Farran

Need Help? Talk to an expert

+353-21-484-9170

On the Ground at AOC 2026: A mm-Wave Perspective from Helsinki

The AOC 2026 conference has long been Europe’s most important gathering for the electronic warfare and electromagnetic spectrum operations community. This year, held at the Helsinki Expo and Convention Centre from 19–21 May, it sent a clear signal: the European defence landscape is changing fast, and the demand for advanced mm-wave technology is right at the heart of that shift. For Farran Technology, attending AOC 2026 was a significant milestone. It marked our first time exhibiting at the event, a decision driven not by ambition alone, but by a genuine and growing demand from European customers for locally sourced, high-performance millimetre-wave solutions. Here is what we observed, and what we believe it means for the road ahead. A Market in Confident Expansion The scale of this year’s exhibition was striking. The number of exhibitors, the calibre of attendees, and the quality of conversations on the floor all reflected a defence sector operating with renewed momentum and purpose. That momentum has hard numbers behind it. According to the EDA, European Union member states spent an estimated €343 billion on defence in 2025, an 11% increase on the previous year and a rise of over 60% compared to 2020. NATO allies have since committed to raising core defence spending to 3.5% of GDP by 2035. This is not a short-term surge; it is a structural reorientation of European security priorities. The conversations at Helsinki reflected that reality. Decision-makers are no longer asking whether to invest in next-generation capabilities. They are asking how quickly they can do it, and with whom. European Sourcing: A Strategic Priority, Not Just a Preference One of the clearest themes to emerge from AOC 2026 was the growing importance of supply chain sovereignty. As European governments accelerate rearmament programmes, the appetite for European-sourced components and subsystems has moved from a preference to a procurement requirement for many customers. Farran was the only Irish company exhibiting at the event. That distinction carries practical weight. As an Irish-based manufacturer operating within the European Union, Farran offers customers full European sourcing compliance, a genuine differentiator in a market where origin of supply increasingly matters. Combined with over four decades of mm-wave engineering expertise developed in Cork, we are well positioned to support customers who need both performance and provenance. The Right Technology at the Right Moment The technical agenda at AOC Europe 2026 reinforced something we see clearly in our own pipeline: the electromagnetic spectrum is becoming more contested, and the systems designed to operate within it are pushing steadily higher in frequency. Higher-frequency radars, advanced spectrum scanning, and next-generation communications are all driving demand for precision mm-wave components that can perform in demanding, ruggedised environments. Farran exhibited a range of solutions directly relevant to these requirements, including Ruggedised Power Amplifiers, FMCW Front Ends, and Up/Down Frequency Converters. The response was strong, and the application areas being explored by attendees, from EW systems to advanced sensing platforms, align closely with where Farran’s technology roadmap is heading. The continued advancement of higher-frequency radar and communications architectures positions us well. This is not a market we are entering reactively; it is one we have been building towards for years.   Looking Ahead AOC 2026 confirmed what many in the industry already sense: the next decade will be defined by spectrum superiority, and the components that enable it will be critical. For Farran, this event was both a validation of our direction and an opportunity to build the relationships that will shape our next chapter in European defence. We came to Helsinki to listen as much as to exhibit. We leave with a clearer picture of where the market is going, and with confidence that Farran’s technology, heritage, and European identity have a meaningful role to play in what comes next. To learn more about Farran’s defence-relevant mm-wave solutions, get in touch with our team.

