{"id":6656,"date":"2022-02-09T15:31:08","date_gmt":"2022-02-09T07:31:08","guid":{"rendered":"https:\/\/glutenfreepleasure.com\/__proxy_domain\/www.precicon.com.sg\/?p=6656"},"modified":"2025-12-04T07:44:06","modified_gmt":"2025-12-03T23:44:06","slug":"photoelectric-sensors-and-its-uses","status":"publish","type":"post","link":"https:\/\/glutenfreepleasure.com\/__proxy_domain\/www.precicon.com.sg\/product-guides\/omron\/photoelectric-sensors-and-its-uses\/","title":{"rendered":"Photoelectric Sensors and Its Uses"},"content":{"rendered":"<div id=\"fws_6930caf6c3fce\" class=\"wpb_row vc_row-fluid vc_row\" data-column-margin=\"default\" data-midnight=\"dark\">\n<div class=\"row_col_wrap_12 col span_12 dark left\">\n<div class=\"vc_col-sm-12 wpb_column column_container vc_column_container col no-extra-padding\" data-padding-pos=\"all\" data-has-bg-color=\"false\" data-bg-color=\"\" data-bg-opacity=\"1\" data-animation=\"\" data-delay=\"0\">\n<div class=\"vc_column-inner\">\n<div class=\"wpb_wrapper\">\n<div class=\"wpb_text_column wpb_content_element \">\n<div class=\"wpb_wrapper\">\n<div class=\"column1\">\n<div id=\"1\" class=\"positionleft\">\n<h2><strong class=\"headline1\">What is a Photoelectric Sensor?<\/strong><\/h2>\n<\/div>\n<\/div>\n<div class=\"column1\">\n<div class=\"positionleft\">\n<p>Photoelectric Sensors\u00a0detect objects, changes in surface conditions, and other items through a variety of optical properties.<\/p>\n<p>A Light Emitting Photoelectric Sensor consists primarily of an Emitter for emitting light and a Receiver for receiving light. When emitted light is interrupted or reflected by the sensing object, it changes the amount of light that arrives at the Receiver. The Receiver detects this change and converts it to an electrical output. The light source for the majority of Photoelectric Sensors is infrared or visible light (generally red, or green\/blue for identifying colors).<\/p>\n<p>Photoelectric Sensors\u00a0are classified as shown in the figure below. (See Classification.)<\/p>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<div class=\"divider-wrap\" data-alignment=\"default\">\n<div class=\"divider\"><\/div>\n<\/div>\n<div id=\"fws_6930caf6c61c1\" class=\"wpb_row vc_row-fluid vc_row inner_row\" data-midnight=\"\" data-column-margin=\"default\">\n<div class=\"row-bg-wrap\">\n<div class=\"row-bg\"><\/div>\n<\/div>\n<div class=\"row_col_wrap_12_inner col span_12  left\">\n<div class=\"vc_col-sm-4 wpb_column column_container vc_column_container col child_column no-extra-padding\" data-padding-pos=\"all\" data-has-bg-color=\"false\" data-bg-color=\"\" data-bg-opacity=\"1\" data-animation=\"\" data-delay=\"0\">\n<div class=\"vc_column-inner\">\n<div class=\"wpb_wrapper\">\n<div class=\"wpb_text_column wpb_content_element \">\n<div class=\"wpb_wrapper\">\n<div class=\"column1\">\n<div class=\"positionleft\">\n<p><strong class=\"headline2\">Through-beam Sensors<\/strong><\/p>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<div class=\"divider-wrap\" data-alignment=\"default\">\n<div class=\"divider\"><\/div>\n<\/div>\n<div class=\"img-with-aniamtion-wrap center\" data-max-width=\"100%\" data-max-width-mobile=\"100%\" data-shadow=\"none\" data-animation=\"none\">\n<div class=\"inner\">\n<div class=\"hover-wrap\">\n<div class=\"hover-wrap-inner\"><img loading=\"lazy\" decoding=\"async\" class=\"img-with-animation skip-lazy\" src=\"https:\/\/glutenfreepleasure.com\/__proxy_domain\/www.precicon.com.sg\/wp-content\/uploads\/2022\/02\/through-beam-sensors-photoelectric.jpeg\" sizes=\"auto, (max-width: 372px) 100vw, 372px\" srcset=\"https:\/\/glutenfreepleasure.com\/__proxy_domain\/www.precicon.com.sg\/wp-content\/uploads\/2022\/02\/through-beam-sensors-photoelectric.jpeg 