Spyder
Perfect for liquid

Spyder™ Process Flow Cell

Process Analytical Cell for laboratory and small-scale pilot plant use.

When the Spyder™ is connected to a suitable near-infrared process analyzer via fiber optic cables, it seamlessly enables the analysis of liquid products flowing within a continuous chemical process.

- Experiment with pathlength before committing to a fixed configuration.
- Swagelok connectors for simple integration.
- High performance in a compact form.

- Robust sapphire optics
- 316L stainless steel body
- FFKM sealing
- Contain flowing liquids up to 200ºC and 30 g pressure

The Spyder™ is your go-to spectroscopic liquid flow cell, perfect for labs and small-scale pilot plants. Just connect it to a near-infrared process analyzer with fiber optic cables, and you’ll unlock seamless analysis of liquid products as they flow through your continuous chemical process.

  • Experiment with Pathlength: The pathlength of the cell can be adjusted using internal spacing rings to determine the optimal measurement for your process. Once the ideal pathlength is established, it is “locked in” for in-service use by replacing the PTFE ferrules with stainless steel ones.
  • Robust Sapphire Optics: Sapphire optics are known for their exceptional durability in service, making them ideal for the near-infrared region of the spectrum due to their excellent optical transmission range.
  • Standard Swagelok Connectors: The cell connects to the process stream using standard off-the-shelf Swagelok fittings (US sizes only).
  • Handles a Wide Range of Chemical Process Conditions: Constructed with a 316L stainless steel body and FFKM sealing, the cell is capable of handling various process chemistries and can manage flowing liquids at temperatures up to 200 °C and pressures up to 30 bar g.

Spyder™ - Simplicity in Process Analysis

Unlock the ultimate in process control with our versatile cell, featuring adjustable pathlength that stays locked in place, sapphire optics tough enough for any challenge, and hassle-free Swagelok connections. Built with rugged 316L stainless steel and FFKM sealing, it’s ready to take on extreme temperatures and pressures, making it your go-to for demanding chemical processes.

Precision, durability, and flexibility at your fingertips

Experience the perfect blend of precision, durability, and flexibility with the Spyder™ spectroscopic flow cell. Designed for those who demand excellence, the Spyder™ lets you fine-tune your measurements with adjustable pathlengths, backed by the rugged strength of sapphire optics and 316L stainless steel. Whether you’re navigating complex chemical processes or setting up a reliable, fixed configuration, the Spyder™ delivers unmatched performance, empowering you to achieve the accuracy you need with ease.

Why Spyder?

Increased Efficiency

Spyder streamlines processes, saving time and resources for you and your staff.

Versatile Compatibility

Compatible with a wide range of applications and liquids for flexibility in production.

Cost-Effectiveness

Spyder offers incredible value for money, ensuring a high return on investment.

Three Steps Simple Setup

Select

Using the PTFE ferrules provided, ascertain the optimum pathlength for your process from the 2, 4, 6, 8 and 10mm options.

Set

Once the optimum pathlength has been found, switch to steel ferrules to lock in the pathlength.

Sample

With the steel ferrules locked in, conduct your process sampling safely at high temperature and pressure.

Featured Resources

Optimising process NIR analysis with the tuneable-pathlength Spyder™ process flow cell

The optimal pathlength for an on-line FT-NIR process measurement needs to be determined by experimentation. Here we demonstrate the feasibility of measuring water in acetone by NIR spectroscopy at various pathlengths using an adjustable Spyder™ process flow cell, as a prelude to full-scale implementation of NIR process analysis on a production line.

Spyder™ | Application Note | Download

Datasheet

The Spyder™ is a spectroscopic flow cell intended for use in laboratories and small-scale pilot plants. When connected to a suitable near-infrared process analyzer using fiber optic cables it enables the analysis of liquid products flowing within a continuous chemical process.

