Showing posts with label elektronic. Show all posts
Showing posts with label elektronic. Show all posts

Sunday, February 27, 2011

Digital Watch With Microcontrol

A complete range of Digital Clock is shown in Figure 1, equipped with 4 pieces of 7 segment LED display to display the time, consists of dozens of hours numbers, hours, tens of minutes and unit minutes. SW1 and SW2 button is used to set the display time, when SW1 is pressed on the display clock rate will increase every second, while SW2 is used to adjust the display digit minutes in the same way.

12 MHz crystal and capacitors C1 and C2 form a series of working frequency oscillator generating AT89C2051, this series is a series of raw, meaning that form the oscillator circuit is always like this for all series AT89C51, except for purposes other crystal values are probably different.

Sunday, February 6, 2011

Latest CellPhone 2011 GPS Technology

Latest CellPhone 2011 GPS technology. The development of world technology and the rapid advancement of information such as location-based services (location-based services LBS), users of GPS (global positioning system) in a number of platforms were "exploded" in recent years.
Issues and information about New CellPhone 2011 with the majority of GPS technology had been presented by iSuppli Corp., a research institution around the world and the latest electronic technology in its report, Monday, July 19, 2010.

Tuesday, February 1, 2011

India to Witness Hike in 3G Mobile Subscribers

Indian mobile market has undergone a revolutionary change during the past few years to become one of the leading mobile markets on the global map. Wireless teledensity has also risen to the level of around 45% at the end of 2009, however still there is a vast scope for further improvement due to a wide gap in teledensity between urban and rural areas. Our research anticipates that, the deployment of 3G services on a national scale will play a vital role in bridging this huge gap. According to our new research report “Indian 3G Mobile Forecast to 2012”, the number of 3G mobile subscribers is expected to grow at a CAGR of around 80% during 2011 - 2013.

Our research projects that the 3G-market growth will primarily depend on the deployment of 3G services by the telecom operators. Telecom operators and equipment vendors also appear optimistic about taking the telecom revolution to a new height. Handset manufacturers are introducing 3G enabled handsets frequently to get early entrant advantage. Availability of access devices is considered as a good indicator of ensuring sound demand for 3G services in the country. Our research provides an in-depth analysis of various other factors and issues that will play an important role in the 3G market growth.

“Indian 3G Mobile Forecast to 2012” provides an analysis on current and future scenarios of mobile subscribers, internet subscribers, and broadband subscribers. Our study also provides insight into the 3G mobile markets by mobile subscribers, broadband subscribers, devices including handset and modems, urban/rural divide and by technology. It has also studied key trends and developments taking place in the Indian 3G mobile market.

Besides, the research report provides three-year projections (2011-2013) on various segments like, mobile subscribers, Internet subscribers, broadband subscribers, 3G mobile subscribers, 3G broadband subscribers, 3G enabled handsets, and 3G enabled modems. In addition, the report has identified important telecom market players in the country and provides brief overview along with their strengths and weaknesses

Friday, January 8, 2010

Tone Control Digital

The circuit will I make here is a series regulator Volume, Bass, and Balance Trable Digital (Tone Control). The core of this circuit is an output of IC Manufacturing Maxim MAX5406 type, as for this IC is an audio processor that is equipped with a tap switch interface for Tone Control setting above. The circuit scheme is as follows

The scheme above uses very little supporting components and this can be made with a mini size for only a matchbox and even if it uses all SMD components can be reduced in size by half for this time I will only give a simple layout made, following picture:

Figure below shows the layout of the circuit components of the digital control tone

Thursday, January 7, 2010

Key Digital circuit scheme using a password

LS7220 is a MOS digital lock circuit. When wired to a ten-digitkeypad, the circuit will recognize one four-digit combination out of a possible 5040 combinations. The LS7220 is configured with the features required for an Automotive Ignition Anti-Theft Digital Lock (See Figure 5). These
features include Sense input which enables the IC, Save Memor for Valet Parking, Convenience Delay to maintain Unlock condition for short term interruptions of the Sense input and Save Status and Lock Status outputs which can be used for direct drive of LED indicators.

following simple example the use of LS 7220 as Electronic Combination Lock

Key Digital Circuit Scheme Using a Password

List komponen Electronic Combination Lock
  • C1 1uF/25Vr
  • C2 220uF/25V
  • R1 2.2K
  • Q1 2N3904 NPN Transistor 2N2222
  • D1 1N4148 Rectifier Diode
  • K1 12V SPDT Relay, Any appropriate relay with 12V coil
  • U1 LS7220 Digital Lock IC
  • S1-S12 PST Momentary Pushbutton
  • HD1 12 Position Header

Rangkaian Kunci Digital Ber-password is the circuit diagram of a simple electronic combination lock usingLS 7220. Rangkaian Kunci Digital Ber-password Password Digital can be used to activate a relay for controlling (on & off) any device when a preset combination of 4 digits are pressed.The circuit can be operated from 5V to 12V.

