Pages

Subscribe:
Showing posts with label artikel. Show all posts
Showing posts with label artikel. Show all posts

Friday, January 13, 2012

SIMM, DIMM, and RIMM

In the original, the system has a memory that is installed via individual chips.Because of its design, this chip is often called a chip DIP (dual inline package).Original IBM XT and AT had 36 sockets on the motherboard for these individual chips; rest installed on memory card that plugs into the bus slot. I've spent countless hours to populate the board with a chip like that, which really merupa a rotten job.
In addition to time-consuming and less efficient to work with memory, DIP chips had one notorious problem - the chip away from the (creeping) socket every time the system through a thermal cycle. Each had, when you turn on the power system on and off, the system gets hot and cold, and slowly chip away from the socket. In the end, no contact is good and there was a memory error. Fortunately, by placing the chip in the socket, the problem can be resolved. But the method is less intensive if you have many systems to be supported.
Alternatives to this problem is to have a memory which is soldered into the motherboard or expansion card. This prevents the chip from creeping and making connections become more permanent, but this raises other problems. If the chip to be bad, you should try to remove the old chip and install new ones, or replace the motherboard or memory card where the chip is installed. The cost for this is expensive and makes troubleshooting a memory becomes difficult.


The chip should be soldered and also must be removed, and this is what is found in the module called SIMM. For storage memory, most modern systems adopt a single inline memory module (SIMM), DIMM, or RIMM as an alternative untul: individual memory chips. This small board mounted into a special connector on the motherboard or memory card. Individual memory chips soldered on the module, making it impossible to remove or replace it. You must replace the module if any part is damaged. Modules are treated as if it is a large memory chip.
There are two main types of driver's license, two main types of DIMMs, and one type REVIM used on desktop systems. Various types are often described by the number of pins available, memory row width, or type of memory.
SIMM, for example, is available in two main types - 30-pin (8 bits plus an option for an additional parity bit) and 72-pin (32 bits plus one parity bit option for 4 additional) - with a variety of capacities and other specifications. 30-pin SIMM is smaller than the 72-pin version, and one of these versions have a chip on one or both ends.


DIMMs are available in two versions. Usually has a chip SDRAM DIMM or DDR SDRAM standard, and are distinguished by physical characteristics. Standard DIMMs have 168 pins, one notch on one side, and two notch along the contact area.DDR DIMMs have 184 pins, two notch on each side, and just one notch along the contact area. All DIMM is the width (data path) 64-bit (non-parity) or 72 bits (parity or ECC - error correcting code). The main difference between SIMMs with DIMMs are pin-pin DIMMs have different signals on each side of the module. This is called DIMM dual inline memory module, and why the only "I" extra long, DIMMs have more pins than SIMMs.


RIMM also has a different signal pins on each side. There are three different types of RIMM, namely: 16/18-bit version with 184 pins, 32/36-bit version with 232 pins, and the 64/72-bit version with 326 pins. Each version is installed into the connector the same size, but the notch in RIMM connectors and different - this is so that there is compliance. One particular board received only one type. The most common type is a 16/18-bit version that was introduced in late 2002, and 64-bit version will not be introduced until 2004.
Standard 16/18-bit RIMM has 184 pins, one notch on one side, and two centrally placed notch in the contact area. 16-bit version is used for non-ECC applications, while the 18-bit versions include additional bits are required for the ECC.


Figure 6.3 until Figure 6-7 shows the 30-pin SIMM (8-bit), 72-pin SIMM (32-bit), 168-pin DIMM SDRAM, DIMM 184-pin DDR SDRAM (64-bit), and RIMM 184 - the pin. Pins are numbered from left to right and is connected through both sides of the module on the SIMM. Pin on the DIMM is different on each side, but on the SIMM, each side is equal to the others and bring the connection. Note that all dimensions in inches and millimeters (in parentheses).



Each type and capacity of the DRAM SIMMDIMMand RIMMavailable in variousspeed ratingRefer to your motherboard documentation for speed and memory typeis right for your systemIt is good that the speed of memory (also called throughputor bandwidth) according to the speed of the processor data bus (called FSB - front side bus).
If a system requires a special rateyou can almost always replace them withhigh-speed Iebih determined if speed is not availableUsually no problems in mixingspeed moduleprovided you use the modules of the same or faster than the required Iebih oleli systemBecause the price difference is not muchso I often buy a module that Iebih quickly than those required for a particular applicationThis maybe useful for future systems that may require high speed Iebih.

Since DIMM and RIMM have a report on the onboard ROM-meter speed and timingto the system, then most systems running the memory controller and memory bus at a speed corresponding to the DIMM / RIMM at the latest that has been installed.Most DIMMs are SDRAM memorywhich means sending data at very high speedburst with clocked interfacesDDR SDRAM DIMMs as wellbut DDR DIMM stransfer date twice per clock cycle Iebih many of his and therefore twice as faster.


Note :
Bank is the smallest amount of memory to compile bans dipetiukan memory that can be invoked by the processor. Bank is the minimum amount of physical memory that is read or written by the processor at a time and is usually associated with the data bus width of the processor. If a processor has 64-bit data bus, the memory bank is also 64-bits wide. If memory interleave or running dual-channel, then the virtual bank into two absolute time data bus width of the processor.



