This application claims priority to Taiwan Application Serial Number 109142119, filed Nov. 30, 2020, which is herein incorporated by reference in its entirety.
The present disclosure relates to a display device, especially a circuit and method for generating a touch feedback by a vibration circuit of a display panel.
With the rapid development of electronic technology, display devices are widely used in daily life, and have more and more functions. The touch function is a common basic function of the display device, which can be used to detect the position of the user's finger on the display panel and the contact pressure. In order to provide consumers with a more convenient operation mode, a major issue at present is that the display device has an interactive function that cooperates with the touch function.
One aspect of the present disclosure is a touch feedback method, comprising the following steps: detecting, by a touch circuit, a contact object with a display device and generating a detection signal; determining a displacement amplitude of the contact object according to the detection signal; driving a vibration circuit to make the vibration circuit vibrate in a first mode when the displacement amplitude is less than a displacement threshold; and driving the vibration circuit to make the vibration circuit vibrate in a second mode when the displacement amplitude is greater than the displacement threshold.
Another aspect of the present disclosure is a display device, comprising a display panel, a touch detection unit and a touch feedback unit. The touch detection unit is configured to detect a touch operation between the display device and a contact object to obtain a detection signal. The touch detection unit is further configured to determine a displacement amplitude of the contact object according to the detection signal. The touch detection unit is further configured to generate a first touch sensing signal when the displacement amplitude is less than a displacement threshold, and is further configured to generate a second touch sensing signal when the displacement amplitude is greater than the displacement threshold. The touch feedback unit is electrically coupled to the touch detection unit. The touch feedback unit is configured to receive the first touch sensing signal to drive a vibration circuit to vibrate in a first mode, and the touch feedback unit is further configured to receive the second touch sensing signal to drive the vibration circuit to vibrate in a second mode.
It is to be understood that both the foregoing general description and the following detailed description are by examples, and are intended to provide further explanation of the disclosure as claimed.
The present disclosure can be more fully understood by reading the following detailed description of the embodiment, with reference made to the accompanying drawings as follows:
For the embodiment below is described in detail with the accompanying drawings, embodiments are not provided to limit the scope of the present disclosure. Moreover, the operation of the described structure is not for limiting the order of implementation. Any device with equivalent functions that is produced from a structure formed by a recombination of elements is all covered by the scope of the present disclosure. Drawings are for the purpose of illustration only, and not plotted in accordance with the original size.
It will be understood that when an element is referred to as being “connected to” or “coupled to”, it can be directly connected or coupled to the other element or intervening elements may be present. In contrast, when an element to another element is referred to as being “directly connected” or “directly coupled,” there are no intervening elements present. As used herein, the term “and/or” includes an associated listed items or any and all combinations of more.
The touch detection unit 120 includes a touch circuit 121 and a detection controller 122. The touch circuit 121 is configured to detect a touch operation between the display device 100 and a contact object (e.g., the user's finger) to generate a detection signal corresponding to the touch operation (contact object). In some embodiment, the touch circuit 121 can be implemented as a touch panel, and is arranged above or below the display panel 112. That is, when the user's finger touches the display device 100, the finger touches the touch circuit 121 (touch panel), and the touch circuit 121 can detect the corresponding position of the finger, and obtains the position corresponding to the display panel 112. In some embodiments, the touch detection unit 120 is a capacitive touch technology, which determines the contact position by detecting changes in capacitance between multiple electrodes, but the present disclosure is not limited to this.
The detection controller 122 is electrically coupled to the touch circuit 121, and is configured to determine a displacement amplitude of the contact object according to the detection signal transmitted by the touch circuit 121. For example, determining whether the user's finger stays on the display panel 112, or slides on the display panel 112. The detection controller 122 generates different detection signals according to the determining result of the displacement amplitude. The detection method of the displacement amplitude will be explained in the subsequent paragraphs.
The touch feedback unit 130 includes a feedback controller 131 and a vibration circuit 132. The feedback controller 131 is electrically coupled to the detection controller 122 and the vibration circuit 132, and is configured to drive the vibration circuit 132 according to the detection signal transmitted by the detection controller 122. In one embodiment, the vibration circuit 132 is configured to generate at least two different axial (direction) vibrations.
The position of the vibration circuit 132 is adjacent to the display panel 112 to drive the display panel 112 to generate vibrations and feedback the vibrations to the contact object (e.g., the user's fingers).
In one embodiment, after determining the displacement amplitude of the contact object, the touch detection unit 120 further determine whether the displacement amplitude is greater than a displacement threshold. The displacement threshold may be a preset displacement distance, a displacement speed or a duration of the displacement. If the displacement amplitude is less than the displacement threshold, it represents that the contact object has not moved. At this time, the detection controller 122 will transmit the first touch sensing signal to the feedback controller 131, so that the feedback controller 131 controls the vibration circuit 132 to operate in the first mode according to the first touch sensing signal. On the other hand, if the displacement amplitude is greater than or equal to the displacement threshold, it represents that the contact object is moving on the display panel 112. At this time, the detection controller 122 will transmit the second touch sensing signal to the feedback controller 131, so that the feedback controller 131 controls the vibration circuit 132 to operate in the second mode according to the second touch sensing signal.
