ᱨᱯᱲᱨᱱᱟ

+8615867185804

ᱦᱚᱴᱥᱟᱯ

+86 15867185804

ᱡᱮᱞᱠᱟ ᱵᱮᱵᱷᱟᱨᱤᱭᱟᱹ ᱠᱚ ᱱᱚᱣᱟ ᱠᱚ ᱩᱫᱩᱜ ᱮᱫᱟ ᱾

Dec 25, 2020 ᱢᱤᱫ ᱱᱟᱶᱟ ᱚᱱᱚᱞ

ᱵᱟᱨ ᱞᱮᱠᱟᱱ ᱥᱤᱥᱴ ᱢᱮᱱᱟᱜᱼᱟᱥᱠᱨᱤᱱᱤᱝ ᱥᱟᱶ ᱡᱚᱲᱟᱣ ᱢᱮᱱᱟᱜᱼᱟ:ᱥᱠᱨᱤᱱᱤᱝ ᱥᱤᱜᱽᱱᱟᱞ ᱠᱚ ᱥᱟᱶ ᱟᱨᱟᱢ ᱢᱮᱟᱨ ᱟᱨᱥᱠᱨᱤᱱᱤᱝ ᱥᱤᱜᱽᱱᱟᱞ ᱠᱚ ᱥᱟᱶ ᱱᱟᱯᱟᱭ ᱚᱨᱡᱚ.

ᱟᱞᱜᱟ ᱛᱮ ᱢᱤᱫ ᱠᱮᱴᱮᱡ ᱧᱮᱞ ᱢᱮ

ᱥᱟᱱᱟᱢ ᱞᱮᱠᱟᱱ ᱜᱮᱟᱞᱜᱟ ᱛᱮ ᱵᱮᱱᱟᱣ ᱟᱠᱟᱱᱟᱥᱟᱱᱟᱢ ᱞᱮᱠᱟᱱ ᱵᱮᱵᱷᱟᱨ ᱢᱮᱱᱟᱜᱼᱟ ᱾ ᱱᱚᱶᱟ ᱫᱚ ᱟᱹᱰᱤ ᱜᱟᱱ ᱰᱤᱡᱟᱭᱤᱱ, ᱟᱨ ᱟᱹᱰᱤ ᱜᱟᱱ ᱰᱤᱡᱟᱭᱤᱱ ᱠᱟᱱᱟ, ᱢᱮᱱᱠᱷᱟᱱ ᱱᱚᱶᱟ ᱫᱚ ᱟᱹᱰᱤ ᱟᱞᱜᱟ ᱜᱮᱭᱟ, ᱢᱮᱱᱠᱷᱟᱱ ᱱᱚᱶᱟ ᱫᱚ ᱥᱟᱹᱨᱤ ᱜᱮ ᱟᱹᱰᱤ ᱟᱞᱜᱟ ᱜᱮᱭᱟ [1] ᱾

ᱯᱨᱚᱡᱮᱠᱴ ᱠᱚ ᱟᱞᱜᱟ ᱛᱮ ᱧᱮᱞ ᱢᱮ

ᱤᱣᱤᱝᱴᱨᱮᱠᱤᱝ ᱵᱤᱱᱤᱰ ᱠᱚ ᱢᱤᱫ ᱥᱟᱶᱛᱮᱚᱱᱰᱮ ᱢᱤᱫ ᱰᱚᱢᱮᱱ ᱢᱮᱱᱟᱜᱼᱟ ᱡᱟᱦᱟᱸ ᱨᱮ {}} ᱡᱤᱭᱚᱢᱴᱨᱤᱠ ᱯᱷᱟᱱᱥᱚᱱ ᱢᱮᱱᱟᱜᱼᱟ ᱾ ᱥᱤᱲᱦᱤᱥᱠᱨᱤᱱᱤᱝ ᱥᱤᱜᱽᱱᱟᱞ ᱠᱚᱟᱹᱰᱤ ᱜᱷᱟᱹᱲᱤᱡ ᱚᱠᱛᱚ ᱨᱮ, ᱵᱟᱹᱲᱛᱤ ᱫᱟᱲᱮ, ᱟᱨ ᱟᱹᱰᱤ ᱜᱷᱟᱹᱲᱤᱡ ᱡᱤᱭᱚᱱ ᱨᱮ ᱥᱩᱫᱷᱨᱟᱹᱣ᱾ ᱵᱚᱫᱚᱞ ᱠᱚ ᱫᱚ ᱠᱟᱹᱢᱤ ᱠᱟᱱᱟ ᱟᱨ ᱵᱚᱫᱚᱞ ᱠᱚ ᱫᱚ ᱵᱟᱝ ᱵᱟᱹᱲᱤᱡ ᱜᱮᱭᱟ, ᱟᱨ ᱠᱟᱹᱢᱤ ᱠᱚ ᱫᱚ ᱵᱟᱝ ᱵᱟᱹᱲᱤᱡ ᱜᱮᱭᱟ, ᱚᱱᱟ ᱛᱮ ᱠᱚᱢ ᱠᱷᱚᱱ ᱠᱚᱢ ᱫᱟᱲᱮ ᱫᱚ ᱵᱟᱝ ᱵᱩᱡᱷᱟᱹᱣ ᱫᱟᱲᱮᱭᱟᱜ-ᱟ᱾ ᱟᱢ ᱫᱚ ᱟᱞᱜᱟ ᱛᱮ ᱧᱮᱞ ᱛᱮ ᱦᱩᱭᱟᱢᱟ, ᱟᱨ ᱵᱟᱝ ᱮᱴᱟᱜ ᱛᱤ ᱛᱮ ᱟᱨ ᱵᱟᱝ ᱥᱠᱨᱤᱱᱤᱝ ᱟᱨ ᱵᱟᱝ ᱱᱳᱴ ᱠᱚ ᱞᱟᱹᱜᱤᱫ ᱾

