Showing posts with label Environment. Show all posts
Showing posts with label Environment. Show all posts

Wednesday, 16 September 2026

Automation for sustainable aviation fuel plant.

Automating Europe's first greenfield production facility to help Netherlands meet EU sustainable aviation fuel mandate.

Technip Energies have awarded a contarct to Emerson to provide automation technologies for the SkyNRG sustainable aviation fuel (SAF) plant – the first dedicated greenfield SAF production facility in Europe. Emerson’s DeltaV™ integrated control and safety system (ICSS) will help ensure safe, reliable start-up and long-term operational performance, while reducing project risk for this first-of-its-kind facility.

“Projects such as SkyNRG’s SAF facility represent the future of energy and sustainable fuels,” said Nathan Pettus, president of Emerson’s process systems and solutions business. “With complex, first-of-a-kind plants, early engineering alignment and a fully integrated automation architecture are key to delivering predictable project outcomes and consistent operational performance over the long term.”

Currently under construction in Delfzijl, the new SAF facility will support the Netherlands’ efforts to meet the EU’s sustainable aviation fuel mandate. Once fully operational in 2028, the facility is expected to produce approximately 100,000 tonnes of SAF annually. The plant will convert residual fats and greases into a sustainable ‘drop-in’ fuel that can be blended with conventional jet fuel without requiring modifications to aircraft or fuelling infrastructure. The project will also support compliance with the ReFuelEU Aviation Regulation, which requires all jet fuel supplied at EU airports to contain a minimum of 2% SAF from 2025, rising to 70% by 2050.

“Developing Europe’s first dedicated sustainable aviation fuel facility is a major step in scaling SAF production and supporting aviation decarbonisation,” said Bart Rosendaal, site director of DSL-01 at SkyNRG. “Working with experienced partners like Technip Energies and Emerson helps ensure we can deliver a safe, reliable and future-ready plant from day one.”

As a greenfield facility, the plant will be born digital, with advanced automation technologies implemented from the outset to ensure efficient, reliable and safe operations. The ICSS will include Emerson’s DeltaV Distributed Control System and DeltaV Safety Instrumented System, providing process control, safety shutdown, and fire and gas detection. Emerson’s AMS Device Manager plant asset management software will support efficient commissioning and ongoing maintenance by delivering device data, health insights and advanced diagnostics from intelligent field devices.

These systems will manage all process units, including the hydroprocessed esters and fatty acids process to produce SAF, an advanced feedstock pre-treatment unit and an on-site hydrogen plant based on Technip Energies’ proprietary high-efficiency steam methane reforming technology. Together, they will provide real-time visibility and stable, consistent operation of the facility, helping to improve reliability and optimise throughput.

Emerson will deliver end-to-end project services, applying modern project management strategies and digital technologies to reduce engineering complexity and optimise operations. Seamless integration of the ICSS with a broad range of modular production units will help simplify commissioning, while DeltaV Electronic Marshalling with distributed CHARMs reduces field wiring infrastructure costs and provides the flexibility to accommodate late-stage design changes.

“Projects such as SkyNRG’s SAF facility represent the future of energy and sustainable fuels,” said Nathan Pettus, president of Emerson’s process systems and solutions business. “With complex, first-of-a-kind plants, early engineering alignment and a fully integrated automation architecture are key to delivering predictable project outcomes and consistent operational performance over the long term.”


@EMR_Automation @EmersonExchange@Emerson_News @HHC_Lewis #PAuto #Netherlands

Monday, 17 August 2026

Space age technology for rivers.

Satellite technology enhances river flow monitors.

A wireless, continuous river monitoring solution to meet the requirements of water managers and regulators such as the English Environment Agency (EA), has been developed by Nivus. Utilising satellite technology, the new Wireless Transit Time method avoids the requirement for invasive capital works on rivers.

Background.
River flow measurements underpin several of the EA’s core functions, including flood warning, modelling, forecasting and planning, as well as the management of water infrastructure and abstraction licenses. Flow monitoring also informs the EA’s work to monitor long-term indicators of change in catchments, and track the effects of climate change.

The EA operates around 7,000 hydrometric monitoring stations across England. This includes high-resolution data (mainly 15 minute) measurements of river flow, river level, groundwater and rainfall, as well as daily data.

"The measurement of river flow in England presents a particular set of challenges,” explains Sam Everitt, National Hydrometry Advisor at the EA. “We monitor everything from slowly responding lowland rivers to catchments that can experience rapid changes in flow during storm events. This means that flow monitoring technology has to be sufficiently robust and versatile to perform reliably across a wide range of river conditions."

The EA operates a variety of flow measurement techniques, and the Transit Time method has been employed for decades to monitor relatively clean rivers. Traditionally, the main drawback of the Transit Time method has been the necessity to install cabling across or under the river.

Transit time flow monitoring.
This standard flow measurement method (ISO 6416) relies on the highly accurate measurement of acoustic signals emitted upstream and downstream. Sensors are necessary on both banks of a river so that it is possible to exploit the characteristic of sound waves travelling faster in the direction of the flow than they do when travelling against it. One sensor acts as a transmitter sending a signal downstream, and the sensor (transmitter/receiver) on the opposite bank receives it. The process is then reversed to measure the upstream signal.

Highly accurate flow velocities are determined by calculating the difference between the upstream and downstream signal transmission times. This delivers a full velocity profile of the river, rather than spot velocity measurements that are utilised by some alternative methods.

In comparison with traditional methods like mechanical meters, Acoustic Doppler Current Profilers (ADCP), or tracer injections, the Transit Time method offers a number of important advantages. It provides continuous measurements; has less environmental impact; is not reliant on tracers, particles or bubbles; is less sensitive to localised turbulence and misalignment; offers highly reproducible total discharge volume measurements, and requires very low levels of maintenance.

Explaining the advantages of their Transit Time monitors, Nivus’s Alistair MacKinnon says: “We can apply this method to a wide range of channel sizes, and for rivers up to 200 metres wide. Deep water can also be accommodated with multiple sensors and signal paths. In addition, some of these signal paths can be redundant to account for fault conditions or obstructions.”

The potential disadvantages of the Transit Time method include unsuitability to high levels of suspended solids or weed, and to water with entrained air bubbles.

The Transit Time method involves very fast measurements (nanoseconds) between sensors, so it is necessary for the internal timing of the transmitter/receivers to be synchronised and extremely accurate. For this reason, the sensors on both banks have traditionally been connected by cross-river cabling, which significantly increases the cost of installation. Typically, this involves civil works and the installation of cross-ducting on the river floor – operations that can necessitate the damming or diversion of river flow. The installation of ducting can negatively impact river ecology, and once in place, ducting can present a hazard to human activities. In addition, the duct and cabling could be at risk during severe weather events.

