Current Sensing in Data Centers

Enabling Efficiency, Reliability and Scalability in Data Centers

Data centers are undergoing a profound transformation driven by the rapid growth of artificial intelligence, cloud computing, and digital services. As computing power increases, so does the demand for energy, pushing existing infrastructures to their limits and forcing a complete rethinking of how power is generated, distributed, and managed.

From traditional AC-based systems to emerging DC architectures, data centers are evolving toward more efficient, scalable, and high-density designs. In this context, accurate and reliable current measurement has become a cornerstone of performance, safety, and energy optimization.

LEM supports this transformation by providing advanced current sensing solutions across the entire data center power chain, from grid infrastructure to server racks, helping operators improve efficiency, ensure uptime, and prepare for next-generation architectures.

AC-Based Data Centers (Today’s Standard)

AC-based architectures remain the dominant design in today’s data centers. Power is delivered from the grid, transformed, and distributed across multiple layers before reaching IT equipment.

Datacenter AC based architecture

A typical architecture includes:

  • grid infrastructure (MV/LV switchgear and transformers)
  • uninterruptible power supply (UPS) systems
  • AC power distribution units (PDUs)
  • server-level power conversion (AC/DC, DC/DC)
  • cooling and HVAC systems

Each of these stages relies on dedicated power conversion and distribution equipment, forming a complex chain from grid to chip.

While widely deployed and reliable, AC-based architectures present several limitations:

  • Multiple conversion stages with cumulative efficiency losses
  • Limited visibility at system level making optimizations difficult
  • Increasing complexity, especially with growing redundancy requirements
  • Scaling constraints, driven by rising rack density and AI workloads

As data centers scale toward higher power levels and densities, improving efficiency and monitoring across these architectures becomes critical.

Where LEM adds value across AC-based data center applications

Accurate current measurement is required across the entire AC power chain to ensure performance, safety, and reliability.

LEM solutions are deployed at each key level:

Data Center Segment

Key FunctionsMeasurement Needs

Grid Infrastructure

MV/LV conversion, power input monitoringAccurate AC current measurement, high isolation

Backup Power (UPS, Batteries)

Energy storage, backup supply continuityHigh-accuracy AC/DC sensing, battery monitoring

Power Distribution (PDU, RPP)

Power routing, branch circuit monitoringLoad monitoring, compact sensing solutions

Power Conversion (PSU, AC/DC, DC/DC)

Voltage conversion, power regulationHigh-bandwidth current sensing, fast switching control

Cooling & HVAC

Thermal management (fans, pumps, compressors)Motor control, variable frequency drives

 

LEM products for AC Data Centers

With one of the industry’s broadest current sensing portfolios, LEM supports AC data center applications across the entire power chain, from grid infrastructure and backup power to power distribution, conversion, and cooling systems.

 

Grid infrastructure

Backup Power

Power distribution

Power conversion

HVAC

Product Series

ITC

ART

HAZ

HO

HLSR

LAH

ARU

AP

AK

GXM

HAT

HASS

GO

HAX

LF

Bandwidth

27kHz - 82kHz

0,05kHz - 500kHz​

3kHz

100kHz - 350kHz​

90kHz - 450kHz

100kHz - 200 kHz​

0,05kHz - 500kHz​

0,03kHz - 30kHz

0,02kHz - 0,1kHz

320 kHz

25kHz

240kHz

300 kHz

25 kHz​

100kHz - 200kHz

Consumption

70mA

-

20mA
10V

25mA

19mA

10mA - 19mA

-

4 - 20mA
0 - 5V

4 - 20mA
0 - 10V

 Vref +/- 1.65 V
Vref +/- 2.5 V

4V

2.5 +/- 0.625 V

20mA

4V

33mA - 49mA

Current range Max

3000A - 6000A

1000 A

2000A - 20000A

20A - 625A

25A - 300A

55A - 226A

1000 A

50A - 400A

5A - 400A

50A - 200A

500A - 2500A

150A - 1100A

10A - 75A

1500 - 7500 A​

200A - 3400A

Supply Voltage

24V

-

15V - 15V

5V

3,3V - 5V

12V - 15V

-

12V - 24V
24V - 24V

24V - 24V

3,3V - 3,3V
5V - 5V

15V - 15V

5V - 5V

3.3V - 5V

12 V - 12V
15V - 15V

12V - 24V

Mounting

Panel

Busbar

Panel

PCB, Panel

PCB

PCB

Busbar

Panel, DIN Rail

Panel, DIN Rail

SOIC 10

Panel

Panel

SOIC 16

Panel

Panel

Output

Current

Voltage

Current, Voltage

Voltage

Voltage

Current

Voltage

Current, Voltage

Current, Voltage

Analog

Voltage

Voltage

Analog

Voltage

Current

Accuracy

0,05%

0,5%

1%

1% - 1,35%

1%

0,3% - 0,41%

0,5%

1%

1%

2%

1%

1%

1,3% - 3%

1%

0,2% - 0,6%

Partial DC Data Centers (Emerging Architectures)

