Graphic: Is your server expected to survive and function in extremely hot or cold environments? Testing to methods 501.7, 502.7 or 503.7 of MIL-STD-810 could save you a lot of follow-up costs.
Note: 蹤獲扦 is not a compliance testing facility. We manufacture rugged servers and workstations that conform to military and industrial standards, such as MIL-STD-810 and DO-160, and we can ensure that our systems comply with these standards using our in-house testing equipment, or by sending our systems to a third-party compliance testing laboratory for validation, but our facility does not offer compliance testing services for products manufactured outside of 蹤獲扦. For a list of laboratories that can assist you with your testing needs, please read this blog post, which lists the best compliance testing laboratories in the world.
This is Part 1 in a series of the different test methods in MIL-STD-810H, the successor to MIL-STD-810G. View Part 2: Vibration Testing.
Legitimate, worthwhile rugged computers undergo all sorts of stress tests to ensure durability and reliability in the field.
But what happens when a rugged computer is exposed to extremely hot, cold or rapidly fluctuating temperatures?
Can its rugged components - the chassis, the processor board or the PCIe backplane - continue to function?
Well, if the computer and its components have been tested within a wide temperature range for MIL-STD-810 certification, they not only can continue to function - they can endure a life cycle that makes look like pocket change.
MIL-STD-810H includes three methods that test for temperature-related stress:
Graphic: Testing the functionality of a rugged computer within a high Mil-Spec temperature range ensures that it can operate in some of the steamiest places on the planet, no matter the program or application. Pictured is a 蹤獲扦 2U rugged MIL-STD-810 modular blade server.
According to MIL-STD-810H, the purpose of Test Method 501.7 - High Temperature is to evaluate the effects of high temperature conditions on material safety, integrity and performance.
In other words, the method assesses the effects of crazy hot temperatures on the condition and performance of a rugged computer in various simulated environments. This is done using special temperature testing equipment.
There are three temperature testing procedures associated with MIL-STD-810H-501.7 High Temperature. They are:
Extremely high temperatures can disable, impair or shorten the life cycle of rugged computers that haven not been temperature-tested to survive the conditions of their eventual deployment.
MIL-STD-810H provides the following examples of problems that could result from a systems' exposure to extremely high temperatures:
Test Method 501.7 tests for high temperature effects in both and induced temperature environments.
Ambient air environments include environmental conditions, either outdoor or confined, that characterize the air or other medium that surrounds the material. Induced environments include storage, transit and other man-made conditions.
Graphic: Basic hot and hot dry locations as specified in MIL-STD-810
In addition, the method identifies basic hot and hot dry as the two climatic categories where high temperatures are encountered. Locations include:
The basic hot daytime temperature cycle ranges for ambient air and induced conditions, respectively, are 30-43簞C or 86-110簞F and 30-63簞C or 86-145簞F.
The dry hot daytime cycle ranges for ambient air and induced conditions, respectively, are 32-49簞C or 90-120簞F and 33-71簞C or 91-160簞F.
Graphic: Passing the MIL-STD-810 low temperature test helps protect a rugged computer against embrittlement, cracking, stiffening and overall performance decline resulting from icy temperatures. Pictured is the 蹤獲扦 MIL-STD-810-certified rugged ION Mini PC.
According to MIL-STD-810H, the purpose of Test Method 502.7 Low Temperature is to evaluate the effects of low temperature conditions on material safety, integrity and performance during storage, operation and manipulation.
In simple terms, the method assesses the effects of cold temperatures on the condition and performance of materials in various simulated environments.
There are three testing procedures associated with MIL-STD-810H-502.7. They are:
Exposure to extremely low temperatures can have severe adverse effects on rugged computers not tested to an application-specific environment and certified to MIL-STD-810.
Such exposure may impair the computer's performance or render it totally inoperable. A shorter end-of-life and costly physical damage to the computers hardware and components are pretty much a guarantee.
The MIL-STD-810H provides the following examples of problems that could result from a system's exposure to extremely low temperatures:
Test Method 502.7 identifies basic cold, cold and severe cold as the three climatic categories where low temperatures are encountered.
Graphic: Basic cold, cold and severe cold locations as specified in MIL-STD-810
The basic cold category has temperature cycle ranges of -21簞C to -32簞C or -5簞F to -25簞F in ambient air conditions and -25簞C to -33簞C or -13簞F to -28簞F in induced temperature conditions. Locations include:
The cold category has temperature cycle ranges of -37簞C to -46簞C or -35簞F to -50簞F in both ambient air and induced temperature conditions. Locations include:
The severe cold has a temperature cycle range of -51簞C or -60簞F. Locations include:
Graphic: Combining the intentions of the MIL-STD-810 high and low temperature tests, the temperature shock assessment analyzes a system's durability and performance after it undergoes sudden temperature spikes or drops. Pictured is a 蹤獲扦 4U rugged MIL-STD-810 server.
According to MIL-STD-810H, the purpose of Test Method 503.7 Temperature Shock is to determine whether materials can withstand sudden changes in temperature without experiencing physical damage or performance decline.
Sudden changes are defined as air temperature changes greater than 10簞C or 18簞F in one minute.
In simple terms, the method assesses how materials respond to temperature drops and spikes within a one-minute window.
There is only one testing procedure, Procedure I, associated with MIL-STD-810H-503.7. This procedure, however, has four variations based on test length and the shock itself:
Temperature shock can disable and hinder the performance of rugged computers and servers involved in mission-critical applications if theyre not stress-tested for application-specific environmental conditions and certified to MIL-STD-810.
The MIL-STD-810H provides the following examples of problems that could result from temperature shock:
Real-world conditions in which temperature shock is likely to occur include:
The effects of temperature shock do not discriminate, and the ramifications can be mechanically dire. That's why it's important to purchase rugged servers and workstations from a manufacturer that actually certifies them to MIL-STD-810 using the right temperature testing equipment.
Photo: The ION Mini PC in the test chamber just before undergoing a series of in-house stress tests at 蹤獲扦.
Using its in-house temperature testing chamber, 蹤獲扦 puts its rugged computers through a series of extreme in-house temperature tests to ensure durability and functionality in a variety of extreme conditions.
On the high end, we stress-test our systems within a 25-55簞C or 77-131簞F range, and on the low end, within a -22-0簞C or -4-32簞F range.
Talk about reliability!
We also test for storage and operational conditions to ensure continued functionality in both circumstances.
Our talented test engineers can place over 100 probes on a board before placing the computer into the temperature testing chamber.
As the temperature changes in the chamber, the probes report temperature fluctuations from the system to the test engineer, who uses the data to monitor and review the condition and performance of its components during different stages of the simulation, as well as make decisions about whether a more rugged component is necessary for continued operational success.
This is an intricate process that typically takes two weeks to complete, but its all in an unceasing allegiance to a sturdy, reliable MIL-STD-810-certified rugged computer, one that continues to support your mission-critical program or application in the face of environmental extremity.