Innovating the mmWave Future: Farran Technology Solutions

Innovating the mmWave Future: Farran Technology Solutions

Millimeter-wave (mmWave) technology is no longer an emerging concept, it is rapidly becoming the backbone of the most advanced microwave systems shaping our world today. From satellite communications and defence to next-generation wireless, automotive radar, and advanced sensing, mmWave innovation is unlocking new levels of performance, resolution, and integration. At Farran Technology, innovation at mmWave is at the core of what we do. With decades of expertise and a portfolio spanning DC to 500 GHz, Farran supports customers as they design, test, and deploy the technologies that will define the next wave of microwave advancement. mmWave: The Common Enabler Across High-Growth Markets The microwave industry is experiencing sustained growth, driven by a clear shift toward higher frequencies and wider bandwidths. mmWave technology has become the unifying enabler across several key sectors: Satellite Communications and Space Systems The rapid expansion of commercial space — particularly low-Earth-orbit (LEO) constellations, is driving demand for high-throughput satellite payloads and advanced ground terminals operating in Ka-band and above. These systems rely on highly linear, broadband front ends, precision frequency conversion, and beamforming architectures. Farran supports satellite and ground-based space applications with high-performance mmWave subsystems and components designed to deliver the bandwidth, stability, and reliability required for next-generation connectivity. Defence, Security, and Radar Applications Modern defence systems increasingly depend on wideband, frequency-agile microwave architectures. Radar, electronic warfare (EW), signals intelligence (SIGINT), and counter-UAS systems all benefit from the higher resolution and faster response enabled by mmWave operation. Farran’s mmWave solutions support advanced radar front ends, low-noise and high-power amplification, and precision frequency conversion — helping defence customers achieve superior target discrimination and robust performance in complex environments. 5G, 6G, and High-Capacity Wireless Communications As 5G networks continue to densify and early 6G research accelerates, mmWave frequencies are central to achieving multi-gigabit data rates and ultra-low latency. This evolution places stringent requirements on linearity, bandwidth, and signal integrity across the RF chain. Farran provides mmWave solutions for test, measurement, and deployment environments, enabling customers to validate and optimize next-generation wireless systems with confidence. Automotive Radar and Mobility Automotive radar operating in the 76–81 GHz band has become essential for advanced driver-assistance systems (ADAS) and the progression toward autonomous vehicles. The demand for higher resolution and multi-sensor fusion is increasing the complexity of radar architectures and test requirements. Farran supports automotive radar innovation with mmWave front-end solutions and test-focused subsystems that enable accurate validation, calibration, and performance verification across the vehicle lifecycle. Emerging Sensing and Smart Infrastructure Beyond traditional markets, mmWave radar is expanding into health monitoring, smart buildings, and industrial sensing. Operating typically between 60–120 GHz, these systems enable contactless detection of motion, presence, and vital signs — while preserving privacy. Farran’s expertise in compact, high-performance mmWave design supports the development of these emerging applications, helping customers translate R&D concepts into robust, deployable solutions. Farran Technology: Enabling Innovation at mmWave Innovation at mmWave is not simply about operating at higher frequencies. It requires precision engineering, deep understanding of system-level challenges, and the ability to integrate performance-critical components into reliable solutions. Farran Technology enables mmWave innovation through: High-performance components, subsystems, and systems Expertise spanning DC to 500 GHz Solutions for test & measurement, ground-based equipment, and advanced R&D Custom design and engineering support for demanding applications By working closely with customers, Farran helps bridge the gap between theoretical performance and real-world deployment — ensuring mmWave systems deliver on their full potential. Looking Ahead The future of the microwave industry is being shaped by mmWave technology. As bandwidth demands increase, sensing requirements become more sophisticated, and systems move toward higher levels of integration, innovation at mmWave will remain central to progress. At Farran Technology, we are committed to supporting this evolution, enabling our customers to build the next generation of microwave and mmWave systems with confidence. To learn more about Farran’s mmWave solutions or to discuss your application, visit www.farran.com

