整个程序的思想是AD 实时采样,用PWM实时输出AD的采样值,把PWM当DA用。
用的是F28M35x开发板,下面是C28x整个的程序
#include "DSP28x_Project.h" // Device Headerfile and Examples Include File
#include <string.h>
#define C28_FREQ 150 //C28 CPU frequency in MHz
#define CC_TBPRD 7500
extern Uint16 RamfuncsLoadStart;
extern Uint16 RamfuncsLoadSize;
extern Uint16 RamfuncsRunStart;
float Value_num;
interrupt void adc1_isr(void);
//interrupt void Epwm1_INT_isr(void);
Uint16 AD_result_A0;
Uint16 Value_CMPA1;
void main(void)
{
InitSysCtrl(); // Init C28 core
EALLOW;
GpioG1CtrlRegs.GPADIR.bit.GPIO4 = 1; // GPIO4 as output
GpioCtrlRegs.GPAMUX1.bit.GPIO0 = 1; // GPIO0 = ePWM1A
EDIS;
memcpy(&RamfuncsRunStart, &RamfuncsLoadStart, (size_t)&RamfuncsLoadSize);
InitFlash();
Value_num=CC_TBPRD/4095.0;
DINT;
InitPieCtrl();
IER=0x0000;
IFR=0x0000;
InitPieVectTable();
EALLOW; // This is needed to write to EALLOW protected registers
PieVectTable.ADCINT1 = &adc1_isr;
EDIS;
InitCpuTimers();
ConfigCpuTimer(&CpuTimer0, C28_FREQ, 100); //SOC
//Enable INT
PieCtrlRegs.PIEIER1.bit.INTx1 = 1;
IER |= M_INT1;
EINT; // Enable Global interrupt INTM
ERTM; // Enable Global realtime interrupt DBGM
//configure EPwm1
EPwm1Regs.TBPRD =CC_TBPRD; //
EPwm1Regs.TBCTL.all = 0; // clear all bits in TBCTL
EPwm1Regs.TBCTL.bit.CLKDIV = TB_DIV2; // CLKDIV = 2
EPwm1Regs.TBCTL.bit.HSPCLKDIV = 0; // HSPCLKDIV =1
EPwm1Regs.TBCTL.bit.CTRMODE = TB_COUNT_UP; // count mode = up-mode
//fpwm =fcpu / ( TBPRD * CLKDIV * HSPCLKDIV)
EPwm1Regs.CMPCTL.bit.SHDWAMODE=CC_SHADOW ;
EPwm1Regs.CMPCTL.bit.LOADAMODE=CC_CTR_PRD;
EPwm1Regs.AQCTLA.bit.CAU=AQ_SET;
EPwm1Regs.AQCTLA.bit.PRD=AQ_CLEAR;
EPwm1Regs.CMPA.half.CMPA=0;
//configure ADC
InitAdc1();
EALLOW;
Adc1Regs.ADCCTL2.bit.ADCNONOVERLAP = 1;
Adc1Regs.ADCCTL1.bit.INTPULSEPOS = 1; // ADCINT1 trips after AdcResults latch
Adc1Regs.INTSEL1N2.bit.INT1E = 1; // Enabled ADCINT1
Adc1Regs.INTSEL1N2.bit.INT1CONT = 0; // Disable ADCINT1 Continuous mode
Adc1Regs.INTSEL1N2.bit.INT1SEL =0; // setup EOC0 to trigger ADCINT1 to fire
Adc1Regs.ADCSOC0CTL.bit.CHSEL = 0; // set SOC0 channel select to ADC1in_B0
Adc1Regs.ADCSOC0CTL.bit.TRIGSEL = 5; // Set SOC0 start trigger to trigger1 // ADC Trigger 1 of the ADC
Adc1Regs.ADCSOC0CTL.bit.ACQPS =6; // set SOC0 S/H Window to 7 ADC
AnalogSysctrlRegs.TRIG1SEL.all = 1; // Assigning TINT0 to ADC-TRIGGER 1 // Clock Cycles, (6 ACQPS + 1)
EDIS;
CpuTimer0Regs.TCR.bit.TSS = 0; // start T0
while(1)
{
}
}
interrupt void adc1_isr(void)
{
AD_result_A0= Adc1Result.ADCRESULT0;
Value_CMPA1=CC_TBPRD-AD_result_A0*Value_num;
EPwm1Regs.CMPA.half.CMPA=Value_CMPA1;
Adc1Regs.ADCINT标志寄存器CLR.bit.ADCINT1 = 1;
PieCtrlRegs.PIEACK.all = PIEACK_GROUP1;
GpioG1DataRegs.GPADAT.bit.GPIO4 ^= 1;
}
放了一个GPIO04 的电平反转在AD中断中看AD采样的频率是否正常,可以看到频率是5K,脉宽有5ns到50ns的变化。
问题描述如下:
(为了清晰描述这个问题,不考虑AD过采样)现在AD用10K的采样速度采集5K的的正弦输入信号,也就是输入信号一个周期有两个采样值,对应的PWM占空比应该变化两次。
但是出现了下图中的问题(两种错误都有出现),在某个地方,CMPA的值与理论上采样值不对应的情况。现在已证实AD采样值是没有错误的,(把采样值放在一个很大的数组里面,在MATLAB中看,没有错误)
揣测是CMPA的值有的时候没有装载到当前寄存器上或者是什么原因。
这种错误出现的频率是大概0.15s每次,如果作如下修改:
#define CC_TBPRD 3750
EPwm1Regs.TBCTL.bit.CLKDIV = TB_DIV4;
这样PWM的周期还是10K ,但是这种错误出现的错误时0.5S;
#define CC_TBPRD 15000
EPwm1Regs.TBCTL.bit.CLKDIV = TB_DIV1;
PWM的周期还是10K ,基础上看不到错误的出现。
一直找不到原因,麻烦大家指教,不胜感谢!
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