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自动化专业毕业论文英文翻译

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自动化专业毕业论文英文翻译

用于分布式在线UPS中的并联逆变器的一种无线控制器A Wireless Controller for Parallel Inverters in Distributed Online UPS SystemsJosep M. Guerrero', Luis Garcia de Vicufia", Jose Matas'*, Jaume Miret", and Miguel Castilla". Departament #Enginyeria de Sistemes, Automatica i Informhtica Industrial. Universitat Polithica de CatalunyaC. Comte d'Urgell, -Barcelona. Spain. Email: .. Departament #Enginyeria Electrbnica. Universitat Polit6cnica de CatalunyaAV. Victor BaLguer s/n. 08800I - Vilanova i la Geltrh. SpainAbsiract - In this paper, a novel controller for parallelconnectedonline-UPS inverters without control wireinterconnections is presented. The wireless control technique isbased on the well-known droop method, which consists inintroducing P-oand Q-V schemes into the inverters, in order toshare properly the power drawn to the loads. The droop methodhas been widely used in applications of load sharing betweendifferent parallel-connected inverters. However, this methodhas several drawbacks that limited its application, such as atrade-off between output-voltage regulation and power sharingaccuracy, slow transient response, and frequency and phasedeviation. This last disadvantage makes impracticable themethod in online-UPS systems, since in this case every modulemust be in phase with the utility ac mains. To overcome theselimitations, we propose a novel control scheme, endowing to theparalleled-UPS system a proper transient response, strictlyfrequency and phase synchronization with the ac mains, andexcellent power sharing. Simulation and experimental resultsare reported confirming the validity of the proposed . INTRODUCTIONThe parallel operation of distributed Uninterruptible PowerSupplies (UPS) is presented as a suitable solution to supplycritical and sensitive loads, when high reliability and poweravailability are required. In the last years, many controlschemes for parallel-connected inverters has been raised,which are derived from parallel-schemes of dc-dc converters[I], such as the master-slave control [2], or the democraticcontrol [3]. In contrast, novel control schemes have beenappeared recently, such as the chain-structure control [4], orthe distributed control [ 5 ] . However, all these schemes needcontrol interconnections between modules and, hence, thereliability of the system is reduced since they can be a sourceof noise and failures. Moreover, these communication wireslimited the physical situation ofthe modules [6].In this sense, several control techniques has been proposedwithout control interconnections, such as the droop this method, the control loop achieves good power sharingmaking tight adjustments over the output voltage frequencyand amplitude of the inverter, with the objective tocompensate the active and reactive power unbalances [7].This concept is derived from the power system theory, inwhich the frequency of a generator drops when the powerdrawn to the utility line increases [8].0-7803-7906-3/03/$ 02003 IEEE. 1637However, this control approach has an inherent trade-offbetween voltage regulation and power sharing. In addition,this method exhibits slow dynamic-response, since it requireslow-pass filters to calculate the average value of the activeand reactive power. Hence, the stability and the dynamics ofthe whole system are hardly influenced by the characteristicsof these filters and by the value of the droop coefficients,which are bounded by the maximum allowed deviations ofthe output voltage amplitude and , when active power increases, the droopcharacteristic causes a frequency deviation from the nominalvalue and, consequently, it results in a variable phasedifference between the mains and the inverter output fact can be a problem when the bypass switch mustconnect the utility line directly to the critical bus in stead ofits phase difference. In [9], two possibilities are presented inorder to achieve phase synchronization for parallel lineinteractiveUPS systems. The first one is to locate a particularmodule near the bypass switch, which must to synchronizethe output voltage to the mains while supporting overloadcondition before switch on. The second possibility is to waitfor the instant when phase matching is produced to connectthe , the mentioned two folds cannot be applied to aparallel online-UPS system, since maximum transfer timeought to be less than a % of line period, and all the modulesmust be always synchronized with the mains when it ispresent. Hence, the modules should be prepared to transferdirectly the energy from the mains to the critical bus in caseof overload or failure [lo].In our previous works [11][12], we proposed differentcontrol schemes to overcome several limitations of theconventional droop method. However, these controllers bythemselves are inappropriate to apply to a parallel online-UPS system. In this paper, a novel wireless control scheme isproposed to parallel different online UPS modules with highperformance and restricted requirements. The controllerprovides: 1) proper transient response; 2) power sharingaccuracy; 3) stable frequency operation; and 4) good phasematching between the output-voltage and the utility , this new approach is especially suitable for paralleled-UPS systems with true redundancy, high reliability andpower availability. Simulation and experimental results arereported, confirming the validity of this control . 1. Equivalenl cimuif ofan invener connecled 10 a bust"Fig. 2. P-odraop . REVlEW OF THE CONVENTIONAL DROOP METHODFig. 