Update July 2020: Please note that a new F version (AMS2750F) has been released in June 2020.
In this blog post, I will take a short look at the AMS2750E standard, with a special focus on the requirements set for calibration, calibration accuracy and test/calibration equipment.
The AMS2750E is predominantly designed for heat treatment in the aerospace industries. Heat treatment is an essential process for many critical parts of an airplane, so it is understandable that there are tight regulations and audit processes set.
While the results and success of some other industrial processes can be relatively easily measured after the process, this is not the case in a heat treatment process. Therefore, very tight control and documentation of the heat treatment process is essential to assure the quality of the end products.
As mentioned, the AMS2750E is a standard for the heat treatment. The “AMS” name in the standard is an abbreviation of “Aerospace Materials Specifications”. The standard is published by SAE Aerospace, part of SAE International Group. The first version of the AMS2750 standard was published in 1980. Followed by revisions: revision A in 1987, B also in 1987, C in 1990 and D in 2005. The current revision AMS2750E was published in 2012.
The AMS2750 standard was initially developed to provide consistent specifications for heat treatment through the aerospace supply chain. The use of the standard is audited by PRI (Performance Review Institute) for the Nadcap (National Aerospace and Defense Contractors Accreditation Program). Prior to Nadcap, aerospace companies each audited their own suppliers, so there was a lot of redundancy and duplication of efforts. In 1990, the PRI was established to administer the Nadcap program.
According to the standard itself, the scope of the AMS2750E standard is the following:
"This specification covers pyrometric (high temperature) requirements for thermal processing equipment used for heat treatment. It covers temperature sensors, instrumentation, thermal processing equipment, system accuracy tests, and temperature uniformity surveys. These are necessary to ensure that parts or raw materials are heat treated in accordance with the applicable specification(s)."
In some industrial processes, it is relatively easy to measure and check the quality of the final product and judge if the product fulfills the requirements after the process is complete. You may be able to simply measure the end product and see if it is good or not.
In other processes where it is not possible/easy/practical to measure the quality of the final product you need to have a very tight control and documentation of the process conditions, in order to be sure that the final product is made according to the requirements.
It is easy to understand that heat treatment is a process where you need to have a very good control of the process in order to assure that you get the required end product, especially since the products are mostly used by the aerospace industry.
The AMS2750E is predominantly designed for the aerospace industries. But the same standards and processing techniques can be used within any industry which requires control of the thermal processing of raw materials and manufactured components, such as automotive, rail and manufacturing.
The CQI-9 is a similar set of requirements for heat treatment, mainly aimed for the automotive industry. The first edition of CQI-9 was published in 2006. The CQI-9 “Heat Treatment System Assessment” is a self-assessment of the heat treatment system, published by AIAG (Automotive Industry Action Group). More details about CQI-9 maybe in an other post later on...
Let’s discuss Test Instruments (calibrators) and what AMS2750E says about them.
A traceable calibration of different levels of measurement instruments is obviously required. The higher level standards are typically calibrated in an external calibration laboratory. The process measurements are calibrated internally using “field test instruments”.
Metrological Traceability is often described as traceability pyramid, or as a traceability chain, see below:
Traceability pyramid:
Traceability chain:
To learn more about the metrological traceability in calibration read the following blog post:
Metrological Traceability in Calibration – Are you traceable?
In the Table 3 in the AMS2750E standard, there are different specifications for the test standards and test equipment/calibrators. The different levels of instruments are classified as follows:
For each instrument class, there are specifications for the calibration period and calibration accuracy. If we think about calibrators/calibration equipment, it is typically used as “field test instrument” or sometimes as “secondary standard instrument” and following are said about those:
Secondary standard instrument
Field test instrument
AMS2750E also specifies the calibration period and accuracy requirements for the different levels of instruments, below is what is said about the secondary standard instrument and field test instrument:
Sometimes it is easier to look at a visual, so let's look at this required calibration accuracy graphically for “field test instrument” and “secondary standard instrument”. And as the Centigrade and Fahrenheit are different, below is a graph of both for your convenience:
The AMS2750E standard specifies different thermocouple types for different usage. Types B, R and S are included for more demanding use, while types J, E, K, N, T are also included in the standard.
