• Learning center

213. Measurement points of iPhone XR display circuit
This video mainly explains how to find the display circuit signal and measurement points of the iPhone XS model.
Detail
Comments

1

00:00:00,400 --> 00:00:02,466

iPhone display circuit repairing

2

00:00:03,400 --> 00:00:09,366

This video mainly explains how to find the display circuit signal and measurement points of the iPhone XS model

3

00:00:11,500 --> 00:00:14,266

Display circuit diagram query method

4

00:00:14,500 --> 00:00:19,733

Step 1, find the display connector in the component map, and determine the position number

5

00:00:21,766 --> 00:00:26,000

Step 2, search for the position number in the schematic diagram

6

00:00:27,033 --> 00:00:32,000

Step 3, find the corresponding signal in the circuit diagram according to the pin label

7

00:00:34,033 --> 00:00:38,533

Step 4, jump to the bitmap according to the pin position in the circuit diagram,

8

00:00:38,533 --> 00:00:40,533

and find the connected components

9

00:00:41,266 --> 00:00:45,133

The voltage and diode value can be measured at the yellow points in the bitmap

10

00:00:46,600 --> 00:00:49,966

Before looking for the signal, we first open the component map,

11

00:00:50,066 --> 00:00:52,966

circuit diagram and bitmap of the iPhone XS

12

00:00:53,966 --> 00:00:56,533

Find the display connector in the component map,

13

00:00:57,433 --> 00:01:01,566

the position number of the display connector is J5700

14

00:01:01,733 --> 00:01:05,400

Let's search for J5700 in the schematic diagram

15

00:01:05,566 --> 00:01:07,800

After finding the display connector,

16

00:01:07,933 --> 00:01:10,500

find the corresponding signal in the schematic diagram

17

00:01:10,500 --> 00:01:13,733

according to the identification in the working principle diagram

18

00:01:14,133 --> 00:01:17,833

Let's first find PP_VDD_MAIN, the main power supply

19

00:01:18,933 --> 00:01:26,433

In the schematic diagram, pins 35, 36, 2 and 4 of the display connector are PP_VDD_MAIN,

20

00:01:27,066 --> 00:01:28,966

Jump to the bitmap by the name

21

00:01:29,666 --> 00:01:32,300

The power supply cannot jump directly to the bitmap,

22

00:01:32,566 --> 00:01:35,333

because it passes through a connection point

23

00:01:36,566 --> 00:01:42,033

After connection points XW5784 and XW5785,

24

00:01:42,533 --> 00:01:44,600

it becomes the main power supply name

25

00:01:45,100 --> 00:01:46,933

Jump to the bitmap by the name

26

00:01:47,600 --> 00:01:50,966

The power supply will not be damaged during actual maintenance,

27

00:01:51,266 --> 00:01:55,566

because after the power supply is damaged, it will cause a short circuit fault

28

00:01:56,100 --> 00:01:58,533

Let's find the 1.8V power supply

29

00:01:59,500 --> 00:02:05,400

In the schematic diagram, pin 1 is the 1.8V power supply of the display connector

30

00:02:05,666 --> 00:02:07,700

Jump to the bitmap according to the name,

31

00:02:08,733 --> 00:02:15,600

the 1.8V power supply will be connected to the main power supply through the fuse inductor FL5780

32

00:02:18,866 --> 00:02:23,600

When repairing the display faults, if there is no 1.8V power supply,

33

00:02:23,900 --> 00:02:28,833

it is most likely because the inductor FL5780 is damaged

34

00:02:29,733 --> 00:02:33,766

Let's find the 3V and 1V power supplies output by the main power supply

35

00:02:35,800 --> 00:02:41,266

In the schematic diagram, the 8th pin is the 3V power supply for the display

36

00:02:42,066 --> 00:02:44,066

Jump to the bitmap according to the name,

37

00:02:44,333 --> 00:02:49,966

the power supply will be connected to the main power supply through the inductor FL5783

38

00:02:53,300 --> 00:02:58,133

In the schematic diagram, the 12th pin is the 1V power supply for the display

39

00:02:58,366 --> 00:03:00,566

Jump to the bitmap according to the name,

40

00:03:01,600 --> 00:03:07,333

the power supply will be connected to the main power supply through the inductor FL5782

41

00:03:08,333 --> 00:03:12,400

These two power supplies are less likely to be damaged in actual maintenance

42

00:03:12,566 --> 00:03:17,200

If there is no voltage, it is most likely because the fuse inductor is damaged

43

00:03:18,200 --> 00:03:21,533

Let's find the 1.1V power supply and conversion tube

44

00:03:22,500 --> 00:03:26,300

The pin 14 of the display connector is 1.1V power supply

45

00:03:27,300 --> 00:03:29,333

Jump to the bitmap according to the name,

46

00:03:30,566 --> 00:03:37,700

the power supply is connected to U5701 after passing through the fuse inductor FL5781