1 shows the equivalent circuit of an inverter connectedto a common bus through coupled impedance. When thisimpedance is inductive, the active and reactive powers drawnto the load can be expressed asEVcosQ - V2 Q=where Xis the output reactance of an inverter; Q is the phaseangle between the output voltage of the inverter and thevoltage of the common bus; E and V are the amplitude of theoutput voltage of the inverter and the bus voltage, the above equations it can be derived that the activepower P is predominately dependent on the power angle Q,while the reactive power Q mostly depends on the outputvoltageamplitude. Consequently, most of wireless-control ofparalleled-inverters uses the conventional droop method,which introduces the following droops in the amplitude Eand the frequency U of the inverter output voltageu = w -mP (3)E = E ' - n Q , (4)being W* and E' the output voltage frequency and amplitudeat no load, respectively; m and n are the droop coefficientsfor the frequency and amplitude, , a coupled inductance is needed between theinverter output and the critical bus that fixes the outputimpedance, in order to ensure a proper power flow. However,it is bulky and increase:; the size and the cost of the UPSmodules. In addition, tho output voltage is highly distortedwhen supplying nonlinezr loads since the output impedanceis a pure is well known that if droop coefficients are increased,then good power sharing is achieved at the expense ofdegrading the voltage regulation (see Fig. 2).The inherent trade-off of this scheme restricts thementioned coefficients, which can be a serious limitation interms of transient response, power sharing accuracy, andsystem the other hand, lo carry out the droop functions,expressed by (3) and (4), it is necessary to calculate theaverage value over one line-cycle of the output active andreactive instantaneous power. This can be implemented bymeans of low pass filters with a smaller bandwidth than thatof the closed-loop inverter. Consequently, the powercalculation filters and droop coefficients determine, to a largeextent, the dynamics and the stability of the paralleledinvertersystem [ conclusion, the droop method has several intrinsicproblems to be applied a wireless paralleled-system ofonline UPS, which can he summed-up as follows:Static trade-off between the output-voltage regulation(frequency and amplitude) and the power-sharingaccuracy (active an4d reactive).2) Limited transient response. The system dynamicsdepends on the power-calculation filter characteristics,the droop coefficients, and the output of ac mains synchronization. The frequency andphase deviations, due to the frequency droop, makeimpracticable this method to a parallel-connectedonline UPS system, in which every UPS should becontinuously synchronized to the public ac )3)111. PROPOSED CONTROL FOR PARALLEL ONLINE UPSINVERTERSIn this work, we will try to overcome the above limitationsand to synthesize a novel control strategy withoutcommunication wires that could be appropriate to highperformanceparalleled industrial UPS. The objective is toconnect online UPS inverters in parallel without usingcontrol interconnections. This kind of systems, also namedinverter-preferred, should be continuously synchronized tothe utility line. When an overload or an inverter failureoccurs, a static bypass switch may connect the input line tothe load, bypassing the inve:rter [14][15].Fig. 3 shows the general diagram of a distributed onlineUPS system. This system consists of two buses: the utilitybus, which is connected lo the public ac mains; and thesecure bus, connected to the distributed critical loads. Theinterface between these buses is based on a number of onlineUPS modules connected in parallel, which providescontinuously power to the: loads [16]. The UPS modulesinclude a rectifier, a set of batteries, an inverter, and a staticbypass ac mainsutility busI I Ij distributed loads !Fig. 3. Online distributed UPS /I 4(4Fig. 4. Operation modes of an online UPS.(a) Normal operation. (b) Bypass operation. (c) Mains failureThe main operation modes of a distributed online UPS1) Normal operation: The power flows to the load, fromthe utility through the distributed UPS ) Mains failure: When the public ac mains fails, theUPS inverters supply the power to the loads, from thebatteries, without operation: When an overload situation occurs,the bypass switch must connect the critical busdirectly to the ac mains, in order to guarantee thecontinuous supply of the loads, avoiding the damageof the UPS this reason, the output-voltage waveform should besynchronized to the mains, when this last is are listed below (see Fig. 5):3)Nevertheless, as we state before, the conventional droopmethod can not satisfy the need for synchronization with theutility, due to the frequency variation of the inverters, whichprovokes a phase obtain the required performance, we present a transientP-w droop without frequency-deviation in steady-state,proposed previously by OUT in [ 111w=o -mP (5)where is the active power signal without the dccomponent,which is done by. -I t -1sP= p ,( s + t - ' ) ( s + o , )being zthe time constant of the transient droop transient droop function ensures a stable frequencyregulation under steady-state conditions, and 'at the sametime, achieves active power balance by adjusting thefrequency of the modules during a load transient. Besides, toadjust the phase of the modules we propose an additionalsynchronizing loop, yieldingo=w'-m%k,A$, (7)where A$ is the phase difference between the inverter and themains; and k, is the proportional constant of the frequencyadjust. The steady-state frequency reference w* can beobtained by measuring the utility line second term of the previous equality trends to zero insteady state, leading tow = w' - k4($ -@'), (8)being $and $* the phase angles of the output voltage inverterand the utility mains, into account that w = d $ / d t , we can obtain thenext differential equation, which is stable fork, positived$ *dt dt- + km$ = - + k,$' . (9)Thus, when phase difference increases, frequency willdecrease slightly and, hence, all :he UPS modules will besynchronized with the utility, while sharing the power drawnto the . CONTROLLIEMRP LEMENTATIONFig. 