ASTM D2300-2008 Standard Test Method for Gassing of Electrical Insulating Liquids Under Electrical Stress and Ionization (Modified Pirelli Method)《在电应力和电离作用下绝缘液体放气的标准试验方法(改进的皮勒里法)》.pdf
《ASTM D2300-2008 Standard Test Method for Gassing of Electrical Insulating Liquids Under Electrical Stress and Ionization (Modified Pirelli Method)《在电应力和电离作用下绝缘液体放气的标准试验方法(改进的皮勒里法)》.pdf》由会员分享,可在线阅读,更多相关《ASTM D2300-2008 Standard Test Method for Gassing of Electrical Insulating Liquids Under Electrical Stress and Ionization (Modified Pirelli Method)《在电应力和电离作用下绝缘液体放气的标准试验方法(改进的皮勒里法)》.pdf(5页珍藏版)》请在麦多课文档分享上搜索。
1、Designation: D 2300 08Standard Test Method forGassing of Electrical Insulating Liquids Under ElectricalStress and Ionization (Modified Pirelli Method)1This standard is issued under the fixed designation D 2300; the number immediately following the designation indicates the year oforiginal adoption o
2、r, in the case of revision, the year of last revision. A number in parentheses indicates the year of last reapproval. Asuperscript epsilon () indicates an editorial change since the last revision or reapproval.1. Scope1.1 This test method measures the rate at which gas isevolved or absorbed by insul
3、ating liquids when subjected toelectrical stress of sufficient intensity to cause ionization incells having specific geometries.1.2 This test method is not concerned with bubbles arisingfrom supersaturation of the insulating liquid.1.3 This standard does not purport to address all of thesafety conce
4、rns, if any, associated with its use. It is theresponsibility of whoever uses this standard to consult andestablish appropriate safety and health practices and deter-mine the applicability of regulatory limitations prior to use.For specific precautions see 5.1.4 and 8.4.2. Referenced Documents2.1 AS
5、TM Standards:2D 924 Test Method for Dissipation Factor (or Power Factor)and Relative Permittivity (Dielectric Constant) of Electri-cal Insulating Liquids3. Summary of Test Method33.1 After being saturated with a gas (usually hydrogen), theinsulating liquid is subjected to a radial electrical stress.
6、 Thegas space above the insulating liquid film is ionized due to theelectrical stresses and therefore the insulating liquid surface atthe insulating liquid-gas interface is subjected to ionic bom-bardment. The evolving or absorbing of gas is calculated involume per unit of time from changes in press
7、ure with timefrom two specimens run on the same sample.3.2 This test method indicates whether insulating liquids aregas absorbing or gas evolving under the test conditions.4. Significance and Use4.1 For certain applications when insulating liquid isstressed at high voltage gradients, it is desirable
8、 to be able todetermine the rate of gas evolution or gas absorption underspecified test conditions. At present time correlation of suchtest results with equipment performance is limited.4.2 In this test method, hydrogen (along with low molecularweight hydrocarbons) is generated by ionic bombardment
9、ofsome insulating liquid molecules and absorbed by chemicalreaction with other insulating liquid molecules. The valuereported is the net effect of these two competing reactions. Thearomatic molecules or unsaturated portions of moleculespresent in insulating liquids are largely responsible for thehyd
10、rogen-absorbing reactions. Both molecule type, as well asconcentration, affects the gassing tendency result. Saturatedmolecules tend to be gas evolving. The relation betweenaromaticity and quantity of unsaturates of the insulating liquidand gassing tendency is an indirect one and cannot be used fora
11、 quantitative assessment of either in the insulating liquid.4.3 This test method measures the tendency of insulatingliquids to absorb or evolve gas under conditions of electricalstress and ionization based on the reaction with hydrogen, thepredominant gas in the partial discharge. For the test condi
12、-tions, the activating gas hydrogen, in contrast to other gases,for example, nitrogen, enhances the discrimination of differ-ences in the absorption-evolution patterns exhibited by theinsulating liquids. Insulating liquids shown to have gas-absorbing (H2) characteristics in the test have been used t
13、oadvantage in reducing equipment failures, particularly cablesand capacitors. However, the advantage of such insulatingliquids in transformers is not well defined and there has beenno quantitative relationship established between the gassingtendency as indicated by this test method and the operating
14、performance of the equipment. This test method is not con-cerned with bubble evolution, which may arise from physical1This test method is under the jurisdiction of ASTM Committee D27 onElectrical Insulating Liquids and Gases and is the direct responsibility of Subcom-mittee D27.05 on Electrical Test
15、.Current edition approved June 1, 2008. Published July 2008. Originally approvedin 1968. Last previous edition approved in 2000 as D 2300 00.2For referenced ASTM standards, visit the ASTM website, www.astm.org, orcontact ASTM Customer Service at serviceastm.org. For Annual Book of ASTMStandards volu
16、me information, refer to the standards Document Summary page onthe ASTM website.3The original Pirelli method is described by Guiseppe Palandri and UgoPellagatti in the paper. “Gli Oli Isolanti per Cavi Elettrici” (Insulating Oils forElectric Cables), Elettrotecnica (Milan) Jan. 8, 1955. Translation
17、of this paper iscontained in “Minutes of the Meeting of the Insulated Conductors Committee of theAmerican Institute of Electrical Engineers,” Nov. 15 and 16, 1955.1Copyright ASTM International, 100 Barr Harbor Drive, PO Box C700, West Conshohocken, PA 19428-2959, United States.processes associated w
18、ith super-saturation of gases in oil orwater vapor bubbles evolving from wet insulation.5. Apparatus5.1 The apparatus for making gassing tests where theinsulating liquid is saturated in the same cell that is usedthereafter to electrically stress the insulating liquid is shown inFig. 1. The apparatus
19、 consists of the following:5.1.1 Gassing Cell and Buret Assembly, as shown in Fig. 1,with dimensions as given in Fig. 2. The gassing cell consists ofthe following two components:5.1.1.1 Cell made of borosilicate glass with the part understress constructed of 16 mm inside diameter and 18 mm outsidedi
20、ameter truebore tubing. This cell has an outer (ground)electrode of painted or plated silver with a vertical slit forobserving the insulating liquid level, and a metal conductorband for ground connection.5.1.1.2 Hollow High-Voltage Electrode made of 10 60.1-mm outside diameter center-less-ground and
21、 polished No.304 stainless steel seamless tubing and containing an 18-gagestainless steel capillary tubing as a gas passage. The electrodeshall be supported and centered by a precision-machined 24/40recessed TFE-fluorocarbon plug.A18-in. needle valve (E) withgas inlet is on top of the electrode.5.1.
22、2 Gas Buret (Fig. 1) made of 7-mm outside diameterborosilicate glass tubing with an etched scale, tapered glassjoint (G) for connecting to the gassing cell, a bypass stopcock(D), and three glass bulbs, (A, B, and C).5.1.3 Oil Bath with thermostatic control to maintain thebath at test temperature 60.
23、5C. The bath shall be equippedwith a stirrer, a heating arrangement capable of maintaining thenecessary temperature control, a suitable support for thegassing test cell assembly, and a thermometer graduated in0.1C divisions. As the test is temperature sensitive, it isimportant that the calibration i
24、s traceable to a standard, such asNIST.5.1.4 Transparent Safety Shield to protect the operator fromcontact with high voltage.5.1.5 High-Voltage Transformer, providing a test voltagehaving a frequency in the range of 45 to 65 Hz. Thetransformer and its controlling equipment shall be of such sizeand d
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