Why Choose 3ds Max and Vray Training Course? Click here for more info 3ds Max a valuable tool for architectural modeling, product design, and manufacturing across numerous industries. While widely utilized, mastering the software requires effort. Engaging in 3ds Max tutorials proves particularly advantageous for game designers, aiding in their career advancement. Duration: 10 hrs Method: 1-on-1, Personalized attention Schedule: Tailor your own hours, available from Mon to Sat between 9 am and 7 pm Our 3ds Max course consists of two main sections, covering architectural visualizations for both interior and exterior scenes. By the end of the training, you'll have the expertise to create professional projects independently. We begin with fundamental and advanced 3D modeling, starting from simple objects and progressing to complex buildings, interiors, and products. 3ds Max and Vray Comprehensive Course Course Duration: 10 hours Course Overview: This course is designed to offer a comprehensive introduction to 3ds Max and Vray. Throughout this program, you will acquire the knowledge necessary to proficiently create 3D models, apply materials and textures, configure lighting and camera systems, and produce high-quality Vray renders. This course is suitable for individuals with various levels of experience, from beginners to those with some prior exposure to 3D modeling and rendering. Course Outline: Module 1: Introduction to 3ds Max and Vray Familiarization with the 3ds Max interface Configuring the workspace Navigating within 3ds Max Introduction to Vray and its user interface Module 2: 3D Modeling Creating fundamental shapes Employing modifiers Crafting intricate shapes through advanced 3D modeling techniques Grasping the fundamentals of polygonal modeling Crafting both organic and inorganic models Module 3: Materials and Textures Application and modification of textures Understanding UVW mapping Utilizing the material editor Developing custom materials Leveraging Vray materials Module 4: Lighting Introduction to various lighting techniques Exploring different types of lights Comprehending light properties Configuring lights for a scene Employing Vray lights Module 5: Cameras Familiarization with camera systems Understanding camera properties Setting up camera views Creating animations using cameras Utilizing Vray cameras Module 6: Rendering Introduction to rendering Exploring Vray Global Illumination Utilizing Vray Physical Cameras Harnessing Vray HDRI Lighting Implementing the Vray Rendering Workflow Module 7: Projects Integrating all acquired knowledge Crafting a simple interior scene Constructing a basic exterior scene Developing a complex scene featuring multiple objects and materials Course Requirements: To participate in this course, you will need: A computer with 3ds Max and Vray installed (trial versions can be obtained from Autodesk and Chaos Group websites) Basic computer operation skills An interest in 3D modeling and animation Course Goals: Upon completing this course, you will have gained a comprehensive understanding of 3ds Max and Vray. You will possess the skills required to create realistic and visually captivating 3D scenes using Vray. Furthermore, you will be well-equipped to continue honing your 3D modeling and rendering abilities. Resources: Vray Trial Download: https://www.chaosgroup.com/vray/sketchup/free-trial Materials:https://www.vray-materials.de/ Textures: https://textures.com/ By completing the 3ds Max and Vray Training Course, participants will acquire proficiency in 3D modeling and rendering using 3ds Max. They will establish a solid foundation and essential skills, enabling them to create captivating visualizations. This expertise opens doors to various job opportunities in fields such as architectural visualization, game design, film production, and product modeling.
Students who complete PVOL202 will be able to: Define the purpose of the National Electrical Code (NEC®) and NEC® terminology for PV equipment Determine procedures for proper installation of equipment and conductors, including minimum requirements for working space Examine methods for PV wire management and determine where expansion fittings are required Describe and identify electrical services, including split-phase and three-phase Wye (Y) and Delta (â) Evaluate electrical service details to collect and record during solar site evaluation Identify options for NEC®-compliant PV system interconnection to the utility grid and determine whether a supply side, load side, or additional service connection is appropriate Identify code-compliant methods for connecting an inverter to an existing AC feeder Calculate PV module voltage based on temperature to ensure compatibility with system components and NEC® Section 690.7, and explore other options for maximum PV system DC voltage calculations Identify NEC® requirements and sizing of disconnects and overcurrent protection devices (OCPDs) in grid-direct PV systems Define inverter grounding configurations Evaluate inverter choices and system configurations, including string inverters, central inverters, and module level power electronics (MLPE) Identify requirements for equipment grounding, equipment grounding conductors (EGC), and grounding electrode conductors (GEC), and size the conductors according to the NEC® Identify common causes of ground-faults and arc-faults Describe ground-fault and arc-fault protection devices Describe benefits and appropriate locations of surge protection devices (SPD) Demonstrate the use of sun charts and perform calculations to determine row spacing and minimize inter-row shading Identify how Codes detailing access for first responders impact PV array roof layout Examine fire classifications that affect racking and module selection Detail NEC rapid shutdown requirements and options for implementation Identify load and structural considerations for low- and steep-slope roof-mounted PV systems Calculate wind uplift force and select appropriate lag bolts Review issues related to planning, design, and installation of ground-mount PV arrays Review PV system circuit terminology, definitions, and conductor types Calculate minimum overcurrent protection device (OCPD) size and conductor ampacity using appropriate adjustment and correction factors Calculate voltage drop and verify system operation within acceptable limits Examine requirements for PV system labeling Calculate the maximum and minimum number of modules per PV source circuit, and number of PV source circuits per inverter Determine size of residential grid-direct PV system based on site and customer-specific considerations including the number and wiring layout of modules, conductor and OCPD sizes, and the AC interconnections Determine the size of a large, multiple inverter, grid-direct PV system based on site and customer-specific considerations, including the quantity and layout of modules and inverters and the AC interconnection Define large-scale PV and review associated NEC® allowances and requirements Describe importance of Data Acquisition Systems (DAS) Identify common DAS equipment and hardware Review DAS design, installation, and commissioning processes and common problems associated with DAS Show how reports can be generated and utilized to remotely assess health of system
This course examines the ability to plan and control the allocation of work within team members in order to maximise resources. Good delegation is based on clear objectives, regular reviews and sound feedback. It shows how delegation can provide a sound basis on which to improve productivity, engender ownership and responsibility whilst fostering individual growth and development.
Change is an inevitable part of life. Nothing remains static and the way we respond to change varies from individual to individual. Approximately one half of the population resists it, while the other half welcomes it. This course examines the change management process and the ways in which an understanding of the causes of resistance can be turned to positive advantage in meeting organisational objectives.
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