/**
******************************************************************************
* @file stm32f10x_tim.c
* @author MCD Application Team
* @version V3.5.0
* @date 11-March-2011
* @brief This file provides all the TIM firmware functions.
******************************************************************************
* @attention
*
* THE PRESENT FIRMWARE WHICH IS FOR GUIDANCE ONLY AIMS AT PROVIDING CUSTOMERS
* WITH CODING INFORMATION REGARDING THEIR PRODUCTS IN ORDER FOR THEM TO SAVE
* TIME. AS A RESULT, STMICROELECTRONICS SHALL NOT BE HELD LIABLE FOR ANY
* DIRECT, INDIRECT OR CONSEQUENTIAL DAMAGES WITH RESPECT TO ANY CLAIMS ARISING
* FROM THE CONTENT OF SUCH FIRMWARE AND/OR THE USE MADE BY CUSTOMERS OF THE
* CODING INFORMATION CONTAINED HEREIN IN CONNECTION WITH THEIR PRODUCTS.
*
* <h2><center>© COPYRIGHT 2011 STMicroelectronics</center></h2>
******************************************************************************
*/
/* Includes ------------------------------------------------------------------*/
#include "stm32f10x_tim.h"
#include "stm32f10x_rcc.h"
/** @addtogroup STM32F10x_StdPeriph_Driver
* @{
*/
/** @defgroup TIM
* @brief TIM driver modules
* @{
*/
/** @defgroup TIM_Private_TypesDefinitions
* @{
*/
/**
* @}
*/
/** @defgroup TIM_Private_Defines
* @{
*/
/* ---------------------- TIM registers bit mask ------------------------ */
#define SMCR_ETR_Mask ((uint16_t)0x00FF)
#define CCMR_Offset ((uint16_t)0x0018)
#define CCER_CCE_Set ((uint16_t)0x0001)
#define CCER_CCNE_Set ((uint16_t)0x0004)
/**
* @}
*/
/** @defgroup TIM_Private_Macros
* @{
*/
/**
* @}
*/
/** @defgroup TIM_Private_Variables
* @{
*/
/**
* @}
*/
/** @defgroup TIM_Private_FunctionPrototypes
* @{
*/
static void TI1_Config(TIM_TypeDef* TIMx, uint16_t TIM_ICPolarity, uint16_t TIM_ICSelection,
uint16_t TIM_ICFilter);
static void TI2_Config(TIM_TypeDef* TIMx, uint16_t TIM_ICPolarity, uint16_t TIM_ICSelection,
uint16_t TIM_ICFilter);
static void TI3_Config(TIM_TypeDef* TIMx, uint16_t TIM_ICPolarity, uint16_t TIM_ICSelection,
uint16_t TIM_ICFilter);
static void TI4_Config(TIM_TypeDef* TIMx, uint16_t TIM_ICPolarity, uint16_t TIM_ICSelection,
uint16_t TIM_ICFilter);
/**
* @}
*/
/** @defgroup TIM_Private_Macros
* @{
*/
/**
* @}
*/
/** @defgroup TIM_Private_Variables
* @{
*/
/**
* @}
*/
/** @defgroup TIM_Private_FunctionPrototypes
* @{
*/
/**
* @}
*/
/** @defgroup TIM_Private_Functions
* @{
*/
/**
* @brief Deinitializes the TIMx peripheral registers to their default reset values.
* @param TIMx: where x can be 1 to 17 to select the TIM peripheral.
* @retval None
*/
void TIM_DeInit(TIM_TypeDef* TIMx)
{
/* Check the parameters */
assert_param(IS_TIM_ALL_PERIPH(TIMx));
if (TIMx == TIM1)
{
RCC_APB2PeriphResetCmd(RCC_APB2Periph_TIM1, ENABLE);
RCC_APB2PeriphResetCmd(RCC_APB2Periph_TIM1, DISABLE);
}
else if (TIMx == TIM2)
{
RCC_APB1PeriphResetCmd(RCC_APB1Periph_TIM2, ENABLE);
RCC_APB1PeriphResetCmd(RCC_APB1Periph_TIM2, DISABLE);
}
else if (TIMx == TIM3)
{
RCC_APB1PeriphResetCmd(RCC_APB1Periph_TIM3, ENABLE);
RCC_APB1PeriphResetCmd(RCC_APB1Periph_TIM3, DISABLE);
}
else if (TIMx == TIM4)
{
RCC_APB1PeriphResetCmd(RCC_APB1Periph_TIM4, ENABLE);
RCC_APB1PeriphResetCmd(RCC_APB1Periph_TIM4, DISABLE);
}
else if (TIMx == TIM5)
{
RCC_APB1PeriphResetCmd(RCC_APB1Periph_TIM5, ENABLE);
RCC_APB1PeriphResetCmd(RCC_APB1Periph_TIM5, DISABLE);
}
else if (TIMx == TIM6)
{
RCC_APB1PeriphResetCmd(RCC_APB1Periph_TIM6, ENABLE);
