CROSS-REFERENCE TO RELATED APPLICATION
This application claims the benefit of Taiwan Patent Application No. 101142847, filed on Nov. 16, 2012, which is hereby incorporated by reference for all purposes as if fully set forth herein.
1. Field of Invention
The present invention relates to a sensing device capable of converting optical energy into electrical energy as an independent power source, and more particularly to a sensing device that is applicable to a greenhouse having a stable illuminant and is capable of generating electrical energy as a power supply through optical-to-electrical conversion so as to perform sensing operations without batteries or external power sources.
2. Related Art
In the prior art, in greenhouse, to know changes in the cultivation environment of the greenhouse and to analyze the growing condition of the plants, sensors are arranged at many places of the cultivation environment. However, the sensors require power sources, and it is complex for disposing power lines and communication lines when the sensors are configured at various places of the site, causing inconvenience to configuration and maintenance. Therefore, manufacturers mostly use wireless sensors instead to reduce above problem. However, when the wireless sensor is used, a battery or electrical energy storage for power supply must be configured in the wireless sensor. As a result, checking if the wireless sensor operates normally by the manufacturers needs to do periodically or within the shortest service life of the power supply component through any detection means. IF the wireless sensor is unable to operate normally, an operation of replacing the battery, the power-saving component, or the wireless sensor must be performed. Since there are numerous wireless sensors, each wireless sensor is arranged at a different position, and states of the batteries or electrical energy storages for all wireless sensor are different, the operation is quite complicated and inconvenient. If periodical full replacement is adopted, the cost is increased. Therefore, a solution to the problem of checking and replacing power sources is required in the industry.
The technical aim of the present invention is to provide a sensing device, which generates, through optical-to-electrical conversion, electrical energy for independent operation so as to perform sensing operations.
To achieve the above objective, the present invention provides a sensing device capable of converting optical energy into electrical energy, which comprises an optical-to-electrical conversion module, a power regulation module, a sensing module, and a processing module. The optical-to-electrical conversion module is used for converting optical energy into electrical energy. The power regulation module is used for adjusting the electrical energy to generate a power supply specification. The sensing module performs a sensing operation according to the electrical energy to generate a sensing signal. The processing module performs a processing operation on the sensing signal according to the electrical energy.
The present invention further provides a method for converting optical energy into electrical energy of a sensing device, which comprises: an optical-to-electrical conversion module converting optical energy into electrical energy; a sensing module performing a sensing operation to generate a sensing signal when obtaining the electrical energy; and a processing module performing a processing operation on the sensing signal when obtaining the electrical energy.
The sensing device provided in the present invention can operate under a illuminant, so the sensing device does not need to be provided with a power source, for example, provided with a power cord or equipped with a battery or a electrical energy storag, thereby reducing the overall setup cost and subsequent maintenance labor cost. The present invention is especially applicable to a site having a large number of stable illuminants, for example, a greenhouse having artificial illuminants. In addition, in the present invention, with the electrical energy adjustment capability of the power regulation module, power can be supplied to elements of the whole sensing device efficiently so as to improve the operating performance of the sensing device. Further, in the present invention, multiple sensing modules can be connected through the power regulation module to perform sensing operations so as to reduce the setup cost.
The present invention will become more fully understood from the detailed description given herein below for illustration only, and thus are not limitative of the present invention, and wherein:
Embodiments of the present invention are described in detail below with reference to the accompanying drawings.
Referring to
The optical-to-electrical conversion module 13 needs to be configured at a place that can be irradiated by light emitted from a illuminant. The illuminant may be a natural illuminant or an artificial illuminant device 20 configured in an indoor climate. The natural illuminant is, for example, the sun, and the artificial illuminant device 20 is, for example, a fluorescent lamp, a bulb, or a light emitting apparatus, device or component capable of emitting certain optical energy. The optical-to-electrical conversion module 13 may be a solar panel, a solar cell, or any optical-to-electrical converter or component having optical-to-electrical conversion capability. Upon receiving light emitted from the illuminant, the optical-to-electrical conversion module 13 converts optical energy into electrical energy.
The power regulation module 14 is connected to the optical-to-electrical conversion module 13, obtains the electrical energy converted by the optical-to-electrical conversion module 13, and adjusts the obtained power to generate a power supply specification. The power supply specification meets or exceeds the power requirement for operation of all elements of the sensing device 10, or meets the minimum power supply for operation of elements required to be used in different working periods during the operation of the sensing device 10, and at least meets the power supply requirement for the sensing module and the processing module 15. The adjusted electrical energy complies with the power supply specification.
The power regulation module 14 may be one of an analog-to-digital conversion unit, a digital-to-analog conversion unit, a voltage regulation unit, a rectification unit, a filtering unit, and a signal amplification unit or any combination thereof, which depends on the manner in which the designer adjusts the electrical energy to meet the requirement of the power supply specification, and is not limited.
The first sensing module 11 is connected to the power regulation module 14 to obtain the electrical energy, and may perform a sensing operation according to the obtained electrical energy when it is necessary to perform the sensing operation. According to the type of the first sensing module 11, the first sensing module 11 performs a corresponding sensing operation. For example, the first sensing module 11 may be any type of sensing module for sensing air composition, soil composition, temperature, humidity, illuminance, PH (power of hydrogen ions), light, infrared, body temperature, concentration of carbon dioxide, carbon monoxide, or oxygen, or sound of the environment.