5 depicts the block diagram of the proposedcontroller. The average active power P , without the dccomponent, can be obtained by means of multiplying theoutput voltage by the output current, and filtering the product........................................................................................io",.LSj'nchronirorion loop.......................................................................................Fig. 5. Block diagram of the proposed a band-pass filter. In a similar way, the averagereactive power is obtained, hut in this case the output-voltagemust be delayed 90 degrees, and using a low-pass order to adjust the output voltage frequency, equation(7) is implemented, which corresponds to the frequencymains drooped by two transient-terms: the transient activepower signal term; and the phase difference term, whichis added in order to synchronize the output voltage with theac mains, in a phase-locked loop (PLL) fashion. The outputvoltageamplitude is regulated by using the conventionaldroop method (4).Finally, the physical coupled inductance can be avoided byusing a virtual inductor [17]. This concept consists inemulated an inductance behavior, by drooping the outputvoltage proportionally to the time derivative of the outputcurrent. However, when supplying nonlinear loads, the highordercurrent-harmonics can increase too much the outputvoltageTHD. This can be easily solved by using a high-passfilter instead of a pure-derivative term of the output current,which is useful to share linear and nonlinear loads [I 1][12].Furthermore, the proper design of this output inductance canreduce, to a large extent, the unbalance line-impedanceimpact over the power sharing . SIMULATION AND EXPERIMENTARELS ULTSThe proposed control scheme, (4) and (7), was simulatedwith the parameters listed in Table 1 and the scheme shownin Fig. 6, for a two paralleled inverters system. Thecoefficients m, n, T, and kv were chosen to ensure stability,proper transient response and good phase matching. Fig. 7shows the waveforms of the frequency, circulating currents,phase difference between the modules and the utility line,and the evolution of the active and reactive powers. Note theexcellent synchronization between the modules and theACmiiinr 4 j. ...L...... ..........................B...u...n...... ................................... iFig. 6. Parallel operation oftwa online UPS modules,mains, and, at the same time, the good power sharingobtained. This characteristik let us to apply the controller tothe online UPS paralleled I-kVA UPS modules were built and tested in order toshow the validity of the proposed approach. Each UPSinverter consisted of a single-phase IGBT full-bridge with aswitching frequency of 20 kHz and an LC output filter, withthe following parameters: 1. = 1 mH, C = 20 WF, Vi" = 400V,v, = 220 V, I50 Hz. The controllers of these inverters werebased on three loops: an inner current-loop, an outer PIcontroller that ensures voltage regulation, and the loadsharingcontroller, based on (4) and (7). The last controllerwas implemented by means of a TMS320LF2407A, fixedpoint40 MHz digital sigrial processor (DSP) from TexasInstruments (see Fig. 8), using the parameters listed in TableI. The DSP-controller also includes a PLL block in order tosynchronize the inverter with the common bus. When thisoccurs, the static bypass switch is tumed on, and the droopbasedcontrol is 7 Wa\cfc)rms for , ;mnectcd in parallel. rpchrontred io Ihc ac mdnl.(a) Frequencics ufhoth UPS (b) Clrculattng currcni among modulcs. (CJ Phmc d!Nercn;: betucen ihc UPS a#>dth e ai mum(d) Ikiril uf the phze diNmncc (e) md (0 Activc and rcactlw pouerr "I ooih UPSNote that the iimc-acs arc deliheratcly JiNercni due in thc disiinct timuion*uni) ofthe \ THE PARALLELESDYS Order I IFilter Cut-off Frequency I 0, I 10 I ragsFig. 8 shows the output-current transient response of theUPS inverters. First, the two UPS are operating in parallelwithout load. Notice that a small reactive current is circlingbetween the modules, due to the measurement , a nonlinear load, with a crest factor of 3, is connectedsuddenly. This result shows the good dynamics and loadsharingof the paralleled system when sharing a . 8. Output current for the two paralleled UPS, during the connection of Bcommon nonlinear load with a crest factor of 3. (Axis-x: 20 mddiv. Axis-y:5 Mdiv.).VI. CONCLUSIONSIn this paper, a novel load-sharing controller for parallelconnectedonline UPS systems, was proposed. The controlleris based on the droop method, which avoids the use ofcontrol interconnections. In a sharp contrast with theconventional droop method, the controller presented is ableto keep the output-voltage frequency and phase strictlysynchronized with the utility ac mains, while maintaininggood load sharing for linear and nonlinear loads. This fact letus to extend the droop method to paralleled online the other hand, the proposed controller emulates aspecial kind of impedance, avoiding the use of a physicalcoupled inductance. results reported here show theeffectiveness of the proposed approach.