Partial DC architectures represent a hybrid approach, combining traditional AC distribution with increasing use of DC at rack or subsystem level.

Datacenter Partial DC architecture

In this model:

  • AC power is still used at facility level
  • DC distribution is introduced closer to the load (rack, row, or IT level)
  • New conversion stages (e.g. HVDC, IBC) replace part of the AC/DC chain

Typical elements include:

  • AC grid infrastructure and UPS systems
  • DC buses (e.g. 48V or higher voltage DC such as 800V)
  • intermediate bus converters (IBC) and point-of-load (PoL) converters

This architecture reduces the number of conversion steps between grid and chip, simplifying the overall power path. Compared to traditional AC-based systems, partial DC architectures provide significant advantages:

  • Reduced conversion stages offering higher overall efficiency
  • Lower current levels at higher voltages: reduced I²R losses
  • Higher power density, providing better support for AI workloads
  • Improved scalability, delivering simpler distribution at high power levels

For example, high-voltage DC distribution (such as ~800V DC) allows lower current for the same power, reduced cabling complexity and improved thermal performance.

These benefits make partial DC architectures particularly relevant for next-generation AI data centers, where rack power can reach extremely high levels.

Where LEM adds value across Partial DC Data Centers

Data Center Segment

Key FunctionsMeasurement Needs

Grid Infrastructure

AC supply, MV/LV conversionAccurate AC measurement, isolation

Backup Power (UPS, BBU, BESS)

Distributed energy storageHigh-precision DC sensing, fast response

Power Distribution (DC buses)

DC power routing, protectionDC current monitoring, fault detection

Power Conversion (HVDC, IBC, PoL)

High-efficiency conversionHigh-bandwidth sensing, fast switching control

Cooling & HVAC

High-efficiency thermal systemsMotor control, DC drive monitoring

 

LEM products for Partial DC Data Centers

As data centers move toward hybrid AC/DC designs, LEM provides a versatile portfolio of current sensing solutions to address the new performance, protection, and efficiency requirements of partial DC architectures.

 

