SLYY234 December 2024 AMC0106M05 , AMC0106M25 , AMC0136 , AMC0311D , AMC0311S , AMC0386 , AMC0386-Q1 , AMC1100 , AMC1106M05 , AMC1200 , AMC1200-Q1 , AMC1202 , AMC1203 , AMC1204 , AMC1211-Q1 , AMC1300 , AMC1300B-Q1 , AMC1301 , AMC1301-Q1 , AMC1302-Q1 , AMC1303M2510 , AMC1304L25 , AMC1304M25 , AMC1305M25 , AMC1305M25-Q1 , AMC1306M05 , AMC1306M25 , AMC1311 , AMC1311-Q1 , AMC131M03 , AMC1336 , AMC1336-Q1 , AMC1350 , AMC1350-Q1 , AMC23C12 , AMC3301 , AMC3330 , AMC3330-Q1
As shown in Figure 114, a negative temperature coefficient thermistor (NTC) is typically placed inside the IGBT module for the detection of long-term overload conditions. These NTC terminals are routed to the main power board, where the AMC23C14 can be used for overtemperature detection.
Figure 114 IGBT module overtemperature
detection.Figure 115 shows the output waveform for an overtemperature event, where OUT2 pulls high when the input voltage exceeds the threshold values defined by the internal 300-mV reference. The reference pin of the AMC23C14 connects to a 100-μA current source that can bias the NTC.
Figure 115 AMC23C14 output
waveform.As the demand to improve system reliability and the adoption of faster switching devices proliferates, the AMC23C14 family of low-latency reinforced isolated comparators solves the critical need for accurate and fast detection in electric motor drives