Further, the first sensing module 11 may include more than one sensing element, for example, a combination of three sensing elements of temperature, humidity, and illuminance, for getting sense more than one environmental sensing value (of the same type or different types) at a time so as to generate one or more first sensing signals.
In some other embodiments, the sensing device 10 may further include a second sensing module 12 (not shown in
After obtaining the electrical energy, the processing module 15 starts to receive the first sensing signal transmitted from the first sensing module 11 and perform a first processing operation on the received first sensing signal. The first processing operation may be analyzing the first sensing signal to generate an environmental sensing analysis result, or sampling the first sensing signal to extract a required sample signal, or compressing the signal by a compression means, or temporarily storing the first sensing signal in the space of a memory built in the sensing device 10 or in the processing module 15. However, the first processing operation may include one of analysis, sampling, compression, and storage, or any combination thereof, which is not limited and depends on the requirement of the designer. Moreover, a currently known data compression means is used, which is not described herein.
When the sensing device 10 includes the second sensing module 12, the processing module 15 also receives the second sensing signal transmitted from the second sensing module 12, and performs a second processing operation on the received second sensing signal. The second processing operation also includes one of analysis, sampling, compression, and storage, or any combination thereof. Moreover, the first processing operation and the second processing operation may be the same or different technical means, depending on the requirement of the designer.
Further, after obtaining the electrical energy, the first sensing module 11 may perform the sensing operation and transmit the first sensing signal to the processing module 15 spontaneously according to the design. For example, the sensing operation is performed by setting a sensing time table or according to a fixed time interval. In some other specific embodiments, the sensing time table or the fixed time interval may be stored in the processing module 15, and then the processing module 15 generatess a start signal according to the sensing time table or the fixed time interval and transfers the start signal to the first sensing module 11, so that the first sensing module 11 may perform the sensing operation continuously or discontinuously.
After obtaining the electrical energy, the second sensing module 12 may perform the sensing operation and transmit the second sensing signal to the processing module 15 spontaneously according to the design. Moreover, the second sensing module 12 may perform the sensing operation continuously or discontinuously.
Alternatively, after obtaining the electrical energy, the processing module 15 sends a control signal to the first sensing module 11 and the second sensing module 12 at decided tome to control the time at which the first sensing module 11 and the second sensing module 12 perform the sensing operations.
Referring to
Further, the electrical energy storage 16 continuously stores the electrical energy, and supplies power to the power regulation module 14 when the electrical energy storage stores a default quantity of the electrical energy. The default quantity of the electrical energy is a necessary quantity of the electrical energy for operation of the sensing module and the processing module 15, preventing the operation of the sensing module and the processing module 15 from interruption due to low battery or electricity shortage. When the stored electrical energy is lower than the default quantity of the electrical energy, the electrical energy storage 16 suspends power supply and does not supply power until the electrical energy storage stores a default quantity of the electrical energy.
Referring to
In some other embodiments,
Referring to
An optical-to-electrical conversion module 13 converts optical energy into electrical energy (Step S110). The optical-to-electrical conversion module 13 is configured at a place that can be irradiated by light emitted from a illuminant (a natural illuminant or an artificial illuminant device 20), and converts optical energy into electrical energy upon receiving light emitted from the illuminant.
A sensing module performs a sensing operation to generate a sensing signal when obtaining the electrical energy (Step S 120). As described above, a first sensing module 11 performs a sensing operation to generate a first sensing signal when obtaining the electrical energy. The first sensing signal is transmitted to a processing module 15.
A processing module 15 performs a processing operation on the sensing signal when obtaining the electrical energy (Step S130). As described above, when obtaining the electrical energy, the processing module 15 starts operation to receive a first sensing signal and a second sensing signal, perform a first processing operation on the first sensing signal, and perform a second sensing operation on the second sensing signal.
The processing module 15 performs the processing operation on the sensing signal to generate a processing result (Step S140). The processing module 15 generates a processing result after processing at least one of the first sensing signal and the second sensing signal, and transmits the processing result to a terminal device 30 through a transmission module 17 (Step S150), so that the terminal device 30 performs a corresponding operation according to the processing result.
Referring to
Further, after Step S110 and before Step S116, a electrical energy storage 16 may store the electrical energy and supply power to the sensing module and the processing module 15. This step includes the following steps. First, the electrical energy storage 16 stores the electrical energy (Step S112). Then, it is determined whether the electrical energy storage stores a default quantity of the electrical energy (Step S113). When the electrical energy storage stores a default quantity of the electrical energy, the electrical energy storage 16 supplies power to the sensing module and the processing module 15 (Step S114). As a result, the default quantity of the electrical energy is a necessary quantity of the electrical energy for operation of the sensing module and the processing module 15. Taking
The invention being thus described, it will be obvious that the same may be varied in many ways. Such variations are not to be regarded as a departure from the spirit and scope of the invention, and all such modifications as would be obvious to one skilled in the art are intended to be included within the scope of the following claims.
Number | Date | Country | Kind |
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101142847 | Nov 2012 | TW | national |