RCC_APB1PeriphResetCmd(RCC_APB1Periph_TIM6, DISABLE);
}
else if (TIMx == TIM7)
{
RCC_APB1PeriphResetCmd(RCC_APB1Periph_TIM7, ENABLE);
RCC_APB1PeriphResetCmd(RCC_APB1Periph_TIM7, DISABLE);
}
else if (TIMx == TIM8)
{
RCC_APB2PeriphResetCmd(RCC_APB2Periph_TIM8, ENABLE);
RCC_APB2PeriphResetCmd(RCC_APB2Periph_TIM8, DISABLE);
}
else if (TIMx == TIM9)
{
RCC_APB2PeriphResetCmd(RCC_APB2Periph_TIM9, ENABLE);
RCC_APB2PeriphResetCmd(RCC_APB2Periph_TIM9, DISABLE);
}
else if (TIMx == TIM10)
{
RCC_APB2PeriphResetCmd(RCC_APB2Periph_TIM10, ENABLE);
RCC_APB2PeriphResetCmd(RCC_APB2Periph_TIM10, DISABLE);
}
else if (TIMx == TIM11)
{
RCC_APB2PeriphResetCmd(RCC_APB2Periph_TIM11, ENABLE);
RCC_APB2PeriphResetCmd(RCC_APB2Periph_TIM11, DISABLE);
}
else if (TIMx == TIM12)
{
RCC_APB1PeriphResetCmd(RCC_APB1Periph_TIM12, ENABLE);
RCC_APB1PeriphResetCmd(RCC_APB1Periph_TIM12, DISABLE);
}
else if (TIMx == TIM13)
{
RCC_APB1PeriphResetCmd(RCC_APB1Periph_TIM13, ENABLE);
RCC_APB1PeriphResetCmd(RCC_APB1Periph_TIM13, DISABLE);
}
else if (TIMx == TIM14)
{
RCC_APB1PeriphResetCmd(RCC_APB1Periph_TIM14, ENABLE);
RCC_APB1PeriphResetCmd(RCC_APB1Periph_TIM14, DISABLE);
}
else if (TIMx == TIM15)
{
RCC_APB2PeriphResetCmd(RCC_APB2Periph_TIM15, ENABLE);
RCC_APB2PeriphResetCmd(RCC_APB2Periph_TIM15, DISABLE);
}
else if (TIMx == TIM16)
{
RCC_APB2PeriphResetCmd(RCC_APB2Periph_TIM16, ENABLE);
RCC_APB2PeriphResetCmd(RCC_APB2Periph_TIM16, DISABLE);
}
else
{
if (TIMx == TIM17)
{
RCC_APB2PeriphResetCmd(RCC_APB2Periph_TIM17, ENABLE);
RCC_APB2PeriphResetCmd(RCC_APB2Periph_TIM17, DISABLE);
}
}
}
/**
* @brief Initializes the TIMx Time Base Unit peripheral according to
* the specified parameters in the TIM_TimeBaseInitStruct.
* @param TIMx: where x can be 1 to 17 to select the TIM peripheral.
* @param TIM_TimeBaseInitStruct: pointer to a TIM_TimeBaseInitTypeDef
* structure that contains the configuration information for the
* specified TIM peripheral.
* @retval None
*/
void TIM_TimeBaseInit(TIM_TypeDef* TIMx, TIM_TimeBaseInitTypeDef* TIM_TimeBaseInitStruct)
{
uint16_t tmpcr1 = 0;
/* Check the parameters */
assert_param(IS_TIM_ALL_PERIPH(TIMx));
assert_param(IS_TIM_COUNTER_MODE(TIM_TimeBaseInitStruct->TIM_CounterMode));
assert_param(IS_TIM_CKD_DIV(TIM_TimeBaseInitStruct->TIM_ClockDivision));
tmpcr1 = TIMx->CR1;
if((TIMx == TIM1) || (TIMx == TIM8)|| (TIMx == TIM2) || (TIMx == TIM3)||
(TIMx == TIM4) || (TIMx == TIM5))
{
/* Select the Counter Mode */
tmpcr1 &= (uint16_t)(~((uint16_t)(TIM_CR1_DIR | TIM_CR1_CMS)));
tmpcr1 |= (uint32_t)TIM_TimeBaseInitStruct->TIM_CounterMode;
}
if((TIMx != TIM6) && (TIMx != TIM7))
{
/* Set the clock division */
tmpcr1 &= (uint16_t)(~((uint16_t)TIM_CR1_CKD));
tmpcr1 |= (uint32_t)TIM_TimeBaseInitStruct->TIM_ClockDivision;
}
TIMx->CR1 = tmpcr1;
/* Set the Autoreload value */
TIMx->ARR = TIM_TimeBaseInitStruct->TIM_Period ;
/* Set the Prescaler value */
TIMx->PSC = TIM_TimeBaseInitStruct->TIM_Prescaler;
if ((TIMx == TIM1) || (TIMx == TIM8)|| (TIMx == TIM15)|| (TIMx == TIM16) || (TIMx == TIM17))
{
/* Set the Repetition Counter value */
TIMx->RCR = TIM_TimeBaseInitStruct->TIM_RepetitionCounter;
}
/* Generate an update event to reload the Prescaler and the Repetition counter
values immediately */
TIMx->EGR = TIM_PSCReloadMode_Immediate;
}
/**
* @brief Initializes the TIMx Channel1 according to the specified
* parameters in the TIM_OCInitStruct.
