This application claims priority of Taiwanese Invention Patent Application No. 110117287, filed on May 13, 2021.
The disclosure relates to a system for measuring a physical quantity, and more particularly to a programmable multifunction pH measurement system based on mobile communication.
In chemistry, pH is a scale that indicates a concentration of hydrogen ions H+, and is the most common measurement standard for presenting acidity and alkalinity of a solution. A variety of pH measurement apparatuses have been developed to meet the needs of various fields.
Because different fields may have different needs in terms of pH measurement, differently designed conventional pH measurement apparatuses that are tailored toward the different needs, such as one-time measurement or continuous measurement, fixed-position measurement or handheld measurement, for data control, etc., are now available. However, no single apparatus has sufficient versatility to accommodate different needs of the pH measurement.
In addition, with the rapid advancement of technology in today's generation, measurement apparatuses that only provide measurement data alone can no longer meet the practical needs in data management, interpretation and analysis.
Therefore, an object of the disclosure is to provide a programmable multifunction pH measurement system that has high versatility and that can achieve efficient data management, interpretation and analysis via mobile communication.
According to the disclosure, the programmable multifunction pH measurement system based on mobile communication includes a measurement apparatus. The measurement apparatus includes a measuring instrument and a monitoring device. The measuring instrument includes a tube that defines an installation space, and a sensor rod that is disposed in the installation space and that is configured to sense a pH value of a measurement target. The monitoring device is detachably mounted to the measuring instrument, and includes a microcontroller that is communicatively connected to the sensor rod, an operation module that is electrically connected to the microcontroller and that is configured for operation by a user, a communication module that is electrically connected to the microcontroller, and a display module that is electrically connected to the microcontroller for displaying information provided by the microcontroller and related to a measurement of the pH value. The microcontroller is configured to receive the pH value from the sensor rod, is to be communicatively connected to mobile device through the communication module for providing the pH value to the mobile device based on a user operation performed on the operation module, and is to be communicatively connected to a server through the communication module for providing the pH value to the server based on another user operation performed on the operation module.
Other features and advantages of the disclosure will become apparent in the following detailed description of the embodiment (s) with reference to the accompanying drawings, of which:
Before the disclosure s described in greater detail, it should be noted that where considered appropriate, reference numerals or terminal portions of reference numerals have been repeated among the figures to indicate corresponding or analogous elements, which may optionally have similar characteristics.
Referring to
Further referring to
The handle 19 is rotatable between a storage position and a use position. In the storage position, the handle 19 is parallel to the tube 111. In the use position, the handle 19 is transverse or perpendicular to the tube 111, and a user can hold the handle 19 to perform handheld measurement, attach the handle 19 to other objects for positioning the measuring instrument 11, so as to perform long-term measurement. When the handle 19 is in the storage position, space required for accommodating the measuring instrument 11 may be reduced, thereby facilitating storage or carrying.
Referring to
The operation module 121 includes a DIP switch 151, an input button 152, an output button 153, a data-transmission button 154 and a reset button 155.
The DIP switch 151 is operable by the user to input one or more settings for the microcontroller 120, which is a programmable arithmetic and control unit in this embodiment. In some embodiments, the DIP switch 151 is used to set warning ranges for parameters (e.g., the measurement depth) related to the measurement of the pH value. When a parameter falls within the corresponding warning range, the microcontroller 120 may send the warning signal to the indicator light 162, so as to control the indicator light 162 to emit light. In this embodiment, the indicator light 162 includes a light emitting diode (LED) that emits green light (referred to as greed LED), and an LED that emits red light (referred to as red LED), where the greed LED and the red LED respectively correspond to a normal state (e.g., none of the parameters falls within the corresponding warning range) and a warning state (e.g., a parameter falls within the corresponding warning range).
The input button 152 is operable by a user to confirm input of the setting(s) (e.g., settings of the warning ranges) into the microcontroller 120. The output button 153 is operable by a user to make the microcontroller 120 control the display module 123 to display information related to the measurement or the pH value. The data-transmission button 154 is operable by a user to make the microcontroller 120 transmit data related to the pH value to the mobile device 2 and/or the server 3. The reset button 155 is operable by a user to reset the programmable multifunction pH measurement system to an initial state, so as to instantly resolve problems that may result from complex manual settings.
The satellite positioning module 124 is used to generate the location information of a measurement spot where the measurement is performed, and the distance sensor 125 is used to generate the depth information that advises the user of the measurement depth (e.g., a measurement depth in water, a measurement depth in soil, a measurement depth in food, etc.). The use of the distance sensor 125 can ensure the same measurement depth in different measurement environments, so as to facilitate analysis on data thus measured (e.g., pH values, referred to as measurement data hereinafter). Taking soil tests as an example, using the distance sensor 125 can make sure that the measurements are all performed at the same measurement depth in soil, so the precision of the subsequent analysis on the measurement data may be optimized.