Wireless Transit Time (WTT).
The Nivus WTT solution retains the accuracy of the Transit Time flow measurement method without the associated costs and disadvantages of the cabled version. The WTT sensors communicate across the river by Wi-Fi and maintain time accuracy by communicating with GPS satellites which employ atomic clocks.

Sustainability has been a key driver in the development of the Nivus WTT solution. The entire system is able to operate on solar power, providing an off-grid solution that can be deployed in any location. In addition, ground screws are used to anchor the bankside equipment, which avoids the need for concrete, and simplifies decommissioning.

Case Study: River Ouse (GB).

Ouse installation
A Nivus WTT system has recently been installed on the River Ouse at Barcombe Mills, close to the Barcombe Reservoir in East Sussex. The new system replaced an older Transit Time monitor that had failed.

The EA and its predecessor, the National Rivers Authority, have been monitoring river flow at the site for over 30 years. The previous system employed a cross-river duct that lay on the riverbed, weighed down by clay chimney pots. Theo Parfitt, from the EA’s regional Hydrometry & Telemetry team, explains the options: “It would be possible to bore a tunnel under the river, but this requires tunnelling to begin at some distance from the river to create the correct angle of bore. However, aside from the high cost, the proximity of the reservoir rendered this option redundant. Similarly, replacement of the cross-river ducting was disregarded because of cost and environmental issues. It was fortuitous therefore that our working partnership with Nivus had developed a beneficial solution.”

The Ouse is approximately 20m wide at Barcombe Mills, and it was estimated that the cost of a Nivus WTT system would be around 25% of the cost of a ducted system.

“The previous system included two sets of sensors in submerged racks on either bank, with 8 signal paths,” Theo explains. “Fortunately, these sensors could be utilised by the new WTT system, which also helped to lower costs.”

The future of WTT flow monitoring.
The EA already operates two WTT systems on North London and Yorkshire. Both of these Nivus installations are mains powered, so Barcombe Mills is the first to be fully solar powered.

Looking forward, Sam Everitt says: “This is a good example of the ways in which the EA can leverage its size and expertise, working with specialist partners, to develop innovative solutions that save money and enhance environmental protection. Given these advantages, we are looking to switch our existing Transit Time monitors to wireless versions as they come up for renewal. The new technology appears to be working very well, and has prompted interest


@_Enviro_News  @EnvAgency #Nivus #Environmemt #Wireless

Tuesday, 28 April 2026

Test & measurement range unveiled.

A new lineup of Extech moisture meters, the Extech BR95 Video Borescope with modular environmental sensors, and the Flir VP54 Non-Contact Voltage Detector—expanding its portfolio of accessible, professional-grade test and measurement solutions has been launched.

Designed for building inspectors, restoration professionals, HVAC technicians, and electrical contractors, the new tools deliver improved visibility, faster diagnostics, and greater confidence across a wide range of inspection and troubleshooting applications.

Clear, reliable detection for building and restoration applications.
The new Extech MO50A, MO55A, and MO57A moisture meters provide flexible solutions for detecting moisture in wood, drywall, concrete, and other building materials. These updated models feature high-contrast color displays with backlight and intuitive visual and audible indicators to simplify interpretation in any environment.

  • MO50A: A compact pin-type meter for fast, accurate measurements
  • MO55A: A versatile combination pin and pinless meter for invasive and non-invasive testing
  • MO57A: A pinless meter with a ball probe for smooth scanning across delicate or uneven surfaces

Together, the MO5xA-Series helps professionals quickly identify hidden moisture, assess water damage, and make informed remediation decisions.

Versatile inspection with expandable sensing capabilities.

The Extech BR95 Video Borescope introduces a new level of flexibility for visual inspections in tight or hard-to-reach spaces. Featuring a compact, palm-sized design, a 5.5 mm waterproof camera probe, and a 3.5-inch IPS display, the BR95 captures high-quality images and video for documentation and analysis.

What sets the BR95 apart is its ability to expand beyond visual inspection with optional environmental sensors, transforming it into a multifunction diagnostic tool:

  • BR95-CO: Measures carbon monoxide from 0–500 ppm
  • BR95-CO2: Measures carbon dioxide from 400–2000 ppm
  • BR95-RH: Measures temperature and relative humidity 

 This modular approach enables users to perform HVAC inspections, indoor air quality assessments, and building diagnostics with a single platform—reducing the need for multiple tools and improving workflow efficiency. 

Reliable electrical verification with enhanced safety feedback.
The Flir VP54 Non-Contact Voltage Detector is designed to help professionals safely verify energized circuits before starting work. Featuring triple alarm feedback—visual, audible, and vibration alerts—the VP54 ensures voltage presence is clearly communicated even in noisy or low-light environments.

Additional features include:

  • Bright LED flashlight and tip light for improved visibility
  • Ability to differentiate live wires from neutral or ground
  • CAT IV safety rating and compliance with UL1436 standards
  • Rugged, drop-tested design for demanding field use

The VP54 provides electricians, inspectors, and technicians with a dependable tool for quick, confident electrical verification.

“Today’s professionals need tools that are not only accurate, but also versatile and easy to use across a wide range of environments,” said Heliel Morales, Director of Business Development - Test and Measurement. “With the introduction of the BR95 platform, enhanced moisture meters, and the VP54 voltage detector, we’re delivering practical solutions that help customers work more efficiently, diagnose issues faster, and make safer, more informed decisions in the field.”

Built for real-world applications.
Across industries, professionals face increasing pressure to work faster, safer, and more efficiently—often in challenging environments. This new lineup of tools is designed to address common pain points such as limited visibility, unreliable measurements, and the need for multiple devices.

By combining ease of use, durable design, and versatile functionality, these solutions support a wide range of applications, including:

  • Building and home inspections
  • Water damage restoration
  • HVAC system diagnostics
  • Automotive inspection
  • Electrical troubleshooting and safety checks


@planetextech @flir @mepaxIntPR #TandM #PAuto

Monday, 27 April 2026

Volatile organic compound emissions control.

A leading coatings manufacturer in Wales has installed an advanced online gas analysis system to monitor emissions of Volatile Organic Compounds (VOCs), enabling the company to leverage real-time data for measurable environmental, operational and compliance benefits.

ProAmpac Advanced Coatings, which has operated in Wrexham for more than 50 years, invested in a new Regenerative Thermal Oxidiser (RTO) in 2025. The RTO destroys VOCs, air pollutants and odours through high‑temperature oxidation and is continuously monitored using a Signal Group VOC analyser to optimise performance, provide early warnings and support regulatory compliance.