Production Manager LinkedIn Job Post e1755522770260

Farran in Hiring: Junior CAD Engineer

Junior CAD Engineer in Engineering Department Introduction Farran is an internationally recognized leader in the development of cutting-edge millimeter-wave components and subsystems. Over its 40 years of existence the company has grown a reputation for pushing the boundaries of technology, performance and reliability, and built a world-class level of IP. The company serves both emerging and mature markets, with end-user applications covering Test & Measurement, 5G, 6G, Radar & Remote Sensing and Communications. Farran is looking for a motivated and detail-oriented Junior CAD Engineer to join our engineering team. This role will involve creating and modifying 3D CAD models, producing engineering drawings, and assisting in the mechanical design of components and assemblies. A key part of the role will focus on supporting thermal design and analysis activities, including thermal modelling and validation. The ideal candidate will have a strong foundation in CAD design and an interest in developing expertise in thermal engineering. You will contribute to innovative projects within a collaborative environment at an organisation that values employee well-being and actively supports both personal and professional growth. We offer opportunities for additional training, with financial assistance for relevant courses aligned with business needs. Farran provides excellent benefits, including half-day Fridays, a pension scheme, and a competitive remuneration package. This is a rare opportunity to join a company that takes pride in its people and promotes a healthy work-life balance. Key Responsibilities The post holder will report to COO and will have the following responsibilities: Mechanical & CAD Design • Create, update, and manage 3D CAD models and 2D drawings for components, assemblies, and systems. • Prepare detailed manufacturing drawings in accordance with company and industry standards. • Work closely with senior engineers to develop design concepts from initial requirements to finalised drawings. • Support prototype build and testing activities, ensuring design accuracy and manufacturability. Thermal Design & Analysis • Assist in the development of thermal models for components and systems. • Support thermal simulations using relevant software tools (e.g., ANSYS, SolidWorks Flow Simulation, COMSOL). • Participate in thermal performance testing and data collection. • Help identify and implement thermal management solutions (e.g., heat sinks, ventilation, materials selection). General • Maintain accurate design documentation and adhere to revision control processes. • Collaborate with cross-functional teams, including electronics, manufacturing, and quality. • Contribute to continuous improvement initiatives within the engineering team. • Communicate regularly with engineering, production, purchasing and senior management. Qualifications Essential: • Degree or diploma in Mechanical Engineering, Product Design, or a related discipline. • Proficiency in 3D CAD software (e.g., AutoDesk, SolidWorks, or similar). • Strong attention to detail and ability to produce accurate technical drawings. • Good communication and teamwork skills. • Enthusiasm to learn thermal design principles and simulation tools. Desirable: • Basic understanding of heat transfer principles (conduction, convection, radiation). • Exposure to thermal simulation software or FEA tools. • Knowledge of manufacturing processes and materials. • Experience with prototype testing and measurement. Employment conditions Farran is offering a permanent full-time contract and attractive salary package, including membership in the Company’s Private Pension Scheme. We offer a rare opportunity to join a well-established mm-wave company, on the leading edge of developing technologies, with and a strong R&D history and presence in the market. An application containing a cover letter and CV should be sent to: sales@farran.com

