Banco de carga del inversor GROADA-AC600V-25KW-RCD
The GROADA AC600V-25kW RCD Load Bank is a professional testing device designed to simulate real-worl...
| modelo | AC220V-5KW-RCD | AC220V-10KW-RCD | AC220V-15KW-RCD | AC220V-20KW-RCD | AC380V -30KW-RCD | AC380V -50KW-RCD | AC380V -60KW-RCD | AC380V -100KW-RCD | AC380V -200KW-RCD |
| Potencia nominal | R = 5KW | R = 10KW | R = 15KW | R = 20KW | R = 30KW | R = 50KW | R = 60KW | R = 100KW | R = 200KW |
| RCD = 5KVA | RCD = 10KVA | RCD = 15KVA | RCD = 20KVA | RCD = 30KVA | RCD = 50KVA | RCD = 60KVA | RCD = 100KVA | RCD = 200KVA | |
| Corriente de entrada | 0-22A | 0-45A | 0-45A | 0-90A | 0-45A | 0-300A | 0-450A | 0-600A | 0-750A |
| Tamaño (ancho * profundidad * altura mm) | 500*600*800 | 500*600*1000 | 500*600*1100 | 500*750*1100 | 600*850*1400 | 600*850*1600 | 600*850*1850 | 700*1000*1800 | 1100*1400*1800 |
| Peso | 50 kg | 80 kg | 100 kg | 130 kg | 200 kg | 300 kg | 350kg | 450 kg | 550kg |
| Voltaje de entrada | AC220 / 230V | AC380 / 400V | |||||||
| Otro voltaje de entrada se puede personalizar según los requisitos | |||||||||
| Carga mínima | 100W | 100W | 100W | 100W | 100W | 1 KW | 1 KW | 1 KW | 1 KW |
| Otra potencia mínima de carga se puede personalizar según los requisitos | |||||||||
| Precisión general | 3% (otros requisitos de precisión se pueden personalizar según los requisitos) | ||||||||
| factor de potencia | PF = 0,6 ~ 1,0 | ||||||||
| coeficiente de pico | 2 a 3 | ||||||||
| Modo de control | Manual local / ordenador anfitrión remoto (modo de control manual local: interruptor / botón / pantalla táctil de tres vías opcional, otros métodos se pueden personalizar según se requiera) | ||||||||
| Interfaz remota | RS232/RS485/USB/RJ45/CAN/GPIB (otros modos de interfaz se pueden personalizar según los requisitos) | ||||||||
| Función de protección | Protección contra paradas de emergencia, protección contra sobretemperaturas, protección contra bloqueo de carga del ventilador, protección contra puesta a tierra (seleccione protección contra sobrevoltaje, protección contra sobrecorriente, protección contra cortocircuitos, sobrecarga del ventilador, volumen de aire insuficiente) | ||||||||
| Fuente de alimentación de trabajo | AC220V | AC220V / AC380V | |||||||
| Precisión de la pantalla | Nivel 0,5 (otra precisión explícita se puede personalizar según los requisitos) | ||||||||
| Parámetros de visualización | Voltaje, corriente, potencia, frecuencia, factor de potencia, etc. (otros métodos explícitos se pueden personalizar según los requisitos) | ||||||||
| De manera segura fría | Entrada de aire lateral y salida de aire superior (otros métodos de salida de aire se pueden personalizar según los requisitos) | ||||||||
| Nivel de protección | IP20 (otro nivel de protección se puede personalizar según los requisitos) | ||||||||
| Color de apariencia | RAL7035 (otros colores se pueden personalizar según los requisitos) | ||||||||
| Temperatura de trabajo | -10 ℃ ~ 55 ℃ | ||||||||
| Humedad relativa | ≤95% RH | ||||||||
| Altitud | ≤ 2500 m | ||||||||
En la infraestructura de energía moderna, la precisión en la prueba y validación del comportamiento de la fuente en condiciones de carga real es esencial. ElBanco de carga del inversor AC 120V 50 kVA RCDde GROADA está diseñado para simular cargas eléctricas reales para inversores, UPS, generadores y sistemas de baterías en condiciones seguras y repetibles.
