This Non-provisional application claims priority under 35 U.S.C. ยง119(a) on Patent Application No(s). 099141662 filed in Republic of China on Dec. 1, 2010, the entire contents of which are hereby incorporated by reference.
1. Field of Invention
The invention relates to a touch apparatus.
2. Related Art
With more and more queries for the multi-media information, the touch screen has been gradually used by users and takes the place of the mouse and keyboard as the input means. This is because that the touch screen is easy to operate and user-friendly, and it can reduce the spaces for configuration. The touch screen has been widely applied to various fields, such as the tourist guide system, automated teller machine (ATM), portable phone, notebook, POS (point of service) terminal and industrial control system.
As shown in
Before the touch apparatus 1 is touched by a finger, there exists a parasitic capacitance C7 between the detecting unit and the ground G, and there also exists a parasitic capacitance between the conductive layer and the electrical shielding layer (not shown). When the finger touches the touch apparatus 1, a capacitance (not shown) is formed at the touch substrate. In this case, the detecting unit 12 of the touch apparatus 1 transmits a driving signal to the conductive layers to detect the capacitance to obtain the touch position and touch status. However, the capacitance formed by touching the touch apparatus 1 is just dozens of picofarads (pF), but the parasitic capacitance C7 between the detecting unit 12 and the ground G and the parasitic capacitance between the electrical shielding layer and the conductive layer 12 are approximately from hundreds of picofarads to thousands of picofarads, so that the detection of the capacitance formed by touching the touch apparatus 1 is easily affected by the parasitic capacitance between the detecting unit 12 and the ground G and that between the electrical shielding layer and the conductive layers.
In view of the foregoing subject, an object of the invention is to provide a touch apparatus that can eliminate the influence of the parasitic capacitances.
To achieve the above object, a touch apparatus of the invention includes a touch unit, a detecting unit and a compensation unit. The touch unit includes a touch substrate and at least one conductive layer disposed to a side of the touch substrate. The detecting unit is electrically connected with the conductive layer of the touch unit and outputs a driving signal to the conductive layer. A first parasitic capacitance is formed between the detecting unit and a ground. The compensation unit is electrically connected with the detecting unit and the conductive layer of the touch unit and outputs a compensation signal to the first parasitic capacitance.
In one embodiment of the invention, the touch unit further includes an insulating layer which has a first side and a second side opposite to the first side. The conductive layer is disposed between the first side of the insulating layer and the touch substrate.
In one embodiment of the invention, the touch unit further has a second parasitic capacitance which is formed between the conductive layer and the second side of the insulating layer.
In one embodiment of the invention, the compensation signal output by the compensation unit outputs is also transmitted to the second parasitic capacitance.
In one embodiment of the invention, the touch unit further includes an electrical shielding layer, and the insulating layer is disposed between the conductive layer and the electrical shielding layer.
In one embodiment of the invention, the detecting unit includes a voltage-drop device, a retrieving device and an operation device. One end of the voltage-drop device is electrically connected with the touch unit. The input end of the retrieving device is electrically with two ends of the voltage-drop device. The operation device is electrically connected with the output end of the retrieving device.
In one embodiment of the invention, the compensation unit includes an energy storing device electrically connected with the detecting unit.
To achieve the above object, a touch apparatus of the invention includes a touch unit, a detecting unit and a first compensation unit. The touch unit includes a touch substrate, an electrical shielding layer and at least one conductive layer which is disposed between the touch substrate and the electrical shielding layer. The detecting unit is electrically connected with the conductive layer of the touch unit and outputs a driving signal to the conductive layer. The first compensation unit is electrically connected with the electrical shielding layer. A first parasitic capacitance is formed between the detecting unit and a ground, a second parasitic capacitance is formed between the conductive layer and the electrical shielding layer, and the compensation unit outputs a first compensation signal to the first parasitic capacitance and the second parasitic capacitance.
In one embodiment of the invention, the touch unit further includes at least one insulating layer which is disposed between the conductive layer and the electrical shielding layer.
In one embodiment of the invention, the detecting unit includes a voltage-drop device, a retrieving device and an operation device. One end of the voltage-drop device is electrically connected with the touch unit. The input end of the retrieving device is electrically with two ends of the voltage-drop device. The operation device is electrically connected with the output end of the retrieving device.
In one embodiment of the invention, the first compensation unit includes an energy storing device, which is electrically connected with the electrical shielding layer.
In one embodiment of the invention, the touch apparatus further includes a second compensation unit, which is electrically connected with the detecting unit and outputs a second compensation signal to the first parasitic capacitance and the second parasitic capacitance.
In one embodiment of the invention, the second compensation unit includes an energy storing device electrically connected with the detecting unit.
As mentioned above, the touch apparatus of the invention is configured with a compensation unit for outputting a compensation signal to charge the first and second parasitic capacitances to the full level. Accordingly, when the detecting unit detects the value and position of the capacitance formed by touching the touch apparatus, the detection of the capacitance can not be affected by the first and second parasitic capacitances due to their constant full level. Therefore, the touch apparatus of the invention can eliminate the influence of the parasitic capacitance, so as to enhance the accuracy of the detection of the touch position and touch status.