ᱥᱠᱨᱤᱱᱤᱝ ᱯᱨᱚᱡᱮᱠᱴ ᱠᱚ ᱞᱟᱹᱜᱤᱫᱱᱚᱴᱥ: } } } } } } } } } ᱟᱨ } } } } ᱥᱴᱨᱤᱝ ᱥᱮᱠᱴᱚᱨ ᱥᱴᱨᱤᱝ ᱥᱮᱠᱴᱚᱨ ᱥᱴᱨᱤᱝ ᱾ ᱧᱮᱞ ᱢᱮ ᱢᱤᱫ ᱥᱟᱫᱷᱟᱨᱚᱱ ᱵᱤᱠᱚᱞᱯᱚ ᱫᱚ ᱦᱩᱭᱩᱜ ᱠᱟᱱᱟ ᱓.᱘ ᱫᱚ ᱥᱟᱫᱷᱟᱨᱚᱱ ᱯᱟᱨᱟᱢᱤᱴᱟᱨ ᱠᱟᱱᱟ ᱾ ᱥᱤᱥᱴᱚᱢ ᱫᱚ ᱴᱨᱟᱱᱥᱠᱨᱤᱯᱴ ᱟᱨ ᱤᱞᱮᱠᱴᱨᱚᱱ ᱠᱚ ᱨᱮᱭᱟᱜ ᱵᱟᱹᱲᱛᱤ ᱢᱟᱨᱥᱟᱞ ᱮ ᱩᱫᱩᱜᱟ᱾ The driving electrodes emit low-voltage and high-frequency signals and project them to the receiving electrodes to form a stable Electric current, when the human body touches theᱮᱠᱥ-ᱨᱮ, ᱱᱚᱣᱟ ᱫᱚ ᱢᱟᱱᱣᱟ ᱦᱚᱲᱢᱚ ᱨᱮᱭᱟᱜ ᱠᱟᱹᱴᱩᱵ ᱠᱟᱱᱟ, ᱟᱨ ᱢᱟᱱᱣᱟ ᱠᱚ ᱪᱮᱛᱟᱱ ᱨᱮ ᱢᱮᱱᱟᱜᱼᱟ ᱾ᱮᱠᱥ-ᱨᱮform an equivalent capacitance, and high-frequency signals can flow into the ground through this equivalent capacitance, so that the amount of charge received at the receiving end is reduced When the finger is closer to the transmitting terminal, the electric charge decreases more obviously. ᱢᱩᱪᱟᱹᱫ ᱨᱮ, ᱱᱚᱣᱟ ᱫᱚ ᱢᱤᱫ ᱴᱷᱟᱹᱣᱠᱟᱹ ᱯᱚᱭᱮᱱᱴ ᱠᱟᱱᱟ ᱡᱟᱦᱟᱸ ᱫᱚ ᱢᱩᱪᱟᱹᱫ ᱵᱞᱚᱠ ᱨᱮᱭᱟᱜ ᱢᱩᱪᱟᱹᱫ ᱨᱮ ᱵᱚᱫᱚᱞ ᱠᱚ ᱩᱫᱩᱜᱟ᱾

ᱤᱧ ᱟᱨ ᱚᱱᱟ ᱨᱮᱭᱟᱜ ᱞᱮᱭᱟᱨ ᱫᱚ ᱤᱞᱮᱠᱴᱨᱳᱰ ᱨᱮᱭᱟᱜ ᱪᱮᱛᱟᱱ ᱯᱟᱦᱴᱟ ᱨᱮ ᱵᱮᱵᱷᱟᱨᱚᱜ ᱠᱟᱱᱟ ᱾ ᱱᱚᱶᱟ ᱜᱡᱚᱴᱱᱟ ᱠᱚ ᱫᱚ ᱤᱞᱮᱠᱴᱨᱚᱱ ᱟᱨ ᱜᱞᱩᱠᱚᱡᱽ ᱨᱮᱭᱟᱜ ᱢᱤᱫ ᱯᱟᱦᱴᱟ ᱨᱮ ᱢᱤᱫ ᱥᱟᱶᱛᱮ ᱫᱚᱦᱚ ᱠᱟᱱᱟ ᱾ ᱱᱚᱣᱟ ᱪᱤᱛᱟᱹᱨ ᱫᱚ 25 kg kay kay kạmi kana, ᱡᱟᱦᱟᱸ ᱫᱚ i iii i iii y air ᱠᱟᱱᱟ ᱡᱟᱦᱟᱸ ᱫᱚ ᱵᱟᱝ ᱴᱷᱤᱠ ᱜᱮᱭᱟ ᱾ ᱚᱱᱟ ᱚᱨᱡᱚ ᱛᱮ ᱥᱠᱨᱤᱱᱤᱝ ᱨᱮᱭᱟᱜ ᱫᱟᱲᱮ, ᱡᱮᱞᱮᱠᱟ ᱥᱠᱨᱤᱱᱤᱝ, ᱜᱞᱩᱠᱚᱡᱽ ᱨᱮᱭᱟᱜ ᱥᱯᱤᱰ ᱫᱚ ᱜᱞᱩᱠᱚᱡᱽ ᱨᱮᱭᱟᱜ ᱫᱟᱲᱮ ᱠᱟᱱᱟ, ᱚᱱᱟ ᱫᱚ ᱦᱟᱨᱛᱟ ᱨᱮᱭᱟᱜ ᱠᱚᱱᱴᱨᱚᱞ ᱨᱮ ᱧᱮᱞᱚᱜ ᱠᱟᱱᱟ᱾

In the touch detection, the self-capacitance screen detects the horizontal and vertical electrode arrays respectively, and determines the horizontal and vertical coordinates according to the changes in capacitance before and after the touch, and then combines them into planar touch coordinates. XXXX } } } } } } } } } ᱟᱨ } } } , ᱟᱨ XXXR XXX 3 ᱟᱨ aption aption aption , ᱡᱟᱦᱟᱸ ᱫᱚ i ᱟᱨ extion aption aption aption aption aption aption aption , ᱟᱨ 3 ᱟᱨ rpm ᱟᱨ rpodio ar hirt offiodio .

ᱡᱩᱫᱤ ᱱᱚᱣᱟ ᱫᱚ ᱥᱟᱹᱨᱤ ᱜᱮᱭᱟ, ᱱᱚᱣᱟ ᱫᱚ } } } } } } ᱟᱨ _________________, ᱡᱟᱦᱟᱸ ᱫᱚ ᱨᱤᱢᱚᱴ ᱟᱨ ᱨᱤᱢᱚᱴ ᱨᱤᱯᱷᱞᱮᱠᱥ ᱨᱤᱢᱚᱴ ᱫᱚ ᱵᱟᱝ ᱠᱟᱱᱟ, ᱟᱨ ᱥᱴᱨᱤᱝ ᱫᱚ ᱥᱴᱨᱤᱝ ᱠᱟᱱᱟ᱾ If there are two touches on the touch screen and the two points are not in the same X direction or the same Y direction, then There are two projections in the X and Y directions respectively, and 4 coordinates are combined. ᱥᱟᱹᱨᱤ ᱠᱟᱛᱷᱟ ᱫᱚ, ᱵᱟᱨ ᱞᱮᱠᱟᱱ "ᱵᱟᱝ", ᱡᱟᱦᱟᱸ ᱫᱚ ᱮᱴᱟᱜ ᱠᱚ ᱫᱚ ᱵᱟᱝ ᱠᱟᱱᱟ ᱠᱚ ᱟᱨ ᱮᱴᱟᱜ ᱠᱚ ᱫᱚ "ᱵᱟᱝ ᱴᱷᱤᱠ" ᱫᱚ ᱵᱟᱝ ᱠᱟᱱᱟ ᱾ ᱚᱱᱟᱛᱮ, ᱱᱳᱴ ᱫᱚ ᱱᱳᱰ {}}}} ᱘.᱘ ᱨᱮᱭᱟᱜ ᱥᱟᱹᱨᱤ ᱜᱩᱱ ᱠᱟᱱᱟ ᱡᱟᱦᱟᱸ ᱫᱚ ᱥᱴᱨᱤᱝ ᱫᱚ ᱵᱟᱝ ᱧᱮᱞᱚᱜ-ᱟ ᱾

ᱢᱮᱥᱮᱡᱽ ᱫᱚ ᱜᱞᱩᱠᱚᱡᱽ ᱨᱮᱭᱟᱜ ᱵᱮᱵᱷᱟᱨ ᱠᱟᱛᱮ ᱦᱚᱸ ᱧᱮᱞᱚᱜ ᱠᱟᱱᱟ ᱟᱨ ᱥᱠᱨᱤᱱᱤᱝ ᱨᱮᱭᱟᱜ ᱫᱟᱲᱮ ᱫᱚ ᱜᱞᱩᱠᱚᱡᱽ ᱨᱮᱭᱟᱜ ᱵᱮᱵᱷᱟᱨ ᱠᱟᱱᱟ ᱾ The difference between it and the self-capacitance screen is that capacitance will be formed where two sets of electrodes intersect, that is, these two sets of electrodes constitute the two poles of the capacitance respectively. ᱛᱤᱱ ᱨᱮ ᱠᱟᱹᱴᱩᱵ ᱠᱚ ᱡᱚᱴᱮᱫ ᱛᱟᱦᱮᱱᱟᱮᱠᱥ-ᱨᱮ, ᱵᱟᱱᱟᱨ ᱛᱟᱞᱟ ᱨᱮ, ᱱᱚᱣᱟ ᱫᱚ ᱵᱟᱱᱟᱨ ᱯᱟᱦᱴᱟ ᱨᱮ ᱵᱚᱫᱚᱞ ᱨᱮᱭᱟᱜ ᱫᱟᱲᱮ ᱩᱫᱩᱜ ᱮᱫᱟᱭ, ᱡᱟᱦᱟᱸ ᱫᱚ ᱠᱟᱨᱵᱚᱦᱟᱭᱰᱨᱮᱴ ᱨᱮᱭᱟᱜ ᱛᱟᱞᱟ ᱨᱮ ᱵᱚᱫᱚᱞ ᱠᱟᱱᱟ᱾ ᱛᱤᱱ ᱨᱮ ᱤᱞᱮᱠᱴᱨᱚᱱ ᱥᱤᱜᱽᱱᱟᱞ ᱠᱚ ᱫᱚ , extion lạgit̕ lạgit̕ lạgit̕ lạgit̕ lạgit̕ lạgit̕ lạgit̕ lạgit̕ lạgit̕ lạgit̕ lạgit̕ lạgit̕ lạgit̕ lạgit̕ lạgit̕ lạgit̕ kana, ᱟᱨ extive of official of official ᱫᱚ ᱩᱫᱩᱜ ᱠᱟᱱᱟ. ᱱᱚᱝᱠᱟ ᱞᱮᱠᱟᱛᱮ, ᱢᱮᱴᱨᱤᱠᱥ ᱟᱨ ᱢᱮᱴᱨᱤᱠᱥ ᱫᱚ ᱢᱮᱴᱨᱤᱠᱥ ᱨᱮᱭᱟᱜ ᱢᱤᱫ ᱯᱟᱦᱴᱟ ᱠᱟᱱᱟ, ᱡᱟᱦᱟᱸ ᱫᱚ 2 kg a lạgit̕ kạmi lạgit̕ kạmi lạgit̕ kạmi lạgit̕ kạmi lạgit̕ kạmi lạgit̕ kana, ᱡᱟᱦᱟᱸ ᱫᱚ extions lạgit̕ kana lạgit̕ kạmi kạmi lạgit̕ kạmi lạgit̕ kạmi ᱠᱟᱱᱟ᱾ ᱵᱟᱨ ᱞᱮᱠᱟᱱ ᱯᱚᱨᱴᱮᱵᱟᱞ ᱰᱟᱴᱟ ᱨᱮᱭᱟᱜ ᱢᱤᱫ ᱣᱮᱨᱭᱟᱵᱚᱞ ᱫᱚ 4 × 1 ᱵᱷᱮᱞᱭᱩ ᱩᱫᱩᱜ ᱠᱟᱱᱟ, ᱚᱱᱟ ᱫᱚ ᱥᱟᱱᱟᱢ ᱠᱚ ᱢᱤᱫ ᱞᱮᱠᱟ ᱛᱮ ᱵᱚᱫᱚᱞ ᱨᱮᱭᱟᱜ ᱡᱚᱥ ᱠᱚ ᱩᱫᱩᱜ ᱮᱫᱟ᱾ ᱚᱱᱟᱛᱮ, ᱱᱚᱣᱟ ᱫᱚ ᱟᱞᱜᱟ ᱜᱮᱭᱟ, ᱪᱮᱫᱟᱜ ᱥᱮ ᱚᱱᱟ ᱫᱚ ᱮᱴᱟᱜ ᱠᱚ ᱥᱟᱶ ᱡᱚᱲᱟᱣ ᱢᱮᱱᱟᱜᱼᱟ ᱪᱮᱫᱟᱜ ᱥᱮ ᱚᱱᱟ ᱫᱚ ᱯᱚᱭᱮᱱᱴ ᱠᱚ ᱥᱟᱶ ᱡᱚᱲᱟᱣ ᱨᱮᱭᱟᱜ ᱛᱮᱞᱟ ᱠᱟᱱᱟ᱾