As mentioned above, when the vibration circuit 132 operates at the first mode and the second mode, the vibration circuit 132 generates vibration in different ways to present different feedback effects. In some embodiments, when the vibration circuit 132 operates at the first mode, the vibration circuit 132 vibrates along the first direction. When the vibration circuit 132 operates at the second mode, the vibration circuit 132 vibrates along the second direction. The first direction can be a horizontal direction parallel to the display panel 112, and the second direction can be a vertical direction perpendicular to the display panel 112. That is, the first direction and the second direction are orthogonal to each other, but the present disclosure is not limited to this.
On the other hand, the vibration circuit 132 can further change the vibration waveform or the vibration frequency according to different modes. For example, when the vibration circuit 132 is operating at the first mode, the detection controller 122 transmits the first touch sensing signal (e.g., a “no displacement” signal) to the feedback controller 131. The feedback controller 131 sets the driving signal at the first frequency according to the first touch sensing signal, and then outputs the driving signal to the vibration circuit 132. At this time, the vibration circuit 132 will vibrate with the first frequency as the vibration frequency and generate the vibration waveform. In contrast, when the vibration circuit 132 is operating at the second mode, the detection controller 122 transmits the second touch sensing signal (e.g., a “displacement” signal) to the feedback controller 131. The feedback controller 131 sets the driving signal at the second frequency according to the second touch sensing signal, and then outputs the driving signal to the vibration circuit 132. At this time, the vibration circuit 132 will vibrate with the second frequency as the vibration frequency and generate the vibration waveform. The first frequency and the second frequency are not the same, or are frequency sections of the first frequency and the second frequency do not overlap each other. The vibration frequency of the vibration circuit 132 is between 100 and 500 Hz. In some embodiments, the first frequency is between 100 and 300 Hz, and the second frequency is between 300 and 500 Hz.
In some embodiment, when the vibration circuit 132 operates at different modes, both of the vibration direction and the vibration frequency at different modes are different. For example, the vibration circuit 132 vibrates along the first direction with the first frequency at the first mode. The vibration circuit 132 vibrates along the second direction with the second frequency and in the second mode.
Referring to
As shown in vibration characteristics of
In above embodiments, when the vibration circuit 132 vibrates along the first direction D1 (w.g., the horizontal direction parallel to the display panel 112), it is the first mode; when the vibration circuit 132 vibrates along the second direction D2 (e.g., the vertical direction), it is the second mode. In some other embodiments, the vibration circuit 132 may have a third mode. For example, the vibration circuit 132 vibrates along the first direction D1 and the second direction D2, and the ratio of the vibration intensity is 1:2. This mixe vibration mode in different directions is used as the third mode.
With the vibration circuit 132 vibrating at different modes, when the user's finger touches the display panel 112, or slides on the display panel 112, there will be a different tactile sensation to simulate a special material (e.g., wood pattern, marble pattern).
In step S502, the touch circuit 121 transmits the detection signal to the detection controller 122 to calculate the displacement amplitude of the contact object. In some embodiment, the detection signal includes a coordinate position of the contact object. The detection controller 122 determines a change of the coordinate position within a detection time, and calculate the displacement speed and the displacement direction according to the change. In step S503, the detection controller 122 further determines whether the displacement amplitude is greater than the displacement threshold. In some other embodiments, the detection controller 122 generates the first touch sensing signal or the second touch sensing signal according to the displacement speed, so as to change the vibration frequency of the vibration circuit 132. For example, the faster the displacement speed, the higher the vibration frequency.
For example, during the detection time, if the coordinate position of the detection signal detected by the touch circuit 121 changes from (2,0) to (2.2,0), since the displacement distance is only 0.2 and the displacement amplitude is less than the displacement threshold (e.g., 1), the contact object can be regarded as not moving. Conversely, during the detection time, if the coordinate position of the detection signal detected by the touch circuit 121 changes from (2,0) to (15,0), since the displacement distance is 13, the displacement amplitude is greater than the threshold value, the contact object can be confirmed that sliding on the display panel 112.
In step S504, when the displacement amplitude is less than the displacement threshold, the detection controller 122 transmits the first touch sensing signal to the feedback controller 131, so that the feedback controller 131 sets the driving signal at the first frequency, and drives the vibration circuit 132 to operate at the first mode. The vibration circuit 132 will vibrate along the first direction.
In step S505, when the displacement amplitude is greater than the displacement threshold, the detection controller 122 transmits the second touch sensing signal to the feedback controller 131, so that the feedback controller 131 sets the driving signal at the second frequency, and drives the vibration circuit 132 to operate on at second mode. The vibration circuit 132 will vibrate along the second direction.
Referring to
As mentioned above, in some other embodiments, when the stop position of the contact object corresponds to the position of the icon 410 in the user interface 400, the feedback controller 131 generates the driving signal with the waveform in
In some embodiment, referring to
The present disclosure makes the touch feedback unit 130 to use a smaller number of vibration sources to achieve single point feedback and simulate texture feedback to generate multiple tactile feedback, so as to improve the interactive reality of the display device 100.
The elements, method steps, or technical features in the foregoing embodiments may be combined with each other, and are not limited to the order of the specification description or the order of the drawings in the present disclosure.
It will be apparent to those skilled in the art that various modifications and variations can be made to the structure of the present disclosure without departing from the scope or spirit of the present disclosure. In view of the foregoing, it is intended that the present disclosure cover modifications and variations of this present disclosure provided they fall within the scope of the following claims.
Number | Date | Country | Kind |
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109142119 | Nov 2020 | TW | national |