NF B40-300-11-2008 Methods of test for dense shaped refractory products - Part 11 determination of resistance to thermal shock 《致密成型耐火制品检验方法 第11部分 耐热冲击性测定》.pdf
《NF B40-300-11-2008 Methods of test for dense shaped refractory products - Part 11 determination of resistance to thermal shock 《致密成型耐火制品检验方法 第11部分 耐热冲击性测定》.pdf》由会员分享,可在线阅读,更多相关《NF B40-300-11-2008 Methods of test for dense shaped refractory products - Part 11 determination of resistance to thermal shock 《致密成型耐火制品检验方法 第11部分 耐热冲击性测定》.pdf(14页珍藏版)》请在麦多课文档分享上搜索。
1、NF EN 993-11avril 2008Ce document est usage exclusif et non collectif des clients Saga Web.Toute mise en rseau, reproduction et rediffusion, sous quelque forme que ce soit,mme partielle, sont strictement interdites.This document is intended for the exclusive and non collective use of Saga Web custom
2、ers.All network exploitation, reproduction and re-dissemination,even partial, whatever the form (hardcopy or other media), is strictly prohibited.Saga Web Pour SHANGHAI INTERNAT SCIENCE heating/cooling conditions; material properties. Thermal shock tests are usually intended to test material propert
3、ies. This is done by standardizing brick dimensions and heating conditions through which a relative order of the quality of different types of bricks can be established. However, in case of thermal shock, this can lead to complications in the field of engineering. The major complication is that, dep
4、ending on the type of heating conditions, various material properties are involved. This can be best illustrated on the basis of thermal stress parameters, which are a measure for critical crack initiation. Table 1 Type of heating condition Hot face condition Stress parameter Example sudden temperat
5、ure jump / filling of metallurgical vessels constant heat flow into brick . / Furnace preheating constant heating rate /( . cp ) . / Controlled preheating where maximum allowable deformation; coefficient of expansion; thermal conductivity; bulk density;cp specific heat. EN 993-11:2007 (E) 61 Scope T
6、his European Standard describes two alternative methods for determining the resistance to thermal shock of dense shaped refractory materials by an air quenching method, which proved to give the most reliable results when compared with the behaviour of refractories in furnace linings. Method B can al
7、so be applied to unshaped refractory materials. 2 Normative references The following referenced documents are indispensable for the application of this document. For dated references, only the edition cited applies. For undated references, the latest edition of the referenced document (including any
8、 amendments) applies. EN 993-6, 6Methods of test for dense shaped refractory products - Part : Determination of modulus of rupture at ambient temperature 3 Terms and definitions For the purposes of this European Standard, the following terms and definitions apply. 3.1thermal-shock resistance resista
9、nce of refractory shapes to damage caused by sudden temperature changes between 950 C and room temperature caused by air blowing 3.2measure of thermal-shock resistance for method A the number of quench cycles withstood under the test conditions, and for method B the residual cold modulus of rupture
10、(MOR) and residual sonic velocity after 5 quench cycles under the conditions of the test 4 Principle 4.1 Method A The test piece is homogeneously heated to 950 C in an electric furnace then removed, placed on a steel plate and exposed to blowing air. After quenching, the test piece is subjected to a
11、 stress of 0,3 MPa in a bending machine. This cycle is repeated until failure of the test piece occurs. The resistance to thermal shock is defined by the number of cycles withstood by the test piece before breaking. 4.2 Method B The test piece is homogeneously heated to 950 C in an electric furnace
12、then removed, placed on a steel plate and exposed to blowing air. After quenching this is repeated 4 times. After cooling down, the residual cold MOR and the residual sonic velocity are determined. The resistance to thermal shock is defined by the percentage residual MOR and residual sonic velocity
13、related to the MOR and sonic velocity of non-quenched test pieces. EN 993-11:2007 (E) 7NOTE Sonic resonance frequency can also be measured but can give different results. For both method A and method B, other quenching temperatures may be agreed upon by the parties concerned and shall be noted in th
14、e test report. 5 Apparatus 5.1 Electrically heated furnace, capable of maintaining a temperature of 950 C 25 C.5.2 Thermocouple, for use at temperatures in excess of 1 000 C.5.3 Drying oven.5.4 Heating cabinet, for preheating at 250 C to 300 C.5.5 Blowing device, with a 8 mm diameter nozzle of 5 mm
15、length. 5.6 Equipment for measuring the cold MOR in accordance with EN 993-6. 5.7 Steel plate, 400 mm x 250 mm x 20 mm, with pins to locate the test piece under the air-blast; depending on the dimensions of the test-piece, the pins are located in such a manner that the air jet blows at the intersect
16、ion of the diagonals of the test-piece on cooling. 5.8 Equipment for measuring the sonic velocity NOTE Equipment for measuring the sonic velocity in refractories is commercially available and should be used in accordance with the manufacturers instructions. 5.9 Insulated iron tongs for handling the
17、test piece after heating 6 Test pieces 6.1 Number of test pieces 6.1.1 Method A Unless a different number of test pieces has been agreed upon, one test piece shall be taken from each item. 6.1.2 Method B Unless a different number of test pieces has been agreed upon, four test pieces shall be used. T
18、wo test pieces are used for the determination of the cold MOR before testing, MORn. The other two test pieces are used for the thermal shock test. For all four test pieces, determine the sonic velocity, SVn, axially in length of the test pieces before testing. 6.2 Preparation of test pieces 6.2.1 Sh
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