Anyhow, the standard has the same accuracy specification regardless of the thermocouple type. This is a slightly strange requirement, as different thermocouples have much different sensitivities.
In practice, this means that a test field instrument (calibrator) normally has a specification for millivoltage, and when this mV accuracy is converted to temperature it means that the calibrator normally has different specifications for different thermocouple types. Some thermocouple types have very low sensitivity (voltage changes very little as temperature changes), especially in the lower end.
For example - a calibrator can have an electrical specification of 4 microvolts at 0 V. With a K type, this 4 µV equals a temperature of 0.1 °C (0.2 °F), but for a S type, this equals 0.7°C (1.3°F), and for a B type it equals almost 2°C (3.6 °F). Therefore, calibrators normally have very different accuracy specifications for different thermocouple types.
So the standard having the same accuracy regardless of the thermocouple type is a bit strange requirement.
To illustrate the different sensitivities of different thermocouple types, please see the graphics below. The graph shows what kind of thermovoltage (Emf) is generated in different temperature by different thermocouple types:
To learn more about thermocouples, different thermocouple types and thermocouple cold junction compensation, please read this blog post:
Thermocouple Cold (Reference) Junction Compensation
Let’s take a brief look at the contents of the AMS2750E standard and further discuss a few key points in the standard.
The AMS2750E standard starts with sections:
Chapter 3 “Technical Requirements” of AMS2570E includes the following key sections. (These sections are discussed in more details in the next chapters):
The remaining sections are:
Section 3.1 discusses temperature sensors. Some key bullets from that section:
Section 3.2 covers the instrumentation that the sensors are used with. This includes control, monitoring, recording, calibration, instrumentation, etc.
Section 3.3 discusses the furnace classification and the temperature uniformity requirements in each class. Going from class 1 having uniformity requirement of ±5°F / ±3 °C, to class 6 with ±50 °F / ±28 °C.
Section 3.4 discusses the system accuracy tests (SAT). The SAT is an on-site test where the whole measurement loop (instrument / lead wire / sensor) is calibrated using appropriate calibration equipment. This is typically done by placing a reference thermocouple close to the thermocouple to be calibrated and comparing the read-out of the measurement loop to the reference.
SAT shall be performed with a “field test instrument,” specified in the standard’s Table 3. SAT should be performed periodically or after any maintenance. SAT interval is based on equipment class and instrumentation type.
SAT test records shall include:
Section 3.5 is about furnace temperature uniformity survey (TUS). The TUS is the testing of the temperature uniformity in all sections/zones of the furnace in the qualified operating range. An initial TUS needs to be performed for any new, modified (example modifications are listed in the standard) or repaired furnace, and thereafter it should be performed in accordance with the interval specified in the standard. For furnaces with multiple qualified operating ranges, TUS shall be performed within each operating range.
There are many detailed specifications for TUS testing in the AMS2750E standard.
The TUS report shall include:
We had a Questions & Answers session with Mr. Julian Disse (Team Coordinator Quality Assurance Special Standards) at Deutsche Edelstahlwerke and discussed on the challenges on following the AMS2750 standard, audits, measurements, calibrations, sensors, traceability and other things.
Please download the adjacent white paper to read the discussion.
Here's an example case story of company Trescal, UK. They are a calibration service provider for aerospace customers and need to follow the AMS2750 standard. Trescal have found Beamex calibrators (MC2, MC5 and MC6) as a good fit for the work they do. Click the link below to read the case Trescal story:
Case story: Trescal, UK - Extreme accuracy calibrations for aerospace giant
The AMS2750E specifications set a high standard for the aerospace industry. After reviewing sensor technology and the challenges for test equipment to make proper measurements, meeting accuracy requirements takes careful analysis and continuous supervision. It should be noted that the AMS2750E specifications are not easily met and accurate test equipment must be utilized. By addressing calibration requirements up front, maintenance personnel will be equipped with the proper tools and procedures to not only maintain compliance but ensure the best product quality. Good sensor measurements set the stage for good process control with repeatable results – a good formula for staying in business.
You can download the free pdf white paper by clicking the picture below:
Beamex offers various temperature calibration products that can be used (and are being used) in an AMS2750E environment. You can find the detailed information of our offering on our website in the below link:
Beamex temperature calibration products
Please contact us for information on how our products can be used in an AMS2750 environment.
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