372w, https:\/\/glutenfreepleasure.com\/__proxy_domain\/www.precicon.com.sg\/wp-content\/uploads\/2022\/02\/through-beam-sensors-photoelectric-300x88.jpeg 300w\" alt=\"photoelectric through beam sensor\" width=\"372\" height=\"109\" data-delay=\"0\" data-animation=\"none\" \/><\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<div class=\"vc_col-sm-4 wpb_column column_container vc_column_container col child_column no-extra-padding\" data-padding-pos=\"all\" data-has-bg-color=\"false\" data-bg-color=\"\" data-bg-opacity=\"1\" data-animation=\"\" data-delay=\"0\">\n<div class=\"vc_column-inner\">\n<div class=\"wpb_wrapper\">\n<div class=\"wpb_text_column wpb_content_element \">\n<div class=\"wpb_wrapper\">\n<div class=\"column1\">\n<div class=\"positionleft\">\n<p><strong class=\"headline2\">Retro-reflective Sensors<\/strong><\/p>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<div class=\"divider-wrap\" data-alignment=\"default\">\n<div class=\"divider\"><\/div>\n<\/div>\n<div class=\"img-with-aniamtion-wrap center\" data-max-width=\"100%\" data-max-width-mobile=\"100%\" data-shadow=\"none\" data-animation=\"none\">\n<div class=\"inner\">\n<div class=\"hover-wrap\">\n<div class=\"hover-wrap-inner\"><img loading=\"lazy\" decoding=\"async\" class=\"img-with-animation skip-lazy\" src=\"https:\/\/glutenfreepleasure.com\/__proxy_domain\/www.precicon.com.sg\/wp-content\/uploads\/2022\/02\/Retro-reflective-Sensors-photoelectric.jpeg\" sizes=\"auto, (max-width: 372px) 100vw, 372px\" srcset=\"https:\/\/glutenfreepleasure.com\/__proxy_domain\/www.precicon.com.sg\/wp-content\/uploads\/2022\/02\/Retro-reflective-Sensors-photoelectric.jpeg 372w, https:\/\/glutenfreepleasure.com\/__proxy_domain\/www.precicon.com.sg\/wp-content\/uploads\/2022\/02\/Retro-reflective-Sensors-photoelectric-300x89.jpeg 300w\" alt=\"Retro reflective Sensors photoelectric\" width=\"372\" height=\"110\" data-delay=\"0\" data-animation=\"none\" \/><\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<div class=\"vc_col-sm-4 wpb_column column_container vc_column_container col child_column no-extra-padding\" data-padding-pos=\"all\" data-has-bg-color=\"false\" data-bg-color=\"\" data-bg-opacity=\"1\" data-animation=\"\" data-delay=\"0\">\n<div class=\"vc_column-inner\">\n<div class=\"wpb_wrapper\">\n<div class=\"wpb_text_column wpb_content_element \">\n<div class=\"wpb_wrapper\">\n<div class=\"column1\">\n<div class=\"positionleft\">\n<div class=\"column1\">\n<div class=\"positionleft\">\n<p><strong class=\"headline2\">Diffuse-reflective Sensors<\/strong><\/p>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<div class=\"divider-wrap\" data-alignment=\"default\">\n<div class=\"divider\"><\/div>\n<\/div>\n<div class=\"img-with-aniamtion-wrap center\" data-max-width=\"100%\" data-max-width-mobile=\"100%\" data-shadow=\"none\" data-animation=\"none\">\n<div class=\"inner\">\n<div class=\"hover-wrap\">\n<div class=\"hover-wrap-inner\"><img loading=\"lazy\" decoding=\"async\" class=\"img-with-animation skip-lazy\" src=\"https:\/\/glutenfreepleasure.com\/__proxy_domain\/www.precicon.com.sg\/wp-content\/uploads\/2022\/02\/Diffuse-reflective-Sensors.jpeg\" alt=\"Diffuse reflective Sensors\" width=\"297\" height=\"108\" data-delay=\"0\" data-animation=\"none\" \/><\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<div id=\"fws_6930caf6c75db\" class=\"wpb_row vc_row-fluid vc_row\" data-column-margin=\"default\" data-midnight=\"dark\">\n<div class=\"row-bg-wrap\" data-bg-animation=\"none\" data-bg-animation-delay=\"\" data-bg-overlay=\"false\">\n<div class=\"inner-wrap