Modelica Sample Clauses

Modelica. In this section we give background to the Modelica language, which we will give a se- mantics to. Modelica is an equation-based object-oriented language for describing the dynamic behaviour of CPS, standardised by the Modelica Language Specification (MLS) [36]. The MLS is described using English; therefore, its semantics is to some extent subject to interpretation. Quoting from the MLS [36, Section 1.2]: “The semantics of the Modelica language is specified by means of a set of rules for translating any class described in the Modelica language to aflat Modelica structure. A class must have addi- tional properties in order that itsflat Modelica structure can be further transformed into a set of differential, algebraic and discrete equations (=flat hybrid DAE). Such classes are called simulation models.”
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Modelica xxx.xxxxxxxx.xxx Modelica is free available language specification for an object-oriented modelling language for large, complex, and heterogeneous physical systems. It is suited for multi-domain modelling, for example mechatronic models in automotive, aerospace and robotics applications involving mechanical, electrical, hydraulic and control subsystems. SPEEDS HRC SPEEDS HRC meta-model – called Heterogeneous Rich Components (HRC) – supports a design representation of electronic components based on several layers of abstraction. HRC components are conform to components of SysML and follow an assume/promise approach (so-called contract- based approach) where each component has a black-box model, which explicates assumptions about its environment and state corresponding promises on the service offered by the component to the environment. The HRC meta-model definition provides a common meta-model, including different viewpoints (functional as well as extra-functional ones) with a system-wide rigorous formal semantics. SystemC xxx.xxxxxxx.xxx SystemC is a IEEE Standard 1666™-2005, it is a language built in standard C++ by extending the language with the use of class libraries. SystemC addresses the need for a system design and verification language that spans hardware and software. The language is particularly suited to model system's partitioning, to evaluate and verify the assignment of blocks to either hardware or software implementations, and to architect and measure the interactions between and among functional blocks. VHDL and VHDL-AMS xxx.xxx-xxxx.xxx VHDL, VHSIC Hardware Description Language,, IEEE standard 1076 and derivative is commonly used as a design-entry language for field-programmable gate arrays and application-specific integrated circuits in electronic design automation of digital circuits. VHDL was originally developed at the behest of the US Department of Defense in order to document the behaviour of the ASICs that supplier companies were including in equipment. VHDL-AMS is a derivative of VHDL (IEEE standard 1076-1993). It includes analog and mixed- signal extensions (AMS) in order to define the behaviour of analog and mixed-signal systems (IEEE 1076.1-1999). UML (Unified Modelling Language) and derivatives SysML, XXXXX xxx.xxx.xxx UML is a graphic modelling language structured on a meta-model defining the modelling elements (concept handled by the language) and the semantics of these elements (definitions and meaning of their uses). It is ...
Modelica. Blocks.Interfaces.RealInput u annotation (Placement( transformation(extent={{-140,-20},{-100,20}}))); Modelica.Blocks.Interfaces.RealOutput y annotation (Placement (transformation(extent={{100,-10},{120,10}}))); parameter Integer nLoop = 10 "array size" annotation(Evaluate =false); protected Real uPos; algorithm uPos := abs(u); y := 0; for i in 1:nLoop loop y := y + (-1).^i * exp( atan2(uPos, log(uPos + eps)) / (i * sqrt(uPos + eps))); end for; annotation ( Icon(coordinateSystem(preserveAspectRatio=false)), Diagram(coordinateSystem(preserveAspectRatio=false)), uses(Modelica(version="3.2.2")));
Modelica. Modelica is a modelling language that allows specification of mathematical models for the purpose of computer simulation of dynamic systems. The Modelica language is a “free object-oriented modeling language with a textual definition to describe physical systems in a convenient way by differential, algebraic and discrete equations” [xxxxxxxx.xxx]. One key feature of the Modelica language is that it enables physical modelling, i.e., modelling the topology of a system with physical “acausal” connectors between components, using the built-in connect statement. Using the connect statement, simulation components can be connected like the real components would be connected physically, which makes it intuitive to model these systems. Modelica’s object- oriented software component model, which includes e.g. inheritance, allows definition of reusable components. Hence, a large library of open-source components, the Modelica standard library, has been developed by the Modelica community. Current ModelicaML research activities at the XXXX XX and Linkoping University aim at converging the UML/SysML and Modelica in order to take advantage of both: the descriptive power of the UML/SysML graphical notations for software and systems modelling and the power of the Modelica language of simulating time-continuous as well as time-discrete/event-based system behaviour.
Modelica. ‌ Modelica [FE98], [Fri04] is an object-oriented, equation-based language for conveniently modelling complex physical systems containing, e.g., mechani- cal, electrical, electronic, hydraulic, thermal, control, electric power or process- oriented subcomponents. The Modelica language supports continuous, dis- crete and hybrid time simulations. The Modelica language has been designed to allow tools to automatically gen- erate efficient simulation code with the main objective of facilitating exchange of models, model libraries, and simulation specifications. The definition of simulation models is expressed in a declarative manner, modularly and hier- archically. Various formalisms can be expressed in the more general Modelica formalism. In this respect Modelica has a multi-domain modeling capability which gives the user the possibility to combine electrical, mechanical, hy- draulic, thermodynamic etc. model components within the same application model. Several tools exist that support code generation from the Modelica language. These are the commercial tools Dymola1, SimulationX2 and MapleSim3; and the open-source tools OpenModelica4 and JModelica5. Most of these tools generate C or C++ code and can also generate FMUs.

