adc.h 5.1 KB

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  1. #ifndef _ADC_H__
  2. #define _ADC_H__
  3. #include "bsp/bsp.h"
  4. #include "os/os_types.h"
  5. float adc_vref_compesion(void);
  6. float adc_5vref_compesion(void);
  7. /*
  8. inserted ADC 由timer0 ch3触发,
  9. 注意:adc所有外部触发都是下降沿触发
  10. */
  11. #define ISQ0_OFFSET 0
  12. #define ISQ1_OFFSET 5
  13. #define ISQ2_OFFSET 10
  14. #define ISQ3_OFFSET 15
  15. #define IL_OFFSET 20
  16. #define ADC_SAMPLE_TIME ADC_SAMPLETIME_13POINT5
  17. #define ADC_TRIGGER_PHASE ADC0_1_EXTTRIG_INSERTED_T0_CH3
  18. #define ADC_TRIGGER_PHASE2 ADC0_1_EXTTRIG_INSERTED_T1_CH0
  19. #define ADC_TRIGGER_NONE ADC0_1_2_EXTTRIG_INSERTED_NONE
  20. #define ADC_TRIGGER_VBUS ADC0_1_EXTTRIG_INSERTED_T1_CH0
  21. #define PHASE_AB 0
  22. #define PHASE_AC 1
  23. #define PHASE_BC 2
  24. #define ADC_RANK_CHANNEL(c) ((c)<<ISQ3_OFFSET | (0)<<IL_OFFSET)
  25. #define ADC_INS_RANK_4_CHANS(c1,c2,c3,c4) (((c1)<<ISQ0_OFFSET) | ((c2)<<ISQ1_OFFSET) | ((c3)<<ISQ2_OFFSET) | ((c4)<<ISQ3_OFFSET) | ((3)<<IL_OFFSET))
  26. #ifndef HIGH_SIDE_CURRENT_SENSOR
  27. static u32 adc0_rank_channels[3] = {
  28. ADC_RANK_CHANNEL(U_PHASE_I_CHAN),//0, A, AB
  29. ADC_RANK_CHANNEL(U_PHASE_I_CHAN),//1, A, AC
  30. ADC_RANK_CHANNEL(V_PHASE_I_CHAN),//2, B, BC
  31. };
  32. static u32 adc1_rank_channels[3] = {
  33. ADC_RANK_CHANNEL(V_PHASE_I_CHAN),//0, B
  34. ADC_RANK_CHANNEL(W_PHASE_I_CHAN),//1, C
  35. ADC_RANK_CHANNEL(W_PHASE_I_CHAN),//2, C
  36. };
  37. static u32 volatile * adc_phase_reg1[3] = {
  38. &ADC_IDATA0(ADC0),//0, A
  39. &ADC_IDATA0(ADC0),//1, A
  40. &ADC_IDATA0(ADC0),//2, B
  41. };
  42. static u32 volatile * adc_phase_reg2[3] = {
  43. &ADC_IDATA0(ADC1),//0, B
  44. &ADC_IDATA0(ADC1),//1, C
  45. &ADC_IDATA0(ADC1),//2, C
  46. };
  47. #endif
  48. #ifdef CONFIG_SW_MUTISAMPLE
  49. static s32 __inline _adc_avg(s32 *v) {
  50. s32 max_v = 0;
  51. s32 min_v = 4096*32;
  52. s32 total_v = 0;
  53. for (int i = 0; i < 4; i++) {
  54. if (v[i] > max_v) {
  55. max_v = v[i];
  56. }else if (v[i] < min_v) {
  57. min_v = v[i];
  58. }
  59. total_v += v[i];
  60. }
  61. total_v -= (max_v + min_v);
  62. return (total_v>>1);
  63. }
  64. #endif
  65. static void __inline adc_phase_current_read(u8 phases, s32 *v1, s32 *v2) {
  66. #ifdef HIGH_SIDE_CURRENT_SENSOR
  67. #ifdef CONFIG_SW_MUTISAMPLE
  68. s32 v[4];
  69. v[0] = ADC_IDATA0(ADC0);
  70. v[1] = ADC_IDATA1(ADC1);
  71. v[2] = ADC_IDATA2(ADC0);
  72. v[3] = ADC_IDATA3(ADC1);
  73. *v1 = (s32)((float)_adc_avg(v) * adc_5vref_compesion());
  74. v[0] = ADC_IDATA0(ADC1);
  75. v[1] = ADC_IDATA1(ADC0);
  76. v[2] = ADC_IDATA2(ADC1);
  77. v[3] = ADC_IDATA3(ADC0);
  78. *v2 = (s32)((float)_adc_avg(v) * adc_5vref_compesion());
  79. #else
  80. *v1 = (s32)((float)ADC_IDATA0(ADC0) * adc_5vref_compesion());
  81. *v2 = (s32)((float)ADC_IDATA0(ADC1) * adc_5vref_compesion());
  82. #endif
  83. #else
  84. *v1 = (s32)(*adc_phase_reg1[phases]) ;