row-bg-layer\">\n<div class=\"row-bg viewport-desktop\"><\/div>\n<\/div>\n<\/div>\n<div class=\"row_col_wrap_12 col span_12 dark left\">\n<div class=\"vc_col-sm-12 wpb_column column_container vc_column_container col no-extra-padding\" data-padding-pos=\"all\" data-has-bg-color=\"false\" data-bg-color=\"\" data-bg-opacity=\"1\" data-animation=\"\" data-delay=\"0\">\n<div class=\"vc_column-inner\">\n<div class=\"wpb_wrapper\">\n<div class=\"wpb_text_column wpb_content_element \">\n<div class=\"wpb_wrapper\">\n<h2>Features<\/h2>\n<h3><strong class=\"headline2\">Long Sensing Distance<\/strong><\/h3>\n<p>A Through-beam Sensor, for example, can detect objects more than 10 m away. This is impossible with magnetic, ultrasonic, or other sensing methods.<\/p>\n<h3><strong class=\"headline2\">Virtually No Sensing Object Restrictions<\/strong><\/h3>\n<p>These Sensors operate on the principle that an object interrupts or reflects light, so they are not limited like Proximity Sensors to detecting metal objects. This means they can be used to detect virtually any object, including glass, plastic, wood, and liquid.<\/p>\n<h3><strong class=\"headline2\">Fast Response Time<\/strong><\/h3>\n<p>The response time is extremely fast because light travels at high speed and the Sensor performs no mechanical operations because all circuits are comprised of electronic components.<\/p>\n<h3><strong class=\"headline2\">High Resolution<\/strong><\/h3>\n<p>The incredibly high resolution achieved with these Sensors derives from advanced design technologies that yielded a very small spot beam and a unique optical system for receiving light. These developments enable detecting very small objects, as well as precise position detection.<\/p>\n<h3><strong class=\"headline2\">Non-contact Sensing<\/strong><\/h3>\n<p>There is little chance of damaging sensing objects or Sensors because objects can be detected without physical contact.<br \/>\nThis ensures years of Sensor service.<\/p>\n<h3><strong class=\"headline2\">Color Identification<\/strong><\/h3>\n<p>The rate at which an object reflects or absorbs light depends on both the wavelength of the emitted light and the color of the object. This property can be used to detect colors.<\/p>\n<h3><strong class=\"headline2\">Easy Adjustment<\/strong><\/h3>\n<p>Positioning the beam on an object is simple with models that emit visible light because the beam is visible.<\/p>\n<\/div>\n<\/div>\n<div class=\"wpb_text_column wpb_content_element \">\n<div class=\"wpb_wrapper\">\n<div class=\"column1\">\n<div id=\"3\" class=\"positionleft\">\n<h2><strong class=\"headline1\">Operating Principles<\/strong><\/h2>\n<\/div>\n<\/div>\n<div class=\"column1\">\n<div class=\"positionleft\">\n<h3><strong class=\"headline2\">(1) Properties of Light<\/strong><\/h3>\n<p><strong class=\"headline2\">Rectilinear Propagation<\/strong><\/p>\n<p>When light travels through air or water, it always travels in a straight line. The slit on the outside of a Through-beam Sensor that is used to detect small objects is an example of how this principle is applied to practical use.<\/p>\n<div class=\"img\"><img decoding=\"async\" class=\" lazyloaded\" src=\"https:\/\/www.ia.omron.com\/support\/guide\/43\/img\/intro_4.gif\" alt=\"\" data-src=\"https:\/\/www.ia.omron.com\/support\/guide\/43\/img\/intro_4.gif\" \/><\/div>\n<p><strong class=\"headline2\">Refraction<\/strong><\/p>\n<p>Refraction is the phenomenon of light being deflected as it passes obliquely through the boundary between two media with different refractive indices.