Banco de carga de teste do inversor

Banco de carga do inversor GROADA-AC120V-50KVA-RCD

★★★★★
Produtos principais:
  • Banco de carga AC: R / RL / RLC / RCD
  • Banco de carga DC: DC5V - 2000V, 0A - 5000A


ModeloAC220V-5KW-RCDAC220V-10KW-RCDAC220V-15KW-RCDAC220V-20KW-RCDAC380V - 30KW-RCDAC380V - 50KW-RCDAC380V - 60KW-RCDAC380V - 100KW-RCDAC380V - 200KW-RCD
Potência nominalR = 5KWR = 10KWR = 15KWR = 20KWR = 30KWR = 50KWR = 60KWR = 100KWR = 200KW
RCD = 5KVARCD = 10KVARCD = 15KVARCD = 20KVARCD = 30KVARCD = 50KVARCD = 60KVARCD = 100KVARCD = 200KVA
Corrente de entrada0-22A0-45A0-45A0-90A0-45A0-300A0-450A0-600A0-750A
Tamanho (largura * profundidade * altura mm)500*600*800500*600*1000500*600*1100500*750*1100600*850*1400600*850*1600600*850*1850700*1000*18001100*1400*1800
Peso50 quilos80 quilos100 quilos130 quilos200 quilos300 quilos350 quilos450 quilos550 quilos
Tensão de entradaAC220 / 230VAC380 / 400V
Outra tensão de entrada pode ser personalizada de acordo com os requisitos
Carga mínima100W100W100W100W100W1kw1kw1kw1kw
Outra potência mínima de carga pode ser personalizada de acordo com os requisitos
Precisão geral3% (outros requisitos de precisão podem ser personalizados de acordo com os requisitos)
fator de potênciaPF = 0,6 ~ 1,0
coeficiente de pico2 a 3
Modo de controleManual local / computador anfitrião remoto (modo de controle manual local: interruptor / botão / tela táctil trivial opcional, outros métodos podem ser personalizados conforme necessário)
Interface remotaRS232/RS485/USB/RJ45/CAN/GPIB (outros modos de interface podem ser personalizados de acordo com os requisitos)
Função de proteçãoProteção de parada de emergência, proteção contra sobretemperatura, proteção contra bloqueio de carga do ventilador, proteção contra a terra (selecione proteção contra sobretensão, proteção contra sobrecorrente, proteção contra curto-circuito, sobrecarga do ventilador, volume de ar insuficiente)
Fonte de alimentação de trabalhoAC220VAC220V / AC380V
Precisão da exibição0,5 nível (outra precisão explícita pode ser personalizada de acordo com os requisitos)
Parâmetros de exibiçãoTensão, corrente, potência, frequência, fator de potência, etc. (outros métodos explícitos podem ser personalizados de acordo com os requisitos)
Frio certa maneiraEntrada de ar lateral e saída de ar superior (outros métodos de saída de ar podem ser personalizados de acordo com os requisitos)
Nível de proteçãoIP20 (outro nível de proteção pode ser personalizado de acordo com os requisitos)
cor da aparênciaRAL7035 (outras cores podem ser personalizadas de acordo com os requisitos)
Temperatura de trabalho-10 ℃ ~ 55 ℃
Umidade relativa ≤95%RH
Altitude ≤ 2500 m


GROADA AC120V 50 kVA RCD Inverter Load Bank — Teste de carga confiável para grandes inversores


Introdução / Breve resumo (segundo parágrafo)

O banco de carga do inversor RCD AC120V 50 kVA da GROADA é especialmente construído para testes e verificação de carga do inversor de alta potência. Ele permite que fabricantes, integradores de sistemas e laboratórios de teste executem testes de carga completa, parcial, transitórios e de condução de forma confiável e segura. Este banco de carga ajuda a validar o desempenho do inversor em condições reais, garantindo uma saída estável, conformidade e confiabilidade a longo prazo.


Características principais & Capacidade

  • Manipulação de alta potência
    Este banco de carga suporta cargas contínuas e dinâmicas de até 50 kVA em AC120V, tornando-o adequado para inversores médios a grandes ou matrizes de inversores.

  • Integração de proteção RCD
    Ele inclui recursos de segurança RCD (Dispositivo de Corrente Residual) para proteger contra vazamentos ou falhas no solo durante os testes.

  • Níveis de carga ajustáveis
    Os usuários podem definir cargas incrementais escalonadas ou variáveis ​​continuamente, permitindo a simulação de condições de operação leves, médias e completas.

  • Fast Response & Load Transitions
    It can simulate fast load changes or step loads, which is essential to validate inverter transient response, recovery, and ride-through performance.