Grid infrastructure

Backup Power

Power distribution

Power conversion

HVAC

Product Series

ITL

ART

AK

HOYS

LAH

HAX

GXS

ARU

ATO

GXM

HASS

HLSR

HMSR

GO

LF

Bandwidth

100kHz - 500kHz

0,05kHz - 500kHz​

0,02kHz - 0,1kHz

180kHz

100kHz - 200 kHz​

25 kHz​

400kHz

0,05kHz - 500kHz​

0,05kHz - 0,06kHz

320 kHz

240kHz

90kHz - 450kHz

300kHz

300 kHz

100kHz - 200kHz

Consumption

60mA - 130mA

-

4 - 20mA
0 - 10V

25mA

10mA - 19mA

4V

 Vref +/- 2.5 V

-

4 - 125mA
0,333V

 Vref +/- 1.65 V
Vref +/- 2.5 V

2.5 +/- 0.625 V

19mA

20mA

20mA

33mA - 49mA

Current range Max

12,5A - 1000A

1000 A

5A - 400A

250A - 1400A

55A - 226A

1500 - 7500 A​

5A - 50A

1000 A

6A - 176,7A

50A - 200A

150A - 1100A

25A - 300A

15A - 75A

10A - 75A

200A - 3400A

Supply Voltage

15V

-

24V - 24V

3,3V - 5V

12V - 15V

12 V - 12V
15V - 15V

3,3V - 3,3V
5V - 5V

-

-

3,3V - 3,3V
5V - 5V

5V - 5V

3,3V - 5V

3,3V - 5V

3.3V - 5V

12V - 24V

Mounting

PCB, Panel

Busbar

Panel, DIN Rail

Panel

PCB

Panel

SOIC 8

Busbar

Busbar, DIN Rail

SOIC 10

Panel

PCB

SOIC 10

SOIC 16

Panel

Output

Current

Voltage

Current, Voltage

Voltage

Current

Voltage

Analog

Voltage

Current, Voltage

Analog

Voltage

Voltage

Analog

Analog

Current

Accuracy

0,00115% - 0,0509%

0,5%

1%

1% - 1,25%

0,3% - 0,41%

1%

2%

0,5%

1% - 1,5%

2%

1%

1%

1% - 3%

1,3% - 3%

0,2% - 0,6%

A key transition toward full DC architectures

Partial DC data centers represent a critical transition between legacy AC systems and future fully DC infrastructures. 

They allow operators to improve efficiency step by step, validate emerging technologies, and prepare for large-scale DC deployment. 

At the same time, current sensing becomes even more important, as these architectures operate at higher voltages, rely on fewer but more sensitive conversion stages, and demand more advanced control and protection mechanisms.

LEM’s portfolio is already aligned with these evolving requirements, enabling customers to deploy hybrid architectures today while preparing for full DC infrastructures tomorrow.

Preparing for the Future: Full DC Distribution

As data centers scale to support AI-driven workloads, traditional architectures are reaching their limits. To improve efficiency and simplify power distribution, the industry is exploring full DC architectures, where power flows continuously in DC from the grid to the chip.

Datacenter Full DC architecture diagram

Driving efficiency at scale

By reducing the number of conversion stages, full DC distribution can lower energy losses, simplify power paths and improve overall system efficiency.

It also enables better integration with battery storage and renewable energy sources, key elements for future large-scale data centers.

Despite its potential, full DC remains a long-term evolution. Challenges such as DC protection, safety, and ecosystem maturity still need to be addressed before large-scale adoption.

LEM is already preparing for this transition: Products for Full DC Data Centers

Full DC architectures require high-accuracy, high-bandwidth DC current sensing to ensure safe and efficient operation.

LEM is already developing solutions aligned with these needs, including:

  • integrated current sensors (ICS) for fast-switching converters
  • high-voltage DC sensing technologies
  • compact and high-performance measurement solutions

This positions LEM to support the transition toward full DC data centers, helping customers move from today’s architectures to future-ready infrastructures.

 

Solid State Transformer

Backup Power

Power distribution

Power conversion

HVAC

Product Series

HOB

FRS

HTA

HOYS

LAH

HAX

GXS

DVL

DVC

GXM

HASS

HLSR

HMSR

GO

LF

Bandwidth

1000kHz

1000kHz

50khz

180kHz

100kHz - 200kHz​

25kHz​

400kHz

14kHz

20kHz - 30kHz

320 kHz

240kHz

90kHz - 450kHz

300kHz

300 kHz

100kHz - 200kHz

Consumption

22mA - 24mA

80mA - 140mA

25mA

25mA

10mA - 19mA

4V

 Vref +/- 2.5 V

25mA

17mA - 20mA

 Vref +/- 1.65 V
Vref +/- 2.5 V

2.5 +/- 0.625 V

19mA

20mA

20mA

33mA - 49mA

Current range Max

125A - 250A

9000A

300A - 1000A

250A - 1400A

55A - 226A

1500 - 7500 A​

5A - 50A

75V - 3000V

1000V - 1500V

50A - 200A

150A - 1100A

25A - 300A

15A - 75A

10A - 75A

200A - 3400A

Supply Voltage

3,3V - 5V

12V - 24V

15V

3,3V - 5V

12V - 15V

12 V - 12V
15V - 15V

3,3V - 3,3V
5V - 5V

15V - 24V

5V - 24V

3,3V - 3,3V
5V - 5V

5V - 5V

3,3V - 5V

3,3V - 5V

3.3V - 5V

12V - 24V

Mounting

PCB

Busbar

Panel

Panel

PCB

Panel

SOIC 8

Panel

DIN Rail, Panel

SOIC 10

Panel

PCB

SOIC 10

SOIC 16

Panel

Output

Voltage

Voltage / Current

Voltage

Voltage

Current

Voltage

Analog

Current

Current

Analog

Voltage

Voltage

Analog

Analog

Current

Accuracy

1.2% - 1.45%

0.5%

1%

1% - 1,25%

0,3% - 0,41%

1%

2%

0.5%

1.7%

2%

1%

1%

1% - 3%

1,3% - 3%

0,2% - 0,6%

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