Innovative method for capturing load data in customer use

Auto Tech Outlook | Wednesday, May 03, 2023

High-accuracy accelerometers provide a simplified load assessment

method Vehicle tests can be time-consuming and expensive on account of the large number of sensors required for comprehensive measurement data acquisition. The Kempten-based monitoring specialist, monalysis, has therefore developed a method that allows these tests to be carried out far more cost-effectively than before. The durability transfer process is based on high precision accelerometers from ASC and is used by MAN Truck & Bus SE among others.

Stay ahead of the industry with exclusive feature stories on the top companies, expert insights and the latest news delivered straight to your inbox. Subscribe today.

The preparation and execution of a vehicle test, with a fully equipped test vehicle, is very complex. The application, calibration and setup of various measuring points alone usually takes several weeks. "The costs of this sensor work also include the investments in sensors and the measurement data acquisition, as well as personnel costs for the permanent technical support of the measurement campaigns," says Benedikt Mundl, to explain the expenditure involved. At monalysis, Benedikt Mundl is responsible for the test drives and he travels around the world to this end.

The tests generate meaningful data to provide manufacturers with important information about the load behavior of their vehicles.

"This kind of acquisition of load data from a large number of vehicles in actual customer operation would be desirable from the point of view of vehicle developers, but the high costs involved tend to make it unfeasible", explains Michael Städele, General Manager of monalysis GmbH.

Tests allow trucks to be adapted to regional road conditions

The requirements for robustness vary greatly from country to country and depend on the conditions of use in any given region. "Different load situations apply to motorway journeys than when driving on an unpaved mountain pass", says Benedikt Mundl.

 The aim of the monalysis studies is therefore to identify as easily as possible the various regional and use-dependent loads and stresses on a wide range of vehicles, so that MAN can take the lessons learned into account in the development of its trucks.

New procedure reduces burden and costs

Monalysis is a spin-off from the Kempten University of Applied Sciences in Allgäu, Germany, and since its founding in 2011 has already carried out numerous vehicle tests with MAN. In order to reduce the burden and costs of vehicle testing, the analysis experts developed an innovative measurement method. The “durability transfer method” makes it possible to drastically reduce the number of sensors from several hundred to just a few, for measuring, for example, acceleration on the chassis or body longitudinally, laterally and vertically. From these relevant indicators, the load and stress behavior can be derived in different vehicle areas using deep learning algorithms. "From the accelerator values recorded we can therefore draw conclusions about the load behavior on the whole vehicle or on individual components such as chassis, frame, components or the cab", explains Michael Städele. Due to the significant reduction in the number of measurement points and independent measurement data collection, any customer vehicle may be used as a test vehicle in the future.

In addition, the durability transfer method can also be used to assess and categorize the road quality. If vertical vehicle accelerations are recorded, they may be used to assess the road quality of a particular road segment.

 In order to obtain meaningful measurements, the sensors used must be extremely reliable. "We tested models from different manufacturers intensively before opting for the ASC accelerometers," recalls Benedikt Mundl. "In addition to the high quality and excellent value for money, also decisive for us were the recommendations of companies that have already used ASC sensors and have been very satisfied with their performance."

ASC sensors meet the high requirements of the test engineers

For the test drives on MAN trucks, monalysis uses 5521MF (Medium Frequency) triaxial capacitive accelerometers from ASC. They cover measurement ranges from ±2 to ±200 g and have a wide frequency response of 0 Hz to 7 kHz (typically ±3 dB). This makes the sensors particularly suitable for measuring low and medium frequencies. Due to its robust design, the ASC 5521MF also has a high resistance to repeated impact loads up to 6000 g and can operate with high accuracy and reliability at temperatures of up to +125°C.

Individual solutions can also be developed on request

Due to their wide frequency response and excellent impact resistance, the ASC accelerometers are used by many automotive industry companies for fatigue strength testing. This includes vibration tests, shock tests and test-to-fail investigations for material cost optimization.

Through many years of collaboration with the key international players in the automotive industry, the ASC sensor specialists know exactly what their requirements are. At ASC a wide range of sensor solutions have been developed to enable test and measurement engineers to perform their demanding tests under optimum conditions. The accelerometers are not only ideal for strength tests but are also very well suited for test bench applications, modal analyses, driving comfort measurements and crash and driving dynamics tests.

In addition to capacitive analog accelerometers, ASC also manufactures digital accelerometers, yaw rate sensors, tilt sensors and inertial measurement units (IMUs). Since most customers require sensors for very highly specialized applications, ASC often develops bespoke solutions. This extends from the adaptation of individual components such as cables or connectors to modifications of existing sensors. In addition, the sensor specialist is developing and manufacturing more and more digital sensor solutions, so that it is also able to offer suitable solutions for future innovative applications.

High-quality "Made in Germany" sensors

All ASC sensors are developed, manufactured and calibrated at the Pfaffenhofen headquarters. As a result, the paths between development department, production and laboratory are very short. With many of its competitors, by contrast, only the development department remains in Germany, with production mostly taking place in Asia. Development and manufacturing in Germany not only give ASC the advantage of maintaining complete control over all processes and guaranteeing high product quality, but also mean that it can offer a comprehensive range of services. For example, ASC can recalibrate sensors (as per DIN EN ISO/IEC 17025:2005), as they must be regularly "re-adjusted". Customers can also return defective sensors for repair.