Dan Hitchcock, Project Manager at ProAmpac says “We see the analyser as essential. Real‑time data supports effective process control and allows us to verify that emissions are being correctly abated. That gives us confidence that we will meet emissions limits when regulatory testing is carried out.”

Long‑standing commitment to emissions control.
ProAmpac Advanced Coatings (PAC) is a global supplier of precision coating materials, including coated papers, films and specialist substrates for applications such as digital imaging, electronics, medical and optical technologies. Its manufacturing processes involve the use of solvents, making robust emissions control essential.

As a Part A2 installation, the Wrexham site has long operated an on‑site thermal oxidiser to protect the environment and meet the requirements of an environmental permit issued by the local council. Historically, the permit has included emission limit values (ELVs) for pollutants such as Total Organic Carbon (VOCs), carbon monoxide and nitrogen oxides. These emissions are checked during annual visits by an MCERTS‑accredited contractor. In addition to periodic compliance testing, PAC has continuously monitored post‑combustion VOC emissions for over 20 years using a Signal Group analyser employing a flame ionisation detector (FID), the reference method for VOC measurement. The original analyser remained in operation for approximately two decades.  

Investing ahead of regulatory change.
Installed in 1995, the original RTO was approaching the end of its service life after 30 years of continuous operation, with ageing ceramic beds requiring increasing maintenance. At the same time, emissions regulations affecting solvent‑based coating processes were becoming more stringent. Updates to the Best Available Technique (BAT) Reference Document for Surface Treatment using Organic Solvents (STS BREF) introduced lower emission limits for applicable installations, prompting the local council to begin drafting a revised permit for the site.

“In that context, relying solely on periodic testing would not give us the level of operational visibility we need,” Dan Hitchcock (pictured right) explains. “Continuous monitoring allows us to manage performance proactively rather than retrospectively.” With an ageing RTO, and with the prospect of tighter regulations, PAC chose to install a new, more efficient RTO with a capacity of up to 150,000 Nm³/hour, commissioned in 2025.

Real‑time data, real‑world benefits.
PAC continues to operate continuous VOC monitoring alongside statutory compliance testing. Dan Hitchcock, who has worked at the Wrexham site since 1992, says real‑time data is critical to effective control of both coating processes and the RTO. “The analyser helps us optimise oxidiser performance, manage emissions from the coating lines, and control fuel input.” he says. “Any issue with the RTO could have serious consequences, so early detection is vital.”

An integrated monitoring and alarm system provides management staff with real‑time displays, historical data and automated alerts. The system also confirms correct operation and calibration of both the analyser and the heated sample line.

Seán O’Brien, Health, Safety and Environment Manager at the site, adds: “Continuous VOC monitoring allows us to identify potential problems early and address them before they escalate. It gives us confidence that compliance monitoring will demonstrate performance that meets permit requirements, while providing additional reassurance to the regulator.”  

Proven performance from Signal Group.
Following more than 20 years of reliable service from its first Signal Group analyser, PAC selected Signal once again when upgrading its monitoring system for the new RTO. The original instrument has been replaced with an MCERTS‑approved SOLAR CEMNEX continuous FID analyser, installed at the base of the RTO exhaust stack. Signal Group also supplied the heated sample line. As an MCERTS‑certified system, the analyser’s data are accepted by regulators including local councils, Natural Resources Wales, SEPA and the Environment Agency.

The system is supported by daily automatic zero checks, periodic span checks using calibration gas, and comprehensive on‑site servicing every six months under a long‑term maintenance agreement with Signal Group.

Summary.
Regenerative thermal oxidisers are designed for continuous operation, and any interruption to their operation would also increase the cost of recreating sufficiently high temperatures within the RTO. Also, thermal cycling can cause mechanical stress, increase energy consumption and damage ceramic media affecting the performance of the RTO. At the Wrexham site, where production schedules vary daily, continuous monitoring is critical for providing assurance that the RTO is performing well and for


@GasAnalysers @ProAmpac  @_Enviro_News #PAuto #Environment #VOC

Thursday, 9 April 2026

Ai‑powered automation transforms green hydrogen and complex industries.

Schneider Electric is deepening its collaboration with Microsoft to help make it easier for industrial companies to modernise their operations, break free from proprietary legacy systems and deploy Ai-powered automation at scale.
 
At the heart of this collaboration is a conviction that industrial automation is overdue for the same open, software-driven transformation that reshaped enterprise IT. Today, most factories and energy plants still run on hardware-locked control systems that are expensive to update, slow to adapt and difficult to extend with Industrial Ai. Schneider Electric is building the technology that showcases a better alternative exists.
 
In collaboration with h2e POWER, an Indian green hydrogen pioneer, the two companies have deployed India’s first fully autonomous solid oxide electrolyser system, empowering operators to shift their focus from routine monitoring to more strategic, high-impact work. The system has surpassed 6,000 hours of stable operation in part- and full-load conditions and has demonstrated just-in-time predictive maintenance and promise in cutting electricity consumption by up to 10%, in a process where electricity accounts for more than 70% of total hydrogen production cost.
 
A Collaboration Built to End Legacy Drag
The Schneider Electric collaboration with Microsoft combines Schneider Electric’s role as a global energy technology partner and pioneer of open, software‑defined automation with Microsoft Azure cloud, Ai, and edge infrastructure. The goal is a practical, vendor-neutral path for industrial companies to modernise without scrapping existing investments or halting production.
 
Central to this is the Industrial Copilot, which extends intelligence to the edge using Microsoft Azure’s cloud and Ai services approach for local inference and reinforcement. It automates the engineering tasks that slow modernisation most: writing control logic, configuring systems, and navigating documentation. Engineering teams using it report up to 50% time savings, with production line changes that once took weeks now completed in hours.
 
Underlying everything is Schneider Electric’s EcoStruxure™ Automation Expert, the world’s first open, software-defined automation platform. By separating software from hardware, it lets customers run and reuse their automation applications across different equipment, vendors, and generations of infrastructure. Microsoft Azure provides the secure cloud and edge backbone that connects it all, from individual sensors to enterprise dashboards.
 
Together, the two companies are offering something the industrial world has lacked: a migration path that meets organisations where they are, not where they “should be.”
 