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1) 机械技术 机械技术是机电一体化的基础,机械技术的着眼点在于如何与机电一体化技术相适应,利用其它高、新技术来更新概念,实现结构上、材料上、性能上的变更,满足减小重量、缩小体积、提高精度、提高刚度及改善性能的要求。在机电一体化系统制造过程中,经典的机械理论与工艺应借助于计算机辅助技术,同时采用人工智能与专家系统等,形成新一代的机械制造技术。 (2) 计算机与信息技术 其中信息交换、存取、运算、判断与决策、人工智能技术、专家系统技术、神经网络技术均属于计算机信息处理技术。 (3) 系统技术 系统技术即以整体的概念组织应用各种相关技术,从全局角度和系统目标出发,将总体分解成相互关联的若干功能单元,接口技术是系统技术中一个重要方面,它是实现系统各部分有机连接的保证。 (4) 自动控制技术 其范围很广,在控制理论指导下,进行系统设计,设计后的系统仿真,现场调试,控制技术包括如高精度定位控制、速度控制、自适应控制、自诊断校正、补偿、再现、检索等。 (5) 传感检测技术 传感检测技术是系统的感受器官,是实现自动控制、自动调节的关键环节。其功能越强,系统的自动化程序就越高。现代工程要求传感器能快速、精确地获取信息并能经受严酷环境的考验,它是机电一体化系统达到高水平的保证。 (6) 伺服传动技术 包括电动、气动、液压等各种类型的传动装置,伺服系统是实现电信号到机械动作的转换装置与部件、对系统的动态性能、控制质量和功能有决定性的影响。 机电一体化系统组成 1.机械本体 机械本体包括机架、机械连接、机械传动等,它是机电一体化的基础,起着支撑系统中其他功能单元、传递运动和动力的作用。与纯粹的机械产品相比,机电一体化系统的技术性能得到提高、功能得到增强,这就要求机械本体在机械结构、材料、加工工艺性以及几何尺寸等方面能够与之相适应,具有高效、多功能、可靠和节能、小型、轻量、美观的特点。 2.检测传感部分 检测传感部分包括各种传感器及其信号检测电路,其作用就是检测机电一体化系统工作过程中本身和外界环境有关参量的变化,并将信息传递给电子控制单元,电子控制单元根据检查到的信息向执行器发出相应的控制。 3.电子控制单元 电子控制单元又称ECU(Electrical Control Unit ),是机电一体化系统的核心,负责将来自各传感器的检测信号和外部输入命令进行集中、存储、计算、分析,根据信息处理结果,按照一定的程度和节奏发出相应的指令,控制整个系统有目的地进行。 4.执行器 执行器的作用是根据电子控制单元的指令驱动机械部件的运动。执行器是运动部件,通常采用电力驱动、气压驱动和液压驱动等几种方式。 5.动力源 动力源是机电一体化产品能量供应部分,其作用是按照系统控制要求向机械系统提供能量和动力使系统正常运行。提供能量的方式包括电能、气能和液压能,以电能为主。 机电一体化主要课程 机械方面:机械制图,机械设计,工程材料,工程力学,数控编程技术,autoCAD,Mastercam软件,C# 电工方面:可编程控制器PLC,单片机,自动控制原理,数字电路,电工电子 实习课程:电力拖动,PLC,单片机,钳工,普通车、铣、刨床,数控车、铣,加工中心 本专业的培养目标 本专业培养德、智、体、美全面发展,具有创业、创新精神和良好职业道德的高等专门人才,掌握机械技术和电气技术的基础理论和专业知识;具备相应实践技能以及较强的实际工作能力,熟练进行机电一体化产品和设备的应用、维护、安装、调试、销售及管理的第一线高等技术应用型人才。 本专业职业面向 机电一体化专业是一个宽口径专业,适应范围很广,学生在校期间除学习各种机械、电工电子、计算机技术、控制技术、检测传感等理论知识外,还将参加各种技能培训和国家职业资格证书考试,充分体现重视技能培养的特点。学生毕业后主要面向珠江三角洲各企业、公司,从事加工制造业,家电生产和售后服务,数控加工机床设备使用维护,物业自动化管理系统,机电产品设计、生产、改造、技术支持,以及机电设备的安装、调试、维护、销售、经营管理等等。 1、主要就业岗位:机电一体化设备的安装、调试、维修、销售及管理;普通机床的数控化改装等。 2、次要就业岗位:机电一体化产品的设计、生产、改造、技术服务等。 1) Mechanical Technology Mechanical Technology is the basis of mechatronics, mechanical technology focus is on how to adapt to mechanical and electrical integration technologies, the use of other high and new technology to update the concept, implementation, structure, materials, performance changes, meet the reduced weight, smaller size, higher precision, improved rigidity and improved performance requirements. Mechatronic systems in the manufacturing process, the classical theory and technology should be by means of mechanical computer-aided technology, while use of artificial intelligence and expert systems, the formation of a new generation of mechanical manufacturing technology. (2) Computer and Information Technology Including information exchange, access, operation, judging and decision making, artificial intelligence, expert system, neural networks belong to the computer information processing technologies. (3) System Technology System technology that is the whole concept of application of relevant technology organizations, from a global perspective and the system objective, will generally be broken down into a number of interrelated functional unit, the interface technology is an important aspect of system technology, it is to achieve the organic parts of a system guarantee the connection. 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自动化专业本科论文外文文献翻译

