- Diy Capacitive Touch
- Capacitive Touch Keyboard Manual
- Capacitive Touch Keyboard Arduino
- Capacitive Touch Keyboard Software
A capacitive keyboard is a type of computer keyboard that uses a change of capacitance on the capacitor pad. The working of capacitive keyboard is similar to that of a typical touch screen smartphone. When we touch the screen, a small electrical charge is transferred from our body to this switch. This causes a change in the capacitance. These touch panels can have graphic overlays using plastics, glass or any non-conductive material. We can add our uniform-diffuse LED back lighting, audio feedback or custom mechanical enclosures. A great example of this capability of ours is the USB Capacitive Touch QWERTY keyboard shown here. The basic principle behind our method of touch sensing is that each piano “key” is sensor that can measure the electrical capacitance of a person’s body. The measurement will change as the user gets closer to the sensor and will spike dramatically when the user touches the sensor. A capacitive touch keyboard includes a sensor layer, ground plane, a flexible sensed body, and a sensing circuit. The sensor layer includes a substrate and a key sensing cell which disposed on the.
MANUFACTURER OF CUSTOM-MADE CAPACITIVE KEYBOARD
Capacitive touch keyboard Applications Claiming Priority (3) Application Number Priority Date Filing Date Title; US09/809,974 US6657616B2 (en) 2001-03-16: 2001-03-16: Capacitive touch keyboard CA 2376739 CA2376739A1 (en) 2001-03-16: 2002-03-13: Capacitive touch keyboard.
Capacitive sensing is a technology based on capacitive coupling which takes input as human body capacitance. This technology is used in a capacitive keyboard also known as Touch sense keyboard or capacitive sensing keyboard. A capacitive keyboard is a type of computer keyboard that uses a change of capacitance on the capacitor pad.
The working of capacitive keyboard is similar to that of a typical touch screen smartphone. When we touch the screen, a small electrical charge is transferred from our body to this switch. This causes a change in the capacitance. The switch then detects this change and responds with an appropriate command.
Backlighting on the glass provides capacitive sensing keyboards a beautiful and aesthetically appealing appearance with strong graphic clarity. Capacitive touch control switches do not require the user to touch the metal directly as a printed glass is placed on the PCB which can eliminate potential safety hazard. As it has no mechanical components, it doesn’t wear out easily and has a long lifespan. Capsense keyboard can be used where hand-hygiene is important as these keyboards are also easy to clean using disinfectants and thus reduces the risk of cross contamination.
Model: LP 3671 4 by 4 Capsense keypad
Multicolor backlight using LED
USB interface
Capsense Sensitivity upto 10 mm
Smart sense technique
Acrylic overlay
Total 16 capsense buttons
Dimensions : 100mm x 100 mm x 16.5mm
For detail drawing click here
Capsense Keyboard with RS232 Interface
Capacitive sensing is a technology based on capacitive coupling which takes input as human body capacitance. Capacitive sensors are used in many devices applications. Capacitive sensors are preferred for various applications due to their versatility, reliability and robustness, low cost, ease of implementation.
For detail drawing click here
Model: LP 3619
Full fledge keypad
This is a Capacitive touch sense keyboard .This computer compatible keyboard is equipped with QWERTY keypad layout having capacitive buttons.
Features:- Based on the Capacitive technology, with dedicated electronics.
Delivers full speed data output On USB.
Modern, attractive and smooth interface
Completely Backlight
Easy to clean
Robust built
No mechanical wear
Water sealed
Strong Graphic clarity
Color options available
Excellent Sensitivity
Wear Resistance
Application Areas : Excellent Sensitivity
Medical Industry
Security and Access Control
High-End Equipment with USB Output
Aerospace
Defense
Intelligence control
Capacitive touch interfaces
Consumer Electronics
LP3924 UV Lamp Panel
This is a fully controlling Capacitive touch sense keypad specially design for UV sterilization box. Smooth & user friendly touch keys are provided to set the timer for sterilization. Display & LED indication are provided.
Input Power Source – 230Vac 50Hz.
Output – Two relay output provided which can drive upto 2 UV lamp.
Easy installation.
Excellent Durability.
Very smooth touch interface provided to user for time setting.
Provision for Auto Cut-off When the Door Opens.
Timer setting available from 1 min to maximum 99 min.
Touch Panel Size - 450 mm X 60 mm
Application Areas: This can be used in sterilization box which is use for disinfecting home and office both. Just need to place all cash, files, car keys or any daily use items for 10-15 mins inside the chamber and disinfect them against corona.
For detail drawing click here
Model: LP 3836
LP3835 is a fifty two keys Advanced Customized flat key metal keyboard. This metal keyboard consists of AES 256 (Advanced Encryption Standard) with 256 bits of Symmetric key for data Encryption. It means that when a press is registered on any key, the data is transferred in encrypted format through a USB output to the end user which then needs to be decrypted in order to read.
For detail drawing click here
Diy Capacitive Touch
Capsense Keyboard EL Technology
Capacitive sensing is a technology based on capacitive coupling which takes input as human body capacitance. Capacitive sensors are used in many devices applications. Capacitive sensors are preferred for various applications due to their versatility, reliability and robustness, low cost, ease of implementation.
For detail drawing click here
Flexible Capsense Keyboard
Capacitive sensing is a technology based on capacitive coupling which takes input as human body capacitance. Capacitive sensors are used in many devices applications. Capacitive sensors are preferred for various applications due to their versatility, reliability and robustness, low cost, ease of implementation.
