| Part Numbert | Mfg | Packt | D/C | Descriptiont | Qty | Company/Contact | |
| MY2NJ-DC24V | OMRON | Relay | 08+ | 500 |
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| MY2NJ-DC24V | 5000 | OMRON | 07+/08+ |
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| MY2NJ-DC24V | Relay(new or | OMRON |
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MY2NJ-DC24V Datasheet
MY2NJ-DC24V Price coSingle supply voltage In-System Programming (ISP) of the Flash memory (VPP = VDD, or VPP = 12V if desired) coBoot ROM contains low level Flash programming routines for In-Application Programming and a default serial loader using the UART c02048 bytes of on-chip data RAM coSupports off-chip program and data addressing up t0 1 megabyte (20 address lines) coThree standard counter/timers with enhanced features (same as XA-G3 TO, T1, and T2). All timers have a toggle output capability coWatchdog timer coTwo enhanced UARTs with independent baud rates coSeven software interrupts coFour 8-bit l/0 ports, with 4 programmable output configurations for each pin c030 MHz operating frequency at 5V coPower saving operating modes: Idle and Power-Down. Wake-Up from power-down via an external interrupt is supported. c044-pin PLCC and 44-pin LQFP packages MY2NJ-DC24V on stock
An error budget illustrating the importance oflow amplifier in- put current, voltage offset, and offset voltage drift to minimize output voltage errors can be developed by considering the equivalent circuit for the small (0.2 mm2 area) photodiode shown in Figure 27. The input current results in an error pro- portional to the feedback resistance used. The amplifier's offset will produce an error proportional to the preamp's noise gain (1+RF/RSH), where RSH is the photodiode shunt resistance. The amplifier's input current will double with every 10IC rise in temperature, and the photodiode's shunt resistance halves with every 10IC rise. The error budget in Fi~ure 28 assumes a room temperature photodiode RSH of500 M r, and the maximum in- put current and input offset voltage specs of an AD 648C. |
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