Proving It in the Field: Green Hydrogen with h2e POWER
Green hydrogen is central to global decarbonisation plans; however, producing it cheaply and reliably at scale remains a challenge. Solid oxide electrolysers (SOECs) offer the highest efficiency of any hydrogen production technology, but their operating conditions are so demanding that it has been difficult to maintain equitable net energy consumption and operate them autonomously.
 
h2e POWER, an India-originated green tech company based in Pune with operations in India, Germany and the USA, had exactly this challenge. Its SOEC system is technically superior, but limited real-time visibility and the absence of open, scalable automation were pushing operating costs well above design targets.
 
Working with Schneider Electric, they deployed a new Ai-powered control solution on h2e POWER’s 20 kW SOEC system. The solution continuously monitors and adjusts the electrolyser in real time, managing thermal balance, hydrogen flow, energy inputs, and safety and equipment health, remotely.
 
The results speak to both the technology and the collaborative approach. Energy efficiency improved, stack wear was significantly reduced, and the levelised cost of hydrogen, the industry’s key economic metric, fell by up to 10%, equivalent to around €500,000 per year for a typical 10 MW plant. The system has now run for more than 6,000 hours, making it one of the most durable autonomous electrolyser demonstrations in India, and probably anywhere in the world.
 
“SOECs have always offered unmatched efficiency, but true commercial scale depends on sustainable operations, optimised energy consumption, durability, predictive maintenance and remote, autonomous control. With Schneider Electric’s open, software‑defined automation and Microsoft’s AI capabilities powered by Azure, our systems are becoming smarter, more responsive, safer, and dramatically more scalable. This open architecture also means we can redeploy intelligence across our entire installed base across multiple locations, without the lock‑in that has constrained industrial innovation for decades,” said Mr. Siddharth Mayur, Founder & Managing Director, h2e POWER.
 
“What we’re seeing at h2e POWER shows the future of industrial automation," said Dayan Rodriguez, Corporate Vice President, Manufacturing and Mobility, Microsoft. "The system is powerful and built to scale. Enterprise dashboards unify data across every site, machine learning improves with every hour of operation, and open standards make the control logic fully portable.”

“Every CIO and plant leader asks the same question: can software‑defined automation truly perform under real‑world industrial conditions? At h2e POWER, the answer is clear,” said Gwenaelle Huet, Executive Vice President, Industrial Automation at Schneider Electric. “Industrial leaders don’t need another vision; they need a migration path. Our collaboration with Microsoft and the Industrial Copilot delivers exactly that, proving even the most complex energy systems can run as intelligent, autonomous assets.” 


@SchneiderElec @h2epower  #PAuto #Power #India

Developing ‘green hydrogen’ electrolysers.

The generation of green hydrogen by water electrolysis represents an exciting decarbonisation opportunity. However, the performance of electrolysers is heavily impacted by the characteristics and stability of the electrolyser’s components. A group of engineers in Germany is therefore developing a test bench for alkaline electrolysis.

A key factor affecting the success of this project is the ability to accurately and reliably monitor electrolytes in an extremely aggressive solution. Following a global search for suitable technologies, the researchers found that Vaisala’s inline refractometers were able to meet their stringent requirements.

Background.
Hydrogen represents an exciting opportunity as the world seeks to decarbonise its energy infrastructure in the pursuit of a Net Zero goal. This is because hydrogen has a high calorific value and its combustion products do not contain any greenhouse gases that are considered major contributors to global warming. However, hydrogen is currently mostly produced from fossil-fuel intensive processes, generating ‘grey hydrogen’ which globally accounts for around 2% of carbon emissions.
Webinar:
The project partners are engineering services provider iChemAnalytics GmbH, electroplating technology specialist Dr.-Ing. Max Schlötter GmbH & Co. KG, and the coating expert WHW Hillebrand. This project will be discussed in an upcoming interview/webinar.

Where hydrogen is generated from the electrolysis of water, powered by renewable energy, the resulting ‘green hydrogen’ offers a significant opportunity for decarbonisation, so there is a high level of interest in efficient, sustainable electrolysers.

Alkaline hydrogen electrolysers use an electric current to split water into hydrogen and oxygen using a liquid alkaline solution such as potassium hydroxide (KOH) as the electrolyte. Typically, the solution is 15 to 30% KOH, which is very aggressive. The electrolyte is contained between two electrodes, typically nickel-based, separated by a porous diaphragm or membrane. Hydrogen gas is produced at the cathode, and oxygen gas is produced at the anode. The diaphragm separates the gases and transports hydroxide ions from the cathode to the anode to complete the circuit.

Project objectives
Work began in 2023 with a completion target in mid-2026. The main objectives were: 1. Create a working, fully automated test bench for electrolyser stacks 2. Develop a new electrode coating which is stable for over 80,000 hours 3. Evaluate prototype coatings over a range of different working conditions

Why measure electrolyte strength?
Each side of the membrane in the test bench electrolyser contains a 30% KOH solution - a highly concentrated, strong, and corrosive alkaline liquid that is 30% potassium hydroxide and 70% water by weight. During electrolysis the ratio of KOH % on either side of the membrane changes. This is important for multiple reasons. The service life of the components and the phase boundary reactions within the cells change negatively, which also has a direct influence on cell voltage, aging effects and reaction efficiency.

Electrolyte measurement technology.
The project team conducted a worldwide search for a technology that would be able to operate in such a challenging environment, delivering accurate and reliable KOH measurements. The ability to operate in 30% KOH at temperatures up to 80°C and pressures up to 5bar (mounted in-line) ruled out most of the options, leaving either manual laboratory analysis or a small number of technologies based on refractometry or ultrasonics.

Explaining the decision to use Vaisala’s inline refractometers, Kristian Macke COO at iChemAnalytics said: “Laboratory analysis was ruled out immediately because of the time taken to derive results, which would render process control, and therefore efficiency, impossible to achieve.” The project team therefore evaluated the continuous measurement options. 

“We were particularly impressed by the support from Vaisala’s distributor, Bühler Technologies,” Kristian explained. “They lent us a Vaisala refractometer for a short period so that we could conduct a quick test in our laboratory. They provided CAD files to help integrate the Vaisala device into our test bench, and they provided written confirmation that the refractometer is resistant to KOH permanently.”

Vaisala PR53AC
Two Vaisala PR53AC inline refractometers have been installed on the test bench, providing real-time KOH concentration measurements on both sides of the membrane. Kristian says: “This was a significant investment for us, but we have been absolutely delighted with the performance of the Vaisala probes. They were delivered factory- calibrated and were almost plug-and-play. All we had to do was integrate their 4-20 mA output with our PLC.”