mmwave design

From Concept to Precision: Design, Manufacture & Test Solutions in-house

By Kathy Stapleton, Marketing Manager at Farran How Farran Delivers World-Class mmWave Solutions   At Farran Technology, we bring over four decades of expertise in designing, manufacturing, and testing high-performance mmWave systems, sub-systems, and components from DC to 500 GHz. Our complete in-house capabilities enable us to support customers at every stage—from concept to deployment—ensuring unmatched quality, innovation, and performance.  mmWave Design Expertise Our engineering team specializes in the custom design of RF and mmWave solutions tailored to unique performance requirements. Whether it’s a complex up/down converter, frequency extender, high-power amplifier, or antenna test solution, our designs integrate seamlessly into cutting-edge systems across industries including: Our Solutions Test & Measurement – Delivering precision VNA frequency extenders, antenna measurement solutions, and mmWave test systems to ensure accurate, repeatable measurements at the highest frequencies. 5G & 6G Wireless – Supporting the development and deployment of next-generation wireless networks with high-frequency solutions for fixed wireless access, backhaul, and advanced research applications. Space and Ground-Based Instrumentation – Providing high-reliability RF components for applications in earth observation, spectrum monitoring, and ground station equipment, where performance and stability are critical. Automated Test Equipment (ATE) – Enabling fast, accurate, and automated high-frequency testing for production lines, R&D environments, and component validation. Radar & Detection Systems – Supplying high-power amplifiers, up/down converters, and custom mmWave assemblies for defense, security, automotive, and industrial detection applications. Using advanced simulation tools, proprietary technologies, and a proven design methodology, we ensure that each product meets the stringent demands of modern RF applications. High-Precision Manufacturing Capabilities   Farran’s in-house manufacturing facility allows us to control every detail of the production process. With access to precision CNC machining, surface-mount technology, and waveguide assembly, our team delivers consistent, high-quality performance even at the highest frequencies. Our vertically integrated model guarantees fast turnarounds, flexible prototyping, and streamlined support for both standard and custom solutions. We adhere to rigorous quality control standards at every step—because at Farran, performance starts with precision. Comprehensive Testing for Reliable mmWave Performance   Each Farran solution is subjected to thorough RF testing, including S-parameter measurements, noise figure, gain, and power output validation. Using our extensive internal lab facilities—including Vector Network Analyzers, anechoic chambers, and custom test rigs—we ensure every product delivers repeatable, reliable performance up to 500 GHz. Our deep expertise in VNA frequency extender integration, antenna test and measurement, and spectrum monitoring makes us a trusted partner for engineers and researchers pushing the boundaries of technology. Why Choose Farran? ✅ Complete in-house design, manufacturing & testing ✅ Decades of proven experience in mmWave technology ✅ Precision solutions from DC to 500 GHz ✅ Global customer support and custom engineering 📢 Let’s Talk RF! Looking for a partner to help you accelerate your next high-frequency project? Contact us or visit www.farran.com to learn how our custom mmWave solutions can power your innovation. 🔗 Follow us on LinkedIn to stay up to date with our latest developments in RF and mmWave!

UK Space Conference

Farran at UK Space Conference 2025

Farran Technology is live in Manchester at the UK Space Conference 2025! Our engineers are presenting our advanced mmWave solutions tailored for the space industry, including radiometers, high-power amplifiers, passive components, and frequency extension systems. These technologies enable applications in Earth observation, satellite payload validation, ground-based testing, and spectrum monitoring — all operating from 20 GHz to 500 GHz. Stay tuned as we connect with global leaders driving the future of space science and exploration. 📸 More updates to follow throughout the event. 🔗 www.farran.com/

UK Space Conference

Farran at the UK Space Conference 2025

Farran at the UK Space Conference 2025 Farran will exhibit at the UK Space Conference, taking place in Manchester, 16–17 July 2025. Join us at Stand A21 and meet our engineers Courage Mudzingwa and Gibin Bose. They’ll be showcasing Farran’s high-performance mmWave solutions for satellite communication, test & measurement, ground-based equipment, and more. Explore how we support the future of space innovation at www.farran.com

IMS 2025 Test and Measurement

Farran Showcasing at IMS 2025 – Booth #233

IMS 2025 is in full swing, and the Farran team is delighted to be part of one of the year’s most important events for the RF and microwave community. We’ve had a fantastic start to the exhibition and would like to extend a sincere thank you to everyone who has already visited Booth 233. It’s been a pleasure connecting with industry professionals and discussing the latest in mmWave technology. Farran’s Sales Director, Tom Scanlon, and Principal Engineer, Michael Crowley, are on-site and available to discuss your technical challenges and application needs. Live Demo – AER/AET Frequency Extenders   Don’t miss the opportunity to see our AER/AET Frequency Extenders in action. The demo is integrated with mmWave Test Solutions’ Positioners, providing a powerful and precise setup for antenna measurements up to 500 GHz. 📍 Location: Booth 233📅 Event: IMS 2025 – Ongoing this week Whether you’re focused on R&D, validation, or production testing, we’re here to help you unlock the full potential of your mmWave systems.

Figure 6. Block diagram connectivity setup for signal generator with FES extension module.

