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Understanding what really happens inside an electrolyzer cell is still one of the biggest challenges in development and validation. Performance, efficiency and degradation are driven by local effects. Without the right testing setup, many of these effects remain difficult to access. In this video, we show how we approach this challenge with our Hydrogen Cell Test System 50. š—Ŗš—µš—®š˜ š˜š—µš—¶š˜€ š˜€š—²š˜š˜‚š—½ š—²š—»š—®š—Æš—¹š—²š˜€: • š—™š—¹š—²š˜…š—¶š—Æš—¹š—² š˜š—²š˜€š˜š—¶š—»š—“ š—³š—¼š—æ š—£š—˜š—  š—¼š—æ š—”š—˜š—  Single cells and short stacks can be tested under realistic operating conditions, allowing a wide range of development scenarios. • š—›š—¶š—“š—µ š—æš—²š—½š—æš—¼š—±š˜‚š—°š—¶š—Æš—¶š—¹š—¶š˜š˜† š—³š—¼š—æ š—æš—²š—¹š—¶š—®š—Æš—¹š—² š˜ƒš—®š—¹š—¶š—±š—®š˜š—¶š—¼š—» Consistent test conditions make it possible to generate comparable results across different experiments, which is essential for material development and evaluation. • š—™š—®š˜€š˜ š˜€š—²š˜š˜‚š—½ š—®š—»š—± š—½š—æš—®š—°š˜š—¶š—°š—®š—¹ š˜‚š˜€š—®š—Æš—¶š—¹š—¶š˜š˜† The system is designed for efficient handling and quick integration into existing workflows, reducing effort in day-to-day testing. • š——š—²š—²š—½š—²š—æ š—¶š—»š˜€š—¶š—“š—µš˜š˜€ š—¶š—»š˜š—¼ š—°š—²š—¹š—¹ š—Æš—²š—µš—®š˜ƒš—¶š—¼š—æ With tools like DILICO CURR TEMP, current density and temperature distributions can be analyzed in detail. In addition, spatially resolved impedance measurements enable a more targeted investigation of local effects. The result is a structured testing environment that helps to better understand cause and effect within the cell and supports data driven development. If you are working on PEM or AEM electrolysis and facing similar challenges in testing or validation, explore our HCTS-50 at HANNOVER MESSE next week.

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