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ADBMS1818ASWZ-R7 数据表(PDF) 83 Page - Analog Devices |
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ADBMS1818ASWZ-R7 数据表(HTML) 83 Page - Analog Devices |
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83 / 89 page ![]() Data Sheet ADBMS1818 APPLICATIONS INFORMATION analog.com Rev. 0 | 83 of 89 isoSPI Layout Guidelines The layout of the isoSPI signal lines also plays a significant role in maximizing the noise immunity of a data link. The following layout guidelines are recommended: 1. The transformer must be placed as close to the isoSPI cable connector as possible. The distance must be kept less than 2 cm. The ADBMS1818 must be placed close to but at least 1 cm to 2 cm away from the transformer to help isolate the IC from magnetic field coupling. 2. A V– ground plane must not extend under the transformer, the isoSPI connector, or in between the transformer and the connector. 3. The isoSPI signal traces must be as direct as possible while isolated from adjacent circuitry by ground metal or space. No traces must cross the isoSPI signal lines, unless separated by a ground plane on an inner layer. System Supply Current The ADBMS1818 has various supply current specifications for the different states of operation. The average supply current depends on the control loop in the system. It is necessary to know which commands are being executed each control loop cycle, and the duration of the control loop cycle. With this information, it is possible to determine the percentage of time the ADBMS1818 is in the measure state versus the low power sleep state. The amount of isoSPI or SPI communication also affects the average supply current. Calculating Serial Throughput For any given ADBMS1818, the calculation to determine communi- cation time is simple: it is the number of bits in the transmission multiplied by the SPI clock period being used. The control protocol of the ADBMS1818 is uniform. Therefore, almost all commands can be categorized as a write or read operation. Table 74 can be used to determine the number of bits in a given ADBMS1818 command. ENHANCED APPLICATIONS Using the ADBMS1818 with Fewer than 18 Cells Cells can be connected in a conventional bottom (C1) to top (C18) sequence with all unused C inputs either shorted to the highest connected cell or left open. The unused S pins can simply be left disconnected. Alternatively, to optimize measurement synchronization in applica- tions with fewer than 18 cells, the unused C pins can be equally distributed between the top of the third mux (C18), the top of the second mux (C12) and the top of the first mux (C6) (see Figure 108). If the number of cells being measured is not a multiple of three, the top mux(es) must have fewer cells connected. The unused cell inputs must be tied to the other unused inputs on the same mux and connected to the battery stack through a 100 Ω resistor. The unused inputs result in a reading of 0.0 V for those cells. Current Measurement with a Hall-Effect Sensor The ADBMS1818 auxiliary ADC inputs (GPIO pins) may be used for any analog signal, including active sensors with 0 V to 5 V analog outputs. For battery current measurements, Hall-effect sensors provide an isolated, low power solution. Figure 109 shows schematically a typical Hall-effect sensor that produces two outputs that proportion to the VCC provided. The sensor in Figure 109 has two bidirectional outputs centered at half of VCC. CH1 is a 0 A to 50 A low range and CH2 is a 0 A to 200 A high range. The sensor is powered from a 5 V source and produces analog outputs that are connected to the GPIO pins or inputs of the mux application shown in Figure 111. The use of GPIO1 and GPIO2 as the ADC inputs has the possibility of being digitized within the same conversion sequence as the cell inputs (using the ADCVAX command), thus synchronizing cell voltage and cell current measurements. Table 74. Daisy Chain Serial Time Equations Command Type CMD Bytes + CMD PEC Data Bytes + Data PEC per IC Total Bits Communication Time Read 4 8 (4 + (8 × #ICs)) × 8 Total bits × clock period Write 4 8 (4 + (8 × #ICs)) × 8 Total bits × clock period Operation 4 0 4 × 8 = 32 32 × clock period |
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