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Every part of your computer is the result of years of research and development. Parts that were once hand made at a cost of thousands of man-hours are now mass produced for a fraction of a rupee. Computer parts can be divided into two groups, hardware and software.
Hardware is any part of the computer that you can touch. The seeming miles of wires that get tangled on your desk, the CD drive, the monitor are all hardware. Software is a set of electronic instructions consisting of complex codes (Programs) that make the computer perform tasks. Windows is a software, so is any other program that runs on your computer.
Here we mentioned the brief details and topics available in the programmable logic controller book.TopicsPLC HistoryLadder Logic and RelaysPLC ProgrammingPLC OperationPLC hardware configurationsInput and outputs PLC typesElectrical wiring for inputs and outputsRelaysElectrical Ladder Diagrams and JIC wiring symbolsSensor wiring; switches, TTL, sourcing, sinkingProximity detection; contact switches, photo-optics, capacitive, inductive, and ultrasonicSolenoids, valves, and cylindersHydraulics and pneumaticsThe computer structure of a PLCThe sanity check, input, output, and logic scansStatus and memory typesLatches, timers, counters, and MCRsDesign examplesInternal memory locations are available and act like outputsControlLogix memory types; program and dataData types; output, input, status, bit, timer, counter, integer, floating-point, etc.Memory addresses; words, bits, data files, expressions, literal values, and indirect.if(typeof ez_ad_units!='undefined'){ez_ad_units.push([[300,250],'instrumentationtools_com-box-4','ezslot_21',260,'0','0'])};__ez_fad_position('div-gpt-ad-instrumentationtools_com-box-4-0');Shift registers, stacks, and sequencersProgram control; branching, looping, subroutines, temporary ends, and one-shotsInterrupts; timed, fault, and input-drivenImmediate inputs and outputsConversion of State diagrams using program subroutinesInstruction list (IL) opcodes and operationsConverting from ladder logic to ILThe Allen Bradley version of ILDescribing process control SFCsConversion of SFCs to ladder logicThe basic construction of FBDsThe relationship between ST and FBDsConstructing function blocks with structured textAnalog inputs and outputsif(typeof ez_ad_units!='undefined'){ez_ad_units.push([[336,280],'instrumentationtools_com-banner-1','ezslot_22',360,'0','0'])};__ez_fad_position('div-gpt-ad-instrumentationtools_com-banner-1-0');Analog I/O with a PLCFeedback control of continuous systemsControl of systems with logical actuatorsPID control with continuous actuatorsAnalysis of PID controlled systemsPID control with a PLCSerial communication and RS-232cASCII ladder logic functionsElectrical wiring issues; cabinet wiring and layout, grounding, enclosures, shielding, and inductive loads.ObjectivesKnow general PLC issuesTo be able to write simple ladder logic programsUnderstand the operation of a PLCif(typeof ez_ad_units!='undefined'){ez_ad_units.push([[300,250],'instrumentationtools_com-large-leaderboard-2','ezslot_24',550,'0','0'])};__ez_fad_position('div-gpt-ad-instrumentationtools_com-large-leaderboard-2-0');Be able to understand and design basic input and output wiring.Be able to produce industrial wiring diagrams.Understand the different types of sensor outputs.Know the basic sensor types and understand application issues.Be aware of various actuators available.Understand the operation of a PLC.Understand latches, timers, counters, and MCRs.To be able to select simple internal memory bits.To know the basic memory types availableTo be able to use addresses for locations in memoryTo understand shift registers, stacks, and sequencers.To understand program control statements.To understand the use of interrupts.To understand the operation of immediate input and output instructions.To be prepared to use the block transfer instruction later.Be able to apply the advanced function in ladder logic design.To learn the fundamentals of IL programming.To understand the relationship between ladder logic and IL programsTo be able to write functions in Structured Text programsTo understand the parallels between Ladder Logic and Structured TextTo understand the differences between Allen Bradley and the standardLearn to recognize parallel control problems.Be able to develop SFCs for a process.Be able to convert SFCs to ladder logic.To be able to write simple FBD programsTo understand the basics of conversion to and from analog values.Be able to use analog I/O on a PLC.To understand the concepts behind continuous controlBe able to control a system with logical actuatorsBe able to analyze and control system with a PID controllerTo understand serial communications with RS-232Be able to use serial communications with a PLCTo learn the major issues in designing controllers including; electrical schematics, panel layout, grounding, shielding, enclosures.Be able to select a hardware and software vendor.Be able to size a PLC to an applicationBe able to select needed hardware and software.
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There are total 11 parts PDF parts of this Tally Prime book. 9 Pars PDF cover all the relevant topics and 2 Annexure of Bill books. All the parts of Tally Prime Book PDF are provided below for free download. Book Name: Tally Prime with GST and PayrollAuthor : Ajay GuliaSuper Success Institute, Muzaffarnagar
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In computing, booting is the process of starting a computer as initiated via hardware such as a button or by a software command. After it is switched on, a computer's central processing unit (CPU) has no software in its main memory, so some process must load software into memory before it can be executed. This may be done by hardware or firmware in the CPU, or by a separate processor in the computer system.
Restarting a computer also is called rebooting, which can be "hard", e.g. after electrical power to the CPU is switched from off to on, or "soft", where the power is not cut. On some systems, a soft boot may optionally clear RAM to zero. Both hard and soft booting can be initiated by hardware such as a button press or by a software command. Booting is complete when the operative runtime system, typically the operating system and some applications,[nb 1] is attained.
Early computers in the 1940s and 1950s were one-of-a-kind engineering efforts that could take weeks to program and program loading was one of many problems that had to be solved. An early computer, ENIAC, had no program stored in memory, but was set up for each problem by a configuration of interconnecting cables. Bootstrapping did not apply to ENIAC, whose hardware configuration was ready for solving problems as soon as power was applied.
The first programmable computers for commercial sale, such as the UNIVAC I and the IBM 701[8] included features to make their operation simpler. They typically included instructions that performed a complete input or output operation. The same hardware logic could be used to load the contents of a punch card (the most typical ones) or other input media, such as a magnetic drum or magnetic tape, that contained a bootstrap program by pressing a single button. This booting concept was called a variety of names for IBM computers of the 1950s and early 1960s, but IBM used the term "Initial Program Load" with the IBM 7030 Stretch[9] and later used it for their mainframe lines, starting with the System/360 in 1964.
Following the older approach, the earlier PDP-1 has a hardware loader, such that an operator need only push the "load" switch to instruct the paper tape reader to load a program directly into core memory. The PDP-7,[25] PDP-9,[26] and PDP-15[27] successors to the PDP-4 have an added Read-In button to read a program in from paper tape and jump to it. The Data General Supernova used front panel switches to cause the computer to automatically load instructions into memory from a device specified by the front panel's data switches, and then jump to loaded code.[28] 2b1af7f3a8