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LM features logic level enable control and an error flag which signals whenever the output falls out of regulation. Input Supply Voltage note. Enable Input Voltage note.
Lead Temperature Soldering, 5 sec. T SOL. Storage Temperature Range. T STG. The maximum continuous supply voltage is 26V.
Operating Input Voltage. Operating Enable Input Voltage. Junction Temperature. LMT - X. LM - X. TO 3L.
BOX 1,EA. LMRS - X. REEL 2,EA. LMR - X. REEL EA. TO 5L. ADJ only. At maximum voltage 0. Knowing the maximum hardware scaling and the most recent AFE register values in relation to the full-scale input, the MCU routines are able to calculate the actual power measurements.
The application for the gateway is designed completely using C language. The flowchart for the application is shown in figure enclosed.
The directions of the GPIO pins are then set to accommodate the functionality used on the pin. For example the pins at which the relays were connected were chosen as outputs while the pins at which switches were connected were chosen as inputs.
These two serial ports are the ones at which our energy metering nodes are connected directly using UART.
Thus only after opening these ports, we would be able to access these ports. After then we read the previous configurations of the serial ports and set a new one to match our EMIC capability.
After successful loading of the calibration constants, we set a signal handler for emergency stopping the gateway server application.
Here we do all wise deallocation of the resources like server file descriptors, serial ports and all that we have used in our application.
As gateway is also responsible for storing the meter readings in a database, here we use sqlite database for storing the reading from the meter in a structured format.
If the database file was not there initially, it is created else it is opened. Now to implement parallelism in the gateway application, we implement three threads running three different applicational functionalities.
Here we initialize three threads. For the prototype demonstration, we have chosen Beaglebone black, a development board from Texas Instruments as the gateway processor.
It has been equipped with a minimum set of features to allow the user to experience the power of the processor and is not intended as a full development platform as many of the features and interfaces supplied by the processor are not accessible from the BeagleBone Black via onboard support of some interfaces.
BeagleBone Black is not a complete product designed to do any particular function. It is a foundation for experimentation and learning how to program the processor and to access the peripherals by the creation of your own software and hardware.
It also offers access to many of the interfaces and allows for the use of add-on boards called capes, to add many different combinations of features.
A user may also develop their own board or add their own circuit. This Application will be responsible for communication from gateway through Wi-Fi.
Then it will send command for specific data as required by user and then it will display the data send by gateway in different form.
There are various Buttons for various types of data to be displayed, on each click a specific command will be sent so that gateway will recognize that which data to be sent to user from Database.
This meter is smart in the sense that we can set a limit of energy consumption in the application the meter will send that limit to gateway, gateway will keep track of energy consumption on reaching that limit it will automatically turn OFF the appliances.
In the above picture we can see that Meter1 is enabled while Meter2 is not, thus we will be able to use buttons of meter 1 only; Buttons related to meter 2 are disabled to prevent them from accidental use.
Also there are three buttons to send commands for retrieving current usage data, data usage of previous weeks of current month and previous day data consumption.
The current usage will be shown on the same screen and the data that will be shown is Power, Voltage, Current, and Energy. The other commands will cause data to be displayed on different Activity in form of graphs.
At the bottom the text box is to set limit for monthly consumption, at button below that will show the Energy consumption of previous month. For showing data in form of graphs we have used Achartengine library Which we have to copy in libs folder of project and we have to add its graphical activity in our mainfest file.
We have used Achartengine because it is free, lite and supports various types of graphs. To send command and receive data we have used Stream Sockets, because in case of UDP sockets there may be chance that data may be lost which will cause application to behave abnormally.
Data sending and receiving is a time consuming process so for each communication a thread will be created, Communication will happen in its handler and results will be published by its runnable in main thread.
On close of each thread its socket will also be closed. TCP Sockets provide a reliable, bidirectional, byte-stream communication channel.
Bidirectional means that data may be transmitted in either direction between two sockets. Byte-stream means that, as with pipes, there is no concept of message boundaries.
Thus we should use. We have used here Threads, for each click to perform a network operation a thread will be created which will be responsible for data transfer.