Proportional-Integral-Derivative(PID控制器仍在广泛使用)工业体系,尽管在控制理论和技术的发展在最近几年。该控制器具有三个参数进行调整。适当的价值可以找到这些参数的理论方法使用许多如果植物传递函数给出了几种调或规则,可以发现在文献中,基于典型的过程模型。经常的PID控制器摄有错误作为其输入相应的闭环系统,产生了不良的导数踢”在其输出为一阶跃输入到反馈回路,即使在D学期有一个过滤器。同样,众所周知,很难得到良好的闭环控制步反应过程的集成和不稳定与共振,植物传递函数。一些近期发表演讲,不稳定的过程控制,从不同的角度,可以发现,在。然而,我们将会看到后的例子,都导致过度的超越。这个PI-PD控制器已经显示给性能改进控制稳定[7、8],并整合过程、对于工作点跟踪和抑制扰动。报纸也被书面描述使用PI-PD控制器控制和整合过程中配置[9,史密斯预测10,但这并不会进一步的讨论。本文的目的是为了说明了PID控制器的性能可以简单地用它的参数值的参数选择PI-PD控制器替代。该方法简化了选择的问题四个参数调试的PI-PD控制器。给出的方法可以应用于任何现有的PID控制的设计方法和控制过程,集成、稳定的共振传递函数。提供广泛的仿真实例表明利用提出的设计方法。

