Silicon Workload Physics
0.2V - 1V sub-1V domain modeling. Emulate cell/core microsecond load transients and voltage droop characteristics.
FaithTech designs and manufactures programmable DC power supplies and electronic loads for energy, industrial, automotive, electronics, and aerospace applications.
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“We redefine power testing from electrical output to silicon behavior emulation.”
Reproducing real workload-driven electrical physics of advanced silicon and high-power converter platforms.
* Hardware-based dynamic power stimulus & load emulation platform (not simulation software)
Ultra-Low Voltage
Down to 0.2V
Ultra-High Current
Up to 20,000A
Ultra-Fast Dynamics
µs-Level Response
Category Constraint
“AI power systems are no longer predictable using traditional power supply testing methods.”
Modern high-density silicon workloads behave like rapid dynamic resistors. Output-centric DC power sources cannot maintain stable rails under high di/dt scenarios, distorting your DUT data.
Standard lab power supplies have slow feedback loops, failing to replicate kA/µs current surges, which masks VRM failures.
Standard loop feedback introduces propagation delays and ringing, failing to match the precise sequence of dynamic profiles.
Traditional supplies are built to maintain a simple flat output. They cannot model dynamic load-induced impedance swings or complex chip physics.
Oscilloscope-grade validation view
Verify the dynamic response deviation. FaithTech emulates deterministic load impedance, whereas standard power supplies suffer from control loop delays.
Cognitive Weapon
We do not just output static voltage. FaithTech models the actual physical-layer electrical response of high-density nodes under workload shifts.
0.2V - 1V sub-1V domain modeling. Emulate cell/core microsecond load transients and voltage droop characteristics.
SiC / GaN high-frequency transient responses. Model dynamic switching overshoot, gate charge shifts, and DC-DC converter physics.
Bidirectional EV bus dynamics, grid back-EMF absorption, battery SOC curves, and power harmonics replication.
Core Capability
The FTG Series Combined Large Power Programmable DC Power Source is engineered to execute high-dynamic behavior profiles, providing transient emulation from low-voltage components to high-power grid integration.
Up to 20,000A continuous current capacity for extreme low-voltage power rails.
Microsecond-level response times and programmable waveform sequences.
CC / CV / CP / Dynamic modes and sequence loading.

FTG Series Combined Large Power Programmable DC Source
Applications
Verify power integrity, switching transients, and grid dynamics across advanced high-power systems.

Provide steady, low-ripple sub-1V supply voltages under sudden multi-phase current steps up to 4000A for GPU, CPU, and AI accelerators.

Execute transient load scenarios for high-efficiency wide-bandgap SiC / GaN semiconductor modules, DC/DC converters, and OBCs.

Simulate dynamic traction battery discharge curves, regenerative braking transients, EV bus ripples, and fuel cell stacks.
Coordinated Stack
FaithTech provides a coordinated source + load system architecture. This decoupled design matches power engines and electronic loads under synchronized control for realistic transient profiling.
Coordinated test profiling, transient waveform loading, and automated reporting (Not real-time software loop simulation).
Specifications (Example)
Voltage Range
10V – 1500V
Current Range
Up to 20,000A
System Power
Up to 600kW per cabinet
Dynamic Response
<20µs transient response
Voltage Accuracy
±0.05% F.S.
Current Accuracy
±0.1% F.S.
Communication Interfaces
Ethernet / CAN / Analog
Trusted by Innovators
Deterministic Emulation
AI power systems demand kA-level dynamic load validation. Do not settle for output-centric measurements. Request our transient models and simulation profiles to establish a deterministic testing framework.