Vaisala’s refractometers measure the angle of refraction of light in the process medium, using an LED light source. A sensor continually detects the critical angle at which the total reflection of light commences, and this has a direct relationship with KOH concentration. Vaisala refractometry is widely used in demanding industrial processes - from chemicals and pulp & paper to food and pharmaceuticals — where accuracy, chemical resistance, and uptime are critical.

In addition to their ability to operate in harsh conditions, one of the main advantages of Vaisala’s refractometers is that they are not affected by suspended particles, bubbles or colour, and with the option of automatic prism wash with steam or high-pressure hot water, they are not affected by scaling or fouling.

Project progress.
The development of a reliable test bench has allowed the project team to focus on the main objectives. Different electrode coatings and electrolyte solutions are undergoing accelerated stress testing in a range of temperatures, and Kristian says: “The results of a 4-week trial were recently published at a conference in Berlin (ZVO Oberflächentage 2025), where we demonstrated extremely good performance data for a new coating.”

Looking forward.
As more sustainable coatings are being developed, the new fully automated test bench will allow the team to optimise electrolysis equipment, materials and conditions in the pursuit of process efficiency. “KOH concentration measurement with Vaisala refractometers is performing a critically important role in the test bench,” Kristian says. “Clearly, the ultimate goal is to develop new high-performance electrolyser stacks with high-performance surface coatings, and the ability to automatically monitor and control the KOH ratio will be essential for optimising electrolyser components and efficiency.”

This project showcases how advanced measurement technology supports innovation in clean energy, and accelerates the transition toward low-carbon solutions.


@VaisalaGroup @_Enviro_News #PAuto #Environment

Tuesday, 3 February 2026

The importance of half a degree!

Roughly 80% of the world’s data centres still rely on air cooling. Fixing a ‘half-degree’ error there can avoid around $805 million (€678m)  in cooling waste every year, about $8 billion (€6.78b) over a decade, based on moderate 10 MW sites. Origo is a next-generation modular measurement platform designed to transform environmental monitoring in data centres and other mission-critical buildings from Vaisala.

Why half a degree matters.
A temperature sensor off by just 0.5 °C (32.9 °F) might sound trivial, but for example in a 10 MW data centre, that small error can cost more than $800,000 (€678,190) in wasted cooling energy over ten years. In life science cleanrooms, for example, the stakes are even higher: any critical environmental parameter such as temperature or relative humidity can compromise product integrity or research outcomes, with losses that go far beyond energy costs.

There are an estimated 12,000 data centres worldwide, with the U.S. and Europe accounting for more than a half. While liquid and hybrid cooling are growing fast for high density AI workloads, air cooling remains the universal foundation of data centre thermal management. It provides the room-level baseline cooling every facility needs, while liquid cooling adds targeted, high efficiency heat removal for the hottest racks. As a result, hybrid architectures —air for space, liquid for the densest loads— are now standard in both new builds and retrofit projects.

Impact at scale.
Reliable, precise measurement is critical for optimizing air-cooled environments. “Generic sensors with ±0.5 °C accuracy drive overcooling and energy waste, costing operators tens of thousands of dollars annually. Origo’s precise ±0.1°C and ±1 %RH accuracy and stable measurements reduce unnecessary cooling while ensuring the reliable environmental control that critical facilities depend on. It translates to performance that pays for itself in months and protects uptime for years to come,” says Anu Kätkä, Vaisala’s Product Line Manager for HVAC and Critical Buildings.

Applied at global scale, eliminating the “half-degree” error across today’s predominantly air-cooled installed base — roughly 80% of the world’s ~12,000 data centres — would avoid around $805 million in wasted cooling energy every year, totaling approximately $8 billion (€678b) over a decade.

With data centres consuming about 1.5% of global energy, and demand set to more than double by 2030, precision sensing is essential to keep energy use and emissions in check while safeguarding IT performance.

For today and tomorrow.
Origo is engineered for simplicity and long-term adaptability. Its modular design enables monitoring of multiple parameters through Vaisala’s compatible probes, such as carbon dioxide (CO₂) and dew point sensors, on the same platform. This flexibility makes Origo a future-proof solution that adapts to evolving measurement requirements also in other critical environments such as cleanrooms, life science applications, and semiconductor manufacturing.

Origo ensures accurate measurements and dependable performance throughout its service life, helping operators protect processes, reduce risk, and optimize resources. Its field‑replaceable probes allow quick on‑site updates with minimal interruption. Vaisala’s wide range of services, from accredited calibrations to technical support, is available to complement on‑site expertise.

Key facts briefly.
• The world runs on approximately 12,000 data centres; U.S. + Europe together represent well over a half of all sites
• Air cooling remains a standard baseline for most facilities; liquid is growing fast for high-density AI, often in hybrid setups
• A 0.5 °C error can cost a 10 MW data centre more than $800,000 (€678,190) in cooling energy over 10 years
• Vaisala Origo delivers ±0.1 °C temperature accuracy and ±1 %RH humidity accuracy for stable, reliable environmental control
• Modular design and multi‑parameter capability suit critical environments such as data centres, cleanrooms, hospitals, production facilities, and semiconductor environments.


@_Enviro_News #DataCentres #Cooling #PAuto

Thursday, 23 October 2025

Global consulting flagship launched.

The launch of SE Advisory Services, Schneider Electric's flagship global consulting brand has been launched at their Innovation Summit in Copenhagen. This provides a broad range of solutions tailored to help organisations and individuals solve complex challenges in energy efficiency, sustainability, and technology through electrification, automation, and digitalisation*.

As global electricity demand is projected to grow by more than 3% annually through 2030, the path to decarbonisation is adding new layers of complexity to business operations. At the same time, the global trading landscape and increasingly intricate supply chains are placing additional pressure on organisations. These converging challenges call for a more holistic, integrated approach to strategy and execution. It is this market need that led to the creation of SE Advisory Services.

Frédéric Godemel
“Times of uncertainty require one thing above all, clarity and knowledge of what you can control. As such, we have taken our world-class consulting capabilities from across Schneider Electric and combined them to enable our clients to move with greater speed and confidence, and unlock capabilities to solve pressing energy, sustainability, and technology challenges,” said Frédéric Godemel, Executive Vice President, Energy Management, Schneider Electric. “Consulting services are not new at Schneider Electric and have proven invaluable to clients in the past. Today, we’re evolving that offering to give clients clarity and a clear path toward net zero.”

Redefining the consulting experience.
SE Advisory Services represents a strategic evolution in Schneider Electric’s consulting capabilities, expanding beyond traditional advisory to include software and project implementation. This end-to-end approach brings together a growing portfolio of high-demand consulting offers, helping organisations future-proof operations through agile, intelligent, and integrated services that accelerate energy and technology transitions.