Utilizando la simulación de carga resistiva, reactiva o combinada, los bancos de carga del inversor ayudan a revelar problemas latentes de rendimiento o estabilidad antes de que puedan impactar las operaciones. Este dispositivo es particularmente valioso para:
Poner en marcha nuevos sistemas de energía o inversores
Mantenimiento rutinario de sistemas de almacenamiento de energía
Pruebas de tensión de generadores de respaldo y UPS
Garantizar el cumplimiento del sistema con las normas de seguridad y reglamentación
Here is a high-level breakdown of the features your visitors will care about — and that will help search engines understand the page’s relevance and depth:
Rated Output: 120 V AC, 50 kVA
RCD protection & safety: includes Residual Current Device to protect operator and equipment
Inverter-compatible operation: supports bidirectional or controlled load injection to mimic inverter behavior
Precise load control: multi-step or continuous control, with accurate current/voltage metering
Cooling & thermal management: forced air cooling with intelligent fan control to manage resistor element temperature
Monitoring & communication: local display and optional remote interface (e.g. via RS-485, Ethernet, or other protocol)
Modular & maintainable design: replaceable resistor modules, easy access panels
Protection & safety features: overcurrent, overtemperature, short circuit, emergency stop
By emphasizing these aspects, the page signals both to users and to Google that it contains useful, detailed product content rather than shallow marketing fluff.
To build trust and authority, it’s useful to situate this product into its broader technical and market context:
What is a load bank?
A load bank is a device that imposes an electrical load on a power source in a controlled manner, converting that energy (usually via resistors) to heat, often dissipated by forced-air or water cooling systems. This allows engineers to test generators, UPSs, inverters, or batteries under known, stable loads without relying on unpredictable real-world load behavior.
Why inverter-compatible load banks?
Traditional resistive load banks impose static loads; inverter load banks, however, can more closely mimic dynamic power conversion behaviors (e.g. voltage drop, harmonic response) and can be used in conjunction with power electronics. This is especially relevant in modern microgrids, renewable systems, and energy storage test benches.
Market trends & demand
The global load bank market is projected to grow at a compound annual growth rate (CAGR) of ~3.7% from 2025 to 2032, expanding from ~$300 million in 2025 to ~$387 million by 2032.
Drivers include increased deployment of data centers, renewable energy integration, stricter power reliability standards, and wider use of battery/inverter systems. Enercon+1
In Asia-Pacific, especially China and India, industrial expansion and power infrastructure upgrades are accelerating demand for load testing and commissioning equipment.
By referencing these data points (with citations), the page demonstrates that the product is relevant in a growing, technology-driven sector.
To further increase relevance and user trust, lay out concrete scenarios where your product adds value:
| Application | Benefit / Use Case |
|---|---|
| Generator commissioning & acceptance testing | Verify full-load performance, thermal stability, load transient response |
| UPS & battery system verification | Confirm DC–AC inverter behavior under load, simulate real consumption profiles |
| Renewable + storage systems | During debugging/integration, impose known loads on inverter systems to test control logic |
| Maintenance & preventive testing | Routinely exercise systems to avoid “wet stacking,” carbon build-up, or capacity derating |
| Data center & mission critical facilities | Validate that backup systems can seamlessly take over under full load |
Including real user scenarios helps Google and users see your page as practically useful, boosting engagement and dwell time (factors that support SEO).
To help engineers / purchasers make informed decisions, you can include guidance or best practices:
Sizing margin: Choose a load bank with at least 20% headroom above expected maximum load to ensure longevity and safety under transient stress.
Power factor and reactance: If users need to test non-unity power factor loads (e.g. inductive or capacitive), consider combining with reactive modules or using R / L / C combination load banks.
Cooling & ambient conditions: The design must account for ambient temperature, ventilation constraints, and altitude.
Measurement accuracy: Use high-precision voltage and current sensors, with calibration, to ensure valid test data.
Safety and compliance: Design must comply with relevant electrical safety standards (e.g. IEC, UL, local codes), use proper insulation, earthing, overcurrent protection, and safe operator interface.
Maintenance tips: Periodic inspection of resistor elements, fan filters, connection integrity, insulation resistance, and firmware upgrades (if remote control is supported).
By offering this level of detail, the page becomes more than a sales pitch — it’s a resource, strengthening EEAT.
To boost trust (the “T” in EEAT), you should include or anchor (in surrounding parts of the site) elements like:
Company credentials & history: e.g. years of experience in power test / electrical load equipment manufacturing
Certifications & standards compliance: ISO, CE, UL, or others
Case studies / project references: real projects where this unit or similar ones were deployed (data centers, utility projects, etc.)
Third-party validation / testimonials: quotes from users, labs, or certifications
After-sales support & warranty: spare parts, calibration service, technical support coverage
In the body you can include a brief paragraph like:
GROADA is a specialist in power test solutions, with X years of experience designing reliable load banks. All units are factory tested, and we provide global after-sales support, spare parts, and calibration service to assure your long-term operational reliability.
Conclude with a user-focused, persuasive call to action, e.g.:
For detailed specifications, drawings, or customized configurations of the 120 V 50 kVA RCD inverter load bank, please contact our technical team. Let us help tailor a load testing solution that fits your system needs — from initial sizing to full test commissioning and long-term support.