14.- BIOMEDICAL ENGINEERING

Biomedical Engineering studies the implementation of engineering knowledge in the field of biology and medicine. The combination of instrumentation and electronic control systems and the application of mathematical algorithms and physical and chemical principles allow Biomedical Engineering to investigate and develop new techniques and devices for the resolution of clinical problems. This discipline covers from the design of diagnostic elements and medical software tools to physiological analysis for the study of the heart or the nervous system.

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Biomedical Engineering has evolved over the years thanks to scientific and technological advances. At present, devices such as vital signs monitoring systems or diagnostic devices facilitate medical care work. The development of image analysis methods such as X-rays, ultrasounds and magnetic resonance allow the study of the human organism clearly and quickly. In addition, telemedicine and hospital management software are used.

The future of Biomedical Engineering has a long way to go, since today's society requires fast and efficient medical solutions. The electronic devices used day to day will allow remote patient monitoring, following the vital signs values to be able to analyze the symptoms before a health problem and, even, prevent that possible problem. Another trend of Biomedical Engineering is the simplification of laboratory tools. Systems, such as Lab On a Chip (LOC), integrate laboratory functions into a single chip. New robotic surgery techniques, new organic materials for the manufacture of artificial tissues and regenerative tissues or 3D printing of artificial organs will make it possible to resolve future medical needs.

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BIOMEDICAL ENGINEERING SUBCATEGORIES

14.1.- BIOMECHANICS

Biomechanics studies the mechanics of movement of the living beings organism, among them the human body movement. This study ranges from the simplest movements of daily life, such as work or sports activity, to the movement of some internal organs, such as the heart. To study the human body...
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14.2.- BIOMEDICAL ELECTRONICS

Biomedical Engineering studies the application of engineering knowledge in the field of biology and medicine. One of the most relevant areas of this engineering is the Biomedical Electronics, in which the concepts of electronics are applied for the development of medical instrumentation.Nowadays,...
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14.3.- BIOMEDICAL EQUIPMENT

Biomedical Equipment is the set of instruments used in the field of medicine, biology and pharmacology. The design of biomedical equipment is directly related to Biomedical Instrumentation, in which instruments are designed to obtain information, apply treatments or perform chemical and...
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BIOMEDICAL ENGINEERING UNITS
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BASIC MECHANICS INTEGRATED LABORATORY - LIMEBA
  • LIMEBA
Available
7.1.1.- MECHANICS FUNDAMENTALS KITS
LIMEBA
Basic Mechanics Integrated Laboratory
The Integrated Basic Mechanics Laboratory, "LIMEBA," designed by EDIBON, allows for the construction of various experiments on the base panel, where length measurements are possible thanks to the distance between the centers of the perforations...
PANEL AND COMMON ELEMENTS CASE FOR LIMEBA - MECA/EC
Available
7.1.1.- MECHANICS FUNDAMENTALS KITS
MECA/EC
Panel and Common Elements Case for LIMEBA
Accessory of LIMEBA
It is the supporting structure where the modules’s elements are mounted in order to undertake the experiments and hence, the basepanel is necessary along with any module.The panel is pierced with equidistant holes that help students to take...
STATICS EXPERIMENTS - MECA1
Available
7.1.1.- MECHANICS FUNDAMENTALS KITS
MECA1
Statics Experiments
Accessory of LIMEBA
Statics is the part of Mechanics that studies any kind of structure or element in balance-equilibrium.Basically the module consist on experiments in which the student shall learn to deduce the main principles of Statics and its most important...
TRANSMISSIONS EXPERIMENTS - MECA3
Available
7.1.1.- MECHANICS FUNDAMENTALS KITS
MECA3
Transmissions Experiments
Accessory of LIMEBA
Most recent machines require the transmission of motion between elements to obtain the desired mechanical result. The mechanisms studied in this module are those that transmit motion between two axles.
DYNAMICS EXPERIMENTS - MECA4
Available
7.1.1.- MECHANICS FUNDAMENTALS KITS
MECA4
Dynamics Experiments
Accessory of LIMEBA
Dynamics is the part of Mechanics that analyzes the motion of an element or mechanism caused by a force. Thus the study is concentrated on the basic laws of Dynamics.
FRICTION EXPERIMENTS - MECA5
Available
7.1.1.- MECHANICS FUNDAMENTALS KITS
MECA5
Friction Experiments
Accessory of LIMEBA
This module considers the most important phenomenon of Dynamics: Friction. It is a manifestation of the energy loss due to contact, effect that happens in every real-world mechanism.
SPECIAL MECHANISMS EXPERIMENTS - MECA6
Available
7.1.1.- MECHANICS FUNDAMENTALS KITS
MECA6
Special Mechanisms Experiments
Accessory of LIMEBA
This module considers various mechanisms frequently used in industrial processes, without them some operations would not be possible with the same efficiency. Here these mechanisms are shown and their function analyzed.
SLIDER CRANK MECHANISM - MBD
  • MBD
Available
7.1.2.1.- MECHANISMS
MBD
Slider Crank Mechanism
The Slider Crank Mechanism, "MBD", designed by EDIBON, is an example of slider-crank mechanism.This mechanism is made of aluminum and consists of a rotary element (graduated disc), called crank, connected to a rigid bar, calledconnecting rod. When...
SCOTCH YOKE MECHANISM - MYE
  • MYE
Available
7.1.2.1.- MECHANISMS
MYE
Scotch Yoke Mechanism
The Scotch Yoke Mechanism, "MYE", designed by EDIBON, is an example of slider-crank mechanism for converting the linear motion of a slider into rotational motion or vice versa.It is made of aluminum and consists of a rotary element, called crank,...
SLOTTED LINK MECHANISM - MBM1
  • MBM1
Available
7.1.2.1.- MECHANISMS
MBM1
Slotted Link Mechanism
The Slotted Link Mechanism, "MBM1", is an example of a quick-return mechanism, capable of transforming circular motion into reciprocating motion. It is made of aluminum and consists of a rotary element (graduated disk), called crank, connected to...
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