<\/p>\n<div class=\"img\"><img decoding=\"async\" class=\" lazyloaded\" src=\"https:\/\/www.ia.omron.com\/support\/guide\/43\/img\/intro_5.gif\" alt=\"\" data-src=\"https:\/\/www.ia.omron.com\/support\/guide\/43\/img\/intro_5.gif\" \/><\/div>\n<p><strong class=\"headline2\">Reflection<br \/>\n(Regular Reflection, Retroreflection, Diffuse Reflection)<\/strong><\/p>\n<p>A flat surface, such as glass or a mirror, reflects light at an angle equal to the incident angle of the light. This kind of reflection is called regular reflection. A corner cube takes advantage of this principle by arranging three flat surfaces perpendicular to each other. Light emitted toward a corner cube repeatedly propagates regular reflections and the reflected light ultimately moves straight back toward the emitted light. This is referred to as retroreflection.<br \/>\nMost retroreflectors are comprised of corner cubes that measure several square millimeters and are arranged in a precise configuration.<br \/>\nMatte surfaces, such as white paper, reflect light in all directions. This scattering of light is called diffuse reflection.<br \/>\nThis principle is the sensing method used by Diffuse-reflective Sensors.<\/p>\n<div class=\"img\"><img decoding=\"async\" class=\" lazyloaded\" src=\"https:\/\/www.ia.omron.com\/support\/guide\/43\/img\/intro_6.gif\" alt=\"\" data-src=\"https:\/\/www.ia.omron.com\/support\/guide\/43\/img\/intro_6.gif\" \/><\/div>\n<p><strong class=\"headline2\">Polarization of Light<\/strong><\/p>\n<p>Light can be represented as a wave that oscillates horizontally and vertically.\u00a0<a class=\"term\" title=\"Photoelectric Sensors - Glossary of Industrial Automation\" href=\"https:\/\/glutenfreepleasure.com\/__proxy_domain\/www.precicon.com.sg\/products\/?tx_product_cat=sensors\">Photoelectric Sensors<\/a>\u00a0almost always use LEDs as the light source. The light emitted from LEDs oscillates in the vertical and horizontal directions and is referred to as unpolarized light. There are optical filters that constrain the oscillations of unpolarized light to just one direction. These are known as polarizing filters. Light from an LED that passes through a polarizing filter oscillates in only one direction and is referred to as polarized light (or more precisely, linear polarized light). Polarized light oscillating in one direction (say the vertical direction) cannot pass through a polarizing filter that constrains oscillations to a perpendicular direction (e.g., the horizontal direction). The MSR function on Retro-reflective Sensors and the Mutual Interference Protection Filter accessory for Through-beam Sensors operate on this principle.<\/p>\n<div class=\"img\"><img decoding=\"async\" class=\" lazyloaded\" src=\"https:\/\/www.ia.omron.com\/support\/guide\/43\/img\/intro_7.gif\" alt=\"\" data-src=\"https:\/\/www.ia.omron.com\/support\/guide\/43\/img\/intro_7.gif\" \/><\/div>\n<\/div>\n<\/div>\n<div class=\"column1\">\n<div class=\"positionleft\">\n<h3><strong class=\"headline2\">(2) Light Sources<\/strong><\/h3>\n<p><strong class=\"headline2\">Light Generation<br \/>\nPulse Modulated light<\/strong><\/p>\n<p>The majority of\u00a0<a class=\"term\" title=\"Photoelectric Sensors - Glossary of Industrial Automation\" href=\"https:\/\/glutenfreepleasure.com\/__proxy_domain\/www.precicon.com.sg\/products\/?tx_product_cat=sensors\">Photoelectric Sensors<\/a>\u00a0use pulse modulated light that basically emits light repeatedly at fixed intervals.<br \/>\nThey can sense objects located some distance away because the effects of external light interference are easily removed with this system. In models equipped with mutual interference protection, the emission cycle is varied within a specified range to handle coherent light and external light interference.