  • Precision Monitoring & Measurement
    Integrated measurement modules capture voltage, current, power factor, efficiency, THD, flicker, and waveform distortion in real time.

  • Thermal Management & Protection
    Equipped with temperature sensors, over-temperature protection, and cooling infrastructure to ensure stable operation over long-duration tests.

  • Modular & Expandable Design
    The unit can be extended or modularized for higher power ratings or parallel operation, allowing flexible scaling.

  • Standards Compliance
    Designed to meet safety and measurement standards (e.g. IEC, UL, etc.), ensuring the test environment is credible and trustworthy.


Why Use an Inverter Load Bank?

Ensuring Performance & Reliability

Even certified inverters may fail under real or stress conditions: in one industry test program, one-third of PV inverters failed key performance or safety tests despite having IEC/UL certification.
Using a load bank helps you uncover issues—such as thermal instability, waveform distortion, overcurrent trips, or inability to ride through transients—before field deployment.

Compliance & Certification Support

To meet grid-codes or certification requirements (e.g. IEEE 1547.1 for distributed energy resources), inverter systems must pass a variety of stress and dynamic tests. 
A robust load bank is essential to simulate worst-case grid or load conditions.

Accelerated Validation & QA

In production or R&D, load banks facilitate fast, repeatable testing cycles. This is especially valuable in automotive, PV, ESS (energy storage systems), or industrial applications where inverter reliability is critical.

Market Growth & Demand

  • O Globalend-of-line inverter testing market was valued at about USD 1.27 billion in 2024 and is expected to reach USD 2.85 billion by 2033, a strong CAGR of ≈ 9.4 %. 

  • OPV inverter testing system market alone was valued at around USD 220 million in 2024 and is projected to grow to ~USD 450 million by 2033.

  • The overall inverter market (across sectors) is huge — valued at over USD 22 billion in 2024 and forecast to exceed USD 70+ billion by 2032, driven by renewables, electrification, and energy storage expansion. 

These trends underscore that high-quality test infrastructure (like load banks) is increasingly indispensable.


Typical Test Applications & Use Cases

  1. Full-Load Endurance Tests
    Run the inverter at rated output for prolonged periods to verify thermal stability, component degradation, and long-term reliability.

  2. Partial-Load & Efficiency Mapping
    Apply loads at, say, 25%, 50%, 75%, and 100% to map efficiency curves, power factor, and losses across operating range.

  3. Transient & Step-Load Tests
    Introduce sudden load changes (e.g. 10% → 80% → 30%) and monitor how the inverter handles transient events, recovery time, and waveform stability.

  4. Ride-Through / Fault Simulation
    Simulate grid disturbances, faults, or momentary interruptions and evaluate how the inverter maintains output or recovers — critical for compliance and stability.

  5. Harmonic / Distortion Testing
    Introduce non-pure loads or harmonic injection and assess how the inverter performs under nonlinear or distorted loads.

  6. Multi-Unit / Parallel System Testing
    For systems with multiple parallel inverter modules, test how they share load, respond to imbalance, or handle switching dynamics.


Technical Considerations & Best Practices

  • Load Type & Modeling
    Use a mix of resistive, inductive, and capacitive loads to emulate real-world conditions. Many inverter tests require reactive power handling and realistic load emulation. 

  • Instrumentation Accuracy
    Ensure measurement modules are precise (e.g. ±0.1% class or better), especially for efficiency and power factor comparisons.

  • Thermal Derating
    At high power, ambient temperature and internal heating can reduce effective load capacity — plan for margin or active cooling.

  • Transient Speed & Control Loop Interaction
    The load bank must respond quickly and smoothly to test pulses so the inverter’s control system isn’t tricked by overly slow transitions.

  • Isolation & Safety
    Proper galvanic isolation, overcurrent protection, and residual current detection (RCD) must be in place to safeguard test hardware and personnel.

  • Data Logging & Analysis
    Capture high-resolution data (sampling ≥ 1 kHz or more) and provide software tools to analyze instability, harmonics, voltage dips, or anomalies.


Why Choose the GROADA 50 kVA RCD Load Bank?

  • Tailored for High-Power Inverters: Many load banks top out at a few tens of kW; 50 kVA at AC120V positions this unit well above standard commodity test rigs.

  • Design centrado na segurança: Built-in RCD protection helps mitigate faults and enhances confidence in testing environments.

  • Scalability & Flexibility: Its modular architecture allows future upgrades or parallel operation for larger systems.

  • Precision & Responsiveness: Designed for fast load steps and stable control, ideal for dynamic performance tests.

  • Proven Technology & Support: Backed by GROADA’s expertise and experience in power electronics testing.

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