SE Advisory Services supports both enterprise-wide initiatives and site-level operations across four core domains:

  • Sustainable Business & Industrial Transformation: Guiding transition planning through digital transformation, process electrification, decarbonisation, renewable energy, low-carbon infrastructure, circularity, and nature-based solutions and carbon offsetting to transform both energy processes and core industrial operations.
  • Risk Management & Resilience: Protecting organisations from energy volatility, cybersecurity threats, climate risk, and system disruptions to reduce downtime, harden connected systems, and build operational resilience.
  • Resource & Asset Performance: Evaluating resources and systems strategically to improve reliability, reduce waste, and unlock resources to invest in growth.
  • Intelligent Software: Providing specialised software products embedded with native AI capabilities and built on deep advisory expertise to connect fragmented workflows and turn insights into action.

Gwenaelle Avice Huet
A comprehensive approach to energy technology.
Schneider Electric’s advisory practices work together to ensure performance across an organisation’s entire enterprise, addressing key factors ranging from decarbonisation and circularity, to cybersecurity and assets, to systems and process transformation, to organisational governance for infrastructure modernisation efforts. This comprehensive approach has been a key factor in helping Schneider Electric’s clients progress from ambition to impact.

“Energy, technology, and software are now inseparable drivers of industrial progress,” said Gwenaelle Avice Huet, EVP, Industrial Automation, Schneider Electric. “Our consulting approach helps customers identify the critical levers for transformation, unlocking the full potential of electrification, accelerating automation, embedding digitalisation, and strengthening cybersecurity. With software at the core, we enable resilient, future-ready operations that adapt to market shifts and deliver long-term value.”


*Schneider Electric’s comprehensive approach to energy transition management led to the company being named a Leader in the IDC MarketScape Worldwide Energy Transition Professional Services 2025 Vendor Assessment in August.



@SchneiderElec @SchneiderNA #PAuto #Environment


Tuesday, 21 October 2025

Reducing flood risk.

A small network of five remote cameras has been installed to enhance the monitoring of key flood infrastructure at Schaffhausen, a municipality in the north of Switzerland. Located in the foothills of the Jura mountains, the area is exposed to flood risk so it is important that flood defence staff are provided with fast, accurate information so that they can respond quickly and appropriately.

The challenge.
SH POWER maintain the energy and water networks for Schaffhausen, including the hydro-electric power station on the River Rhine in the city. Part of their remit is to monitor and maintain the area’s flood defence infrastructure. Endress and Hauser water level monitors had already been installed, but during flood risk situations it is vital that managers have access to detailed information on the factors affecting water level readings. The challenge at Schaffhausen was therefore to not just verify water level readings at key locations, but to also provide flood managers with better site-specific information and advance knowledge of potential flood situations.

The solution.
Meteor Communications worked with the team from SH POWER to evaluate the potential monitoring locations. This led to the deployment of Meteor’s MRC-RPS-C Pillar system cameras at the selected locations.


The MRC-RPS-C Pillar system is a complete, self-contained camera housed in a stainless-steel enclosure and powered by a small solar panel. This enables carbon-neutral, autonomous operation with no ongoing maintenance requirement.

All five cameras were installed and commissioned by Meteor and SH POWER engineers during a single day in March 2024. Each camera was pre-configured for site and equipped with a roaming SIM for reliable network connectivity. The cameras were set to provide scheduled images every hour, with the ability to deliver additional images on demand or when triggered by local flood conditions. Images are compressed to ensure reliable transmission, even when cellular coverage is poor - during storm events for example. Communication is via 4G, 3G or GPRS and image visualisation is provided by the MeteorCloud® platform - a secure web portal for viewing camera images, diagnostics and historic imagery.

The benefits.
Remote visibility of critical structures provides a wide range of benefits because cameras can verify water level readings and often show the causes of water rising. For example, a camera may show that a drainage channel is blocked, or that a level monitor is damaged, which allows flood prevention managers to quickly deploy appropriate staff and equipment.

By providing visibility of site conditions, the cameras help SH POWER to detect potential flooding incidents at an early stage. They also enable the remote assessment of risk so that staff can determine whether a site visit is necessary and safe, and if so, when that should be, how many people will go and what equipment will be required. This helps avoid unnecessary site visits, leaving staff and resources available for the most urgent requirements. It also reduces costs and lowers the carbon footprint of operations.

The cameras also provide a complete overview of the river system, allowing SH POWER to assess potential risks better and faster.


@MeteorComms @_Enviro_News #Environmental #Water #Switzerland

Wednesday, 8 October 2025

Next generation weather durability testing.

Enhancements include expanded sample capacity and improved uniformity.

Atlas has officially launched the next-generation Ci3000 Weather-Ometer®, featuring nearly double the sample capacity, enhanced irradiance and temperature uniformity, a redesigned NextGen Ci user interface, and a sleek new exterior finish with integrated chamber lighting – all engineered to deliver more consistent and efficient testing across global labs. The upgraded system streamlines test setup, method selection, and day-to-day operation while building on the performance that has made the Ci-Series a trusted tool for plastics, coatings, and automotive OEMs.

A benchmark instrument for accelerated weathering and lightfastness testing, the Ci3000 is the most compact and cost-effective rotating-rack xenon arc unit in Atlas’s Weather-Ometer lineup (alongside their Ci4400 and Ci5000). It reproduces years of outdoor exposure in weeks through controlled cycles of xenon light, heat, moisture, and spray.

“The Ci3000 has earned its place in labs worldwide by producing accurate, repeatable weathering data,” said Chelsea Todd, Product Marketing Manager at Atlas. “With these updates, customers gain higher throughput, wider test coverage, and improved stability – without losing the dependability they trust."

Expanded sample capacity with improved uniformity.
A new two-tier rotating rack nearly doubles sample capacity (from 20 to 38). Its redesigned airflow system delivers best-in-class, tier-to-tier uniformity across test parameters – an advantage for comparative and multi-client programs.

Wider irradiance range and stability.
The next-gen Ci3000 introduces a widened irradiance range, enabling both high- and low-level test methods to be run directly, without additional modification. Controlled irradiance technology provides greater precision and repeatability, while advanced algorithms hold irradiance and temperature steady across varying lab conditions. These updates expand the instrument’s testing capabilities and improve reproducibility.

Simplified control and connectivity.
The updated NextGen Ci user interface features a larger, high-contrast touchscreen for direct control of irradiance, temperature, humidity, and spray. Built-in notifications and multi-language support streamline daily operation. With WXView® II software, users can remotely monitor instruments, compare results across sites, archive data, and standardize workflows across facilities.

