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TNY268G 参数 Datasheet PDF下载

TNY268G图片预览
型号: TNY268G
PDF下载: 下载PDF文件 查看货源
内容描述: 增强型,高效节能,低功耗离线式开关 [Enhanced, Energy Efficient, Low Power Off-line Switcher]
分类和应用: 开关
文件页数/大小: 20 页 / 516 K
品牌: POWERINT [ Power Integrations ]
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TNY264/266-268  
Over Temperature Protection  
the power MOSFET is disabled beyond its normal 850 ms time  
until the line under-voltage condition ends.  
Thethermalshutdowncircuitrysensesthedietemperature. The  
threshold is typically set at 135 °C with 70 °C hysteresis. When  
the die temperature rises above this threshold the power  
MOSFET is disabled and remains disabled until the die  
temperature falls by 70 °C, at which point it is re-enabled. A  
large hysteresis of 70 °C (typical) is provided to prevent  
overheatingofthePCboardduetoacontinuousfaultcondition.  
Line Under-Voltage Sense Circuit  
The DC line voltage can be monitored by connecting an  
external resistor from the DC line to the EN/UV pin. During  
power-up or when the switching of the power MOSFET is  
disabled in auto-restart, the current into the EN/UV pin must  
exceed 50 µA to initiate switching of the power MOSFET.  
During power-up, this is implemented by holding the BYPASS  
pin to 4.8 V while the line under-voltage condition exists. The  
BYPASSpinthenrisesfrom4.8Vto5.8Vwhenthelineunder-  
voltage condition goes away. When the switching of the power  
MOSFET is disabled in auto-restart mode and a line under-  
voltage condition exists, the auto-restart counter is stopped.  
This stretches the disable time beyond its normal 850ms until  
the line under-voltage condition ends.  
Current Limit  
ThecurrentlimitcircuitsensesthecurrentinthepowerMOSFET.  
When this current exceeds the internal threshold (ILIMIT), the  
power MOSFET is turned off for the remainder of that cycle.  
Thecurrentlimitstatemachinereducesthecurrentlimitthreshold  
by discrete amounts under medium and light loads.  
The leading edge blanking circuit inhibits the current limit  
comparator for a short time (tLEB) after the power MOSFET is  
turned on. This leading edge blanking time has been set so that  
currentspikescausedbycapacitanceandsecondary-siderectifier  
reverse recovery time will not cause premature termination of  
the switching pulse.  
The line under-voltage circuit also detects when there is no  
external resistor connected to the EN/UV pin (less than ~ 2 µA  
intopin).Inthiscasethelineunder-voltagefunctionisdisabled.  
TinySwitch-II Operation  
Auto-Restart  
In the event of a fault condition such as output overload, output  
short circuit, or an open loop condition, TinySwitch-II enters  
into auto-restart operation. An internal counter clocked by the  
oscillator gets reset every time the EN/UV pin is pulled low. If  
the EN/UV pin is not pulled low for 50 ms, the power MOSFET  
switching is normally disabled for 850 ms (except in the case of  
line under-voltage condition in which case it is disabled until  
the condition is removed). The auto-restart alternately enables  
anddisablestheswitchingofthepowerMOSFETuntilthefault  
condition is removed. Figure 5 illustrates auto-restart circuit  
operation in the presence of an output short circuit.  
TinySwitch-II devices operate in the current limit mode. When  
enabled, the oscillator turns the power MOSFET on at the  
beginning of each cycle. The MOSFET is turned off when the  
current ramps up to the current limit or when the DCMAX limit is  
reached. As the highest current limit level and frequency of a  
TinySwitch-II design are constant, the power delivered to the  
loadisproportionaltotheprimaryinductanceofthetransformer  
and peak primary current squared. Hence, designing the supply  
involves calculating the primary inductance of the transformer  
for the maximum output power required. If the TinySwitch-II is  
appropriately chosen for the power level, the current in the  
calculated inductance will ramp up to current limit before the  
DCMAX limit is reached.  
In the event of a line under-voltage condition, the switching of  
Enable Function  
V
TinySwitch-II senses the EN/UV pin to determine whether or  
not to proceed with the next switch cycle as described earlier.  
The sequence of cycles is used to determine the current limit.  
Once a cycle is started, it always completes the cycle (even  
when the EN/UV pin changes state half way through the cycle).  
This operation results in a power supply in which the output  
voltage ripple is determined by the output capacitor, amount of  
energy per switch cycle and the delay of the feedback.  
300  
DRAIN  
200  
100  
0
10  
V
DC-OUTPUT  
5
The EN/UV pin signal is generated on the secondary by  
comparing the power supply output voltage with a reference  
voltage. The EN/UV pin signal is high when the power supply  
output voltage is less than the reference voltage.  
0
1000  
2000  
0
In a typical implementation, the EN/UV pin is driven by an  
optocoupler. The collector of the optocoupler transistor  
isconnected to the EN/UV pin and the emitter is connected to  
Time (ms)  
Figure 5. TinySwitch-II Auto-Restart Operation.  
B
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