用户需求: 设定最低电感量工作值(默认 20µH, 43nF 低频档口径, 宏定义); 线圈电感量低于该值 → 黄灯快闪以线圈断开状态指示 - TaskLoop.h: 新增 COIL_L_MIN_UH 20; 频率窗上限 125→171kHz (=L 20.06µH, 43nF: L=2.533e7/(f²×43)) — 20~38µH 小线圈转为可正常工作(含现场 21/23µH) - poll_yellow_led 模式1: g_coil_fault==2 归入断开级快闪(!LOOP_OK/reconn_stab 同级) - 一长一短(模式5)仅保留 coil_fault==1 (L 偏大 f<18kHz) - coil_monitor 防抖 1s 不变; 继电器/判定逻辑不动(仅指示级) - test: 171 正常/172(L<20µH) 偏小, L 偏大 17; 全绿 语法0 error, 4测试全绿; spec V2.37 / devlog V2.56
118 lines
3.4 KiB
C
118 lines
3.4 KiB
C
/*
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* test_coil_range.c — 线圈电感量合理范围监视 gcc 隔离单测 (DLD154V4B V4.26)
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*
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* 验证对象: TaskLoop.c coil_monitor() (V4.26 拍板规格)
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* 默认低频档口径(43nF 三极管板): 空场频率合理窗 20~125kHz, 出界即判定电感量不合理
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* g_coil_fault: 0=正常 1=L偏大(f<18kHz) 2=L偏小(f>125kHz)
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* 防抖: 越界/恢复均连续 100tick(=1s) 才置位/清除 (调用点=稳定无车空闲)
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*
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* 镜像宏与固件一致 (改 COIL_* 时同步此处!)
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*/
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#include <assert.h>
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#include <stdio.h>
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#include <stdint.h>
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#define COIL_F_OK_MIN_KHZ 18
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#define COIL_F_OK_MAX_KHZ 171
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#define COIL_DEF_C_NF 66
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static uint8_t g_coil_fault = 0;
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static uint16_t g_coil_bad_cnt = 0;
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/* coil_monitor() 纯逻辑镜像 (不含 Origin==0 守卫, 由调用点保证) */
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static void coil_step(uint32_t f_khz)
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{
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uint8_t want = 0;
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if (f_khz < COIL_F_OK_MIN_KHZ)
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want = 1;
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else if (f_khz > COIL_F_OK_MAX_KHZ)
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want = 2;
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if (want == g_coil_fault) {
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g_coil_bad_cnt = 0;
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} else {
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g_coil_bad_cnt++;
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if (g_coil_bad_cnt >= 100) {
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g_coil_fault = want;
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g_coil_bad_cnt = 0;
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}
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}
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}
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static void run_ticks(uint32_t f_khz, int n)
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{
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int i;
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for (i = 0; i < n; i++)
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coil_step(f_khz);
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}
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static void test_too_large(void)
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{
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g_coil_fault = 0; g_coil_bad_cnt = 0;
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/* f=16.3kHz(实测超限线圈) 持续 <1s 不置位 */
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run_ticks(16, 99);
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assert(g_coil_fault == 0);
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/* 满 1s → L 偏大 */
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coil_step(16);
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assert(g_coil_fault == 1);
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/* 保持 → 状态稳定不抖 */
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run_ticks(16, 1000);
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assert(g_coil_fault == 1);
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printf("1. L偏大 (f=16kHz, 1s 防抖置位, 保持稳定) OK\n");
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}
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static void test_too_small(void)
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{
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g_coil_fault = 0; g_coil_bad_cnt = 0;
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run_ticks(200, 100);
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assert(g_coil_fault == 2);
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printf("2. L偏小 (f=200kHz, 1s 防抖置位) OK\n");
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}
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static void test_recover(void)
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{
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g_coil_fault = 1; g_coil_bad_cnt = 0;
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run_ticks(62, 99);
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assert(g_coil_fault == 1); /* 恢复防抖 <1s 不清除 */
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coil_step(62);
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assert(g_coil_fault == 0); /* 满 1s 恢复正常 */
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printf("3. 恢复正常 (1s 防抖清除) OK\n");
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}
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static void test_boundaries(void)
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{
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g_coil_fault = 0; g_coil_bad_cnt = 0;
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run_ticks(17, 100); assert(g_coil_fault == 1); /* 19 → 偏大 */
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run_ticks(62, 100); assert(g_coil_fault == 0); /* 20~125 正常 */
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run_ticks(18, 100); assert(g_coil_fault == 0); /* 边界 20 正常 */
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run_ticks(125, 100); assert(g_coil_fault == 0); /* 中间 125 正常 (V4.36.20 窗内) */
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run_ticks(171, 100); assert(g_coil_fault == 0); /* 边界 171 (=L 20.15µH) 正常 */
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run_ticks(172, 100); assert(g_coil_fault == 2); /* 172 → L<20µH 偏小(断开级) */
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printf("4. 边界 19/20/171/172 OK\n");
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}
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static void test_jitter_no_alarm(void)
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{
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/* 抖动: 16 与 62 交替 (每 50tick) → 计数永远到不了 100 → 不误报 */
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int i;
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g_coil_fault = 0; g_coil_bad_cnt = 0;
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for (i = 0; i < 2000; i++)
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coil_step((i & 1) ? 62 : 16);
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assert(g_coil_fault == 0);
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printf("5. 频率抖动不误报 OK\n");
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}
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int main(void)
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{
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test_too_large();
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test_too_small();
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test_recover();
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test_boundaries();
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test_jitter_no_alarm();
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printf("\nALL PASS (窗口 18~171kHz=L 20µH, 防抖 1s)\n");
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return 0;
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}
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