Further test operations planned

Benedikt Mundl is very satisfied with the sensors and the service of ASC. The engineer will therefore soon be using the sensors on other vehicles, too. This will provide further insight into vehicle load and stress behavior worldwide, and into the quality of the roads. 

More in News

  Early automobiles resembled horse-drawn carriages and were relatively simple compared to modern cars. Today, vehicles have climate control, navigation systems, and enhanced aerodynamics. The technology used in automotive manufacturing has undergone significant modification. Modern cars are powered by electricity, whereas the car engines in the past were gasoline-fueled. This trend has facilitated the development of electric vehicles, which are gaining popularity. How Has Manufacturing Technology Transformed The Auto Industry? Electrification: The first electrical car was introduced to the public in the late 1890s, and two decades later, they began to gain popularity.  Several businesses are now working on electrical, solar, and wind energy. Sustainable electric vehicles have been made possible by these technologies. These cars become economical once they are purchased. As a result, producers are concentrating more of their resources on electrification techniques, which promise significant fuel savings. AR Dashboard: As we all know, technology is radically changing the automotive sector today. Thus, you can alter the windshield in a scream to present data to the user with cutting-edge manufacturing technologies like AR (Augmented Reality). With augmented reality, the system can display relevant data on the screen, such as speed, mileage, current weather, RPM, and more. Enhanced Safety: For instance, adaptive cruise control can significantly reduce the risk of collisions. This technology uses sensors to monitor the position and speed of other cars, automatically adjusting your speed to maintain a safe following distance. It can be of great assistance on long journeys or in congested traffic. Autonomous emergency braking is another fantastic safety feature that is becoming more popular. It automatically applies the brakes to avoid crashes by using sensors. It can also save a life in those critical circumstances. Fuel Cells: Electric and hybrid vehicles emit significantly fewer emissions than conventional gasoline or diesel vehicles because they use less fuel. Furthermore, the electric car industry is witnessing an increase in the number of electric vehicles on the road as battery technology advances. Thanks to technology, engines with internal combustion are becoming more efficient. Modern machinery can burn fuel more thoroughly, which reduces pollutants. Another technology that shows promise for the automobile sector is fuel cells. Fuel cells convert fuel's chemical energy into electricity, producing only heat and water as byproducts. Therefore, they are a great and effective means of supplying electricity to a car. ...Read more
Automotive manufacturing relies heavily on spot welding to ensure structural integrity and safety. Testing these welds has advanced significantly, driven by the demand for greater accuracy, efficiency, and cost-effectiveness. Traditional destructive testing methods have primarily been replaced by modern innovations that emphasize non-destructive approaches, digital integration, and real-time monitoring. These advancements help manufacturers enhance quality assurance, minimize material waste, and maintain consistent standards across production lines. The evolution of spot weld testing reflects a broader movement toward smarter, safer, and more sustainable practices in automotive manufacturing. Advancing Non-Destructive Testing Methods Non-destructive testing has gained prominence in automotive spot weld analysis. Techniques such as ultrasonic inspection, resistance measurement, and radiographic imaging allow manufacturers to assess weld quality without damaging components. This approach preserves valuable materials while providing reliable insights into weld strength and consistency. Ultrasonic methods, for example, can identify internal flaws that may not be visible externally, ensuring welds meet stringent safety requirements. Resistance-based techniques measure electrical conductivity to determine whether a weld maintains proper bonding. These methods save both time and resources while offering greater precision compared to destructive alternatives. By adopting non-destructive testing, manufacturers create more efficient workflows and maintain higher levels of product reliability. Digital Integration And Real-Time Monitoring Digital transformation has also reshaped spot weld testing. Advanced software platforms now collect, process, and analyze data instantly during production. Real-time monitoring enables immediate detection of weak welds, allowing corrective actions before flaws impact larger batches. This proactive approach minimizes downtime, enhances safety, and improves overall efficiency on assembly lines. Companies like Nation Safe Drivers are leveraging these innovations to optimize fleet performance and enhance real-time monitoring in automotive manufacturing. Integration of sensors and automated systems further streamlines the process. Connected devices record detailed parameters, including current flow, electrode pressure, and weld duration, creating digital records for traceability and compliance. These data-driven systems enhance transparency and also support predictive maintenance, reducing equipment failures and optimizing long-term production performance. FullSpeed Automotive focuses on improving vehicle performance and safety by providing advanced automotive repair services, including diagnostics and custom modifications. The combination of non-destructive testing and digital monitoring has set a new standard for quality assurance in automotive manufacturing. By embracing these trends, manufacturers strengthen safety, reduce waste, and improve cost efficiency. Spot weld testing continues to evolve, positioning itself as a cornerstone of modern automotive production where precision and innovation go hand in hand. ...Read more
