1. Pagdisenyo sa Background ug Analysis sa Gikinahanglan
Sa panahon sa operasyon sa sistema sa kuryente, ang mga voltage sags—na gipakita pinaagi sa iskedyuladong pagbaba sa RMS voltage ngadto sa 10%–90% sa rated value nga nagdili og 10 ms hangtod sa 1 minuto—makaoccur mahitungod sa lightning strikes, short-circuit faults, o ang pagstart sa dako nga equipment. Ang mga panghitabo kini makapadaghan sa tradisyonal nga AC contactors nga magtrip, resulta sa unplanned shutdowns sa continuous production processes ug significante nga economic losses.
Kahit na adunay daghang intelligent control solutions (e.g., high-voltage DC starting, PWM control) ang gipropose, ang usa ka key limitation nagpadayon: ang pagkabag-o sa automatic module fault transition functionality sama sa voltage sag ride-through capability. Aron matubag kini, ang solusyon niini gamiton ang CDC17-115 AC contactor isip kontrol target ug ginidisenyo og intelligent control module nga may fault redundancy aron mapatuloy ang production continuity bisan sa event sa module failure.
2. Module Working Principle ug System Design
2.1 Overall Operational Logic Architecture
Ang intelligent control module nagamit og dual-mode power supply design aron masiguro ang reliable operation sa iba't ibang kondisyon:
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
Ang high-performance switching power supply giserve isip core power unit uban ang sumala nga 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.