The invention will become more fully understood from the detailed description and accompanying drawings, which are given for illustration only, and thus are not limitative of the present invention, and wherein:
The present invention will be apparent from the following detailed description, which proceeds with reference to the accompanying drawings, wherein the same references relate to the same elements.
The touch unit 21 includes a touch substrate 211, at least one conductive layer 212 and at least one insulating layer 213. The conductive layer 212 is disposed to a side of the touch substrate 211. The conductive layer 212 includes a row conductive layer 212a (indicated by the continuous line in
The detecting unit 22 is electrically connected with the conductive layer 212 of the touch unit 21 and outputs a driving signal S1 to the conductive layer 212. There exists a first parasitic capacitance C1 between the detecting unit 22 and a ground G. Besides, the touch unit 21 further include a second parasitic capacitance C2 formed between the conductive layer 212 and the second side of the insulating layer 213. The detecting unit 22 includes a voltage-drop device 221, a retrieving device 222 and an operation device 223. One end of the voltage-drop device 221 is electrically connected with the touch unit 21, and the other end of the voltage-drop device 221 receives a power signal V1. The input end of the retrieving device 222 is electrically connected with two ends of the voltage-drop device 221. The retrieving device receives two voltage signals V2 and V3 according to the voltages of the two ends of the voltage-drop device 221 and compares the voltage signals V2 and V3 to output a voltage difference signal S2. The operation device 223 is electrically connected with the output end of the retrieving device 222, receives the voltage difference signal S2, and obtains the touch position and touch status according to the variation of the voltage difference signal S2. The structure of the detecting unit 22 is just for illustration but not for limiting the invention.
The compensation unit 23 is electrically connected with the touch unit 21 and the detecting unit 22, and receives a power signal V4 of alternating current (AC) and outputs a compensation signal S3 to the first parasitic capacitance C1 of the detecting unit 22 and the second parasitic capacitance C2 of the touch unit 21. In the embodiment, the compensation signal S3 transmitted by the compensation unit 23 can charge the first and second parasitic capacitances C1 and C2 to the full level. The compensation unit 23 can include at least one energy storing device 231 according to the practical need. In the embodiment, the compensation unit 23 includes an energy storing device 231, which is a capacitor here. One end of the energy storing device 231 is electrically connected with the conductive layer 212 and the detecting unit 22. The energy storing device 231 is utilized for separating the power signal V4 from the compensation signal S3. Besides, the direct current (DC) level of the power signal V4 is the same as that of the compensation signal S3, so that the compensation unit 23 can provide the compensation effect.
Referring to
The first compensation unit 24 is electrically connected with the electrical shielding layer 214 of the touch unit 21a, and receives a power signal V5 and outputs a first compensation signal S5 to compensate the first and second parasitic capacitances C1 and C2 of the detecting unit 22. Accordingly, the influence of the first and second parasitic capacitances C1 and C2 on the detection of the value and position of a capacitance C3 formed by touching the touch apparatus can be eliminated. In the embodiment, the compensation signal S5 output by the first compensation unit 24 can charge the first and second parasitic capacitances C1 and C2 to the full level. The compensation signal S5 can be synchronized with the driving signal S1, the driving signal S1 and the compensation signal S5 have the same frequency and phase, and the amplitude of the driving signal S1 is less or larger than that of the compensation signal S5. Besides, the first compensation unit 24 can include an energy storing device according to the practical need. In the embodiment, the first compensation unit 24 includes no energy storing device.
The second compensation unit 25 is electrically connected with the touch unit 21a and the detecting unit 22, and receives an AC power signal V6 and outputs a second compensation signal S6 to compensate the first parasitic capacitance C1 of the detecting unit 22 and the second parasitic capacitance C2 of the touch unit 21a. The compensation signal S6 can be synchronized with the driving signal S1, the driving signal S1 and the compensation signal S6 have the same frequency and phase, and the amplitude of the driving signal S1 is less or larger than that of the compensation signal S6. Accordingly, the influence of the first and second parasitic capacitances C1 and C2 on the detection of the value and position of the capacitance C3 formed by touching the touch apparatus can be eliminated. In the embodiment, the second compensation signal S6 output by the second compensation 25 can charge the first and second parasitic capacitances C1 and C2 to the full level. Besides, the second compensation unit 25 can include an energy storing device 251 according to the practical need. In the embodiment, the second compensation unit 25 includes an energy storing device 251, and one end of the energy storing device 251 is electrically connected with the conductive layer 212 of the touch unit 21a and the detecting unit 22. The energy storing device of the embodiment is preferably a capacitor.
In summary, the touch apparatus of the invention is configured with a compensation unit, which can output a compensation signal to charge the first and second parasitic capacitances to the full level. Accordingly, when the detecting unit detects the value and position of the capacitance formed by touching the touch apparatus, the detection of the capacitance can not be affected by the first and second parasitic capacitances due to their constant full level. Therefore, the touch apparatus of the invention can eliminate the influence of the parasitic capacitance, so as to enhance the accuracy of the detection of the touch position and touch status.
Although the invention has been described with reference to specific embodiments, this description is not meant to be construed in a limiting sense. Various modifications of the disclosed embodiments, as well as alternative embodiments, will be apparent to persons skilled in the art. It is, therefore, contemplated that the appended claims will cover all modifications that fall within the true scope of the invention.
Number | Date | Country | Kind |
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099141662 | Dec 2010 | TW | national |