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Herausforderungen beim Testen der Stromversorgung von KI-Rechenzentren und NGI-Lösungen für die KI-Rechenzentrumsinfrastruktur der nächsten Generation

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Herausforderungen beim Testen der Stromversorgung von KI-Rechenzentren und NGI-Lösungen für die KI-Rechenzentrumsinfrastruktur der nächsten Generation

August 19,2026
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As large language models continue to evolve at an unprecedented pace, global investment in AI computing infrastructure has entered an intensive competition phase.

According to industry forecasts, China’s AIDC market is expected to reach RMB 177.8 billion by 2026 and approach RMB 400 billion by 2030.

In this race for computing power, the performance of AIDC infrastructure depends not only on GPUs, but also on the “hidden hero” inside the rack — the power delivery system.

Ensuring that every stage of power conversion, from the AC grid input to the GPU core, operates with high stability, efficiency, and safety has become a critical factor in determining AIDC competitiveness.

Dieser Artikel untersucht die Herausforderungen bei der Prüfung der Stromversorgung, mit denen die AIDC-Infrastruktur im Zeitalter des beschleunigten Wachstums der KI-Rechenleistung konfrontiert ist, und stellt die umfassenden Testlösungen von NGI vor.


Three Major Challenges in AIDC Power Architecture Testing


In traditional data centers, 12V power distribution architectures were once the industry standard.

Today, AI server power architectures are rapidly evolving toward higher voltage levels:

l 48V / 54V architectures have become mainstream solutions.

l ±400V and 800V power architectures are increasingly being adopted by leading cloud service providers.

This transformation brings significant advantages, including higher power capability and improved efficiency. However, it also introduces more complex testing requirements.

High-speed dynamic response, high energy consumption, and full-scenario validation are pushing traditional test equipment beyond its existing limitations.


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Challenge 1: High-Speed Dynamic Response

AIDC systems adopt complex multi-stage power architectures:

From high-voltage DC (HVDC) input, to centralized 48V / 54V output from rack power systems, and finally to multi-phase DC/DC conversion on server motherboards, supplying 0.6V–5V low-voltage high-current power to GPU/CPU cores.

During large-scale parallel computing workloads, GPUs frequently transition between idle and full-load states.

The current slew rate during these transitions can reach hundreds of amperes per microsecond (A/μs).

Therefore, test systems must be capable of simulating high-speed dynamic load variations ranging from tens to hundreds of A/μs to accurately validate AI server power stability and transient response.


Herausforderung 2: Hoher Energieverbrauch

In the AIDC era, the power capacity of a single server power rack has increased dramatically:

From traditional 5–10kW levels to hundreds of kilowatts or even MW-level systems.

Traditional resistive loads and conventional electronic loads are limited by their operating principles, converting all consumed testing energy into heat.

Das führt zu:

l High electricity costs during testing

l Additional cooling requirements

l Increased operational expenses for thermal management

For large-scale AIDC power validation, energy efficiency during testing has become a critical consideration.


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Challenge 3: Full-Scenario Coverage for BESS/CBU and Computing-Energy Integration

Due to the characteristics of AIDC infrastructure — including high power density, strong load fluctuations, and extremely high reliability requirements — the power system is gradually evolving from a supporting component into a key constraint for computing infrastructure deployment.

Since 2025, multiple energy storage solutions for AIDC have accelerated into practical deployment.

Technologies including:

l Grid-forming energy storage

l High-voltage DC architectures

l Lithium/sodium energy storage integration

l Intelligent energy scheduling

are advancing simultaneously.

The industry is shifting from traditional backup power configuration toward integrated coordination between computing power and energy systems.

Energy storage systems, BBU (Battery Backup Unit), CBU (Capacitor Backup Unit), and related power infrastructure are becoming standard components in AIDC deployment, making them important targets for validation and testing.


NGI Full-Scenario AIDC Power Testing Solution


With years of expertise in data center power testing, NGI has developed a comprehensive AIDC power testing solution to address industry challenges and support customers in adapting to next-generation power architecture upgrades.

The solution delivers the following key customer benefits:


Dynamische Reaktion bei hoher Geschwindigkeit

The NGI N69200H and N67000 series loads support a singleunit slew rate of up to 60 A/μs, and support parallel connection of multiple units for power expansion up to the MW level, achieving slew rates as high as hundreds of A/μs. This makes them wellsuited for highspeed dynamic load testing requirements of AI server power supplies and Vcore power supplies.


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High-Efficiency Energy Regeneration for Reduced Operating Costs

NGI N35500 and N35100 Series High-Performance Bidirectional DC Power Supplies support one-click switching into regenerative load mode.

The system can feed testing energy back into the grid with regeneration efficiency of up to 95%.

In high-power testing scenarios such as:

l HGÜ-Systeme

l Rack Power systems

the solution significantly reduces:

l Stromverbrauchskosten

l Cooling system operating expenses

while improving overall testing efficiency.


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Comprehensive Full-Scenario Coverage

NGI’s AIDC testing solution covers ten major application scenarios, including:

l SST (Solid-State Transformer)

l HVDC

l UPS

l PSU

l Power-Shelf

l Rack-Power

l DC-DC

l Optisches Modul

l Sammelschiene

l BBU

The solution can also support emerging AIDC energy storage testing requirements, including:

l BESS (Batterie-Energiespeichersystem)

l CBU (Capacitor Backup Unit)


AI服务器-英文新


Powering the Future of AI Infrastructure Through Advanced Testing

As AI computing infrastructure continues moving toward higher power density, higher voltage architectures, and more complex energy integration, testing capability has become a critical foundation for successful deployment.

Through high-speed dynamic simulation, regenerative energy recovery, and full-scenario validation capabilities, NGI’s AIDC power testing solutions help customers accelerate the development and deployment of next-generation AI power architectures.



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