本文表明,自动合成的仿真器是有竞争力的替代手工仿真器的二进制代码模型检查。虽然从硬件描述硬件仿真器代已久的使用在不同的领域,我们的工作是新的,它突出和接近抽象技术的自动集成的需要,以解决状态爆炸的问题。案例研究显示,只有最小的方案,否则可以验证。很明显,工作要求抽象,可自动集成技术的进一步调查,,SGDL代码特定于硬件的静态分析的合成。此外,即使我们相信,SGDL和基础合成系统一般,足以应付各种不同的微控制器平台,我们进一步要探讨其适用性合成仿真器如瑞萨R8C/23的16位微控制器。

This paper shows that automatically synthesized simulators are a competitive alternative to handcrafted simulators for binary code model checking. While the generation of hardware simulators from hardware descriptions has been long used in different fields, our work is new in that it highlights and approaches the need for automatic integration of abstraction techniques in order to tackle the state-explosion problem. As shown in the case study, only the smallest programs can be verified otherwise.本文显示采用自动合成模拟系统替代手工模拟器对二进制编码模型进行检验是极具竞争性的一种方式。源自硬件描述的硬件模拟器尽管已在不同的领域中经久使用,但我们的研究工作具有新意因为它强调并探讨提取技术自动集成的需要,以便应对状态爆炸的难题。犹如个案研究所示,只有最小的程序可被证实不那样。Clearly, the work calls for further investigation of abstraction techniques that can be integrated automatically, and also, the synthesis of hardware-specific static analyzers from SGDL code. Moreover, even though we believe that SGDL and the underlying synthesis system are general enough to handle different kinds of microcontroller platforms, we further want to investigate its applicability by synthesizing simulators for16-bit microcontrollers such as the Renesas R8C/23.显然,研究工作主张对可自动合成的提取技术,以及从SGDL代码进行硬件特定静态分析器的合成作进一步的研究。此外,虽然我们相信SGDL及其基础合成系统可通用于处理各种不同的微控制器平台,但我们通过合成例如Renesas R8C/23的16位微控制器模拟系统,来进一步研究它的适用范围。 注:SGDL – Sudoku Game Design Language 数独游戏设计语言【英语牛人团】

机器或装置在无人干预的情况下按规定的程序或指令自动进行操作或控制的过程,其目标是“稳,准,快”。自动化技术广泛用于工业、农业、军事、科学研究、交通运输、商业、医疗、服务和家庭等方面。采用自动化技术不仅可以把人从繁重的体力劳动、部分脑力劳动以及恶劣、危险的工作环境中解放出来,而且能扩展人的器官功能,极大地提高劳动生产率,增强人类认识世界和改造世界的能力。因此,自动化是工业、农业、国防和科学技术现代化的重要条件和显著标志。Machine or device in the absence of intervention procedures or instructions required automatic operation or control of the process and its goal is \u0026quot;steady, accurate and fast.\u0026quot; Automation technology is widely used in industry, agriculture, military, scientific research, transportation, business, health, services, and family and so on. The use of automation technology not only to take people from the heavy manual labor, some mental and poor and dangerous working conditions of liberation, but also to expand people\u0026#39;s organ function, significantly raising labor productivity, enhance human understanding of the world and the ability to change the world . Therefore, the automation industry, agriculture, national defense and modernization of science and technology

英语翻译专业毕业论文

好的翻译只能脱裤子放屁重复学习同样的知识技能。。。。必要时建议直接找翻译公司,省事,可以找北京译顶科技。,

和导师商量才行

最简单的事用金山词霸翻译

你好可以加微信聊聊吗?着急写论文呢

英语专业毕业论文英文翻译

A Thesis Submitted as a Partial Fulfillment of the Requirement for the Degree of B. A./B. S. in ***这是标准的学士学位毕业论文的说法,.代表文学学士,.代表理学学士,***处填上专业。

