
1. Design Background and Requirement Analysis
Fil-ġenerazzjoni tas-sistema tal-enerġija, l-voltage sags – karatterizzati minn dawk drop subiti fil-RMS voltage għal 10%–90% tal-valur nominali, li jidher mill-10 ms sa 1 minuta – solit jiġu kawżati minn fulmini, erori ta' short-circuit, jew it-tibdil ta' apparati kbira. Dan issettja lill-AC contactors tradizzjonali biex jiġu tripped, bil-resultat ta' shutdowns mhux pianifikati fis-sistemi ta' produzzjoni kontinwa u perdита значительных экономических средств.
Anki bħala proposti diversi soluzzjonijiet ta' kontrollo intelligenti (pereżempju, avviż DC ad alta tensione, controllo PWM), hemm limitu chi: l-impossibilità di integrare la funzionalità di transizione automatica del modulo di guasto con la capacità di superare il calo di tensione. Per risolvere questo problema, questa soluzione utilizza il contattatore AC CDC17-115 come obiettivo di controllo e progetta un modulo di controllo intelligente con ridondanza dei guasti per mantenere la continuità della produzione anche in caso di guasto del modulo.
2. Module Working Principle and System Design
2.1 Overall Operational Logic Architecture
Il modulo di controllo intelligente adotta una progettazione di alimentazione a doppio modo per garantire un funzionamento affidabile in varie condizioni:
|
Operating State |
Power Supply Method |
Core Function |
Trigger Condition |
|
Normal Operation |
DC Supply (via control module) |
Silent DC operation, voltage sag ride-through |
Fault protection circuit detects no abnormality |
|
Module Fault |
AC Supply (via contact switch) |
Maintain production, issue alarm signal |
Electronic circuit fault or coil DC under-voltage |
|
Voltage Sag |
Activate ride-through function |
Maintain contactor pull-in state |
Sampled voltage drops below 60% of rated value |
|
Voltage Recovery |
Deactivate ride-through function |
Resume normal low-voltage holding |
Voltage recovers within n ms (adjustable) |
|
Voltage Not Recovered |
Contactor breaks |
Safe shutdown |
Voltage sag exceeds n ms without recovery |
2.2 Key Component Technical Details
2.2.1 Switching Power Supply Design
A high-performance switching power supply serves as the core power unit with the following features:
Table 1: Impact of Filter Parasitic Parameters on Short-Circuit Recovery Voltage
|
Simulation Condition |
R4/mΩ |
R3/mΩ |
R5/mΩ |
Umax/V |
Umin/V |
|
Only varying filter capacitor parasitic resistance |
10 |
100 |
300 |
14.78 |
7.41 |
|
Only varying filter capacitor parasitic resistance |
10 |
20 |
70 |
8.89 |
4.79 |
|
Only varying filter inductor parasitic resistance |
10 |
100 |
300 |
14.78 |
7.41 |
|
Only varying filter inductor parasitic resistance |
800 |
100 |
300 |
6.11 |
6.06 |
2.2.2 Fault Transition Circuit Design
An innovative combination of contact and contactless switches is used:
2.2.3 Transition Process Optimization
3. Simulation and Experimental Verification
3.1 Simulation Analysis
System simulations were conducted using Multisim software, including:
3.2 Experimental Verification
Tests on the CDC17-115 AC contactor confirmed:
4. Core Advantages and Conclusion
This solution successfully integrates module fault transition with voltage sag ride-through functionality, providing a highly reliable power assurance solution for continuous production processes and effectively mitigating downtime caused by voltage sags.