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منذ مايو 2018
أستاذ منذ مايو 2018
Inventor tekenen (Autodesk WTB) individueel lesprogramma
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من 31.77 $
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Leren werken met Inventor, van beginner tot en met expert.
In overleg met jou zullen we bepalen welke behoefte de leerling heeft en kan de les gemaakt worden, zodat het aansluit op jouw behoefte.
Voor deze lessen is het boek 'Basiboek Inventor' van R.Boeklagen handig als naslagwerk.
معلومات إضافية
Eigen laptop, Minimaal Pentium, met daarop inventor. Zelf werk ik met de laatste versie.
المكان
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عبر الانترنت من هولندا
من أنا؟
Ik ben een beginnend docent in het Middelbaar Beroeps Onderwijs, waar ik verschillende technische vakken geef:
Inventor, Mechanica, Constructieleer, Projectmatig Werken, Praktijk.

Voordat ik begonnen ben als docent, heb ik ongeveer 20 jaar ervaring opgedaan in het bedrijfsleven, waardoor ik een voorstander ben van praktische opgaven waar je wat aan hebt. Ik vindt het belangrijk dat je zelfstandig je informatie kunt vinden, niet dat je alles uit je hoofd weet.
المستوى التعليمي
HTS: Technische bedrijfskunde
MTS: Energietechniek

Werkervaring:
Monteur gas/water/elektra: 10 jaar.
Werkvoorbereiding: 5 jaar.
Kwaliteitsmanager: 5 jaar, gewerkt in multidisciplinaire projecten.
الخبرة / المؤهلات
2 jaar lesgeven binnen het MBO.
Ik geef les aan alle leerjaren, en mijn leerlingen gaan voor het diploma niveau4.
Mijn passie ligt in het overbrengen van liefde voor techniek.
السن
شباب (13-17 سنة)
الكبار (18-64 سنة)
الكبار (65 سنة فأكثر)
مستوى الطالب
مبتدئ
متوسط
متقدم
المدة
60 دقيقة
الدرس يدور باللغة
الهولندية
الجاهزية في الأسبوع العادي
(GMT -05:00)
نيويورك
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على الانترنت عبر كاميرا ويب
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أبوبكر
Mechanical engineering is a broad field that covers various topics related to the design, analysis, and manufacturing of mechanical systems. Here’s a brief overview of the core subjects you would typically study during a mechanical engineering program at university:

Mathematics:

Calculus: For understanding changes in systems, modeling dynamic behavior, and analyzing forces and motions.
Linear Algebra: Used for solving systems of equations, matrix operations, and structural analysis.
Differential Equations: Essential for modeling physical systems that change over time (e.g., motion, heat, fluid flow).
Probability and Statistics: For analyzing data, reliability, and risks in engineering systems.
Physics:

Mechanics: Studying the forces and motion in solid bodies (statics and dynamics).
Thermodynamics: Understanding energy systems, heat transfer, and the conversion of energy between mechanical forms.
Fluid Mechanics: Focuses on the behavior of fluids (liquids and gases) in motion and at rest, which is essential for systems like pumps, engines, and turbines.
Material Science: Exploring the properties of materials and how they behave under various conditions (stress, temperature, etc.).
Statics and Dynamics:

Statics: Study of forces in equilibrium, such as the forces on structures or machines that are not moving.
Dynamics: Study of forces and motion in systems that are in motion, including vibrations, acceleration, and kinematics.
Strength of Materials:

Learning how materials respond to various forces, including stress, strain, bending, and torsion. This is essential for designing durable and safe structures and machines.
Manufacturing Processes:

Understanding different manufacturing techniques like casting, welding, machining, 3D printing, and material forming.
Concepts of production planning, quality control, and design for manufacturability.
Control Systems:

Study of systems that maintain desired outputs (e.g., in robotics or automated systems). This includes understanding feedback loops and stability.
Machine Design:

Focus on designing mechanical components (gears, shafts, bearings) to perform specific tasks reliably and efficiently.
Heat Transfer:

Studying how heat moves through materials and fluids, which is critical for applications like engines, HVAC systems, and electronics cooling.
Dynamics of Machinery:

The study of moving mechanical components, their vibrations, and how to design them to minimize failure and wear.
Computational Methods:

Learning how to use software tools (like CAD, FEM, and CFD) for designing, simulating, and analyzing mechanical systems.
Robotics and Automation:

Study of robotic systems, automation in manufacturing, and how to integrate mechanical components with electronic control systems.
Renewable Energy and Sustainability:

Topics related to sustainable engineering solutions, energy-efficient systems, and the use of renewable energy sources (wind, solar, etc.).
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اتصل بMaarten-Willem
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الدرس الأول مضمون
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فصول مماثلة
arrow icon previousarrow icon next
verified badge
أبوبكر
Mechanical engineering is a broad field that covers various topics related to the design, analysis, and manufacturing of mechanical systems. Here’s a brief overview of the core subjects you would typically study during a mechanical engineering program at university:

Mathematics:

Calculus: For understanding changes in systems, modeling dynamic behavior, and analyzing forces and motions.
Linear Algebra: Used for solving systems of equations, matrix operations, and structural analysis.
Differential Equations: Essential for modeling physical systems that change over time (e.g., motion, heat, fluid flow).
Probability and Statistics: For analyzing data, reliability, and risks in engineering systems.
Physics:

Mechanics: Studying the forces and motion in solid bodies (statics and dynamics).
Thermodynamics: Understanding energy systems, heat transfer, and the conversion of energy between mechanical forms.
Fluid Mechanics: Focuses on the behavior of fluids (liquids and gases) in motion and at rest, which is essential for systems like pumps, engines, and turbines.
Material Science: Exploring the properties of materials and how they behave under various conditions (stress, temperature, etc.).
Statics and Dynamics:

Statics: Study of forces in equilibrium, such as the forces on structures or machines that are not moving.
Dynamics: Study of forces and motion in systems that are in motion, including vibrations, acceleration, and kinematics.
Strength of Materials:

Learning how materials respond to various forces, including stress, strain, bending, and torsion. This is essential for designing durable and safe structures and machines.
Manufacturing Processes:

Understanding different manufacturing techniques like casting, welding, machining, 3D printing, and material forming.
Concepts of production planning, quality control, and design for manufacturability.
Control Systems:

Study of systems that maintain desired outputs (e.g., in robotics or automated systems). This includes understanding feedback loops and stability.
Machine Design:

Focus on designing mechanical components (gears, shafts, bearings) to perform specific tasks reliably and efficiently.
Heat Transfer:

Studying how heat moves through materials and fluids, which is critical for applications like engines, HVAC systems, and electronics cooling.
Dynamics of Machinery:

The study of moving mechanical components, their vibrations, and how to design them to minimize failure and wear.
Computational Methods:

Learning how to use software tools (like CAD, FEM, and CFD) for designing, simulating, and analyzing mechanical systems.
Robotics and Automation:

Study of robotic systems, automation in manufacturing, and how to integrate mechanical components with electronic control systems.
Renewable Energy and Sustainability:

Topics related to sustainable engineering solutions, energy-efficient systems, and the use of renewable energy sources (wind, solar, etc.).
ضمان المدرس المناسب
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اتصل بMaarten-Willem