To set the combination connect the appropriate switches to pin 3,4,5 and 6 of the IC through the header.As an example if S1 is connected to pin 3, S2 to pin 4 , S3 to pin 5, S4 to pin 6 of the IC ,the combination will be 1234.This way we can create any 4 digit combinations.Then connect the rest of the switches to pin 2 of IC.This will cause the IC to reset if any invalid key is pressed , and entire key code has to be re entered.

When the correct key combination is pressed the out put ( relay) will be activated for a preset time determined by the capacitor C1.Here it is set to be 6S.Increase C1 to increase on time.

For the key pad, arrange switches in a 3X4 matrix on a PCB.Write the digits on the keys using a marker.Instead of using numbers I wrote some symbols!.The bad guys will be more confused by this.

Wednesday, January 6, 2010

Digital Watch

Digital hours to make this not too difficult. This series is not my original project, I trace the series of files and program from the internet, there is no chance the program listing. After I download the file to its hex-hour direct way. This clock only displays hours and minutes, to seconds However you can install the led associated with a series of I Hz oscillator formed from IC 555 (which I do, because I do not know the program listing), 2 led in parallel and installed as a bookmark seconds. Led to two installed in the middle of the hours and minutes. Although with the way that seconds and minutes if observed (calculated) decline slightly but I'm not the problem, Moreover people will not know about it. Digital hours following scheme:

cirkuit digital watch 
To me its PCB design itself, of course are still using my favorite software, PCB designer. Next the PCB layout (look up) :

PCB Layout

Thursday, May 7, 2009

Soldering



A soldering kit does not have to be very expensive. The tools shown in the above photo are what I could to any soldering job with. You do not need them all and we will discuss the important ones below.

Soldering Iron

For capacitor removal on motherboards it is important to have a reasonably powerful soldering iron. A 40w is the minimum that you would require. Actually a 60w is preferred and an 80w is what many of the professionals use. It must be a grounded soldering iron.


Soldering Stand with Sponge


Soldering Irons are available in corded models or as Soldering Stations which are Analog or Digital. For desoldering capacitors from motherboards it is not absolutely necessary to get a soldering station and definitely not necessary to get a digital one because you will be desoldering capacitors at the maximum temperature (450oC or more).

It is important to get a stand for safety reasons though and most important to have a wet sponge on the stand so that you can clean the iron of solder periodically in order to do the best soldering job.

Soldering Iron Tips

You might think that a very thin tip is required for removing capacitors from motherboards. This is incorrect. A thin tip will not get hot enough and transfer enough heat to the board. The best tip to get is a chisel tip. Around 2mm is the best size.

Solder

Solder is a matter of personal preference. Standard 60/40 solder is fine but preferably around 0.8mm diameter.

Clippers

Large clippers are no use for cutting the capacitor leads. You need small lead clippers.

Solder Sucker

A pneumatic solder sucker is a type of desoldering tool. It is useful for removing excess solder or desoldering damaged connectors. It is not recommended to use it to clear the thru-holes in the board because the pressure is excessive and there is a chance that when it recoils it may hit the board and damage a trace. If you insist on using it to clear thru-holes of solder then use it half-cocked.

Antistatic Wrist Strap

It is not necessary to buy an antistatic soldering station as you can just use an antistatic wrist strap. It is important to have a grounded soldering iron though.

Flux Remover Spray

If you are not using no-clean flux solder then you must clean the flux from the board. This is necessary because some kind of fluxes are slightly corrosive. It also is important for cosmetic reasons if you are fixing someone elses board, when the flux is cleaned the job looks more professional. You can use a flux remover spray for this. I use Flux Off from Cramolin. Alternatively you can use isoprpyl alcohol and a toothbrush.

Canned Air

When you have finished the soldering job there may be some debris on the board like bits of clipped leads or solder flakes. It is a good idea to use some canned air to make sure they dont remain and cause a short.