You can not replace a module with a higher capacity unit, and then want it to function modules. Systems can have a special design limits for the maximum capacity of modules that can be accepted by the system. Modules with higher capacity work only if the motherboard is designed to receive it. See your system documentation to determine the capacity and speed appropriate to use.
SIMM pinout


Table 6:10 shows the interface connector pinout for a standard 72-pin SIMM. It also includes tables pinout detection of presence (presence detect) that show the various Presence detection pin 72-pin SIM. Presence detection pin motherboard uses to detect the size and speed of the SIMM is installed. SIMM 30-pin industry standard did not have T'tur ¬ Presence detection, but IBM adds this capability on a homemade 30-pin configuration that has been modified. Note that all the SIMMs have the same pin on both sides of the module.


Note that the 72-pin SIMM uses a set consisting of 4 or 5 pin to indicate the type of SIMMs on the motherboard. Presence detection pin is grounded or not connected, it is for it indicates the type of SIMMs on the motherboard. Presence detection output has to be linked to ground via 0-ohm resistor or jumper on the SIMM - to generate a high logic level when the pin open or low logic level when the motherboard to ground pin. From here the resulting signal can be decoded by the memory interface logic. If the motherboard to use Presence detection signal, then the POST procedure can determine the size and speed of the SIMMs are installed, and adjust the controls and address signals automatically. Thus, autodetect of size and speed of memory can be made.




Wednesday, January 11, 2012

Overcoming Resource Conflict

Resource in finite systems. Unfortunately, pcnnintaan against resourcs seemingly infinite. If you add more and more of an adapter card into your system, then the resource will increase the possibility konfiik: If your system is fully PnP-compatible, konfiik may be solved immediately, but often not.
How do you know if you have a resource konfiik? Typically, one of the tools in your system stops working. However konfiik resource can show itself in other ways. The following events can be diagnosed as konfiik resource :
  • A means of transferring data inaccurately
  • Your system is often locked.
  • Sound card can not read properly.
  • Your mouse does not work.
  • Garbage appears on the video screen
  • You no apparent reason.
  • Your printer prints in chaotic
  • You can not format a floppy disk.
  • PCs start in Safe mode (Windows 9x). 

Windows 9x/Me and Windows 2000/XP also show highlights a conflict with a device with a yellow or red color in the Windows Device Manager. By using the Windows Device Manager, you can usually recognize the conflict quickly.

In the following sections, you learn a few steps that you can do to prevent resource conflicts or to trace lersebut when conflict occurs.



Note:
Be careful when diagnosing resource conflicts; a problem may not be the same sokali resource conflicts, but a computer virus. Many computer viruses are designed to show themselves as a matter of temporary or periodic. If you guessed the problem that there are resource conflicts, then it would be better if you rnenjalankan virus checks in advance to ensure that the system is clean torsebut. This procedure can save you hours of work and reduce your frustration.

One way to solve conflicts is to prevent it in the first moment. Especially if you're building a new system, you can do Ixtlierapa steps to avoid problems. One way is to nienghindari use the old ISA devices. Intrinsically, these tools can lidak IRQ sharing, and most in need of resources. PCI card (and A (iP) can share an IRQ with IRQ Steering, and thus merupa a better choice.

Another way you can do is to install a card with a specific sequence, and not all at once. Modifying the order of Inslulasi often help as many cards can only use one or two of the tela IRQ set specific to each brand ii.ui card model. With mengir tal card in a controlled sequence, then upllware plug-and-play can work more easily with the IRQ conflict iliscbabkan by the default configuration of the different cards.
The first time you attempt to start up a new system that you have your raft or upgrade, which has to be the first thing you check is the BIOS Setup. If you have a PnP Operating System settings in your BIOS, make sure the setting is enabled when you run an operating system with support for plug-and-play, eg Windows 9x/Me/2000. If not, make sure these settings to be disabled if you are running an OS that is not plug-and-play such as Windows NT.
At the initial startup I recommend a minimum configuration with only kaitu graphics, memory, and storage drives (floppy, hard disk, CD-ROMs, and DVDs). This gives the lowest likelihood of conflict in the initial configuration of the system. If your motherboard comes with a CD that contains drivers that were specific to the chipset or feature built-in another board, then now's the time to load or rnenginstalnya.Complete configuration of all devices before installing a built-in card or other external devices.
Once the basic system is configured (and after you successfully load and update your operating system or other extras), you can then start adding one device at a time in a specific order. So, you turn off the power, install new equipment, rnenghidupkan power, and ine-continue to install any required drivers and configure the tool. You may have to restart your system after you finish fully complete the configuration.

Warning :
I sometimes suggest that when you're installing your appliance, go to Device Manager in Windows and print settings as the resource-ration gurasinya time. In this way, you will have a record of how the peru-materials and configurations during the process insialasi seiuruh configuration tools.

Here are uri'tan loading for an additional card :
  1. Sound card
  2. Internal or external modem
  3. Cardjaringan
  4. Video tools, such as MPEG decoder, 3D accelerators, and so forth
  5. SCSI Adapter
  6. Other tools
Diasanya, by using a sequence of control in the configuration or construction of the system, then the integration will be easier, and conflict and chaos configuration becomes less.