DIN 53483-2-1970 Testing of Insulating Materials Determination of Dielectric Properties Testing at Standard Frequencies of 50 Hz 1 kHz 1 MHz《绝缘材料的检验 介电性能的测定 在标准频率50Hz、1kHz、MHz 时的试验.pdf
《DIN 53483-2-1970 Testing of Insulating Materials Determination of Dielectric Properties Testing at Standard Frequencies of 50 Hz 1 kHz 1 MHz《绝缘材料的检验 介电性能的测定 在标准频率50Hz、1kHz、MHz 时的试验.pdf》由会员分享,可在线阅读,更多相关《DIN 53483-2-1970 Testing of Insulating Materials Determination of Dielectric Properties Testing at Standard Frequencies of 50 Hz 1 kHz 1 MHz《绝缘材料的检验 介电性能的测定 在标准频率50Hz、1kHz、MHz 时的试验.pdf(8页珍藏版)》请在麦多课文档分享上搜索。
1、DEUTSCHE NORMEN March 19 UD0 621.315.61 : 620.1 : 621.317-335.3 : 621.317.374 Tastinu of Insulatinn Materials I Determi Bestimmung der dielektrischen Eigenschaften, Prfung bei den festgelegten Frequenzen 50 Ha, I Ha, 1 MBs For connection with IEC Publication 250-1968, see Explanations. This Standard
2、 has been compiled as a remit of co-operation between the German Standards Aseocia- tion (DNA) and the Society of German Electrical Bngineers (DE) represented on the doint DNUm Zommittee “Dielectric measurements“ and it agrees in subject matter with VDE Specification WDE 0303 Part 4, jointly with DI
3、N 53483 Sheet 1 and Sheet 3. me followlng also belong to this Standard: DIN 53483 Sheet 1 DIN 53483 Sheet 3 Further Sheets are in course of preparation. Testing of insulating materials, determination of dielectric properties; definitions, general information -; measuring cells at frequencies up to I
4、o0 HEC Contents Page I. Purpose and application 1 2. Apparatus . 1 3. lest procedure 4 4. Evaluation 4 1. purr ose and amdication Phe testing of insulating materials for compliance with given dielectric properties (e.g. type ratings) according to this Standard can be performed at one or more standar
5、d frequencies. Such oeasurements also quickly yield a qualitative picture of the properties of an insulating material instead of a continuous determination of its frequency dependence. When performed with test 5quipment specifically built for these frequencies the test benefits from the fact that th
6、e apparatus is optimally matched to its purpose and therefore the results obtained in this way for the teat point concerned may be more accurate than those obtained with wide-band apparatus. N o t e : The testing of components can be carried out with the samit test equipment at the same frequencies.
7、 iihen testing, the provisione of this Standard should be applied a8 appropriate. Phe standard frequencies used are 50 EIz, I kIft and I HEZ. ?. Apparatus he testing requires the following items: 2.1. h a.c. s u p p 1 y i n g he generator must be adequately decoupled from the measuring circuit so th
8、at no voltage or rrequency variations will be brought about by the balancing of the measuring circuit. The output roltage shall be variable. The measuring frequency shall not variate from the desired value by nore than ?.2. A d e t e c t o r )r in conjunction with an amplifier to increase its sensit
9、ivity. Cxanples of detectors are a telephone plue amplifier or frepency converter, electronic volt- ieters, and electronic null indicators with optical indication. ?.3. A 1.01 C, 2 0.5 pF and the dielectric loss factor tan 4 at g e n e r a t o r the frequency needed for measuring purposes. 5 %. The
10、harmonic content shall not be higher than 1 %. for balancing the measuring device. !be detector may be used on its own m e a s u r i n g d e v i c e allowing the to be stated at 1 ast to I tancomino1 value A for 2.4. An such that the specimen lies between the electrodes in an electric field characte
11、rized by maximum homogeneity or defined in some other WW. 2.4.1. For s o 1 i d are preferred. If the insulating material is supplied in the form of tubes, these may also be used. As a guide to the size of the electrode area needed it is deemed that the capacitance cx of the Hence, the two different
12、measuring arrangements which are possible for solid materials are: a) Electrodes applied directly to the surface of the specimen (preferably adherent electrodes), b) Immersion capacitors. 2.4.1.1. Electrodes applied directly to the surface of the specimen. !be electrodes used are either circular dis
13、c electrodes (see Fig.?) or cylindrical electrodes (see Fig. 2) with guard ring. The width of the guard gap shall be as small as possible, and in any case shall not exceed I mm. The width of the guard ring shall be at least equal to twice the electrode separation (thickness of specimen). Recommended
14、 dimensions for electrodes according to Fig. I are listed in Table 1. The electric field between the electrodes e 1 e c t r o d e a r r a n g e m e n t i n s u 1 a t i n g m a t e r i a 1 s , specimens in sheet form electrode arrangement should not be smaller than 20 pF. to voltage source ergized el
15、ectro 5 Guard ring 4 1 Lard Jing is virtually homogeneous when the width of the guard gap is small in relation to the electrode Separation, when the guard ring is of adequate width and when the guarded electrode and the guard ring guarded Specimen Specimen nesses rieases over 1 rnw ,q to 1 mm thick-
16、 thick- Cd cmt have approximately the same potential to earth. A guard ring can be dispensed with if the electrode separation is smaller than 1 mm. If a guard ring cannot be used, it will normally be necessary to calculate the correction for the edge effect. Formulae for various electrode arrangemen
17、ts are given in Table 2. krangement b) or e) in Table 2 yields the simplest method of calculating for edge effect. Methods c) or f) should be used if the electroes do not extend to the edge of the specimen. In this case the condition that the thickness of the electrode should be very small compared
18、with the specimen thickness need only be satisfied for the smaller of the two electrodes. Calculation of the relative permittivity from the measured capacitance of the electrode arrangement and its geometrical dimensions assumes, inter alia, that the whole of the effective area of the electrodes bea
19、rs closely, i-e. without any gap, on the surface of the specimen. “his condition is best fulfilled by directly applying a thin electrically conductive coating to the surface of the specimen (adherent electrodes). Various methods of constituting such electrodes are indicated below. When the choice of
20、 method is being made it is important to ensure that the specimen is not permanently changed in any manner whatsoever or that, if changes do occur, they can be reversed. me following types of electrode are commonly used: a) Electrodes consisting of colloidal suspensions of silver or in the form of v
21、arnish-like liquids containing finely divided silver as the electrically conductive constituent (known as conductive silver preparations). b) Electrodes consisting of stabilized, colloidal, aqueous suspensions of graphite. N o t e s r e a) a n d b): Tne tj2es of electrode mentioned above are not sui
22、table for porous insulating materials. Thorough drying following application is important. Both types of electrode are permeable to moisture and are usable at temperatures up to about 100 OC - and in some cases up to 200 OC. In the case of the type a) electrode care must be taken to enaure that the
23、insulating material is not attacked by the solvent. Electrode type b) ia suitable only for measurements at 50 Ez and 1 kHz. C) Metal electrodes applied by cathodic evaporation or evaporation in high vacuu. These can be used wherever the resultant Stresses neither permanently change nor damage the in
24、sulating material. d1 .iidth rnm mm elect rode I device 5 20 80 u 242 192 495 1 10 78,l 99#9 N o t e : lne meiisurinr; ilrea is the area bounded by tae nid-line of the guard gap (holds coo3 only for Column 1 of lable 1). dyecimen (tube) figure 2. (tylindrical electrode with guard ring for tubular sp
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