Modern transportation is undergoing a quiet revolution as highly automated vehicles (HAVs) continue to gain traction across the globe. These vehicles promise a future where travel becomes more accessible, efficient, and less stressful. But beyond the technological wonder lies a deeper impact on everyday life. Communities, city planners, and drivers are paying closer attention to the subtle yet transformative ways HAVs are beginning to reshape the human experience on the road. While not without challenges, the potential benefits reflect a shift toward smarter, safer, and more inclusive mobility systems. Enhancing Road Safety and Reducing Human Error One of the most compelling aspects of HAVs is their potential to reduce the risks associated with human error. Fatigue, distraction, and impaired judgment are too common in traditional driving scenarios. Highly automated systems, operating with advanced precision, are designed to remain focused, consistent, and compliant with traffic regulations—traits that rarely falter under pressure. These vehicles promise safer roads by maintaining a steady awareness of their environment. Decision-making processes are driven by data and sensors rather than human impulses, which could reduce sudden lane changes, missed signals, or risky overtaking. The outcome is fewer incidents and less strain on emergency response systems and healthcare infrastructure tied to road accidents. Expanding Accessibility and Mobility for All Mobility is essential for independence, yet it remains challenging for many individuals due to physical, cognitive, or age-related limitations. HAVs introduce new opportunities for inclusive transportation, bridging a crucial gap for those who have historically faced mobility barriers. Automated systems can be tailored to assist passengers struggling with traditional controls or navigation. This shift fosters dignity and autonomy while reducing reliance on caregivers or public transport systems. Additionally, communities with limited transportation options could experience improved connectivity, opening access to jobs, education, and services that were previously out of reach. The design of these vehicles often incorporates user-friendly interfaces, which contribute to greater confidence and comfort. The implications are profound for aging populations or those living with disabilities. With HAVs, mobility is no longer dictated by the ability to operate a vehicle manually but by the capacity to benefit from smart, shared, or personal transport options. Improving Traffic Flow and Urban Efficiency Congestion is a daily frustration in many urban environments, with ripple effects on productivity, fuel consumption, and overall well-being. HAVs, with their ability to communicate and coordinate with one another, offer a pathway to more synchronized and efficient traffic patterns. These systems can maintain optimal spacing, regulate speeds, and reduce the bottlenecks that human drivers often create through hesitation or aggression. In a broader sense, automated fleets' consistent behavior could influence future cities' design. With more predictable traffic flows, planners may find new flexibility in infrastructure, allocating more space to pedestrians, bikes, or green areas. The potential to decrease traffic noise and emissions further contributes to improved quality of life in dense urban centers. ...Read more
The automotive dealership industry is undergoing significant changes and facing various challenges that require innovative solutions to remain competitive. Dealerships must adapt to shifts in consumer behavior, the rise of digital retailing, supply chain disruptions, and evolving mobility trends to survive and thrive. By embracing new technologies, re-evaluating traditional practices, and prioritizing customer-centric strategies, dealerships can overcome these obstacles and position themselves for long-term success.  The most significant challenge facing dealerships is the growing consumer preference for online shopping. Customers increasingly expect a seamless, digital-first experience when purchasing vehicles, similar to what they encounter in other retail sectors. Traditional dealerships, historically reliant on in-person interactions, must adapt to this trend by investing in robust online platforms. Virtual showrooms, video consultations, and online vehicle configurators enable customers to explore and customize cars from the comfort of their homes. Integrating secure digital payment systems and enabling online trade-in evaluations and financing options can streamline car-buying, fostering customer satisfaction and loyalty. Inventory shortages, exacerbated by supply chain disruptions and semiconductor chip shortages, pose another major challenge for dealerships. The constraints have reduced vehicle availability, longer delivery times, and increased dealer competition. Dealerships are turning to innovative inventory management systems powered by artificial intelligence (AI) and predictive analytics. The tools help optimize inventory by forecasting demand, identifying high-turnover models, and sourcing vehicles more effectively. Fostering partnerships with manufacturers and diversifying supply chains can provide greater resilience against future disruptions. Another hurdle for dealerships is the transition to electric vehicles (EVs), which requires a fundamental shift in sales, marketing, and service operations. As consumers increasingly gravitate toward EVs due to environmental concerns and regulatory incentives, dealerships must educate their staff and customers about EV technology, charging infrastructure, and maintenance needs. Dealerships must focus on delivering superior customer experiences that set them apart. It includes personalized service, transparent pricing, and post-sale support, such as extended warranties and maintenance packages. Dealerships can leverage data analytics to gain insights into customer preferences, enabling targeted marketing and tailored offers that enhance customer retention. The increasing popularity of shared mobility services, such as ride-hailing and car-sharing platforms, has also impacted vehicle sales, particularly among younger consumers. Dealerships can diversify their offerings by incorporating fleet management solutions, rental programs, or partnerships with mobility providers. By expanding their role beyond vehicle sales to include mobility-as-a-service (MaaS), dealerships can tap into new revenue streams and remain relevant in a changing market. AI-powered chatbots and virtual assistants can handle customer inquiries, schedule appointments, and provide product recommendations, freeing staff to focus on higher-value tasks. ...Read more