Denon-DRAF107-rec-sm维修电路图 手册.pdf
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1、D open drain; active low C_STARTUP35OStartup ramp requires a charging capacitor of 4.7 nF to AGND in BTL mode. FREQ_ADJ1214IPWM frame rate programming pin requires resistor to AGND GND7, 23, 24, 57, 589PGround GND_A48, 4938PPower ground for half-bridge A GND_B46, 4737PPower ground for half-bridge B
2、GND_C34, 3530PPower ground for half-bridge C GND_D32, 3329PPower ground for half-bridge D GVDD_A55-PGate drive voltage supply requires 0.1 uF capacitor to GND_A GVDD_B56-PGate drive voltage supply requires 0.1 uF capacitor to GND_B GVDD_C25-PGate drive voltage supply requires 0.1 uF capacitor to GND
3、_C GVDD_D26-PGate drive voltage supply requires 0.1 uF capacitor to GND_D GVDD_AB-44PGate drive voltage supply requires 0.22 uF capacitor to GND_A/GND_B GVDD_CD-23PGate drive voltage supply requires 0.22 uF capacitor to GND_C/GND_D INPUT_A46IInput signal for half bridge A INPUT_B57IInput signal for
4、half bridge B INPUT_C1012IInput signal for half bridge C INPUT_D1113IInput signal for half bridge D M12020IMode selection M22121IMode selection M32222IMode selection NC59-62-No connect, pins may be grounded. OC_ADJ13OAnalog over current programming pin requires resistor to ground. OSC_IO+1315I/OOsci
5、llaotor master/slave output/input. OSC_IO-1416I/OOscillaotor master/slave output/input. /OTW-18OOvertemperature warning signal, open drain, active low. /OTW116-OOvertemperature warning signal, open drain, active low. /OTW217-OOvertemperature warning signal, open drain, active low. OUT_A52, 5339, 40O
6、Output, half bridge A OUT_B44, 4536OOutput, half bridge B OUT_C36, 3731OOutput, half bridge C OUT_D28, 2927, 28OOutput, half bridge D PSU_REF631PPSU Reference requires close decoupling of 330 pF to AGND PVDD_A50, 5141, 42P Power supply input for half bridges A requires close decoupling of 2.2-uF cap
7、acitor to GND_A PVDD_B42, 4335P Power supply input for half bridges B requires close decoupling of 2.2-uF capacitor to GND_B PVDD_C38, 3932P Power supply input for half bridges C requires close decoupling of 2.2-uF capacitor to GND_C PVDD_D30, 3125, 26P Power supply input for half bridges D requires
8、 close decoupling of 2.2-uF capacitor to GND_D READY1919ONormal operation; open drain; active high /RESET24IDevice reset Input; active low, requires 47kOhm pull up resistor to VREG. /SD1517OShutdown signal, open drain, active low VDD642P Power supply for internal voltage regulator requires a 10-uF c
9、apacitor in parallel with a 0.1-uF capacitor to GND for decoupling. VI_CM68O Analog comparator reference node requires close decoupling of 1 nF to AGND VREG911PInternal regulator supply filter pin requires 0.1-uF capacitor to AGND (1)I = input, O = output, P = power RadioFans.CN 27 DRA-F107 / DRA-F1
10、07DAB ICE2QS01 (IC93) PinSymbolFunction 1ZCZero Crossing 2REGRegulation 3CSPrimary Current Sensing 4, 5HVHigh Voltage input 6OUTgate driver output 7VCCIC supply voltage 8GNDCommon ground 1 6 7 8 4 3 2 5 GNDZC REG CS VCC OUT HVHV Blockdigram GND 8 CS 3 REG 2 OUT 6 ZC 1 controller Vos OLP VCC OVP VCC
11、UVP output OVP current limitation / foldback correction V V V V auto restart latch off current measurement V SWP VREF R ZCT2 VCCOVP vccuvp OPOVP csSW v1 power management Reg Vcsth on/off FF gate driver PWM generator Zero-crossing counter up/down counter HV 4, 5 VCC 7 power cell VOLP active burst con
12、trol ringing suppression time control VZCT1 RadioFans.CN 28 DRA-F107 / DRA-F107DAB ICE2QS01 Functional description Functional Description 3Functional Description 3.1VCC Pre-Charging and Typical VCC Voltage During Start-up In the controller ICE2QS01, a power cell is integrated. As shown in Figure 2,
13、the power cell consists of a high voltage device and a controller, whereby the high voltage device is controlled by the controller. The power cell provides a pre-charging of the VCC capacitor till VCC voltage reaches the VCC turned-on threshold VVCCon and the IC begins to operate, while it may keep
14、the VCC voltage at a constant value during burst mode operation when the output voltage is pulled down or the power from the auxiliary winding is not enough, or when the IC is latched off in certain protection mode. Once the mains input voltage is applied, a rectified voltage shows across the capaci
15、tor Cbus. The high voltage device provides a current to charge the VCC capacitor Cvcc. Before the VCC voltage reaches a certain value, the amplitude of the current through the high voltage device is only determined by its channel resistance and can be as high as several mA. After the VCC voltage is
16、high enough, the controller controls the high voltage device so that a constant current around 1mA is provided to charge the VCC capacitor further, until the VCC voltage exceeds the turned-on threshold VVCCon. As shown as the time phase I in Figure 3, the VCC voltage increase near linearly. Figure 3
17、VCC voltage at start up The time taking for the VCC pre-charging can then be approximately calculated as: 1 where IVCCcharge2 is the charging current from the power cell which is 1.05mA, typically. Exceeds the VCC voltage the turned-on threshold VVCCon of at time t1, the power cell is switched off,
18、and the IC begins to operate with a soft-start. Due to power consumption of the IC and the fact that still no energy from the auxiliary winding to charge the VCC capacitor before the output voltage is built up, the VCC voltage drops (Phase II). Once the output voltage is high enough, the VCC capacit
19、or receives then energy from the auxiliary winding from the time point t2on. The VCC then will reach a constant value depending on output load. Since there is a VCC undervoltage protection, the capacitance of the VCC capacitor should be selected to be high enough to ensure that enough energy is stor
20、ed in the VCC capacitor so that the VCC voltage will never touch the VCC under voltage protection threshold VVCCUVP before the output voltage is built up. Therefore, the capacitance should fulfill the following requirement: 2 with IVCCop the operating current of the controller. 3.2Soft-start At the
21、time t1, the IC begins to operate with a soft-start. By this soft-start the switching stresses for the switch, diode and transformer are minimised. The soft-start implemented in the ICE2QS01 is a digital time-based function. The preset soft-start time is 24ms with 8 steps. The internal reference for
22、 the regulation voltage begins at 1.35V and with an increment of 0.35V for each following step. 3.3Normal Operation The PWM section of the IC can be divided into two main portions: PWM controller for normal operation and PWM controller for burst mode operation. The PWM controller for normal operatio
23、n will be described in the following paragraphs, while the PWM controller for burst mode operation will be discussed in the next section. The PWM controller for normal operation consists of digital signal processing circuit including an up/down counter, a zero-crossing counter (ZC-counter) and a com
24、parator, and analog circuit including a current measurement unit and a comparator. The switch-on and -off time point is determined by the digital circuit and the analog circuit, respectively. As input information for the switch-on determination, the zero- crossing input signal and the value of the u
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