Tuesday, May 5, 2009

Bipolar Junction Transistors

The bipolar junction transistor (BJT) was the first solid-state amplifier element and started the solid-state electronics revolution. Bardeen, Brattain and Shockley, while at Bell Laboratories, invented it in 1948 as part of a post-war effort to replace vacuum tubes with solid-state devices. Solid-state rectifiers were already in use at the time and were preferred over vacuum diodes because of their smaller size, lower weight and higher reliability. A solid-state replacement for a vacuum triode was expected to yield similar advantages. The work at Bell Laboratories was highly successful and culminated in Bardeen, Brattain and Shockley receiving the Nobel Prize in 1956.

Their work led them first to the point-contact transistor and then to the bipolar junction transistor. They used germanium as the semiconductor of choice because it was possible to obtain high purity material. The extraordinarily large diffusion length of minority carriers in germanium provided functional structures despite the large dimensions of the early devices.

Since then, the technology has progressed rapidly. The development of a planar process yielded the first circuits on a chip and for a decade, bipolar transistor operational amplifiers, like the 741, and digital TTL circuits were for a long time the workhorses of any circuit designer.

The spectacular rise of the MOSFET market share during the last decade has completely removed the bipolar transistor from center stage. Almost all logic circuits, microprocessor and memory chips contain exclusively MOSFETs.

Nevertheless, bipolar transistors remain important devices for ultra-high-speed discrete logic circuits such as emitter coupled logic (ECL), power-switching applications and in microwave power amplifiers. Heterojunction bipolar transistors (HBTs) have emerged as the device of choice for cell phone amplifiers and other demanding applications.

In this chapter we first present the structure of the bipolar transistor and show how a three-layer structure with alternating n-type and p-type regions can provide current and voltage amplification. We then present the ideal transistor model and derive an expression for the current gain in the forward active mode of operation. Next, we discuss the non-ideal effects, the modulation of the base width and recombination in the depletion region of the base-emitter junction. A discussion of transit time effects, BJT circuit models, HBTs, BJT technology and bipolar power devices completes this chapter.

MOS Field-Effect-Transistors

The n-type Metal-Oxide-Semiconductor Field-Effect-Transistor (nMOSFET) consists of a source and a drain, two highly conducting n-type semiconductor regions, which are isolated from the p-type substrate by reversed-biased p-n diodes. A metal or poly-crystalline gate covers the region between source and drain. The gate is separated from the semiconductor by the gate oxide. The basic structure of an n-type MOSFET and the corresponding circuit symbol are shown in FigureFigure . 1.0.0.1 Cross-section and circuit symbol of an n-type Metal-Oxide-Semiconductor-Field-Effect-Transistor (MOSFET).

As can be seen on the figure the source and drain regions are identical. It is the applied voltages, which determine which n-type region provides the electrons and becomes the source, while the other n-type region receives the electrons and becomes the drain. The voltages applied to the drain and gate electrode as well as to the substrate, by means of a back contact, are referred to the source potential, as also indicated Figure 1.0.0.1


A conceptually similar structure was proposed and patented independently by Lilienfeld and Heil in 1930, but the MOSFET was not successfully demonstrated until 1960. The main technological problem was the control and reduction of the surface states at the oxide-semiconductor interface.

Initially, it was only possible to deplete an existing n-type channel by applying a negative voltage to the gate. Such devices have a conducting channel between source and drain even when no gate voltage is applied. They are called "depletion-mode" devices.

A reduction of the surface states enabled the fabrication of devices, which do not have a conducting channel unless a positive voltage is applied. Such devices are referred to as "enhancement-mode" devices. The electrons at the oxide-semiconductor interface are concentrated in a thin (~10 nm thick) "inversion" layer. By now, most MOSFETs are "enhancement-mode" devices.

While a minimum requirement for amplification of electrical signals is power gain, one finds that a device with both voltage and current gain is a highly desirable circuit element. The MOSFET provides current and voltage gain yielding an output current into an external load, which exceeds the input current, and an output voltage across that external load which exceeds the input voltage.

The current gain capability of a Field-Effect-Transistor (FET) is easily explained by the fact that no gate current is required to maintain the inversion layer and the resulting current between drain and source. The device has therefore an infinite current gain in dc. The current gain is inversely proportional to the signal frequency, reaching unity current gain at the transit frequency.

The voltage gain of the MOSFET is caused by the current saturation at higher drain-source voltages, so that a small drain-current variation can cause a large drain voltage variation.