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ADIN1111CCPZ-R7 数据表(PDF) 24 Page - Analog Devices |
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ADIN1111CCPZ-R7 数据表(HTML) 24 Page - Analog Devices |
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24 / 109 page ![]() Data Sheet ADIN1111 ON-CHIP DIAGNOSTICS analog.com Rev. A | 24 of 109 Fault Detection with the TDR Engine The Analog Devices algorithm has a time resolution of 8.3 ns, which translates to a length resolution of less than 1 m and a maximum of 1600 m, with an accuracy of 2%. This fault detector algorithm is capable of finding open and short fault conditions even when the ADIN1111 is physically connected to another PHY through their MDI, which implies that the link partner PHY is potentially transmitting DME pages. Traditional TDR methods struggle to find faults if other signal sources or noise is also present in the same link. This is not the case of the Analog Devices solution, which makes it suitable for debugging when there is no control over the remote end. The fault detector algorithm is provided as a C-code library con- taining the high-level functions required for diagnostics. These func- tions have been optimized to not utilize any advanced processing so that they can be executed by any low-power microcontroller. A single function call is sufficient to execute the fault detector. The function returns the type of fault and the distance to the fault in meters from the MDI connector. The fault detect TDR library can be requested from the software section in the landing page of the ADIN1100, ADIN1110, and ADIN2111. TDR Offset Calibration The library includes a function to calibrate the offset of the TDR measurement. This particular function in the library is useful given that different MDI circuits may introduce variable delays in the signal path, which can contribute to the offset of the length meas- urement. For instance, an isolation transformer on the MDI is highly likely to introduce a signal delay that corresponds to a couple of meters in length. This calibration is not required to run the fault detector, and an average value is provided by default. However, it is recommended for short cables if accuracy is required. If this calibration is required, it can be done once in the lab for a specific MDI circuit implementa- tion, and the offset value can then be stored in nonvolatile memory for future use. To perform this calibration, the MDI port must be left open or shorted. No load or cable can be connected to the MDI port. Cable Calibration By default, the algorithm is optimized to support long reach cables compliant with the IEEE 802.3cg standard. However, given the wide variety of cable types, which have different insertion loss, return loss, and signal delay characteristics, the library includes a calibration function that optimizes the algorithm to operate with any cable, and estimates its nominal velocity of propagation (NVP) for more accurate length estimations. The length accuracy mainly depends on the accuracy of the NVP value. To run this calibration, a cable with a known length must be attach- ed to the MDI port, and its end must be left open or shorted. NVP values are generally between 0.5 and 0.9 and are a property of the construction of the cable. In general, an average NVP value of approximately 0.65 can be assumed. This calibration is not required to run the fault detector, unless higher length accuracy is needed or if nonstandard cables are utilized. This calibration can be done once in the laboratory for a given cable, and the values can be stored in nonvolatile memory. Refer to the C-code driver for more information related to the usage of these functions. Length/Distance to Fault Accuracy The accuracy of the distance to a fault, or length measurements, mainly depends on the NVP value, which is determined by the accuracy of the cable length used to perform the NVP calibration. Table 20 provides results for induced faults and distance-to-fault measurements for different cables and lengths. In all cases, the al- gorithm was successful finding the open or short conditions induced during the test. The NVP value for the Profibus PA cable used in this test was roughly estimated, and the same was used for the Cat5E and Cat6 cables. Table 20. Length Estimation Error for Different Cables Cable Type Estimated Length (m) Length Error (%) Note Fieldbus Type A - AWG 18 50.2 0.7 NVP calibrated Fieldbus Type A - AWG 18 102.1 2.1 NVP calibrated Fieldbus Type A - AWG 18 403.4 0.8 NVP calibrated Fieldbus Type A - AWG 18 807.6 0.8 NVP calibrated Fieldbus Type A - AWG 18 1045.3 1.0 NVP calibrated Fieldbus Type A - AWG 18 1462.9 2.0 NVP calibrated Cat5E 133.1 2.4 NVP not calibrated Cat5E 244.4 1.8 NVP not calibrated Cat6 73.6 5.1 NVP not calibrated Cat6 137.2 5.6 NVP not calibrated LINK QUALITY MONITORING The ADIN1100, ADIN1101, ADIN1110, ADIN1111, and ADIN2111 provide the mean squared error (MSE) measurement of the re- ceived signal, which directly relates to the signal-to-noise ratio (SNR) seen by the PHY receiver. The MSE or SNR can be mapped to a signal quality indicator (SQI) and can be used for assessing the overall 10BASE-T1L link segment/channel quality. The link quality may be affected by the cable length, the cable properties such as insertion and return loss, presence, quality and connection of the cable shield, number and quality of possible interconnections between cable segments, as well as level of noise in the environment around the devices and the cable. Therefore, the link quality can provide useful information during a device |
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