<\/p>\n<div class=\"img\"><img decoding=\"async\" class=\" lazyloaded\" src=\"https:\/\/www.ia.omron.com\/support\/guide\/43\/img\/intro_8.gif\" alt=\"\" data-src=\"https:\/\/www.ia.omron.com\/support\/guide\/43\/img\/intro_8.gif\" \/><\/div>\n<p><strong class=\"headline2\">Non-modulated Light<\/strong><\/p>\n<p>Non-modulated light\u00a0refers to an uninterrupted beam of light at a specific intensity that is used with certain types of Sensors, such as Mark Sensors. Although these Sensors have fast response times, their drawbacks include short sensing distances and susceptibility to external light interference.<\/p>\n<div class=\"img\"><img decoding=\"async\" class=\" lazyloaded\" src=\"https:\/\/www.ia.omron.com\/support\/guide\/43\/img\/intro_9.gif\" alt=\"\" data-src=\"https:\/\/www.ia.omron.com\/support\/guide\/43\/img\/intro_9.gif\" \/><\/div>\n<p><strong class=\"headline2\">Light Source Color and Type<\/strong><\/p>\n<div class=\"img\"><img decoding=\"async\" class=\" lazyloaded\" src=\"https:\/\/www.ia.omron.com\/support\/guide\/43\/img\/intro_10.gif\" alt=\"\" data-src=\"https:\/\/www.ia.omron.com\/support\/guide\/43\/img\/intro_10.gif\" \/><\/div>\n<\/div>\n<\/div>\n<div class=\"column1\">\n<div class=\"positionleft\">\n<h3><strong class=\"headline2\">(3) Triangulation<\/strong><\/h3>\n<p>Distance-settable Sensors generally operate on the principle of\u00a0triangulation. This principle is illustrated in the following diagram.<br \/>\nLight from the Emitter strikes the sensing object and reflects diffused light. The Receiver lens concentrates the reflected light on the position detector (a semiconductor that outputs a signal according to where the light strikes it). When the sensing object is located at A near the optical system, then the light is concentrated at point a on the position detector. When the sensing object is located at B away from the optical system, then the light is concentrated at point b on the position detector.<\/p>\n<div class=\"img\"><img decoding=\"async\" class=\" lazyloaded\" src=\"https:\/\/www.ia.omron.com\/support\/guide\/43\/img\/intro_11.gif\" alt=\"\" data-src=\"https:\/\/www.ia.omron.com\/support\/guide\/43\/img\/intro_11.gif\" \/><\/div>\n<\/div>\n<\/div>\n<div class=\"top-page-link-area\"><\/div>\n<\/div>\n<\/div>\n<div class=\"wpb_text_column wpb_content_element \">\n<div class=\"wpb_wrapper\">\n<div class=\"column1\">\n<div id=\"4\" class=\"positionleft\">\n<h2><strong class=\"headline1\">Classification<\/strong><\/h2>\n<\/div>\n<\/div>\n<div class=\"column1\">\n<div class=\"positionleft\">\n<h3><strong class=\"headline2\">(1) Classification by Sensing Method<\/strong><\/h3>\n<p><strong class=\"headline2\">1. Through-beam Sensors<br \/>\nSensing Method<\/strong><\/p>\n<p>The Emitter and Receiver are installed opposite each other to enable the light from the Emitter to enter the Receiver. When a sensing object passing between the Emitter and Receiver interrupts the emitted light, it reduces the amount of light that enters the Receiver. This reduction in light intensity is used to detect an object.<\/p>\n<div class=\"img\"><img decoding=\"async\" class=\" lazyloaded\" src=\"https:\/\/www.ia.omron.com\/support\/guide\/43\/img\/intro_12.gif\" alt=\"\" data-src=\"https:\/\/www.ia.omron.com\/support\/guide\/43\/img\/intro_12.gif\" \/><\/div>\n<p>The sensing method is identical to that of Through-beam Sensors and some models called Slot Sensors are configured with an integrated Emitter and Receiver.