47

00:03:38,500 --> 00:03:44,666

If the U5701 is falsely soldered or damaged, there will be no 1.1V power supply,

48

00:03:45,300 --> 00:03:48,133

which will cause the assembly screen to be displayed,

49

00:03:48,366 --> 00:03:50,933

but the original screen will not be displayed

50

00:03:51,766 --> 00:03:55,533

When we repair, it can be shorted with 1V power supply,

51

00:03:55,633 --> 00:03:58,200

or shorted with 1.2V power supply

52

00:03:59,500 --> 00:04:03,200

Let's find the reset signal sent by the CPU to the display

53

00:04:03,533 --> 00:04:07,200

In the schematic diagram, the 5th pin is the reset signal

54

00:04:08,000 --> 00:04:10,066

Jump to the bitmap according to the name,

55

00:04:11,133 --> 00:04:17,733

the reset signal is connected to the main power supply after passing through the fuse inductor FL5700

56

00:04:18,566 --> 00:04:21,966

The reset signal of iPhone X is provided by CPU

57

00:04:22,300 --> 00:04:24,066

Let's look for the ready signal

58

00:04:24,433 --> 00:04:27,233

Pin 20 of the display connector is the ready signal,

59

00:04:27,466 --> 00:04:31,000

and the ready signal and the synchronous signal belong to the same signal

60

00:04:31,800 --> 00:04:33,833

Jump to the bitmap according to the name,

61

00:04:34,900 --> 00:04:40,866

the signal is connected to the CPU after passing through the fuse resistor R5702

62

00:04:41,866 --> 00:04:43,900

Let's find the interrupt signal

63

00:04:45,200 --> 00:04:50,333

In the schematic diagram, pin 16 of the display connector is an interrupt signal,

64

00:04:50,800 --> 00:04:52,666

Jump to the bitmap according to the name,

65

00:04:53,000 --> 00:04:59,400

and the interrupt signal is connected to the CPU after passing through the fuse resistor R5704

66

00:04:59,666 --> 00:05:02,000

Let's find the MIPI bus

67

00:05:03,200 --> 00:05:14,200

In the schematic diagram, pins 19, 21, 25, 27, 31, 33, 26, 28, 32, and 34

68

00:05:14,200 --> 00:05:17,733

of the display connector are all marked with MIPI

69

00:05:18,200 --> 00:05:20,866

These lines are all MIPI buses

70

00:05:21,066 --> 00:05:25,033

The MIPI bus will be connected to the CPU through an inductor

71

00:05:25,566 --> 00:05:28,633

Jump to the bitmap according to the name, we can see that

72

00:05:28,633 --> 00:05:32,566

there are 5 composite inductors on the edge of the display connector

73

00:05:33,166 --> 00:05:43,466

They are L5720, L5740, L5730, L5710, L5700

74

00:05:43,900 --> 00:05:48,100

Among these composite inductors, pins 1 and 4 are an inductor,

75

00:05:48,400 --> 00:05:53,133

pins 2 and 3 are an inductor, and there is no relationship between them

76

00:05:53,666 --> 00:05:57,066

Each MIPI bus passes through an inductor

77

00:05:58,766 --> 00:06:04,100

One end of the composite inductor close to the display connector is connected to the display connector,

78

00:06:04,466 --> 00:06:06,866

and the other end is connected to the CPU

79

00:06:08,866 --> 00:06:13,566

There is a damaged inductor on the MIPI bus, which will cause no display

80

00:06:14,100 --> 00:06:16,900

Next let's find other detection signals

81

00:06:17,466 --> 00:06:21,600

PANICB is the signal for the main power supply to monitor the display screen,

82

00:06:22,100 --> 00:06:25,633

the 9th pin of the display connector is the PANICB signal

83

00:06:26,333 --> 00:06:28,266

Jump to the bitmap according to the name,

84

00:06:28,900 --> 00:06:34,700

the signal is connected to the main power supply after passing through the fuse resistor R5701

85

00:06:35,600 --> 00:06:38,000

Let's find the ADCMUX signal

86

00:06:38,766 --> 00:06:44,166

In the schematic diagram, the third pin of the display connector is the ADCMUX signal

87

00:06:44,766 --> 00:06:47,100

Jump to the bitmap according to the signal name,

88

00:06:47,633 --> 00:06:54,266

the signal is connected to the main power supply after passing through the fuse inductor FL5703

89

00:06:55,200 --> 00:06:58,566

Let's find the PANEL_ID identification signal

90

00:06:58,933 --> 00:07:02,966

The 7th pin of the display connector is the ID identification signal

91

00:07:03,300 --> 00:07:05,100

Jump to the bitmap according to the name,

92

00:07:05,666 --> 00:07:11,366

the signal is connected to the CPU after passing through the fuse resistor R5705

93

00:07:11,966 --> 00:07:16,133

We have completed the search for the relevant signals for the display circuit

94

00:07:16,733 --> 00:07:20,866

The NC marked in the schematic diagram means that it is an unused pin,

95

00:07:21,166 --> 00:07:22,833

we don't need to look for it

96

00:07:23,366 --> 00:07:27,000

During the maintenance, if we measure which pin is abnormal,

97

00:07:27,800 --> 00:07:30,800

replace or remove the components connected to the pin

98

00:07:31,900 --> 00:07:33,933

Ok, that's all for this video

No comments yet
Come and write your comments
Links: