This application claims the priority benefit of Taiwan patent application number 110145305, filed on Dec. 3, 2021.
The present invention relates a hovering touch technology and more particularly to a hovering touch panel, which is provided with a plurality of hovering units, and uses the tips of the hovering sections to increase the strength of the surrounding electric field, so as to achieve the detection of objects farther from the hovering touch panel during hovering detection, which can apply mutual capacitance technology to achieve multi-point detection of hovering objects and overcome the problem that self-capacitance hovering detection can only perform single-point detection, and must switch to mutual capacitance detection when touching the touch panel.
The conventional touch panel is equipped with a sensing area on a substrate, and the sensing area is used to sense the signal of a human finger or a stylus to form a touch function. Most of the materials used in the sensing area use transparent electrodes (for example: indium tin oxide ITO). During operation, the user can touch and press the corresponding picture on the screen of the touch panel to achieve the function of touch input operation.
At present, touch technology can be divided into different types such as resistive type, capacitive induction type, infrared induction type, electromagnetic induction type, sonic induction type, etc. Among them, capacitive-sensitive touch panels are the most widely used. Its working principle is to use the capacitance formed between the plural transparent electrodes and the human body to cause the capacitance change of the transparent electrode itself to obtain the coordinates of the touch position. The capacitive sensing touch panel has many advantages, so it has been widely adopted.
In addition, hovering touch is a technology that is getting more and more attention from users nowadays. Because the user does not need to touch the surface of the touch panel, it has been applied to smartphones, tablets, notebook computers, as well as car input devices and other electronic products with screens. This technology allows users to operate without touching the screen with their fingers, keeping a certain distance from the screen. Hovering touch includes a variety of technologies, such as optical, electromagnetic, and capacitive. Since capacitive hovering touch is based on a general projected capacitive touch panel, it has an advantage in cost compared to other technologies. When the finger approaches but has not touched the touch panel, hover detection starts, and when the finger actually touches the touch panel, it switches to contact touch detection.
However, in order to obtain a better signal, the common capacitive hovering touch uses self-capacitance technology for hover detection. However, due to technical limitations of self-capacitance, it is difficult to perform multi-finger detection, and can only accurately detect the position of one finger.
Therefore, in view of the above-mentioned problems, the inventor collected relevant information, and after multiple evaluations and considerations, he designed such a hovering touch device.
It is therefore a main object of the present invention to provide a hovering touch panel, which comprises a plurality of driving lines, a plurality of sensing lines, and a plurality of hovering units. The driving lines extend along a first axis. The sensing lines extend along a second axis and intersect the driving lines respectively. The intersections of the driving lines and the sensing lines each form a respective intersected point. The hovering units are respectively set on the driving lines or the sensing lines between adjacent intersected points. Each hovering unit comprises an even number of linear hovering sections connected to the same point of each driving line or sensing line.
Preferably, the position where each hovering section is connected to each driving line or sensing; line is roughly located at the center point between any two intersected points.
Preferably, the angle between any two adjacent hovering sections is equal.
Preferably, each hovering section presents a central radial. arrangement, and the arrangement is symmetrically arranged on the left and right sides and the top and bottom sides.
Preferably, the distance between the tips of each two adjacent hovering sections of each hovering unit is between ⅕ and ⅘ of the distance between each two adjacent intersected points.
Preferably, the driving lines and the sensing lines are all straight lines, and the line width of the driving lines and the sensing lines is less than 2 mm.
Preferably, the hovering units, the driving lines, and the sensing lines are made of transparent conductive materials.
In order to achieve the above-mentioned objects and effect, the technical means adopted by the present invention and its structure, the preferred embodiment of the present invention is illustrated in detail as follows, and its features and functions are as follows, for the benefit of a complete understanding.
As shown in
As shown in
In this embodiment, the hovering touch panel 11 is an example of a common glass-film-film (GFF), and the driving lines 111 and the sensing lines 112 are respectively located on different layers of the hovering touch panel 11. But the actual implementation is not limited to this, and can be a combination of various glasses and films of the conventional touch panel.
In addition, in actual implementation, the driving lines 111 and the sensing lines 112 can also be arranged on the same layer, such as a common one-piece glass touch panel (One Glass Solution; OGS). There is insulation means between the driving lines and the sensing lines at the intersections.
Since the arrangement of the driving lines 111 and the sensing lines 112 is a familiar art in the field of touch technology, it will not be described in detail in this case.
In particular, as shown in
In actual operation, take
Considering the size of the fingers of an average person, this embodiment sets the distance d1 between the adjacent intersected points 113 as 10 mm, and the distance d2 between the tips 211 of any two adjacent hovering sections 21 of the hovering unit 2 is between 2 mm and 8 mm. It obtains better results.
Furthermore, in actual application, as shown in
As shown in
Similarly, as shown in
As shown in
The hovering touch panel 11 of this embodiment is equipped with the above-mentioned hovering units 2 and uses the tips 211. of the hovering sections 21 to increase the strength of the surrounding electric field, which can detect objects 3 with a greater distance from the hovering touch panel 11 during hovering detection. It can apply mutual capacitance technology to achieve the purpose of multi-point detection of hovering objects, which effectively overcomes the previous problem that self-capacitance hovering detection can only perform single-point detection, and must switch to mutual capacitance detection when touching the touch panel.
The above is only the preferred embodiment of the present invention, and the scope of the patent of the present invention is not limited thereby. Therefore, all simple modifications and equivalent structural changes made by using the description and schematic content of the present invention should be included in the patent scope of the present invention in the same way.
In summary, the above-mentioned hovering touch panel and hovering touch device of the present invention can indeed achieve their effects and purposes when used. Therefore, the present invention is an invention with excellent practicality. In order to meet the requirements of an invention patent application, I filed an application in accordance with the law. I hope that the examiner will grant this application as soon as possible to ensure the inventor's hard research and development. If there are any doubts, please don't hesitate to write instructions.
| Number | Date | Country | Kind |
|---|---|---|---|
| 110145305 | Dec 2021 | TW | national |