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The iba System as a Diagnostic Tool for Maritime Applications

Reliable Data Acquisition at Sea

In modern marine propulsion systems, reliable and continuous monitoring of all components is essential to prevent failures and plan maintenance efficiently.

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Vessel Monitoring With the iba System

With the iba system, operators have access to a powerful platform that continuously acquires, analyzes, and provides all machine and process data for fault diagnostics. The system is used wherever precise and dependable data acquisition is required.

Unify data from diverse systems

into one consistent and reliable platform

Diagnose issues quickly

and accurately with high-resolution signal recording

Optimize fleet performance

through long-term data insights

Test the iba System Now!

Download the demo of ibaPDA and ibaAnalyzer and start optimizing your processes today. Try it free of charge for 30 days!

Request a ibaPDA-Demo License

A Unified Data Platform for Various Systems 

Especially in fleets with control systems of different types and ages, ibaPDA serves as a common platform, creating a unified data foundation. For example, on vessels operated by Washington State Ferries (WSF), ibaPDA records data with high accuracy from Siemens AC variable-frequency drives, Allen-Bradley PLCs, Avtron DC drives, and Woodward 723 controllers. 

Unlike traditional alarm or monitoring systems, ibaPDA continuously records all relevant signals, such as generator power or current, wheelhouse throttle inputs, engine and shaft speed, circuit breaker status, rudder angle, and drive fault codes. This creates a complete and traceable picture of the vessel’s operating condition that can be analyzed retrospectively at any time. Thanks to its ring-buffer architecture, older data are automatically deleted, allowing the system to run continuously without manual intervention. 

Flexible Integration into Existing Systems 

The system typically consists of an industrial PC or a compact data acquisition unit, such as the ibaMAQS system, which communicates directly with existing control systems via Profibus, Ethernet, or other fieldbus protocols. The signals are transmitted digitally so no additional wiring is required, making retrofits quick and straightforward. 

For data evaluation, the free ibaAnalyzer software is available. Engineers, whether onboard or onshore, can examine measured values, events, and trends in detail, regardless of location. When needed, secure remote access allows data retrieval and analysis directly from the vessel’s system. 

Whether diagnosing generator malfunctions, control issues, or transient signal interruptions, the iba system provides the data depth needed to reliably identify even sporadic faults. Often, after just one occurrence, sufficient information is available to pinpoint the root cause and eliminate it for good.

Key Takeaways

With ibaPDA, data acquisition becomes a powerful tool for analysis, fault diagnosis, and optimization of marine propulsion systems—reliable, scalable, and field-proven at sea. Combined with components such as ibaHD-Server for long-term data storage, ibaAnalyzer for detailed signal and trend analysis, and ibaDatCoordinator for automated data processing, it forms a cohesive ecosystem that sustainably enhances data quality, diagnostic capability, and process understanding.

For marine applications, this means fewer unexpected downtimes, more informed maintenance decisions, and maximum operational reliability. With the iba system, even the most complex machinery and propulsion systems become transparent, traceable, and fully controllable from the first measurement to the exact root cause.

Used Functions

The following functions of the iba system are used in this application.

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Frequently Asked Questions (FAQ)

Reliable condition monitoring in marine propulsion systems requires consistent acquisition of process and machine data from different control environments. With ibaPDA, data from Siemens AC drives, Allen-Bradley PLCs, or Woodward control systems can be consolidated into a single time-synchronous data base. This creates a unified operational view across all propulsion components, enabling both real-time diagnostics and historical analysis. In addition, the ibaHD server ensures long-term storage of relevant operational data for trend and fault analysis.

Sporadic faults in marine propulsion systems can only be reliably analyzed through continuous and high-resolution data acquisition. ibaPDA continuously records all relevant signals such as generator power, rotational speeds, and breaker states, enabling a complete reconstruction of system behavior. Thanks to its ring buffer architecture, even short-duration events are captured without the need for trigger configuration. ibaAnalyzer then supports detailed post-processing to identify root causes even for one-time failures.

Scalable data acquisition in heterogeneous fleet environments requires a flexible, protocol-independent integration platform. ibaPDA enables the connection of various fieldbuses and control systems via Ethernet, Profibus, and other industrial interfaces. This allows both legacy and modern ship systems to be integrated into a unified diagnostic framework. Its modular architecture also enables gradual onboarding of individual vessels or components into the monitoring system.

Continuous data acquisition forms the foundation for condition-based and predictive maintenance strategies. By permanently recording all relevant propulsion signals with ibaPDA, wear trends can be detected early and maintenance actions can be planned in a targeted way. Combined with ibaHD server and ibaAnalyzer, real-time and long-term data can be correlated for informed decision-making. This reduces unplanned downtime and enables more efficient use of maintenance windows.

Fast fault diagnosis relies on the centralized consolidation and time-synchronous evaluation of all relevant system data. ibaPDA enables correlation of control, sensor, and drive data in real time, making deviations immediately visible. With ibaAnalyzer, engineers can analyze this data remotely and reconstruct complete operational states retrospectively. This allows rapid isolation of fault causes and targeted corrective actions.

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