• Product
  • Suppliers
  • Manufacturers
  • Solutions
  • Free tools
  • Knowledges
  • Experts
  • Communities
Search


Soluzzjoni tal-Modul tal-Kontroll Ġdid għal Ride-Through tal-Voltġiżna tal-Contattur AC


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:

  • Core Architecture: Pulse-width modulation IC (switching frequency 132 kHz), MOSFET (MTD1N80E), special transformer (primary inductance 900 μH, leakage inductance 15 μH, turns ratio 0.11), and π-type output filter (L3, C2, C3)
  • Multi-Protection Functions: Input overvoltage/undervoltage, output overvoltage/overcurrent/short-circuit/overheat protection, integrated soft-start and frequency jitter technology
  • Performance:
    • Stable load start-up time < 35 ms, supports rapid switching between ride-through and normal states
    • Automatically limits power during short circuits and quickly stabilizes after fault clearance
    • Triggers overvoltage protection and immediately shuts off PWM output upon feedback loop open

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:

  • Structural Design: Contact switches handle full breaking and isolation functions for high-power switching; power electronic switches enable arc-free, high-frequency operation
  • Intelligent Transition Logic:
    • AC power is supplied via normally closed contacts during initial power-up
    • Automatically switches to DC supply mode during normal operation
    • Upon fault detection, deactivates the contact switch drive; resumes AC direct supply after reset to ensure continuity
  • Contact Protection Technology: Uses a universal AC/DC absorption suppression circuit (diode RC + bidirectional TVS diode D3) to effectively clamp overvoltage, dissipate inductive magnetic energy, and significantly reduce arcing

2.2.3 Transition Process Optimization

  • AC-to-DC Transition: Applies full-wave rectified pulsating voltage via power electronic switches, delays 10 ms before switching to low-voltage DC, effectively preventing core rebound; tested transition is smooth and vibration-free
  • DC-to-AC Transition: Cuts off DC upon fault and intelligently introduces AC supply; arc energy is freewheeled through reverse diodes during transition, with phase-angle control to avoid voltage spike interference
  • Parameter Optimization (based on simulation results):
    • Resistors (R2, R3): Smaller resistance values result in slower voltage amplitude decay but do not affect transition phase angle
    • Capacitors (C1, C2): Smaller capacitance values yield higher oscillation decay frequency (f = 174.7 Hz at C = 2 μF; f = 795.4 Hz at C = 0.1 μF)

3. Simulation and Experimental Verification
3.1 Simulation Analysis
System simulations were conducted using Multisim software, including:

  • Switching power supply start-up characteristics and protection performance simulation
  • Analysis of resistance, capacitance, and phase angle effects on voltage oscillation during transition
  • Evaluation of parasitic parameter impacts on system stability

3.2 Experimental Verification
Tests on the CDC17-115 AC contactor confirmed:

  • Switching power supply no-load/full-load (50 A contactor) waveforms meet design expectations
  • Protection mechanisms respond quickly and effectively under short-circuit/feedback open-circuit faults
  • Transition processes are smooth, with no core vibration, and all functions meet design requirements

4. Core Advantages and Conclusion

  1. High-Performance Switching Power Supply: Compact size, high efficiency, and comprehensive protection functions significantly enhance electrical reliability, making it ideal for smart electrical applications.
  2. Intelligent Fault Transition: Innovative design combining contact and contactless switches ensures timely switching to AC operation during module faults, guaranteeing continuous power supply to the contactor system.
  3. Efficient Energy Management: Universal AC/DC absorption suppression circuit effectively converts overvoltage and arc energy during transitions into stable electromagnetic force, ensuring uninterrupted production.
  4. Voltage Sag Ride-Through Capability: Automatically activates when system voltage drops to 60% of the rated value, maintaining reliable contactor pull-in to avoid unplanned shutdowns.

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.