毕业论文外文翻译:将外文参考文献翻译成中文版本。

翻译要求:

1、选定外文文献后先给指导老师看,得到老师的确认通过后方可翻译。

2、选择外文翻译时一定选择外国作者写的文章,可从学校中知网或者外文数据库下载。

3、外文翻译字数要求3000字以上,从外文文章起始处开始翻译,不允许从文章中间部分开始翻译,翻译必须结束于文章的一个大段落。

参考文献是在学术研究过程中,对某一著作或论文的整体的参考或借鉴。征引过的文献在注释中已注明,不再出现于文后参考文献中。外文参考文献就是指论文是引用的文献原文是国外的,并非中国的。

原文就是指原作品,原件,即作者所写作品所用的语言。如莎士比亚的《罗密欧与朱丽叶》原文是英语。

译文就是翻译过来的文字,如在中国也可以找到莎士比亚《罗密欧与朱丽叶》的中文版本,这个中文版本就称为译文。

主要标准

翻译是语际交流过程中沟通不同语言的桥梁。一般来说,翻译的标准主要有两条:忠实和通顺。

忠实

是指忠实于原文所要传递的信息,也就是说,把原文的信息完整并且准确地表达出来,使译文读者得到的信息与原文读者得到的信息大致相同。

通顺

是指译文规范、明白易懂,没有文理不通、结构混乱、逻辑不清的现象。

实践产生理论,欧美许多国家的翻译理论是五花八门的。从大的方面来看,可以分为两大派:一派是翻译可能论,一派是翻译不可能论。其实,完完全全百分之百的可能是没有的,完完全全百分之百的不可能也是没有的。

世界上一切翻译活动都是在这两个极端之间进行的。欧洲许多著名的人物,比如马丁·路德、M.阿诺德、.纽曼、.波斯特加特、H.白洛克、.诺克斯、V.那巴可夫等等,都对翻译提出了自己的理论。据《开塞尔世界文学百科全书》的意见,这些理论中有些是刚愎自用的。

毕业论文用英语的翻译:毕业 论文 迅捷在线翻译:Graduation (毕业) thesis(论文)参考一下

“毕业论文”用英文是dissertation dissertation[ˌdɪsəˈteɪʃn]n. 专题论文,学位论文;学术演讲 毕业论文; 博士论文; 论文; 学位论文 例句: was involved in writing his doctoral dissertation. 他在聚精会神地写他的博士论文.2. I have not yet footnoted my dissertation. 我还没有给我的论文加上脚注.3. I'm working my notes up into a dissertation. 我正在把我的笔记修改成论文.

