大连理工大学学报
大連理工大學學報
대련리공대학학보
JOURNAL OF DALIAN UNIVERSITY OF TECHNOLOGY
2014年
4期
397-402
,共6页
于志家%张强%邹哲%毛庆%刘洋
于誌傢%張彊%鄒哲%毛慶%劉洋
우지가%장강%추철%모경%류양
S-系统%数值解析%过程模拟%萘的制备
S-繫統%數值解析%過程模擬%萘的製備
S-계통%수치해석%과정모의%내적제비
S-system%numerical analysis%process simulation%synthesis of naphthalene
被称为 S-系统的幂指数型解析法广泛应用在生物学研究中,但在化工领域应用很少.对该法在三甲基萘脱烷基管式催化反应器数值解析中的应用进行了阐述.将反应的相关微分方程组转化为 S-系统标准形式,结合有限泰勒级数的一般算法进行 S-系统解析,模拟了物料沿反应器长度的转化情况与反应达到稳定状态时的产物分布情况.运算结果与 Runge-Kutta法运算结果吻合.选取不同操作条件进行计算,结果表明,压力增大有利于三甲基萘的转化和萘的生成,三甲基萘的转化率和萘的收率随反应时间的增加而增大,二甲基萘的收率随时间增加先增大后减小,一甲基萘的收率随时间增加而增大.S-系统解析对化工生产的模拟与分析具有高可靠性,解析结果对化工过程的平稳运行、故障诊断、优化设计具有指导意义.
被稱為 S-繫統的冪指數型解析法廣汎應用在生物學研究中,但在化工領域應用很少.對該法在三甲基萘脫烷基管式催化反應器數值解析中的應用進行瞭闡述.將反應的相關微分方程組轉化為 S-繫統標準形式,結閤有限泰勒級數的一般算法進行 S-繫統解析,模擬瞭物料沿反應器長度的轉化情況與反應達到穩定狀態時的產物分佈情況.運算結果與 Runge-Kutta法運算結果吻閤.選取不同操作條件進行計算,結果錶明,壓力增大有利于三甲基萘的轉化和萘的生成,三甲基萘的轉化率和萘的收率隨反應時間的增加而增大,二甲基萘的收率隨時間增加先增大後減小,一甲基萘的收率隨時間增加而增大.S-繫統解析對化工生產的模擬與分析具有高可靠性,解析結果對化工過程的平穩運行、故障診斷、優化設計具有指導意義.
피칭위 S-계통적멱지수형해석법엄범응용재생물학연구중,단재화공영역응용흔소.대해법재삼갑기내탈완기관식최화반응기수치해석중적응용진행료천술.장반응적상관미분방정조전화위 S-계통표준형식,결합유한태륵급수적일반산법진행 S-계통해석,모의료물료연반응기장도적전화정황여반응체도은정상태시적산물분포정황.운산결과여 Runge-Kutta법운산결과문합.선취불동조작조건진행계산,결과표명,압력증대유리우삼갑기내적전화화내적생성,삼갑기내적전화솔화내적수솔수반응시간적증가이증대,이갑기내적수솔수시간증가선증대후감소,일갑기내적수솔수시간증가이증대.S-계통해석대화공생산적모의여분석구유고가고성,해석결과대화공과정적평은운행、고장진단、우화설계구유지도의의.
Power-law representation,called S-system,has been widely used in biology,but its application to chemical engineering is rare.An application of this representation to the numerical analysis of dealkylation of trimethylnaphthalene in a tubular catalytic reactor is introduced.The relevant differential equations for the reactions are recast into S-system canonical form and numerically solved by the generalized calculation algorithm of a finite Taylor-series method.The conversion of reactant as function of reactor length and the distribution of products at the steady state are simulated. Comparisons of the calculated results with those by the Runge-Kutta method indicate consistency of the calculation algorithm.The calculation results under different operating conditions reveal that increased pressure leads to higher conversion of trimethylnaphthalene and generation of naphthalene. The conversion of trimethylnaphthalene and the yield of naphthalene increase with reaction time,the yield of dimethylnaphthalene increases firstly and then decreases,and the yield of methylnaphthalene increases with reaction time.The S-system method is highly reliable for the simulation and analysis of chemical production and the numerical analytical results can be used for the smooth operation,fault diagnosis and optimized design of chemical processes.