09/18/2025
Mħalless
Engineering
Soluzzjoni Integrata tal-Enerġija Hibrida Sol-Lunare għal Gżejjer Minuri
IktriżDin proposta tħalla soluzzjoni energetika magħmula ġdida li tikkombina mill-qalb l-enerġija tal-ħawar, l-enerġija fotovoltaika, it-tixrid tal-ħal mill-baħar, u t-teknoloġija tal-desalinizzazzjoni tal-ilma. Tgħaqqad lilha l-intenzjoni ta’ affronta s-sfidi koreżi li jaffrontu l-gżejjer l-mqassra, inkluż il-ġenġ imxiem tas-silġ, il-kostijiet għożż ta’ ġenerazzjoni tal-enerġija fit-diesel, is-silġ tal-aċċumulazzjoni tradizzjonali, u l-iskarsa tal-aċċess għall-ilma tal-ġol. Is-soluzzjoni toħloq
Engineering
Sistema ibħal Ħalijiet-Raġel ta' Intelligenza tal-Kontroll Fuzzy-PID għal Gestjoni Milluri mill-Batteriji u MPPT Migħdula
IkhtisarDan proposta tħallef sistema ta' ġenerazzjoni tal-enerġija mixta tal-ħawlu u tas-silġ bazejat fuq teknoloġija ta' kontroll avvanzata, bl-obbjettività ta' l-aħdien u l-iżenja ta' l-ixxorijiet tal-enerġija fl-areji distanti u f'skenariji speċifiċi. Il-kelb tal-sistema huwa sistema ta' kontroll intelliġenti li jikkonsidra mikroproċessur ATmega16. Din is-sistema tapplica trakkja tal-punt ta' potenza massima (MPPT) għal l-enerġija tal-ħawlu u tas-silġ, u tagħmel użu minn algoritmu ommess biex
Engineering
Soluzzjoni Hibrida tal-Ġwien u l-Ħawiem Kost-effettiv: Konvertitur Buck-Boost u Ħarġ Smart Jżidu l-Kost tas-Sistema
IkhtisarDinjuħall ta’ soluzzjoni proposta sistema inovattiva ta’ ġenerazzjoni tal-enerġija hibrida ventu-ħalijiet. L-istess jindirizza l-mankaw għoxrin f’t-teknoloġiji eżistenti, bħal l-użu tal-enerġija ta’ darran, l-aħwa tal-batteriji, u l-stabbiltà tas-sistema. Is-sistema tuża konverturi DC/DC buck-boost kumplutament digitali, teknika parallela interlaced, u algoritmu ta’ karika tri-stage intelligenti. Dan jippermetti t-trakkjar il-Punt ta’ Potenza Maksimum (MPPT) fuq amm għajnun ta’ speċi ven
Engineering
Sistema Mixtu ta' Enerġija tal-Hawlu u tas-Silġ: Soluzzjoni Komprensiva ta' Dizajn għall-Applikazzjonijiet fuq il-Fuq tal-Grid
Introduzzjoni u Kontest1.1 Sfidi tal-Sistemi ta' Ġenerazzjoni ta' Enerġija mill-Orizzont SingluIlsistemi tradizzjonali ta' ġenerazzjoni ta' enerġija fotovoltaika (PV) jew tal-ħalq wind huwa ma' difetti intrinsequi. Il-ġenerazzjoni ta' enerġija PV hi influenzata mill-ċikli diurni u l-kondizzjonijiet meteo, fl-ħal li l-ġenerazzjoni ta' enerġija wind tintlaq għal risorsi wind mhux stabbili, li jiġu mgħadda fluttuazzjonijiet konsiderevoli fil-livell ta' potenza prodotta. Biex is-sigurtà ta' approvvi
Ċalja tal-inquery
Downloadu
Ikseb l-App IEE Business
Uża l-app IEE-Business biex tiftakar imkienjar taħt il-mod ġdid waqt li tkun qiegħed tixtieq soluzzjonijiet tikkonektja ma' esperti u tkun parti min kollobazzjoni f'sektor kwalunkwe ħin u fejn siekta s-sodisfaċċament tas-silġ tal-proġetti tiegħek u t-affarijiet tiegħek fl-enerġija