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ADMV1455BBCZ-R7 Folha de dados(PDF) 70 Page - Analog Devices |
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ADMV1455BBCZ-R7 Folha de dados(HTML) 70 Page - Analog Devices |
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70 / 141 page ![]() Data Sheet ADMV1455 THEORY OF OPERATION analog.com Rev. 0 | 70 of 141 NONVOLATILE MEMORY The ADMV1455 contains a simple nonvolatile memory (NVM) that is used to store factory calibration values to minimize part to part variation. The values in the NVM set the chip bias current, trim the internal ADC, and trim the internal temperature sensor. At chip power-up, it is recommended to ensure that this NVM has loaded its values into their correct shadow registers. The NVM is static and can not be modified by the user. NVM Health Check To confirm the NVM values have loaded, use the following NVM health check instructions: 1. Shadow Register 0x033 by doing the following: ► Set Register 0x07B to Value 0x33. ► Read Register 0x07B, it should return 0x33. ► Read Register 0x07C, it should return a nonzero value, typically 0x20. 2. Shadow Register 0x034 by doing the following: ► Set Register 0x07B to Value 0x34. ► Read Register 0x07B, it should return 0x34. ► Read Register 0x07C, it should return a nonzero value, typically 0x20. 3. Shadow Register 0x037 by doing the following: ► Set Register 0x07B to Value 0x37. ► Read Register 0x07B, it should return 0x37. ► Read Register 0x07C, it should return a nonzero value, typically 0x0D. 4. Shadow Register 0x038 by doing the following: ► Set Register 0x07B to Value 0x38. ► Read Register 0x07B, it should return 0x38. ► Read Register 0x07C, it should return a nonzero value, typically 0x0D. If any of the return values are zero, follow the instructions detailed in the NVM Load Instructions section. NVM Load Instructions If any of the return values from Register 0x07C are zero, run the following NVM load instructions: 1. Set Register 0x078 to Value 0x08. 2. Pause 1ms. 3. Set Register 0x07E to Value 0x40. 4. Pause 1ms. 5. Set Register 0x07E to Value 0x54. 6. Pause 1ms. 7. Set Register 0x078 to Value 0x09. DIGITAL OVERVIEW The ADMV1455 contains advanced digital logic that allows for various methods of configuring each circuit block within the chip. These methods include simple register configurations, a synchro- nous LOAD feature, look-up tables (LUTs), logic state machines, parallel input logic pointers, and general-purpose logic outputs. The digital logic can be partitioned into two subsections, one for fre- quency control (filters) and the other for gain control (attenuators). See Figure 171 and Figure 172 for representative diagrams for each subsection. When reviewing these diagrams, it may be helpful to follow from right to left, starting from the items being controlled, then deciding the input control method. For the frequency control subsection, the most simplistic way of configuring the filters and GPO_Fx logic outputs is by using Regis- ter 0x800 to Register 0x80C. Register 0x2A0 is a bypass register that allows setting the RF chain LPF value, and this register gives more resolution than the LPF value in Register 0x802. Similarly, Register 0x2A1 is the bypass register for the RF chain HPF value, and this register gives more resolution than the HPF value in Regis- ter 0x804. Register 0x2A2 is a necessary register that trims the IF chain BPF corner frequencies. See Table 24 for the recommended values. When evaluating the ADMV1455, if there is a plan to implement the chip to use the LUT to set the filters, then it is recommended to use Register 0x802 and Register 0x804. However, if there is no plan to use the LUT, then it is advantageous to use Register 0x2A0 and Register 0x2A1 because these registers provide more resolution. For the gain control subsection, the most simplistic way of configur- ing the attenuators and GPO_Gx logic outputs is by using Register 0x28B to Register 0x28E. Register 0x600 to Register 0x603 can also be used when it is desired to use the LOAD feature. |
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