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USB2227 数据表(PDF) 2 Page - SMSC Corporation |
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USB2227 数据表(HTML) 2 Page - SMSC Corporation |
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2 / 5 page ![]() USB2227 and USB2228 USB2.0 Flash Card Reader Media Power Considerations Revision 1.1 (03-31-05) 2 SMSC WP 1.5 WHITE PAPER DC Voltage Drop and Current One consideration in selecting M1 is the DC voltage drop across it, Vm1, and current requirements,Im1. With the exception of compact Flash format interface which can support CF form factor hard drives that can consume over 300mA, most card formats require under 100mA maximum. The FET, M1, needs to be selected such that the minimum card voltage specs at the maximum rated current are met. In general, a drop of less than 150mv is acceptable. Inrush Transient When M1 is turned on, the card supply filter capacitor, Ccard, is charged. The inrush current can drop the voltage provided by the 3.3V regulator, VDD, until it can recover. The amount of drop is determined by the turn on rate of M1 and the sizes of Cout, Ccard, and the response time of the regulator. If VDD drops below 3.0V erroneous operation of the card reader can occur. The case of multiple simultaneous card insertions must also be considered. Short Circuits Precautions must be taken to tolerate potential short circuits to the card power supply. This can occur during manufacturing test or if a defective card is inserted. External Implementations If discrete FETs are used, they are selected to provide the required DC voltage drop at the maximum rated card currents. Usually, this is 100mA for non-CF interfaces and 300mA+ for CF/Microdrive interfaces. Turn-on surge currents are managed by using the intrinsic FET gate capacitance, Cg, and a series resistor, Rg, to provide turn on delay. A value of 15 uS is usually acceptable, but may have to be adjusted to assure that the VDD never drops below 3.0V. Implementation using integrated FETs SMSC’s USB2227 and USB2228 provides the power FETs for the non-CF interfaces internally and can directly drive the other card interfaces without external components as long as the current to the card does not exceed 100ma. This is illustrated in Figure 2, "Implementation Using Integrated FETs". The internal FETs have fold-back current limiting and can sustain any load, including a direct short to ground, indefinitely (See Figure 3, "Output Voltage vs. Load Current for VDDIO = 3.3V"). Since external FETs must be sized to tolerate a short circuit, often, they must be oversized and add cost. In addition, the integrated internal FETs have their turn on times controlled to limit supply voltage drops with commonly available 3.3V voltage regulators and filter capacitor sizes, eliminating the need for external components to control turn on time to eliminate supply droops. |
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