兵工自动化
兵工自動化
병공자동화
ORDNANCE INDUSTRY AUTOMATION
2015年
4期
71-74
,共4页
王琼%丁黎%张冬梅%刘文亮%常海
王瓊%丁黎%張鼕梅%劉文亮%常海
왕경%정려%장동매%류문량%상해
炸药%数据处理%热爆炸%误差分析
炸藥%數據處理%熱爆炸%誤差分析
작약%수거처리%열폭작%오차분석
explosive%data processing%thermal explosion%error analysis
采用自研热爆炸装置对炸药A进行了热爆炸试验,采用指数形式拟合了温度与延滞期的关系,分析了拟合方程在不同温度条件下的近似结果及近似处理时的误差。分析了在lnt与1/T存在线性关系的温度范围内,采用有限个数据点去外推时的误差及外推时试验数据选取的原则。采用多种方式计算临界区域和超临界区域绝热至爆时间及各种近似处理的误差。结果表明:对于炸药A而言,采用指数拟合时延滞期误差最大为20%;当温度大于480 K时可以认为是远大于临界温度,近似所产生的误差为1.2%;在452.15~461.15 K温度范围内 lnt与1/T存在线性关系。采用接近临界温度的数据外推时更接近真实值;在临界值附近的数据越多外推时越精确;在热爆炸试验设计和数据处理时要选择热爆炸临界温度附近的试验点。
採用自研熱爆炸裝置對炸藥A進行瞭熱爆炸試驗,採用指數形式擬閤瞭溫度與延滯期的關繫,分析瞭擬閤方程在不同溫度條件下的近似結果及近似處理時的誤差。分析瞭在lnt與1/T存在線性關繫的溫度範圍內,採用有限箇數據點去外推時的誤差及外推時試驗數據選取的原則。採用多種方式計算臨界區域和超臨界區域絕熱至爆時間及各種近似處理的誤差。結果錶明:對于炸藥A而言,採用指數擬閤時延滯期誤差最大為20%;噹溫度大于480 K時可以認為是遠大于臨界溫度,近似所產生的誤差為1.2%;在452.15~461.15 K溫度範圍內 lnt與1/T存在線性關繫。採用接近臨界溫度的數據外推時更接近真實值;在臨界值附近的數據越多外推時越精確;在熱爆炸試驗設計和數據處理時要選擇熱爆炸臨界溫度附近的試驗點。
채용자연열폭작장치대작약A진행료열폭작시험,채용지수형식의합료온도여연체기적관계,분석료의합방정재불동온도조건하적근사결과급근사처리시적오차。분석료재lnt여1/T존재선성관계적온도범위내,채용유한개수거점거외추시적오차급외추시시험수거선취적원칙。채용다충방식계산림계구역화초림계구역절열지폭시간급각충근사처리적오차。결과표명:대우작약A이언,채용지수의합시연체기오차최대위20%;당온도대우480 K시가이인위시원대우림계온도,근사소산생적오차위1.2%;재452.15~461.15 K온도범위내 lnt여1/T존재선성관계。채용접근림계온도적수거외추시경접근진실치;재림계치부근적수거월다외추시월정학;재열폭작시험설계화수거처리시요선택열폭작림계온도부근적시험점。
Thermal explosion tests on explosive A were conducted on the self-developed thermal explosion test instrument, with the fitting of the relationship between temperature and time to ignition. Various expressions through approximate processing under different temperatures were gained with the corresponding processing errors analyzed. The error of extrapolating from limited data points and the principles of data choice were analyzed in the temperature range in which natural logarithm of time to ignition (lnt) has the linear relationship with temperature (T). The characteristics of critical region and supercritical region were described and adiabatic time to explosion was calculated through several ways with the error analysis. Results showed that for explosive A, the maximal error of time to ignition is 20% using the exponential equation to fit the temperature and time to ignition directly, and temperature above 480 K can be regarded to exceed far from the critical temperature with error 1.2%. In the temperature range 452.15~461.15 K, the linear relationship between lnt and T exists, and the extrapolating outcome is closer to the real value when more data closer to the critical temperature are used and data points closer to critical temperature are preferred when design thermal explosion test and data processing.