  85. *v2 = (s32)(*adc_phase_reg2[phases]) ;
  86. #endif
  87. }
  88. static void __inline adc_current_sample_config(u8 phases) {
  89. #ifdef HIGH_SIDE_CURRENT_SENSOR
  90. #ifdef CONFIG_SW_MUTISAMPLE
  91. ADC_ISQ(ADC0) = ADC_INS_RANK_4_CHANS(V_PHASE_I_CHAN, W_PHASE_I_CHAN, V_PHASE_I_CHAN, W_PHASE_I_CHAN);
  92. ADC_ISQ(ADC1) = ADC_INS_RANK_4_CHANS(W_PHASE_I_CHAN, V_PHASE_I_CHAN, W_PHASE_I_CHAN, V_PHASE_I_CHAN);
  93. #else
  94. ADC_ISQ(ADC0) = ADC_RANK_CHANNEL(V_PHASE_I_CHAN);
  95. ADC_ISQ(ADC1) = ADC_RANK_CHANNEL(W_PHASE_I_CHAN);
  96. #endif
  97. #else
  98. ADC_ISQ(ADC0) = adc0_rank_channels[phases];
  99. ADC_ISQ(ADC1) = adc1_rank_channels[phases];
  100. #endif
  101. }
  102. static void __inline adc_disable_ext_trigger(void) {
  103. ADC_CTL1(ADC0) &= ~ADC_CTL1_ETEIC;
  104. }
  105. static void __inline adc_enable_ext_trigger(void) {
  106. ADC_CTL1(ADC0) |= ADC_CTL1_ETEIC;
  107. }
  108. /* insert len fixed to 2(IL=1), ISQ2 >> ISQ3*/
  109. static __inline__ void adc_update_insert_sample_rank(u32 adc, u8 channel) {
  110. ADC_ISQ(adc) = ADC_RANK_CHANNEL(channel);
  111. }
  112. static __inline__ void adc_update_insert_sample_time(u32 adc, uint8_t adc_channel , uint32_t sample_time)
  113. {
  114. uint32_t sampt;
  115. /* ADC sampling time config */
  116. if(adc_channel < 10U){
  117. sampt = ADC_SAMPT1(adc);
  118. sampt &= ~((u32)(ADC_SAMPTX_SPTN << (3U*adc_channel)));
  119. sampt |= (u32) sample_time << (3U*adc_channel);
  120. ADC_SAMPT1(adc) = sampt;
  121. }else if(adc_channel < 18U){
  122. sampt = ADC_SAMPT0(adc);
  123. sampt &= ~((u32)(ADC_SAMPTX_SPTN << (3U*(adc_channel-10U))));
  124. sampt |= ((u32)sample_time << (3U*(adc_channel-10U)));
  125. ADC_SAMPT0(adc) = sampt;
  126. }
  127. }
  128. static __inline__ bool adc_eoic_interrupt(void)
  129. {
  130. if (ADC_STAT(ADC0) & ADC_STAT_EOIC){
  131. return true;
  132. }
  133. return false;
  134. }
  135. static __inline__ void adc_clear_irq_flags(void) {
  136. ADC_STAT(ADC0) &= ~((u32) ADC_INT_FLAG_EOIC);
  137. ADC_STAT(ADC1) &= ~((u32) ADC_INT_FLAG_EOIC);
  138. }
  139. static __inline void adc_update_ext_trigger(u32 trigger) {
  140. adc_external_trigger_source_config(ADC0, ADC_INSERTED_CHANNEL, trigger);
  141. }
  142. void adc_init(void);
  143. s32 adc_sample_regular_channel(int chan, int times);
  144. void adc_start_convert(void);
  145. void adc_stop_convert(void);
  146. u16 adc_get_vbus(void);
  147. u16 adc_get_acc(void);
  148. u16 adc_get_throttle(void);
  149. void adc_get_uvw_phaseV(u16 *uvw);
  150. u16 adc_get_mos_temp(void);
  151. u16 adc_get_motor_temp(void);
  152. u16 adc_get_ibus(void);
  153. u16 adc_get_vref(void);
  154. void adc_set_vref_calc(float v);
  155. void adc_vref_filter(void);
  156. u16 adc_get_5v_ref(void);
  157. void adc_set_5vref_calc(float v);
  158. u16 adc_get_throttle2(void);
  159. u16 adc_get_thro_5v(void);
  160. u16 adc_get_thro2_5v(void);
  161. #endif /* _ADC_H__ */