89C52单片机怎么点亮8个数码管?下面代码为什么就亮了3个
sbit dula=P2^6;
sbit wela=P2^7;
void main()
{
wela=1;
P3=0x0;
wela=0;
dula=1;
P3=0x0;
dula=0;
while(1);
} 展开
遇到相同的问题,我是这样解决的:
1、添加延时
2、在位选和段选打开之前先赋值
以下是我的程序,仅供参考:
#include <reg52.h>
#define uint unsigned int
#define uchar unsigned char
sbit we = P2^7;
sbit du = P2^6;
void delay(uint z)
{
uint x,y;
for(x = z; x > 0; x--)
for(y = 120; y > 0; y--);
}
uchar code leddata[]={
0x3F, //"0"
0x06, //"1"
0x5B, //"2"
0x4F, //"3"
0x66, //"4"
0x6D, //"5"
0x7D, //"6"
0x07, //"7"
0x7F, //"8"
0x6F, //"9"
0x77, //"A"
0x7C, //"B"
0x39, //"C"
0x5E, //"D"
0x79, //"E"
0x71, //"F"
0x76, //"H"
0x38, //"L"
0x37, //"n"
0x3E, //"u"
0x73, //"P"
0x5C, //"o"
0x40, //"-"
0x00, //???
0x00 //?????
};
void main()
{
P0 = 0xfe;//先赋值
we = 1;//再打开位选
we = 0;
P0 = leddata[1];//先赋值
du = 1;//再打开段选
du = 0;
delay(1);//设置很短时间的延时,我这里是设置约1ms
P0 = 0xfd;
we = 1;
we = 0;
P0 = leddata[9];
du = 1;
du = 0;
delay(1);
P0 = 0xfb;
we = 1;
we = 0;
P0 = leddata[9];
du = 1;
du = 0;
delay(1);
P0 = 0xf7;
we = 1;
we = 0;
P0 = leddata[3];
du = 1;
du = 0;
delay(1);
P0 = 0xef;
we = 1;
we = 0;
P0 = leddata[0];
du = 1;
du = 0;
delay(1);
P0 = 0xdf;
we = 1;
we = 0;
P0 = leddata[3];
du = 1;
du = 0;
delay(1);
P0 = 0xbf;
we = 1;
we = 0;
P0 = leddata[0];
du = 1;
du = 0;
delay(1);
P0 = 0x7f;
we = 1;
we = 0;
P0 = leddata[9];
du = 1;
du = 0;
delay(1);
}
下面是效果图:
void main()
{
wela=1;
P3=0x0;
wela=0;//不要这句只亮不灭
//在这里加一个1S的延时,或者只亮不灭
dula=1;
P3=0x0;
dula=0;
while(1);
}
没用,就亮2个了
#include
sbit dula=P2^6;
sbit wela=P2^7;
void main()
{
int a,b;
wela=1;
P3=0x0;
for(a=0;a<100;a++)
for(b=0;b<1000;b++){}
dula=1;
P3=0x0;
dula=0;
while(1);}
void main()
{
P2=0xff;
P3=0x00;
while(1);
}
试试这个
有没有原理图,发一个上来看看
sbit dula=P2^6;
sbit wela=P2^7;
void main()
{
int a;
while(1)
{
wela=1;
P3=0x0;
wela=0;
dula=1;
P3=0x0;
dula=0;
a=1000;
while(a--);
}
}
就亮三、四2个
查一下电路吧,还有是不是有什么拨码开关之类的东东没拨好。
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