<\/p>\n<div class=\"img\"><img decoding=\"async\" class=\" lazyloaded\" src=\"https:\/\/www.ia.omron.com\/support\/guide\/43\/img\/intro_13.gif\" alt=\"\" data-src=\"https:\/\/www.ia.omron.com\/support\/guide\/43\/img\/intro_13.gif\" \/><\/div>\n<p><strong class=\"headline2\">Features<\/strong><\/p>\n<p class=\"disc\">Stable operation and long sensing distances ranging from several centimeters to several tens of meters.<\/p>\n<p class=\"disc\">Sensing position unaffected by changes in the sensing object path.<\/p>\n<p class=\"disc\">Operation not greatly affected by sensing object gloss, color, or inclination.<\/p>\n<\/div>\n<\/div>\n<div class=\"column1\">\n<div class=\"positionleft\">\n<p><strong class=\"headline2\">2. Diffuse-reflective Sensors<\/strong><\/p>\n<p><strong class=\"headline2\">Sensing Method<\/strong><\/p>\n<p>The Emitter and Receiver are installed in the same housing and light normally does not return to the Receiver. When light from the Emitter strikes the sensing object, the object reflects the light and it enters the Receiver where the intensity of light is increased. This increase in light intensity is used to detect the object.<\/p>\n<div class=\"img\"><img decoding=\"async\" class=\" lazyloaded\" src=\"https:\/\/www.ia.omron.com\/support\/guide\/43\/img\/intro_14.gif\" alt=\"\" data-src=\"https:\/\/www.ia.omron.com\/support\/guide\/43\/img\/intro_14.gif\" \/><\/div>\n<p><strong class=\"headline2\">Features<\/strong><\/p>\n<p class=\"disc\">Sensing distance ranging from several centimeters to several meters.<\/p>\n<p class=\"disc\">Easy mounting adjustment.<\/p>\n<p class=\"disc\">The intensity of reflected light, operating stability, and sensing distance vary with the conditions (e.g., color and smoothness) on the surface of the sensing object.<\/p>\n<\/div>\n<\/div>\n<div class=\"column1\">\n<div class=\"positionleft\">\n<p><strong class=\"headline2\">3. Retro-reflective Sensors<\/strong><\/p>\n<p><strong class=\"headline2\">Sensing Method<\/strong><\/p>\n<p>The Emitter and Receiver are installed in the same housing and light from the Emitter is normally reflected back to the Receiver by a\u00a0<a class=\"term\" title=\"Reflector - Glossary of Industrial Automation\" href=\"https:\/\/www.ia.omron.com\/support\/glossary\/atoz\/1968\/index.html\">Reflector<\/a>\u00a0installed on the opposite side. When the sensing object interrupts the light, it reduces the amount of light received. This reduction in light intensity is used to detect the object.<\/p>\n<div class=\"img\"><img decoding=\"async\" class=\" lazyloaded\" src=\"https:\/\/www.ia.omron.com\/support\/guide\/43\/img\/intro_15.gif\" alt=\"\" data-src=\"https:\/\/www.ia.omron.com\/support\/guide\/43\/img\/intro_15.gif\" \/><\/div>\n<p><strong class=\"headline2\">Features<\/strong><\/p>\n<p class=\"disc\">Sensing distance ranges from several centimeters to several meters.<\/p>\n<p class=\"disc\">Simple wiring and optical axis adjustment (labor saving).<\/p>\n<p class=\"disc\">Operation not greatly affected by the color or angle of sensing objects.<\/p>\n<p class=\"disc\">Light passes through the sensing object twice, making these Sensors suitable for sensing transparent objects.<\/p>\n<p class=\"disc\">Sensing objects with a mirrored finish may not be detected because the amount of light reflected back to the Receiver from such shiny surfaces makes it appear as though no sensing object is present. This problem can be overcome using the MSR function.<\/p>\n<p class=\"disc\">Retro-reflective Sensors have a\u00a0<a class=\"term\" title=\"dead zone - Glossary of Industrial Automation\" href=\"https:\/\/www.ia.omron.com\/support\/glossary\/atoz\/117\/index.html\">dead zone<\/a>\u00a0at close distances.