Also for each thread we need to implement a handler and a runnable method. HANDLER- Handlers are used to schedule the actions in thread, in broad sense we can say that it queues the list of actions to be performed.
Or to enqueue an action to be performed on a different thread. The connections of other parts of the circuit like switches, relays and metering node to the gateway is shown in figure above.
Two energy metering nodes as described in section 2. The energy metering nodes receives its isolated power and non-isolate power from the gateway itself.
Because the EMIC works in direct connection with the mains power sensing circuitry, so all of its pins are being exposed to mains current.
Thus to make it not harm the gateway circuitry, optoisolator based isolation circuit is being provided and thus a safe IO connection is made to the gateway.
Both the RXD and TXD pins are galvanically isolated from the mains and thus the beaglebone circuit is well protected from any mains signal. Both the meters as well as the load control circuited are powered from the 5v rail of the beaglebone itself and the beaglebone receives its power from a 5v, 1A regulated DC supply.
The requests information from the energy node via wired communication as described above. Data is transmitted and received LSB first, with one startbit, eight data bits, and one stop bit.
The baud rate is defined in the SerialCtrl register. Afterchip reset, the default baud rate is , if MCLK is4. The baud rate is based on the contents ofbits BR in the SerialCtrl register.
Upon power-up, the CS requires an initial register configuration before executing power measurements. One of the key configurations is adjusting the system scaling for the power meter application.
The key scaling constants are identified through calibration and compensations performed at the power meter manufacturer.
Afterthe configuration and calibration constants are established, the calibration constants are downloaded during a normal power-on reset.
The application will start conversions and report power and input performance over time. During power conversions and calculations, the analog inputs are sampled at kHz, decimated down to 4kHzhigh-rate conversion cycles.
Signal conditioning is provided in the high-rate path gain, phase, and DC offset and in the lower rate path no load current RMS offset, AC offset, active and reactive power offset.
Now to fetch real time energy data from the energy nodes, the gateway has to follow a sequence of steps which are described in the section below:.
Increasing the energy consumption awareness in every household is an important step to make the user able to man- ages his energy consumption.
Thus users are able to learn the energy profile of each device and to identify the devices that consume most power at home. Based on this knowledge, users have the possibility to develop better strategies for saving energy costs.
Further, our system considers possible future changes in the energy market demonstrating novel functionalities for energy aware smart homes.
Users could then configure their smart devices to respond to these offers. As smart homes become even smarter, systems could learn over the time and calculate the most efficient ways to configure the home appliance or to provide users with recommendations on how to save energy.
A smart home application has to be developed in a user centric way and must not be purely technology-driven. It is a thin line between an effective, user - supporting home automation system and an annoying, overly intrusive one.
Now, after having a running prototype we will shift focus to user evaluations, to gain deeper knowledge on how to design energy efficient smart homes.
We also applied novel interaction techniques, which allow users to use their mobile phones as magic lenses to view the energy consumption of their appliances just by pointing gestures.
When users require more details or when they like to compare energy consumption between devices, they can easily transfer the information to a larger display such as a TV.
Users are also able to control the appliances such as turn on, off, start washing, play movie etc.
This seamless communication among devices allows users to interact with the appliances using various kinds of device types. Reply 1 year ago.
Hi Abishek, great project. I'm building a similar project with the CS and was curious as to what test equipment you used to do the phase compensation?
Given the App Note specifies using a full scale reference at pf 0. Can anyone please tell me how i calibrate my CS bare IC for V, 15A load, using W bulb as reference load dont have full load for calibration Thanks in advance.
Not gonna lie, you lost me around step 4. Thanks for sharing. Reply 5 years ago. Reply 3 years ago. Höherfrequente Details des aufgenommenen Quellsignals als die halbe Abtastrate, in diesem Fall also ca.
Um diese Werte in Zahlenform darstellen zu können, müssen sie zunächst durch Quantisierung, eine Form von Rundung, in ein festes Werte-Raster eingepasst werden.
JordanMackie you can get all data only of first byte, the second byte will be missing 4 lowest significant bits.
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