over-range functions.
Electronic air controllers for air, fuel and sample reduce the analyzer’s dependency on sample and barometric pressure, and lower operational costs.
Innovative safety features include the “flame out” integrated fuel alarm shut-off valve.
The FID provides repeatable, fast-response measurement for trace total hydrocarbons in a range of background gases.
|Total Hydrocarbons ()|
540mm (21.2”) Wide x 132mm (5.1”) High x 460mm (18.1”) Deep
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The FID delivers the accuracy and stability required for ASU safety and quality control applications.
Cryogenic air separation | Process control | Food gas manufacture | Product validation