Instrumentation for millimeter wave tests and measurements

By Tomasz Waliwander, Michael Crowley, Courage Mudzingwa (Farran Technology) There has been a vast research effort and academic development in the past three decades in millimeter wave (mm-wave) technology. Such an effort has been corresponding steadily in the growth in customer demand for mm-wave components and systems which has in turn created a need for a cost-effective test and measurement solutions for high frequency applications. There is a large number of test instrumentation already available in the field as well as new developments coming on-stream to the engineers ranging from signal generators, spectrum analyzers to network and noise figure analyzers to choose from to fulfill test and evaluation duties. The choice of instrumentation as well as ways of extending their measurement capabilities will be discussed in this article. Introduction Millimeter waves are electromagnetic signals with frequencies ranging from 30 to 300 GHz that correspond to wavelengths of 10 to 1 mm in the free space. Such signals in natural atmosphere environment are susceptible to attenuation at different rates for different wavelengths (frequencies) which makes them very useful in specific applications. The atmospheric attenuation of mm-waves is caused by gases and constituents that naturally occur in the environment. The atmospheric attenuation characteristic from 10 GHz to 1 THz under various levels of humidity [1] (large H2O droplets) and fog (small H2O droplets) is shown in Figure 1 :   Figure 1. Atmospheric attenuation characteristic from 10 GHz to 1 THz.   Frequencies where the average absorption of mm-waves is the lowest are called low attenuation windows and occur mainly around 35, 77 and 94, 140, 220, 340, 410, 650 and 850 GHz. The regions with highest averaged absorption levels are called attenuation lines and can be seen around 22, 60, 118, 183, 320, 380, 450, 560, 750 GHz. It is the oxygen molecules that are responsible for high attenuation at 60, 118 and 560 and 750 GHz. The rest of the attenuation lines are caused mainly by water droplets of various diameter sizes as well as other chemical species (CO2, N2O, NO, SO2 and SH2) at submillimeter wavelengths. Due to different properties of mm-waves at different frequencies and environmental conditions the applications of mm-waves vary largely from communications, imaging and security applications, radar, radiometry and atmospheric sensing. All the applications mentioned, at some stage of their development, need to employ a mm-wave measurement system for component and system level testing and evaluation. 1.1 Mm-wave Applications The mm-wave applications correlate closely with how such signals propagate in the atmosphere. The frequencies for which atmospheric attenuation is low (44, 86, 94, 140 GHz) are particularly useful in communication system operating at long ranges such as: satellite communications, backhaul mm-wave radios and point to multi-point radio links. For short range communications the 60 GHz band provides enough range where only a local area, short distance transmission is required. Other application benefiting from low atmospheric attenuation would include automotive radars at 24, 77 and 94 GHz where a long-range transmission and reception is possible [2]. Imaging and security utilize a mixture of high and low attenuations bands for passive and active systems. These use 77, 94 and 183 GHz frequencies as these signals present good properties to penetrate many materials (i.e. clothing) and see through the fog and rain. For those materials that can not be penetrated the atmospheric environment provides a good thermal contrast from which images can be synthesized at post processing level (see Figure 2).   Figure 2. Typical human body image obtained with mm-wave imaging system.   Other applications include scientific research as well as radiometry and ground-based astronomy. These applications would mainly concentrate at 183 and 220 GHz as well as higher frequencies. Rectangular waveguide due to its inherently low loss properties is the medium that is most frequently used in mm-wave applications. Under normal conditions the electromagnetic field propagates through the waveguide in transverse electrical dominant mode TE10 and has a cut off point below which it does not propagate in any form or mode. Millimeter wave waveguide bands are shown in Table 1 and contain band designation, internal waveguide dimensions as well as cut off frequency.   1.2 Mm-wave Frequency Extensions The mm-wave frequencies can be generated in general using two methods: up conversion by means of solid-state devices such as Schottky diodes, or down conversion using optical and quasi optical methods. It is the former method that is used predominantly in millimeter wave range and thus will be discussed here. The mm-wave signals are created with either multiplying or mixing lower frequency signals (<30 GHz). This is achieved by using active (requiring DC biasing) MMIC based multipliers or mixers at the lower end of mm-wave band (<80 GHz typically) and devices built with Schottky diode devices for higher end of mm-wave spectrum. To reach frequencies beyond 110 GHz harmonic mixers (mixers utilizing a nth harmonic of the LO signal) or chain of multipliers (lower frequency modules driving the input of higher frequency ones – i.e. a doubler driving a tripler) are most commonly used. Due to conversion efficiency constraints in general those devices would be limited to doublers and triplers only. Most commonly purchased and used test and measurements instruments operate below 20 GHz. Such operating range is adequate to fulfill the evaluation and test purposes in most cases. However, with the advent of mm-wave applications, more so than ever before, there is a need for measurement systems operating at frequencies above 20 GHz and very often beyond 110 GHz. Such systems in principle are thought to extend the range of standard instruments beyond their range by means of frequency multiplication or mixing. In general, there are 4 groups of test and measurement equipment commonly used in component and system evaluation by engineers. These include: signal generators, spectrum and signal analyzers, vector network analyzers and noise figure analyzers. 1.2.1 Signal Generators Frequency Extension Sources – FES In most cases the mm-wave users already own a microwave signal generator that are capable of supplying frequencies up to