Automated environmental stability.
SmartDamper™ technology provides advanced control of black panel temperatures (BPT/BST) and chamber temperature. This helps maintain tight, repeatable conditions and compensates for ambient fluctuations, supporting more reliable results across extended test runs. Smarter, more efficient operation.
A newly designed DI water cooling system improves lamp safety, efficiency, and reliability. The optional LiquiAir™ recirculating DI system can reduce tap-water use by up to 100%. A stacked indicator light clarifies test status at a glance.
The Ci3000 introduces a new exterior design in line with Atlas’s new design direction. A built-in chamber light makes lamp changes, cleaning, and maintenance easier. 

Comprehensive standards coverage.
The Ci3000 provides 14 factory pre-programmed methods, with space for 12 custom programs and sub-cycle capability. Its broadened irradiance range supports a wider range of test methods, and it conforms to current ISO, ASTM, SAE, Ford, GM, JASO, and other major global standards for weathering and lightfastness.


@Atlas_MTT @PresseBox #Automation #Laboratory #TandM

Wednesday, 2 July 2025

Carbon Dioxide sensors at Biennale Venezia!

Some of its leading-edge carbon dioxide sensors  have been donated by Vaisala to the team responsible for creating a thought-provoking and inspirational exhibit at this year’s Biennale Architettura in Venice, Italy. One of the key aspirations for the project is to use trees to create an agreeable indoor climate.

Commissioned by the Flanders Architecture Institute and curated by landscape architect Bas Smets, the Belgian Pavilion will this year feature an exhibition titled ‘Building Biospheres’. 

“Climate change and the recent crises that we have faced, are forcing us to rethink the relationship between architecture and nature,” Smets explains. “Historically and traditionally, architecture has isolated itself from the natural world, recreating an indoor climate with heating, ventilation and mechanical tools. As humans we prefer the conditions of a sub-tropical climate, so our project will investigate and demonstrate what happens when sub-tropical plants such as the camphor tree are used to manage the indoor environment.”

With its inception in 1895, La Biennale di Venezia is one of the longest-running cultural festivals in the world, and now features around 30 permanent pavilions established by different countries. In 2025, the goal of the Biennale Architettura will be to eliminate waste, recycle and circulate materials, and regenerate natural systems to demonstrate that the built environment can coexist harmoniously with the natural environment.

In November 2024, a prototype of the ‘Building Biospheres’ exhibit was built at the Faculty of Bioscience Engineering at Ghent University, where Professor Kathy Steppe and her team established a greenhouse facility in which sub-tropical trees are closely monitored with TreeWatch technology. Prior to the beginning of the Biennale Architettura, all of the plants and associated monitoring infrastructure were transported to Venice and re-established within the Belgian Pavilion. Four of the key environmental measurements are light, temperature, humidity and carbon dioxide because these are the factors with greatest influence on indoor human comfort and well-being.

Explaining the potential for utilising plants to manage indoor environments, Prof. Steppe says: “In order to maintain optimal conditions inside buildings, it is usually necessary to implement some form of heating, ventilation and/or air conditioning, but this can be very costly, both financially and from a carbon footprint perspective.” Comparing and contrasting the built and natural environments, she continues, “Plants actively interact with and help regulate their local climate through processes such as photosynthesis and transpiration. This means, for example, that the CO2 produced by humans, other organisms and natural processes can be taken up by plants during photosynthesis, helping to prevent excessive indoor CO2 build-up.”

As a greenhouse gas, CO2 levels in the atmosphere are having an impact on climate change. Indoors, CO2affects the comfort and performance of the people inside a building. Occupied spaces with good air exchange may contain 450-1,000 ppm CO2 , but anything above this can induce drowsiness. Levels above 2,000 ppm CO2 cause headaches, sleepiness, poor concentration, loss of attention, increased heart rate and slight nausea. Exposure to very high levels (from oil/gas burners or gas leaks for example) can even result in fatalities from asphyxiation.

According to the International Energy Agency (IEA), the operations of buildings account for 30% of global final energy consumption and 26% of global energy-related emissions (8% being direct emissions in buildings and 18% indirect emissions from the production of electricity and heat used in buildings). The climate crisis is therefore challenging all sectors, and the building industry in particular, to find ways to lower greenhouse gas emissions. ‘Building Biospheres’ therefore seeks to investigate the opportunities presented by the integration of plants into indoor environmental management, and to engage with the architecture and building design community, to challenge traditional approaches to building design and operation.

The ‘Building Biospheres’ exhibit will serve as a living laboratory, exploring the ways in which plants can be used to complement traditional energy-intensive building management technologies. Vaisala’s CO2 sensors have therefore been deployed at different locations throughout the exhibit: one outdoors, one in the entrance hall of the pavilion and one within the plant canopy in the ‘Building Biospheres’ room, to monitor how effectively the plants help regulate indoor CO2levels.

This year, visitors to the Belgian Pavilion of the Biennale Architettura will be able to view live data from the ‘Building Biospheres’ exhibit. “This is one of the most prestigious architectural events in the world,” Prof. Steppe adds. “So, it represents a fantastic opportunity to inspire building designers from around the globe. The most obvious applications – you could call them the lowest hanging fruit! – are large buildings such as train stations and airports.”

The objectives of the Biennale Architettura 2025 align with Vaisala’s sustainability objectives, including the company’s core purpose, which it describes as: taking every measure for the planet. “We were delighted to be invited to participate in this highly respected event,” comments Vaisala’s Pekka Ravila, Vice President, Industrial Measurements EMEA. “Not just because it highlights the performance of our CO2sensors, but mostly because this represents a very exciting opportunity to help create a paradigm shift in the way that buildings are designed and managed. If we can achieve that, the potential beneficial impacts on climate change will be enormous.”

Summarising, Prof. Steppe says: "If we are to convince building designers to incorporate plants into their design, it is essential that we are able to supply them with data to support our ideas. Vaisala’s carbon dioxide sensors are therefore playing a vital role in helping us to demonstrate how plants are able to help regulate indoor CO2levels naturally, without the need for a heavy carbon footprint, and with the added benefit that the plants look great!”

Real-time data display at Biennale.  (Pic:Dirk De Pauw, Plant AnalytiX)


@VaisalaGroup @GlobalGoalsUN  @la_Biennale @_Enviro_News #Environment #Italy #Belgium

Friday, 20 June 2025

Monitoring at the bar!

Off-grid monitoring solution for remote Cornish location.