* @param TIMx: where x can be 1 to 17 except 6 and 7 to select the TIM peripheral.
* @param TIM_OCInitStru
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TLC5615驱动程序+10位DA模块+电子设计竞赛资料+硬件资料+嵌入式程序+单片机
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h:38个
c:36个
s:2个
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TLC5615 为美国德州仪器公司 1999 年推出的产品,是具有串行接口的数模转换器,其输出为电压型,最大输出电压是基准电压值的两倍。带有上电复位功能,即把 DAC 寄存器复位至全零。性能比早期电流型输出的 DAC 要好。只需要通过 3 根串行总线就可以完成 10 位数据的串行输入, 易于和工业标准的微处理器或微控制器(单片机) 接口, 适用于电池供电的测试仪表、移动电话,也适用于数字失调与增益调整以及工业控制场合。两种工作方式: (A)从图可以看出,16 位移位寄存器分为高 4 位虚拟位、低两位填充位以及 10位有效位。在单片 TLC5615 工作时,只需要向 16 位移位寄存器按先后输入 10位有效位和低 2 位填充位, 2 位填充位数据任意,这是第一种方式,即 12 位数据序列。 (B)第二种方式为级联方式, 即 16 位数据列,可以将本片的 DOU T 接到下一片的 DIN , 需要向 16 位移位寄存器按先后输入高 4 位虚拟位、10 位有效位和低 2 位填充位, 由于增加了高 4 位虚拟位, 所以需要 16 个时钟脉冲。TLC5615 的内部功能框图如《TLC5615功能
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tcl5615应用程序STM32.zip (82个子文件)
tcl5615
CORE
startup_stm32f10x_hd.s 15KB
core_cm3.h 84KB
core_cm3.c 17KB
startup_stm32f10x_md.s 12KB
keilkilll.bat 399B
OBJ
LCD.hex 13KB
SYSTEM
delay
delay.h 1KB
delay.c 5KB
usart
usart.h 1KB
usart.c 5KB
sys
sys.h 3KB
sys.c 616B
USER
stm32f10x_conf.h 3KB
LCD.uvgui.Administrator 137KB
LCD.uvproj 18KB
LCD.uvopt 17KB
system_stm32f10x.c 36KB
stm32f10x.h 619KB
system_stm32f10x.h 2KB
main.c 218B
stm32f10x_it.c 2KB
stm32f10x_it.h 2KB
JLinkSettings.ini 578B
STM32F10x_FWLib
inc
stm32f10x_bkp.h 7KB
stm32f10x_sdio.h 21KB
stm32f10x_dbgmcu.h 4KB
misc.h 9KB
stm32f10x_cec.h 6KB
stm32f10x_can.h 27KB
stm32f10x_fsmc.h 26KB
stm32f10x_spi.h 17KB
stm32f10x_wwdg.h 3KB
stm32f10x_dma.h 20KB
stm32f10x_exti.h 7KB
stm32f10x_tim.h 51KB
stm32f10x_crc.h 2KB
stm32f10x_rtc.h 4KB
stm32f10x_usart.h 16KB
stm32f10x_rcc.h 30KB
stm32f10x_dac.h 15KB
stm32f10x_adc.h 21KB
stm32f10x_i2c.h 29KB
stm32f10x_gpio.h 20KB
stm32f10x_pwr.h 4KB
stm32f10x_flash.h 25KB
stm32f10x_iwdg.h 4KB
src
stm32f10x_adc.c 46KB
stm32f10x_wwdg.c 6KB
misc.c 7KB
stm32f10x_spi.c 30KB
stm32f10x_gpio.c 23KB
stm32f10x_tim.c 107KB
stm32f10x_sdio.c 28KB
stm32f10x_bkp.c 8KB
stm32f10x_rtc.c 8KB
stm32f10x_dac.c 19KB
stm32f10x_dma.c 29KB
stm32f10x_fsmc.c 35KB
stm32f10x_exti.c 7KB
stm32f10x_pwr.c 9KB
stm32f10x_i2c.c 45KB
stm32f10x_crc.c 3KB
stm32f10x_cec.c 11KB
stm32f10x_can.c 44KB
stm32f10x_iwdg.c 5KB
stm32f10x_usart.c 37KB
stm32f10x_dbgmcu.c 5KB
stm32f10x_flash.c 61KB
stm32f10x_rcc.c 50KB
HARDWARE
LED
led.h 638B
led.c 1KB
LCD
tong64.c 4KB
lcd.h 9KB
lcd.c 81KB
tong64.h 33KB
font.h 16KB
TLC5615
TLC5615.C 821B
tlc5615.h 731B
KEY
key.c 2KB
key.h 1KB
CAN
can.c 3KB
can.h 268B
共 82 条
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