| Motor de Búsqueda de Datasheet de Componentes Electrónicos |
|
SC1933C Datasheet(PDF) 4 Page - Power Integrations, Inc. |
|
|
|||||||||||||||||||||||||||||
SC1933C Datasheet(HTML) 4 Page - Power Integrations, Inc. |
|
4 / 28 page ![]() Rev. C 11/18 4 SC1933C/SC1936C www.power.com Current Limit Operation The primary-side controller has a current limit threshold ramp that is linearly decreasing to the time from the end of the previous primary switching cycle (i.e. from the time the primary switch turns off at the end of a switching cycle). This characteristic produces a primary current limit that increases as the switching frequency (load) increases (Figure 7). This algorithm enables the most efficient use of the primary switch with the benefit that this algorithm responds to digital feedback information immediately when a feedback switching cycle request is received. At high load, switching cycles have a maximum current approaching 100% I LIM. This gradually reduces to 30% of the full current limit as load decreases. Once 30% current limit is reached, there is no further reduction in current limit (since this is low enough to avoid audible noise). The time between switching cycles will continue to increase as load reduces. Jitter The normalized current limit is modulated between 100% and 95% at a modulation frequency of f M. This results in a frequency jitter of ~7 kHz with average frequency of ~100 kHz. Auto-Restart In the event a fault condition occurs (such as an output overload, output short-circuit, or external component/pin fault), the SC1933C/ SC1936C enters auto-restart (AR) or latches off. The latching condition is reset by bringing the PRIMARY BYPASS pin below ~3 V or by going below the UNDER/OVER INPUT VOLTAGE pin UV (I UV-) threshold. In auto-restart, switching of the power switch is disabled for t AR(OFF). There are 2 ways to enter auto-restart: 1. Continuous secondary requests at above the overload detection frequency f OVL (~110 kHz) for longer than 82 ms (tAR). 2. No requests for switching cycles from the secondary for >t AR(SK). Figure 7. Normalized Primary Current vs. Frequency. 30 40 50 60 70 90 100 80 Steady-State Switching Frequency (kHz) 1.05 0.8 0.75 0.85 0.9 0.95 1.0 Primary Controller SC1933C/SC1936C has variable frequency QR controller plus CCM/ CrM/DCM operation for enhanced efficiency and extended output power capability. PRIMARY BYPASS Pin Regulator The PRIMARY BYPASS pin has an internal regulator that charges the PRIMARY BYPASS pin capacitor to V BPP by drawing current from the DRAIN pin whenever the power switch is off. The PRIMARY BYPASS pin is the internal supply voltage node. When the power switch is on, the device operates from the energy stored in the PRIMARY BYPASS pin capacitor. In addition, a shunt regulator clamps the PRIMARY BYPASS pin voltage to V SHUNT when current is provided to the PRIMARY BYPASS pin through an external resistor. This allows the SC1933C/SC1936C to be powered externally through a bias winding, decreasing the no-load consumption to less than 30 mW in a 5 V output design. Primary Bypass ILIM Programming SC1933C/SC1936C ICs allows the user to adjust current limit (ILIM) settings through the selection of the PRIMARY BYPASS pin capacitor value. A ceramic capacitor can be used. There are 2 selectable capacitor sizes - 0.47 mF and 4.7 mF for setting standard and increased ILIM settings respectively. Primary Bypass Undervoltage Threshold The PRIMARY BYPASS pin undervoltage circuitry disables the power switch when the PRIMARY BYPASS pin voltage drops below ~4.5 V (V BPP - VBP(H)) in steady-state operation. Once the PRIMARY BYPASS pin voltage falls below this threshold, it must rise to V SHUNT to re-enable turn-on of the power switch. Primary Bypass Output Overvoltage Function The PRIMARY BYPASS pin has a latching OV protection feature. A Zener diode in parallel with the resistor in series with the PRIMARY BYPASS pin capacitor is typically used to detect an overvoltage on the primary bias winding and activate the protection mechanism. In the event that the current into the PRIMARY BYPASS pin exceeds ISD, the device will latch-off or disable the power switch switching for a time t AR(OFF), after which time the controller will restart and attempt to return to regulation (see Secondary Fault Response in the Feature Code Addenda). VOUT OV protection is also included as an integrated feature on the secondary controller (see Output Voltage Protection). Over-Temperature Protection The thermal shutdown circuitry senses the primary switch die temperature. The threshold is set to T SD with either a hysteretic or latch-off response. Hysteretic response: If the die temperature rises above the threshold, the power switch is disabled and remains disabled until the die temperature falls by T SD(H) at which point switching is re-enabled. A large amount of hysteresis is provided to prevent over-heating of the PCB due to a continuous fault condition. Latch-off response: If the die temperature rises above the threshold the power switch is disabled. The latching condition is reset by bringing the PRIMARY BYPASS pin below V BPP(RESET) or by going below the UNDER/OVER INPUT VOLTAGE pin UV (I UV-) threshold. |
|
Enlace URL |
| ¿ALLDATASHEET es útil para Ud.? [ DONATE ] |
Todo acerca de Alldatasheet | Publicidad | Contáctenos | Política de Privacidad | Enlace a la hoja de datos | Intercambio de Enlaces | Lista de Fabricantes All Rights Reserved©Alldatasheet.com |
| Russian : Alldatasheetru.com | Korean : Alldatasheet.co.kr | Spanish : Alldatasheet.es | French : Alldatasheet.fr | Italian : Alldatasheetit.com Portuguese : Alldatasheetpt.com | Polish : Alldatasheet.pl | Vietnamese : Alldatasheet.vn Indian : Alldatasheet.in | Mexican : Alldatasheet.com.mx | British : Alldatasheet.co.uk | New Zealand : Alldatasheet.co.nz |
|
Family Site : ic2ic.com |
icmetro.com |