EuCNC Poland

Farran at EuCNC & 6G Summit 2025

Farran Technology is proud to be part of the conversation shaping the future of wireless innovation as our CEO, Tomasz Waliwander, attends the EuCNC & 6G Summit 2025 in Poznań, Poland. This prestigious event brings together global leaders in 5G, mobile IoT, and 6G development—areas where mmWave and sub-THz technologies are playing a transformative role. Our Solutions for Next-Gen Wireless Systems At Farran, we support research, prototyping, and system deployment with a range of cutting-edge solutions: Frequency Extenders (up to 500 GHz) for Vector Network Analyzers (VNAs) and antenna measurements Antenna Test Solutions for accurate 5G/6G device characterization Up/Down Converters for advanced system development and experimental setups High Power Amplifiers for robust mmWave testing environments Custom Design Services for tailored solutions in emerging wireless applications Connect with Us Tomasz is available for discussions during the event—whether you’re exploring testbeds, system integration, or collaborative R&D opportunities. Feel free to reach out to him directly via LinkedIn. Let’s shape the future of connectivity—together.

IMS 2025

Farran at IMS 2025 in San Francisco

Farran Technology to Exhibit at IMS 2025 in San Francisco We’re excited to announce that Farran Technology will be exhibiting at the IEEE MTT-S International Microwave Symposium (IMS) 2025, taking place at the Moscone Center in San Francisco, California. Join us at Booth #233 to explore our latest innovations in millimeter-wave (mmWave) test and measurement solutions. Our team will be showcasing a selection of high-performance components and systems, including: 🔹 Frequency Extenders for VNA applications🔹 High-Power Amplifiers for demanding environments🔹 mmWave Components including mixers, multipliers, and detectors🔹 Custom solutions tailored for advanced RF and microwave testing Explore Advanced Microwave Testing Solutions Whether you’re working on RF characterization, antenna measurements, or sub-THz test setups, Farran offers the tools and expertise to meet your project requirements. Our systems are designed to deliver high accuracy, broad frequency coverage, and seamless integration with leading instrumentation platforms. Event Details 📍 Location: Moscone Center, San Francisco, CA📅 Dates: June 15–20, 2025📌 Booth: #233 🕘 Exhibition Hours: Tuesday, June 18 | 09:30–17:00 Wednesday, June 19 | 09:30–18:00 Thursday, June 20 | 09:30–15:00 Let’s Talk mmWave Come meet our team to discuss how Farran’s solutions can accelerate your development, validation, and measurement workflows. From laboratory testing to real-world systems, we’re here to help push the boundaries of microwave and mmWave engineering. 🔗 Learn more: www.farran.com