The present disclosure relates to capacitance sensors and in an exemplary use, to determine anomalies in fluids.
Fluids such as water must be monitored for contamination from time to time. In an example, pure water may be monitored for contamination by any foreign substance. In some situations, it is desirable to report results instantly. For example, dialysis solutions must be monitored to prevent infections and other ill effects to patients. In industrial settings requiring ultra pure water, such as semiconductor manufacture, any contamination must be detected to prevent compromised semiconductor products. Pharmaceuticals must be monitored to assure requisite purity and sterility. Food and beverage preparation require detection of potential contamination by hazardous bacteria such as Listeria and E. coli.
Instrumentation has been provided for detecting contaminants Mere presence of a contaminant may be the object of monitoring. Alternatively, levels of a contaminant may require monitoring or the level of contamination must be known if it reaches a predetermined threshold.
Many types of sensors can respond to specific contaminants, or to levels of contaminants and concentrations of desired substances, but may not be able to detect all contaminant or concentration based anomalies which would establish an alarm condition.
There exists a need for a sensor which can instantly detect contaminants or alternatively, unacceptable levels of contaminants and otherwise desired substances in a fluid. It is further desirable to provide a universal sensor which can detect many different contaminants and levels of substances and report the same expeditiously. It is still further desirable that such a universal sensor be non-invasive relative to a system being monitored.
The disclosed concepts address the above stated situation by providing a sensor which responds to contaminants and undesirable concentrations of substances in a fluid. The disclosed sensor and related methods enable instantaneous detection and reporting. The disclosed sensor and related methods enable non-invasive monitoring of fluid conduits and containers.
To these ends, there is provided a capacitance sensor capable of being placed in contact with a monitored fluid. The sensor includes a flexible, interdigitated array of electrodes, with a minimally complex electronic control circuit located nearby. The control circuit may include a frequency meter, a resistance capacitance oscillator, a display, and a microcontroller to manage these components.
The flexible array of electrodes enables the electrodes to be placed advantageously within a tubular conduit, or otherwise in intimate contact with fluids being monitored.
The novel capacitance sensor can be used to monitor any departure from a predetermined capacitance value/contamination level, and signal such departure immediately. This is useful for example in any system using pure water, such as in medical applications, contamination sensitive manufacturing, and others. Upon receipt of an alarm signal indicating departure from the predetermined capacitance value, corrective measures may be employed with minimal response time.
Application of the novel capacitance sensor need not be limited to a pure fluid. For example, in sewage treatment, the fluid may be contain contaminants in known concentrations. Such a condition would be indicative of the system operating as intended. However, any discrepancy from the known concentrations could trigger an alarm signal, with corrective actions being initiated before consequences of the discrepancy could cause significant damage to system operation.
It is an object to provide improved elements and arrangements thereof by apparatus for the purposes described which is inexpensive, dependable, and fully effective in accomplishing its intended purposes.
These and other objects will become readily apparent upon further review of the following specification and drawings.
Various objects, features, and attendant advantages of the disclosed concepts will become more fully appreciated as the same becomes better understood when considered in conjunction with the accompanying drawings, in which like reference characters designate the same or similar parts throughout the several views, and wherein:
In the following description, numerous specific details are set forth in order to provide an understanding of the present invention. It will be apparent, however, to one skilled in the art that the present invention may be practiced without these specific details. In other instances, well known components or methods have not been described in detail but rather in a block diagram in order to avoid unnecessarily obscuring the present invention. Thus, the specific details set forth are merely exemplary. The specific details may be varied from and still be contemplated to be within the spirit and scope of the present invention.
Referring first to
Control circuit 102 comprises a source of electrical input signals (e.g., RC (Resistance-Capacitor) (oscillator 118) connected to electrodes 106, a frequency meter 120 in frequency sensing relation to the two electrodes, a display 122 for annunciating capacitance values, and a microcontroller 124 arranged to process capacitance signals from frequency meter 120 and to generate responsively signals indicative of determined capacitance values from the capacitance signals. Resistance capacitance oscillator 118 may be arranged to establish a predetermined frequency of the electrical input signals. The source of electrical input signals may comprise frequency meter 120 arranged to sense frequency of capacitance output signals from electrodes 106. Control circuit 102 may further comprise a communications interface 126 capable of transmitting communications signals indicative of the capacitance output signals to a remote data handling device (not shown). Data interface 126 may be connected to microcontroller 124 and configured to transmit data corresponding to the signals indicative of determined capacitance values from microcontroller 124 to the remote data handling device using at least one of Bluetooth, an RS232 standard, a universal serial bus (USB), Wi-Fi, or Ethernet or any other communication system. An exemplary partial layout of control circuit 102 is shown in
Also referring now to
Flexible substrate 104 bearing the two electrodes may be rectangular in plan view when laid on a flat surface (
Turning now to
It will be appreciated that control circuit 102 and flexible substrate 104 and its electrodes 106 may be compactly realized if mounted on a single substrate such as planar supporting substrate 130. In alternative constructions, any of RC oscillator 118, frequency meter 120, display 122, microcontroller 124, and interface 126 may be located remotely from others of these listed components, and may be connected by hard wiring.
Capacitance sensor 100 may be utilized in a method of rapidly determining an unacceptable parameter of water within a vessel (e.g., vessel 10) having an internal configuration. As employed herein, rapidly means within a one second time interval. The method may comprise the steps of establishing a predetermined capacitance value for pure water, using capacitance sensor 100 having flexible substrate 104 bearing interdigitated electrodes 106, forming flexible substrate 104 and interdigitated electrodes 106 into a configuration complementing that of the vessel and inserting flexible substrate 104 and interdigitated electrodes 106 into the vessel in contact with internal surfaces of the vessel, and monitoring capacitance of fluid flowing in the vessel for a discrepancy from the predetermined capacitance value of pure water. The method may further comprise issuing a signal immediately, responsive to detecting the discrepancy from the predetermined capacitance value of pure water.
In this method, when the vessel comprises a cylindrical annular tube, the step of forming flexible substrate 104 and interdigitated electrodes 106 into a configuration complementing that of the vessel comprises forming flexible substrate 104 and interdigitated electrodes 106 into a generally cylindrical configuration of dimensions just less than those of the cylindrical annular tube. The term “generally cylindrical” signifies that the outside and inside surfaces of flexible substrate 104 take on the contour of a cylinder, but do not necessarily complete the cylindrical shape. For example, and referring specifically to
It will be noted in
Symbols used in the various drawing Figures, if not explicitly described herein, retain their conventional meanings as used in the field of electrical circuit graphics used for general purpose industrial practice.
In this application, characteristics are recited with the understanding that prevailing conditions are those of ordinary use of the described subject matter. Therefore, although characteristics could change given circumstances other than the ordinary intended usage of the novel apparatus or method, such changes are to be ignored.
While the disclosed concepts have been described in connection with what is considered the most practical and preferred implementation, it is to be understood that the disclosed concepts are not to be limited to the disclosed arrangements, but are intended to cover various arrangements which are included within the spirit and scope of the broadest possible interpretation of the appended claims so as to encompass all modifications and equivalent arrangements which are possible.