Fluid power engineer jobs in Finland
Fluid power engineers supervise the assembly, installation, maintenance, and testing of fluid power equipment in accordance with specified manufacturing processes. They create designs with schematics and assembly models, make drawings and bills of materials for components, and analyse equipment.
Fluid power engineer - Which skills are essential?
Prepare documentation for existing and upcoming products or services, describing their functionality and composition in such a way that it is understandable for a wide audience without technical background and compliant with defined requirements and standards. Keep documentation up to date.
Utilise computer equipment or digital devices to facilitate quality control, data management, and communication. Follow instructions given by a computer programme, create computer files or documents.
The engineering elements like functionality, replicability, and costs in relation to the design and how they are applied in the completion of engineering projects.
The various types, qualities and applications of hydraulic fluids used in metalworking processes such as forging and moulding, consisting out of mineral oils and water.
Identify operating problems, decide what to do about it and report accordingly.
Use computer-aided engineering software to conduct stress analyses on engineering designs.
Adjust designs of products or parts of products so that they meet requirements.
Mathematics is the study of topics such as quantity, structure, space, and change. It involves the identification of patterns and formulating new conjectures based on them. Mathematicians strive to prove the truth or falsity of these conjectures. There are many fields of mathematics, some of which are widely used for practical applications.
Gain, correct or improve knowledge about phenomena by using scientific methods and techniques, based on empirical or measurable observations.
Create technical designs and technical drawings using specialised software.
Understand principles of mechanical engineering, physics, and materials science.
Drawing software and the various symbols, perspectives, units of measurement, notation systems, visual styles and page layouts used in technical drawings.
The power transmission systems that use the force of flowing liquids to transmit power.
The systematic approach to the development and maintenance of engineering systems.
The characteristics and properties of fluids, including gases, liquids and plasmas, at rest and in motion, and the forces on them.
Discipline that applies principles of physics, engineering and materials science to design, analyse, manufacture and maintain mechanical systems.
The computer-aided design (CAD) software for creating, modifying, analysing or optimising a design.
Read the technical drawings of a product made by the engineer in order to suggest improvements, make models of the product or operate it.
Use computer-aided design (CAD) systems to assist in the creation, modification, analysis, or optimisation of a design.
Perform the evaluation and assessment of the potential of a project, plan, proposition or new idea. Realise a standardised study which is based on extensive investigation and research to support the process of decision making.
Theoretical and practical applications of the science studying the action of displacements and forces on physical bodies to the development of machinery and mechanical devices.
Give consent to the finished engineering design to go over to the actual manufacturing and assembly of the product.
Fluid power engineer - Which skills are useful but not essential?
Monitor and control the flow of supplies that includes the purchase, storage and movement of the required quality of raw materials, and also work-in-progress inventory. Manage supply chain activities and synchronise supply with demand of production and customer.
The behaviour of solid objects when subjected to stresses and strains, and the methods to calculate these stresses and strains.
Apply mathematical methods and make use of calculation technologies in order to perform analyses and devise solutions to specific problems.
The most optimal rotation or cycle time and over-all quality of a tool or a machine's processes.
Prepare, compile and communicate reports with broken down cost analysis on the proposal and budget plans of the company. Analyse the financial or social costs and benefits of a project or investment in advance over a given period of time.
Create a mathematical or three-dimensional computer graphic model of the product by using a CAE system or a calculator.
Determine how many parts or tools can be manufactured by one machine during one production cycle.
Read and comprehend standard blueprints, machine, and process drawings.
Use computer-aided manufacturing (CAM) programmes to control machinery and machine tools in the creation, modification, analysis, or optimisation as part of the manufacturing processes of workpieces.
Determine and schedule production and assembly steps. Plan manpower and equipment needs taking ergonomic considerations into account.
The software to perform computer-aided engineering (CAE) analysis tasks such as Finite Element Analysis and Computional Fluid Dynamics.
Offer help and advice to service technicians in case of machine malfunctions and other repair tasks.
The process of extracting knowledge or design information from anything man-made and reproducing it or anything else based on the extracted information. The process often involves disassembling something and analysing its components and workings in detail.
Monitor parameters to keep an eye on the production, developments and costs within your area of control.
The process of developing a mathematical representation of any three-dimensional surface of an object via specialised software. The product is called a 3D model. It can be displayed as a two-dimensional image through a process called 3D rendering or used in a computer simulation of physical phenomena. The model can also be physically created using 3D printing devices.
Design prototypes of products or components of products by applying design and engineering principles.
The application of pressurised gas to produce mechanical motion.
Determine if a product or its components can be produced by applying engineering principles.
Must be able to read and understand blueprints, drawings and plans and maintain simple written records.
Set up and give commands to a machine by dispatching the appropriate data and input into the (computer) controller corresponding with the desired processed product.