Referring to
The mobile device 2 receives the measurement data (e.g., the pH values measured by the measurement apparatus 1) and the location information that is generated by the satellite positioning module 124 and that indicates the locations where the measurements were performed, and controls the display module 123 to graphically show the measurement data on an electronic map, as illustrated in
In addition, the application is configured in such as way that, when the mobile device 2 displays the data points on the electronic map, the user may directly select (e.g., by tapping on the touch screen) one or more of the data points to make the mobile device 2 show the measurement data corresponding to the data point(s), so the user can easily query the measurement data, can easily check multiple pieces of the measurement data together instead of checking the pieces of the measurement data individually, and can thus easily make a conclusion based on the pieces of the measurement data that are simultaneously shown on the electronic map. Because of the portability of the mobile device 2, it is convenient for the user to perform required operation (e.g., input settings for the microcontroller 120, querying the measurement data, etc.), and instant evaluation on the measurement data can be achieved. Furthermore, the mobile device 2 can be operated to configure a proper interface for data output in advance, thereby promoting efficiency for the entire measurement process.
The server 3 is communicatively connected to the microcontroller 120 through the communication module 122 for receiving the measurement data, and includes a host computer 31, and a database 32 that is electrically connected to the host computer 31. Although the server 3 is not portable like the mobile device 2, the server 3 may perform the same functions as the mobile device 2, such as inputting settings for microcontroller 120, controlling the measurement apparatus 11, monitoring the measurement, querying the measurement data, etc. Furthermore, when cooperating with the database 32 that may have historic data, a data management system and an interactive interface pre-established therein, the ability to perform relatively high-speed processing and handle a relatively large amount of data allows the host computer 31 to perform data integration and/or subsequent processing, so as to present the measurement data and the analysis result in a specific manner, thus promoting efficiency of data management and evaluation.
In this embodiment, the sensor unit 4 includes a temperature sensor 41 disposed to sense temperature of the measurement target, a conductivity sensor 42 disposed to sense electrical conductivity of the measurement target, a moisture sensor 43 disposed to sense moisture of the measurement target (e.g., soil moisture content), and a soil tensiometer 44 disposed to sense soil moisture tension of the measurement target (which can be converted into soil compactness) when the measuring target is soil. By virtue of the measurements performed by the sensor unit 4 in cooperation with the measurement of the pH value, a more comprehensive environmental inspection can be performed.
This disclosure further provides a second embodiment of the programmable multifunction pH measurement system based on mobile communication, which is similar to the first embodiment. Referring to
To sum up, in the embodiments of the programmable multifunction pH measurement system based on mobile communication according to this disclosure, the monitoring device 12 that is communicatively connected to the mobile device 2 and the server 3 enables the user to input the settings for the microcontroller 120 of the monitoring device 12, to control the operation of the monitoring device 12, to monitor the measurement performed by the measurement apparatus 11, and to query the measurement data through the mobile device 2 or the server 3 that is communicatively connected to the monitoring device 12, so as to facilitate instant integration of a large amount of the measurement data to generate graphical information for enhanced readability, and the user can thus easily derive conclusion from the measurement data. In addition, the handle 19 that is rotatable relative to the tube 111 promotes the versatility of the measurement apparatus 11 for different needs of measurements.
In the description above, for the purposes of explanation, numerous specific details have been set forth in order to provide a thorough understanding of the embodiment(s). It will be apparent, however, to one skilled in the art, that one or more other embodiments may be practiced without some of these specific details. It should also be appreciated that reference throughout this specification to “one embodiment,” “an embodiment,” an embodiment with an indication of an ordinal number and so forth means that a particular feature, structure, or characteristic may be included in the practice of the disclosure. It should be further appreciated that in the description, various features are sometimes grouped together in a single embodiment, figure, or description thereof for the purpose of streamlining the disclosure and aiding in the understanding of various inventive aspects, and that one or more features or specific details from one embodiment may be practiced together with one or more features or specific details from another embodiment, where appropriate, in the practice of the disclosure.
While the disclosure has been described in connection with what is (are) considered the exemplary embodiment(s), it is understood that this disclosure is not limited to the disclosed embodiment(s) but is intended to cover various arrangements included within the spirit and scope of the broadest interpretation so as to encompass ail such modifications and equivalent arrangements.
Number | Date | Country | Kind |
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110117287 | May 2021 | TW | national |