ᱵᱷᱮᱜᱟᱨ ᱵᱷᱮᱜᱟᱨ ᱫᱚ ᱢᱤᱫ ᱫᱷᱟᱣ ᱟᱨ ᱚᱱᱟ ᱨᱮᱭᱟᱜ ᱜᱩᱱ ᱠᱚ ᱛᱟᱞᱟ ᱨᱮ ᱵᱮᱜᱟᱨ ᱠᱟᱱᱟ, ᱟᱨ ᱱᱚᱶᱟ ᱫᱚ ᱢᱤᱫ ᱫᱷᱟᱣ ᱜᱮ ᱧᱮᱞᱚᱜ ᱠᱟᱱᱟ ᱡᱮ ᱱᱚᱶᱟ ᱫᱚ ᱟᱹᱰᱤ ᱜᱟᱱ ᱚᱠᱛᱚ ᱨᱮ ᱦᱩᱭᱩᱜ ᱠᱟᱱᱟ᱾ ᱧᱮᱞᱚᱜ ᱠᱟᱱ ᱞᱮᱠᱟ ᱫᱚ ᱵᱟᱝ ᱠᱟᱱᱟ ᱡᱮ 1.5 ᱫᱚ ᱟᱹᱰᱤ ᱜᱟᱱ ᱥᱤᱜᱽᱱᱟᱞ ᱠᱚ ᱧᱮᱞ ᱫᱟᱲᱮᱭᱟᱜ-ᱟ, ᱢᱮᱱᱠᱷᱟᱱ ᱚᱱᱟ ᱫᱚ ᱵᱟᱝ ᱵᱩᱡᱷᱟᱹᱣ ᱫᱟᱲᱮᱭᱟᱜ-ᱟ, ᱚᱱᱟ ᱫᱚ ᱵᱟᱝ ᱵᱩᱡᱷᱟᱹᱣ ᱫᱟᱲᱮᱭᱟᱜ-ᱟ᱾ ᱱᱚᱶᱟ ᱪᱷᱟᱰᱟ ᱠᱟᱛᱮ, ᱱᱚᱶᱟ ᱠᱚ ᱫᱚ ᱠᱚᱢ ᱫᱟᱢ ᱛᱮ ᱠᱚᱢ ᱟᱠᱟᱱᱟ, ᱟᱨ ᱱᱚᱶᱟ ᱠᱚ ᱢᱩᱫᱽ ᱨᱮ ᱢᱤᱫ ᱫᱷᱟᱣ ᱫᱚ 50% ᱠᱷᱚᱱ ᱠᱚᱢ ᱜᱮᱭᱟ, ᱚᱱᱟ ᱛᱮ ᱠᱚᱢ ᱫᱟᱲᱮ ᱫᱚ ᱠᱚᱢ ᱫᱟᱢ ᱛᱮ ᱵᱟᱝ ᱛᱟᱦᱮᱱ ᱠᱟᱱᱟ. ᱱᱚᱶᱟ ᱢᱚᱰᱮᱞ ᱫᱚ 1.5 kg kạmi lạgit̕ kạmi lạgit̕ kạmi lạgit̕ kạmi lạgit̕ kạmi lạgit̕ kạmi lạgit̕ kạmi lạgit̕ kạmi lạgit̕ kạmi lạgit̕ kạmi lạgit̕ kạmi lạgit̕ kạmi kạmi kana kạmi kana ᱟᱨ extio ar kạmi kana.

In any case, the touch position is determined by measuring the distribution of signal changes between the X electrode and the Y electrode, and then mathematical algorithms are used to process these changed signal levels to determine the XY coordinates of the touch point.