Spyder™ | Datasheet | View it now

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Frequently asked questions

Process cells are the interface between a chemical process stream and its dedicated process measurement systems. They bring light to the chemistry of your process stream, literally and figuratively.

They are subject to sometimes extreme physical demands: both from the chemistry inside the process stream and the environment outside. These conditions are often more hazardous to personnel, which is why safe means to install and service the system can be as important as the in-service requirements.

On the other hand, process cells are also required to provide a path for ultraviolet, visible, or near-infrared light to probe the chemical composition of the materials inside the cell: this requires robust optics, precision fitment, and above all, physical stability over the life of the cell.

Before design of a new process cell can commence, the designer needs to know several facts about the chemical process that it will come into contact with.

This includes temperature and pressure of the process, the physical properties of the material (solid, liquid, powder, gas, particulate, etc.) and its chemical compatibility with would-be cell materials.

Once the process parameters have been specified and a solution has been chosen, the next factor will be the installation of the cell into the process. This can be a direct installation in-line with the main process pipework, or it can involve a “double block and bleed” arrangement on a bypass loop.

Specac process cells are suited to an array of processes, with customisable options available for both liquid and gas analysis. Some examples of previous process cell uses can be found in our application notes. If you would like to explore an application that we have not previously covered or have any queries regarding our process cells, please contact us to arrange a consultation.

Specac process cells use a sapphire window, a material with a friction coefficient second only to diamond. Fouling is therefore minimised, should you still have concerns we recommend adding a cleaning port to your cell configuration so that optics can be manually cleaned as needed. If this is not a desired option, cycling of temperature and/or flow rate may aid in the removal of fouling from optics.

Specac flow cells work with a wide range of spectrometer options, provided the optical connections are compatible. Typically, Specac cells employ SMA905 optical connections, so any spectrometer using these would be suitable to connect to Specac cells.

The maximum operating distance of an optical system is dependent upon spectroscopic range. Typically, fibre optics enable connection of Specac process cells and spectrometers across substantial distances, with a 1km spectroscopic range usually feasible.

Specac has solved the most difficult NIR PAT sampling issues for more than 30 years and has been interfacing it’s products with many leading OEMs of NIR spectrometers. Specac is also very proud to have an extensive network amongst leading suppliers of sampling cabinets for liquids and gases to be drawn upon.

The first stage in specifying a new on-line NIR spectroscopy installation is to conduct feasibility studies on the chemical process. This determines whether the chosen process is even suitable for analysis by on-line NIR.

At the next stage, a pilot plant will be built. This tests the system separately from the main process plant, allowing data to be collected on how the pilot system performs in comparison to the regular process.

If all these tests are passed, the go-ahead will be given for full-scale implementation on the main plant.

The requirements for the corresponding process cells can differ at each of these stages.

Flow diagram of the building blocks of a chemical process installation.

 

Read more: Stages of online NIR installations

Light is transmitted via an optical fiber cable from the spectrometer source to one port of the process flow cell. Collimation optics then direct this light beam through a set pathlength of process stream to a second set of optics which re-focus the beam to a return optical fiber cable attached to the second process flow cell port.

The return optical fiber cable serves to transmit the light beam back to the spectrophotometer detector. Process flow cells are typically installed as part of the process circuit either directly in the process stream or in a ‘by-pass loop’. By adopting the process flow cell in a ‘by-pass loop’ configuration, the user has the opportunity to isolate the process flow cell from the process cell for routine cleaning, servicing or calibration. Hazardous process flows should be suitably isolated before the cell can be safely removed from the installation.

Installation of a process cell
Installation of a Specac Typhoon gas-phase process cell (top of image) on a chemical plant.

There is no fixed number of NIR cells on a chemical production facility, this can range anywhere between 1 and 6. The beauty of an NIR system is the option to multiplex between different cells which can be hundreds of metres apart from each other and analyse different process streams. The process streams can have different compositions and physical states (gas and liquid cells on one spectrometer)