Related to Modelica

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  • MODELDOCUMEN In consideration of and conditioned upon the payment of the final payment as set forth above, Contractor hereby unconditionally releases and forever discharges Princeton University and its officers, directors, agents and representatives, and Princeton University’s premises and property, from all claims and causes of action, and all mechanics’ and materialmen’s liens, construction liens and other liens, that now or that in the future may be owned, claimed or asserted by Contractor against Princeton University, or the aforesaid land and improvements (including personal property related thereto), arising out of or in connection with the performance of the said Contract and all amendments thereto. As additional consideration for the final payment, Contractor agrees, to the fullest extent permitted by law, to indemnify and hold harmless Princeton University from and against all costs, losses, damages, claims, causes of action, judgments and expenses, including attorney’s fees, arising out of or in connection with any claims or causes of action for payment or any liens asserted against Princeton University, or the aforesaid land and improvements (including personal property related thereto), which arise out of the performance of the work under the Contract and which may be asserted by the Contractor or any of its subcontractors, sub-subcontractors or materialmen of any tier thereof. As additional consideration for the final payment aforementioned, Contractor hereby unconditionally releases and forever discharges Princeton University from all claims for payment and all other claims and causes of action of every nature, known or unknown, arising out of or in connection with the performance of the said Contract. This release and discharge shall not apply to claims that Contractor may have against Princeton University for contribution or indemnity (if any) based upon third party claims asserted against Contractor for personal injury or damage to property asserted after the date hereof. Contractor further declares that it has made proper payment of all monies due to all of its employees, subcontractors and suppliers of labor, materials, and/or equipment, and agrees to indemnify and hold Princeton University harmless from any claim or demand it might suffer by reason of failure of this certification. The foregoing shall not relieve Contractor of its obligations under the provisions of said Contract, as amended, which by nature survive completion of the Work including without limitation, warranties, guarantees, and indemnities. Given under our hand and seal this date: by /Form signed and dated by Contractor/ EXHIBIT D - SUBCONTRACTOR’S FINAL RELEASE AND CERTIFICATE OF FINAL PAYMENT With reference to Subcontract No. as amended, by and between (“Subcontractor”) and _ (“Contractor”) for work for the construction of (the “Project”), the undersigned Subcontractor hereby certifies and represents that conditioned upon full payments of the sum of $ (the “final payment”) pursuant to Subcontractor Application for Payment No. _ dated _ in the amount of $ it has made full payment of all costs, charges and expenses incurred by it or on its behalf for work, labor, services, materials and equipment supplied to the foregoing premises and/or used in connection with its work under said Subcontract. The undersigned Subcontractor further certifies that to its best knowledge and belief, each of its subcontractors and materialmen has made full payment of all costs, charges and expenses incurred by them or on their behalf for work, labor, services, materials and equipment supplied to the foregoing premises and/or used by them in connection with the Subcontractor’s work under said Subcontract. Prior to the date of this Release, the Undersigned further certifies that it has received payments from the Contractor which total $ _. In consideration for the payment of the final payment as set forth above, the Subcontractor hereby unconditionally releases and forever discharges Princeton University and the Contractor and their affiliates and their respective officers, directors, agents, and representatives and Princeton University’s premises and property from all claims, causes of action, liens and obligations of every nature arising out of or in connection with the performance of the said Subcontract and all amendments thereto. This release and discharge shall not apply to claims that Subcontractor may have against Princeton University or Contractor for contribution or indemnity (if any) based upon third party claims asserted against Subcontractor for personal injury or damage to property asserted after the date hereof.

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  • Vlastnictví Zdravotnické zařízení si ponechá a bude uchovávat Zdravotní záznamy. Zdravotnické zařízení a Zkoušející převedou na Zadavatele veškerá svá práva, nároky a tituly, včetně práv duševního vlastnictví k Důvěrným informacím (ve smyslu níže uvedeném) a k jakýmkoli jiným Studijním datům a údajům.

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