The Loe Bar in Cornwall is a shingle and flint bank that separates the sea from Loe Pool, presenting an unusual set of challenges in both flood risk management and environmental protection. In the following article, Rob Rhyder from Nivus explains here how a bespoke monitoring solution was developed for the Environment Agency (EA) to meet the specific requirements of this unique location.

Background.
Situated within an Area of Outstanding Natural Beauty (AONB) in Cornwall, Loe Pool is fed by the river Cober and a number of smaller streams. Both the pool and the bar are designated a Site of Special Scientific Interest (SSSI) due to their unique wildlife and habitat.

As the most southerly town on the island of Great Britain, Helston sits on the banks of the River Cober, upstream of Loe Pool, and has experienced significant flooding in the past. Loe Pool is Cornwall’s largest natural freshwater lake, protected by Loe Bar which is approximately half a mile in length. However, the bar is geographically remote and exposed to the ferocity of the Atlantic Ocean, so environmental monitoring equipment needs to be able to operate in harsh conditions, without mains power, and with limited communications connectivity.

Historically, Helston’s flood risk resulted from backing up in the Loe Pool and the River Cober, so alleviation measures primarily included the emergency creation of a relief channel in the bar. However, this was obviously a hazardous operation, so in the 1980s and engineered outflow was created in the form of a concrete pipe, installed to operate as an overflow for the pool. The pipe allowed excess water to drain from the pool through the bar, but was overwhelmed by river flows during high flow events. This necessitated expensive and invasive over-pumping operations that also had a significant lead-in time to bring all the equipment to such a remote site. In addition, as a result of high tides and extreme weather, the outfall of the pipe was largely blocked by sand and shingle, which had to be removed during periods of flood risk. This process was inefficient, costly and time-consuming, so a second engineered outfall was developed.

Engineered outflow solution.
The second, more advanced outflow was built in 2020 to largely eliminate the requirement for over-pumping. The additional capacity provided by the second pipe meant that the pool drains by gravity rather than costly and carbon-intensive pumping operations. “The new outflow featured penstocks, pumps, flow monitors and remote communications, and was developed to provide a number of important advantages,” says Will Hancock, Project Lead at the EA.

Level and flow monitors were installed in the River Cober, the Loe Pool and in the new outfall pipe. “This provided us with the ability to monitor the site remotely,” Will explains, “which meant that less site visits were necessary, lowering project costs and carbon footprint, and enabling us to respond to flood risk in a faster and more timely manner.”

The new monitoring system was designed to detect the excessive accumulation of water in the pool, so that the second outflow could be implemented when necessary. Under such circumstances, an excavator is used to expose and open the outfall cover before the sluice gate is opened and the pumps are allowed to remove water from the pool, for discharge to the beach. Over the last 5 years, the second outfall has been opened on two occasions.

New flow monitoring technology.
Prior to the installation of the new monitoring system from Nivus, flow was measured in Helston and in the discharge pipes with a traditional Doppler flow meter, and the failure of one of these units provided the EA with an opportunity to review and upgrade the monitors.

Explaining the evaluation process, Will Hancock says: “These measurement instruments perform a critically important function. Not only do they help manage the Loe Pool to lower flood risk, they also feed data into our flood forecasting model, so it was essential that we utilise accurate, reliable instrumentation.”

The EA has extensive experience with flow measurement technologies, including the cross-correlation method from Nivus, so it was determined that this would be the appropriate solution for the discharge pipes and the river monitor. The key advantage to this area velocity flow measurement technique over the instruments which it replaced is that it provides a 3-dimensional flow profile that is calculated in real-time to provide reproducible and verifiable flow values in full or partially filled channels or pipes. Older Doppler methods are less accurate because they only measure 2-dimensional flow.

The method utilises particles, minerals or gas bubbles which act as reflectors within the water body. Reflections are saved as images or echo patterns, and compared with a further scan which is conducted a few milliseconds later. Velocity is determined by measuring the beam angle of the positions of unambiguously identifiable reflectors. The method produces highly accurate readings without the need for additional calibration.

Explaining the background to the decision to invest in a cross-correlation solution, Will says: “The Nivus equipment has been assessed by the EA, and we now run both fixed and portable versions of the technology. Nivus is also a Framework Partner, so the procedure for implementing this solution was relatively simple, despite the specific challenges that this site presented.”

Uniquely challenging environment at Loe Bar.

As a remote location Loe Bar does not benefit from easy access to utilities, so it was necessary for the monitoring solution to be able to operate off-grid; solar/battery power was therefore adopted. The solution also needed to be sufficiently rugged to be unaffected by its proximity to the beach. “Nivus proposed a complete low-power solution, which calculated the power requirements and specified the solar generation capacity that would be necessary to ensure continuous monitoring in all weathers,” Will explains. “The solar panels were fitted at an angle to the sea, which was less ideal for power generation, but necessary to avoid potential damage from sand-blasting.”

Special low-power versions of the Nivus equipment were also deployed. For example, a Nivus NF750 transmitter employs low-power electronics, and consumption is minimised by setting the monitor to sleep, then wake up after 15 minutes to take a measurement, and then return to sleep mode.

For redundancy purposes, two Nivus CS2 bed-mounted, cross-correlation sensors were fitted in each of the discharge pipes, and the same dual-sensor redundancy arrangements were established in the river flow monitor at Helston, albeit in a cross-channel configuration.

The EA’s standard remote communication equipment was installed inside a kiosk along with the transmitter, a multiplexer, rechargeable batteries and a solar power regulator.

Access to the monitoring site is also limited. The closest that EA vehicles can access is 200m away, so any site visits would necessitate manual portability for any necessary equipment. Access to the monitoring locations within the pipes is also potentially hazardous – necessitating breathing apparatus and other PPE. Fortunately, therefore, the newly installed monitoring system does not require regular service or calibration.

Summary.
Nivus installed the new monitoring system in March 2025, and Will says: “The performance to-date has been good – there have been no outages and there have been no requirements for a site visit. We performed manual checks on the monitors using a portable NivuFlow Stick and they are monitoring very accurately, representing a significant improvement on their predecessors. It is also comforting to know that we have the redundancy measures in place.”

Looking forward, Will says: “Given the importance of the Loe Bar as an ecological asset, and of flood management in Helston, we are delighted with the performance of the monitoring system, and will be applying for the Loe Pool and Bar to be recognised as a ‘Strategically Important Asset’.

“At the EA, we are accustomed to managing remote sites, but Loe Bar is probably one of our most challenging locations, so it has been gratifying to be able to establish a robust, reliable, and off-grid solution to meet the twin goals of environmental protection and flood risk reduction.”


@_Enviro_News  #Nivus  #MCERTS #Wastewater #Environment #Britain