<\/p>\n<\/div>\n<\/div>\n<div class=\"column1\">\n<div class=\"positionleft\">\n<p><strong class=\"headline2\">4. Distance-settable Sensors<\/strong><\/p>\n<p><strong class=\"headline2\">Sensing Method<\/strong><\/p>\n<p>The Receiver in the Sensor is either a 2-part photodiode or a position detector. The light reflected from the sensing object is concentrated on the Receiver. Sensing is based on the principle of\u00a0<a class=\"term\" title=\"triangulation - Glossary of Industrial Automation\" href=\"https:\/\/www.ia.omron.com\/support\/glossary\/atoz\/3031\/index.html\">triangulation<\/a>, which states that where the beam is concentrated depends on the distance to the sensing object.<br \/>\nThe following figure shows a detection system that uses a 2-part photodiode. The end of the photodiode nearest the case is called the N (near) end and the other end is called the F (far) end. When a sensing object reaches the preset position, the reflected light is concentrated midway between the N end and the F end and the photodiodes at both ends receive an equal amount of light. If the sensing object is closer to the Sensor, then the reflected light is concentrated at the N end. Conversely, the reflected light is concentrated at the F end when the sensing object is located farther than the preset distance. The Sensor calculates the difference between the light intensity at the N end and F end to determine the position of the sensing object.<\/p>\n<div class=\"img\"><img decoding=\"async\" class=\" lazyloaded\" src=\"https:\/\/www.ia.omron.com\/support\/guide\/43\/img\/intro_16.gif\" alt=\"\" data-src=\"https:\/\/www.ia.omron.com\/support\/guide\/43\/img\/intro_16.gif\" \/><\/div>\n<p><strong class=\"headline2\">Features<\/strong><\/p>\n<p class=\"disc\">Operation not greatly affected by sensing object surface conditions or color.<\/p>\n<p class=\"disc\">Operation not greatly affected by the background.<\/p>\n<\/div>\n<\/div>\n<div class=\"column1\">\n<div class=\"positionleft\">\n<p><strong class=\"headline2\">BGS (Background Suppression) and FGS (Foreground Suppression)<\/strong><\/p>\n<p>When using the E3Z-LS61, E3Z-LS66, E3Z-LS81, or E3Z-LS86, select the BGS or FGS function to detect objects on a conveyor belt.<br \/>\nThe BGS function prevents any background object (i.e., the conveyor) beyond the set distance from being detected.<br \/>\nThe FGS function prevents objects closer than the set distance or objects that reflect less than a specified amount of light to the Receiver from being detected.<br \/>\nObjects that reflect less than a specified amount of light are as follows:<br \/>\n(1) Objects with extremely low reflectance and objects that are darker than black paper.<br \/>\n(2) Objects like mirrors that return virtually all light back to the Emitter.<br \/>\n(3) Uneven, glossy surfaces that reflect a lot of light but disperse the light in random directions.<br \/>\nReflected light may return to the Receiver momentarily for item (3) due to sensing object movement. In that case, an OFF delay timer or some other means may need to be employed to prevent chattering.<\/p>\n<p><strong class=\"headline2\">Features<\/strong><\/p>\n<p class=\"disc\">Small differences in height can be detected (BGS and FGS).<\/p>\n<p class=\"disc\">The effects of sensing object color are minimized (BGS and FGS).<\/p>\n<p class=\"disc\">The effects of background objects are minimized (BGS).<\/p>\n<p class=\"disc\">Sensing object irregularities may affect operation (BGS and FGS).