自动化专业毕业论文英文文献

过4级就行了,有专业英语的书可以看看

这要看你的学习态度了骚年,如果你想好好学的话,这方面的文章是肯定要看的。另外英语六级在大学还是能过则过吧

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本毕业设计课题是属于教师拟定性课题,主要是研究基于单片机的对步进电机的有效控制。步进电机是一种能将数字输入脉冲转换成旋转或直线增量运动的电磁执行元件,每输入一个脉冲电机转轴步进一个步距角增量。电机总的回转角与输入脉冲数成正比例,相应的转速取决于输入脉冲频率。 步进电机是机电一体化产品中关键部件之一,通常被用作定位控制和定速控制。步进电机惯量低、定位精度高、无累积误差、控制简单等特点。广泛应用于机电一体化产品中,如:数控机床、包装机械、计算机外围设备、复印机、传真机等。 Abstract This article mainly elaborated has been hanging the movement control system merit, introduced was hanging the movement control system function, the principle and the design process. Is hanging the movement control system is one of in control engineering domain important applications, its main target is to is controlled the object the movement condition, including path, speed and position implementation check. The movement control system compares with other control systems, has the system model simply, the check algorithm is unitary, also not complex characteristic and so on non-linearity and coupling situation. Also is precisely because the movement control system can implement to the path, the running rate, the pointing accuracy as well as the repetition precision accuracy control requirement, has the broad application foreground in each category of control engineering, therefore the movement control system has at present become in the check study application domain very much significant the research direction. Through the monolithic integrated circuit to stepping monitor check, implemented the motor-driven to cause the object at on the board which inclined the movement, The control section is the SST89E52 monolithic microcomputer which SST Corporation produces primarily, with when the 1602LCD liquid crystal screen and according to turned has implemented with the user interactive, through the keyboard entry different control command, the liquid-crystal display was allowed to display the setting value and the run the coordinates. The electrical machinery control section used LM324N four to transport puts and is connected the electronic primary device voluntarily to develop the 42BYG205 stepping monitor actuation electric circuit to implement the electrical machinery accuracy control. The algorithm partially for will suit the monolithic integrated circuit system to operate carries on optimizes many times, will reduce the microprocessor the operand. Has completed the object voluntarily the movement and according to the different setup path movement. Key words Magneto; 1602LCD; LM324N; Drive circuit 选择步进电机时,首先要保证步进电机的输出功率大于负载所需的功率。而在选用功率步进电机时,首先要计算机械系统的负载转矩,电机的矩频特性能满足机械负载并有一定的余量保证其运行可靠。在实际工作过程中,各种频率下的负载力矩必须在矩频特性曲线的范围内。一般地说最大静力矩Mjmax大的电机,负载力矩大[1 ]。 选择步进电机时,应使步距角和机械系统匹配,这样可以得到机床所需的脉冲当量。在机械传动过程中为了使得有更小的脉冲当量,一是可以改变丝杆的导程,二是可以通过步进电机的细分驱动来完成。但细分只能改变其分辨率,不改变其精度。精度是由电机的固有特性所决定。 选择功率步进电机时,应当估算机械负载的负载惯量和机床要求的启动频率,使之与步进电机的惯性频率特性相匹配还有一定的余量,使之最高速连续工作频率能满足机床快速移动的需要。 基于单片机的悬挂运动控制系统,具有硬件电路结构简单,精确度高,抗干扰性强等优点。 课题目的 培养综合运用四年大学所学知识去分析问题和解决实际问题的能力。在实践中检验所学知识,从而加强理论与实践的相结合。 体验一个科研项目开发的全过程,学会单片机开发应用方法,锻炼应用能力,动手能力。本课题设计是具有一定难度的基于单片机的应用系统开发项目,培养学生创新精神和创新能力。通过这次毕业论文及设计,检验的综合素质和专业教育的培养效果,并且使学会阅读、利用英文文献资料,阅读并翻译外文资料的能力,学会设计报告和论文。 课题意义 随着社会的发展、科技的进步以及人们生活水平的逐步提高,各种方便于生活的自动控制系统开始进入了人们的生活,以单片机为核心的自动门系统就是其中之一。同时也标志了自动控制领域成为了数字化时代的一员[ 3]。它实用性强,功能齐全,技术先进,使人们相信这是科技进步的成果。它更让人类懂得,数字时代的发展将改变人类的生活,将加快科学技术的发展。 通过对“微机控制自动门系统”的研究和设计,精心撰写了微机控制自动门系统论文。本论文着重阐述了以单片机为主体,LED点阵显示芯片及步进电机为核心的系统。 本设计主要应用SST89E58作为控制核心,LED点阵显示芯片、步进电机、压力传感器、电位器相结合的系统。充分发挥了单片机的性能。其优点硬件电路简单,软件功能完善,控制系统可靠,性价比较高等特点,具有一定的使用和参考价值。 应解决的主要问题 在基于单片机的悬挂运动控制系统中,主要分三个部分设计,一个是输入和键盘显示模块;另一个是步进电机驱动模块;第三个是最小系统和输出模块设计。主要解决的问题是: 1. 单片机最小系统硬件设计; 2. 步进电机驱动模块设计; 3. 输出部分的软硬件设计; 4. 主程序设计; 5. 绘图板的设计。 技术要求 设计一电机控制系统,控制物体在倾斜(仰角≤100度)的板上运动。 在一白色底板上固定两个滑轮,两只电机(固定在板上)通过穿过滑轮的吊绳控制一物体在板上运动,运动范围为80cm×100cm。物体的形状不限,质量大于100克。物体上固定有浅色画笔,以便运动时能在板上画出运动轨迹。板上标有间距为1cm的浅色坐标线(不同于画笔颜色),左下角为直角坐标原点。[看不到}

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