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1. Technical Field
This invention relates to touch sensors, and more particularly to rigid flat panel touch-sensitive sensors.
2. Background Information
Touch sensors or touch panels are used in various applications to replace conventional mechanical switches; e.g., kitchen stoves, microwave ovens, and the like. Unlike mechanical switches, these sensors contain no moving parts to break or wear out. Also, touch sensors are easily cleaned due to the lack of openings and cavities which tend to collect dirt and other contaminants.
Conventional capacitive touch sensing systems employ a passive form of detection. In such a sensor, a capacitive circuit is driven by a source signal. A key touch, representing a change to the circuit capacitance, results in attenuating the potential, and the resulting voltage level change indicates a key touch. This capacitive circuit is often implemented by the deposition of opposing conductive key pads to opposite sides of a dielectric element.
One problem with conventional sensors is that accumulation of foreign deposits on the key pads has the drawback of negating the effect of a touch by the user. Chemicals and abrasion of the exposed key pads may also degrade performance. Also, different dielectric characteristics, such as thickness and dielectric constant, often result in having to change or redesign the size of the key pads to achieve the same capacitance for a different dielectric element in identical applications.
Moreover, some known touch panels use a high impedance design which may cause the touch panel to malfunction when water or other liquids are present on the substrate. This presents a problem in areas where liquids are commonly found, such as a kitchen. Since the pads have a higher impedance than the water, the water acts as a conductor for the electric fields created by the touch pads. Thus, the electric fields follow the path of least resistance; i.e., the water. Also, due to the high impedance design, static electricity may cause the touch panel to malfunction. The static electricity is prevented from quickly dissipating because of the high touch pad impedance.
Also, many existing touch panels use additional elements, such as transistors, disposed integrally or proximate to each key pad, adding complexity to the touch sensor.
Thus, a need exists for an improved touch-sensitive sensor that addresses one or more of the drawbacks of the prior art.
According to an embodiment of this invention, a touch sensor detects manual contact by a user to actuate a controlled device. The touch sensor includes a substrate, an RF signal transmitter including a plurality of first conductors, and an RF signal receiver including a plurality of second conductors. The first and second conductors are located in spaced, interdigitated alignment with one another on the substrate, to form a key having a geometry which affords substantial coverage thereof by a human appendage. The RF signal receiver includes an RF signal amplifier electrically coupled to the second conductors. A processor is electrically coupled to the RF signal receiver to detect variations in signal strength corresponding to coverage of the key by a human appendage to selectively actuate the controlled device.
In another embodiment of the inventions, a touch sensor is provided to detect user contact to actuate a controlled device. The touch sensor includes a substrate, an RF signal transmitter including a RF signal generator and plurality of first conductors, and an RF signal receiver including a plurality of second conductors. The first and second conductors are disposed in spaced, interdigitated alignment with one another on the substrate, to form a key having a geometry which affords substantial coverage thereof by a human appendage. The RF signal receiver includes an RF signal amplifier electrically coupled to the second conductors. A processor is electrically coupled to the RF signal receiver to detect variations in signal strength corresponding to selective coverage of the key by a human appendage to selectively actuate the controlled device. The RF signal receiver receives a baseline signal when the first and second conductors are free from the coverage, and the RF signal receiver receives an activation signal which is discrete from the baseline signal upon the coverage. An absolute value of the activation signal is less than an absolute value of the baseline signal.
In a still further embodiment of the present invention, a method is provided for detecting manual contact by a user to actuate a controlled device. The method includes the steps of providing a substrate, providing an RF signal transmitter including a two or more first conductors, and providing an RF signal receiver including a two or more second conductors coupled to an RF signal amplifier. First and second conductors are located in spaced, interdigitated alignment with one another on the substrate, to form a key having a geometry which affords substantial coverage thereof by a human appendage. A processor is electrically coupled to the RF signal receiver. The processor is used to detect variations in signal strength corresponding to selective coverage of the key by a human appendage to selectively actuate the controlled device.
The above and other features and advantages of this invention will be more readily apparent from a reading of the following detailed description of various aspects of the invention taken in conjunction with the accompanying drawings, in which:
Referring to the figures set forth in the accompanying Drawings, the illustrative embodiments of the present invention will be described in detail hereinbelow. For clarity of exposition, like features shown in the accompanying drawings shall be indicated with like reference numerals and similar features as shown in alternate embodiments in the drawings shall be indicated with similar reference numerals.
Referring to
Specific aspects of an exemplary implementation of the present invention will be discussed in greater detail hereinbelow.
Referring to
Although the coupler
Capacitive Touch Keyboard Manual
During operation, in the absence of actuation by a user
Referring back to
The mechanism that results in such dampening is well known to those skilled in the art. Briefly described, when an object, such as a finger
The skilled artisan will recognize that amplifier
As also shown, the transistors are configured as a conventional common emitter amplifier. Resistor
Capacitive Touch Keyboard Arduino
The amplified signal is fed into a peak detector
The resulting DC signal is then fed into an A/D (analog to digital) converter
Capacitive Touch Keyboard Software
In the preceding specification, the invention has been described with reference to specific exemplary embodiments thereof. It will be evident that various modifications and changes may be made thereunto without departing from the broader spirit and scope of the invention as set forth in the claims that follow. The specification and drawings are accordingly to be regarded in an illustrative rather than restrictive sense.