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SP3223EB 数据表(PDF) 11 Page - Sipex Corporation |
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SP3223EB 数据表(HTML) 11 Page - Sipex Corporation |
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11 / 23 page ![]() 11 Date: 10/06/06 SP3223 +3.0V to +5.5V RS-232 Transceivers © Copyright 200 6 Sipex Corporation consists of a regulated dual charge pump that provides output voltages 5.5V regardless of the input voltage (V CC) over the +3.0V to +5.5V range. This is important to maintain compliant RS-232 levels regardless of power supply fluctuations. The charge pump operates in a discontinuous mode using an internal oscillator. If the output voltages are less than a magnitude of 5.5V, the charge pump is enabled. If the output voltages exceed a magnitude of 5.5V, the charge pump is disabled. This oscillator controls the four phases of the voltage shifting. A description of each phase follows. Phase 1 — V SS charge storage — During this phase of the clock cycle, the positive side of capacitors C 1 and C2 are initially charged to VCC. C l + is then switched to GND and the charge in C 1 – is transferred to C 2 –. Since C 2 + is connected to V CC, the voltage potential across capacitor C2 is now 2 times V CC. Phase 2 — V SS transfer — Phase two of the clock connects the negative terminal of C 2 to the VSS storage capacitor and the positive terminal of C 2 to GND. This transfers a negative generated voltage to C 3. This generated voltage is regulated to a minimum voltage of -5.5V. Simultaneous with the transfer of the voltage to C 3, the positive side of capacitor C1 is switched to V CC and the negative side is connected to GND. Phase 3 — V DD charge storage — The third phase of the clock is identical to the first phase — the charge transferred in C 1 produces –VCC in the negative terminal of C 1, which is applied to the negative side of capacitor C 2. Since C 2 + is at V CC, the voltage potential across C 2 is 2 times VCC. Phase 4 — V DD transfer — The fourth phase of the clock connects the negative terminal of C 2 to GND, and transfers this positive generated voltage across C 2 to C4, the VDD storage capacitor. This voltage is regulated to +5.5V. At this voltage, the internal oscillator is disabled. Simultaneous with the transfer of the voltage to C 4, the positive side of capacitor C 1 is switched to VCC and the negative side is connected to GND, allowing the charge pump cycle to begin again. The charge pump cycle will continue as long as the operational conditions for the internal oscillator are present. Since both V+ and V– are separately generated from V CC, in a no–load condition V + and V– will be symmetrical. Older charge pump approaches that generate V– from V+ will show a decrease in the magnitude of V– compared to V+ due to the inherent inefficiencies in the design. AUTO ON-LINE® Circuitry The SP3223 devices have a patent pending AUTO ON-LINE® circuitry on board that saves power in applications such as laptop computers, PDA's, and other portable systems. The SP3223 devices incorporate an AUTO ON-LINE® circuit that automatically enables itself when the external transmitters are enabled and the cable is connected. Conversely, the AUTO ON-LINE® circuit also disables most of the internal circuitry when the device is not being used and goes into a standby mode where the device typically draws 1 µA. This function can also be externally controlled by the ONLINE pin. When this pin is tied to a logic LOW, the AUTO ON-LINE® function is active. Once active, the device is enabled until there is no activity on the receiver inputs. The receiver input typically sees at least ±3V, which are generated from the transmitters at the other end of the cable with a ±5V minimum. When the external transmitters are disabled or the cable is disconnected, the receiver inputs will be pulled down by their internal 5k Ω resistors to ground. When this occurs over a period of time, the internal transmitters will be disabled and the device goes into a shutdown or standby mode. When ONLINE is HIGH, the AUTO ON-LINE® mode is disabled. |
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