<\/p>\n<div class=\"img\"><img decoding=\"async\" class=\" lazyloaded\" src=\"https:\/\/www.ia.omron.com\/support\/guide\/43\/img\/intro_17.gif\" alt=\"\" data-src=\"https:\/\/www.ia.omron.com\/support\/guide\/43\/img\/intro_17.gif\" \/><\/div>\n<div class=\"img\"><img decoding=\"async\" class=\" lazyloaded\" src=\"https:\/\/www.ia.omron.com\/support\/guide\/43\/img\/intro_18.gif\" alt=\"\" data-src=\"https:\/\/www.ia.omron.com\/support\/guide\/43\/img\/intro_18.gif\" \/><\/div>\n<\/div>\n<\/div>\n<div class=\"column1\">\n<div class=\"positionleft\">\n<p><strong class=\"headline2\">5. Limited-reflective Sensors<\/strong><\/p>\n<p><strong class=\"headline2\">Sensing Method<\/strong><\/p>\n<p>In the same way as for Diffuse-reflective Sensors, Limited-reflective Sensors receive light reflected from the sensing object to detect it. The optical system restricts the light emission and reception area, so only objects that are a specific distance (area where light emission and reception overlap) from the Sensor can be detected. In the figure on the right, the sensing object at (A) can be detected while the object at (B) cannot.<\/p>\n<p>Example<\/p>\n<div class=\"img\"><img decoding=\"async\" class=\" lazyloaded\" src=\"https:\/\/www.ia.omron.com\/support\/guide\/43\/img\/intro_19.gif\" alt=\"\" data-src=\"https:\/\/www.ia.omron.com\/support\/guide\/43\/img\/intro_19.gif\" \/><\/div>\n<p><strong class=\"headline2\">Features<\/strong><\/p>\n<p class=\"disc\">Small differences in height can be detected.<\/p>\n<p class=\"disc\">The distance from the Sensor can be limited to detect only objects in a specific area.<\/p>\n<p class=\"disc\">Operation is not greatly affected by sensing object colors.<\/p>\n<p class=\"disc\">Operation is greatly affected by the glossiness or inclination of the sensing object.<\/p>\n<\/div>\n<\/div>\n<div class=\"column1\">\n<div class=\"positionleft\">\n<h3><strong class=\"headline2\">(2) Selection Points by Sensing Method<\/strong><\/h3>\n<p><strong class=\"headline2\">Checkpoints for Through-beam and Retro-reflective Sensors<\/strong><\/p>\n<p><strong class=\"headline2\">Sensing object<\/strong><\/p>\n<p>(1) Size and shape (vertical x horizontal x height)<br \/>\n(2) Transparency (opaque, semi-transparent, transparent)<br \/>\n(3) Velocity V (m\/s or units\/min.)<\/p>\n<p><strong class=\"headline2\">Sensor<\/strong><\/p>\n<p>(1) Sensing distance (L)<br \/>\n(2) Restrictions on size and shape<br \/>\na) Sensor<br \/>\nb) Retroreflector (for Retro-reflective Sensors)<br \/>\n(3) Need for side-by-side mounting<br \/>\na) No. of units<br \/>\nb) Mounting pitch<br \/>\nc) Need for staggered mounting<br \/>\n(4) Mounting restrictions (angling, etc.)<\/p>\n<p><strong class=\"headline2\">Environment<\/strong><\/p>\n<p>(1) Ambient temperature<br \/>\n(2) Presence of splashing water, oil, or chemicals<br \/>\n(3) Others<\/p>\n<div class=\"img\"><img decoding=\"async\" class=\" lazyloaded\" src=\"https:\/\/www.ia.omron.com\/support\/guide\/43\/img\/intro_20.gif\" alt=\"\" data-src=\"https:\/\/www.ia.omron.com\/support\/guide\/43\/img\/intro_20.gif\" \/><\/div>\n<\/div>\n<\/div>\n<div class=\"column1\">\n<div class=\"positionleft\">\n<p><strong class=\"headline2\">Checkpoints for Diffusion-reflective, Distance-settable, and Limited-reflective Sensors<\/strong><\/p>\n<p><strong class=\"headline2\">Sensing object<\/strong><\/p>\n<p>(1) Size and shape (vertical x horizontal x height)<br \/>\n(2) Color<br \/>\n(3) Material (steel, SUS, wood, paper, etc.)<br \/>\n(4) Surface conditions (textured or glossy)<br \/>\n(5) Velocity V (m\/s or units\/min.)<\/p>\n<p><strong class=\"headline2\">Sensor<\/strong><\/p>\n<p>(1) Sensing distance (distance to the workpiece) (L)<br \/>\n(2) Restrictions on size and shape<br \/>\n(3) Need for side-by-side mounting<br \/>\na) No. of units<br \/>\nb) Mounting pitch<br \/>\n(4) Mounting restrictions (angling, etc.)<\/p>\n<p><strong class=\"headline2\">Background<\/strong><\/p>\n<p>Background<br \/>\n(1) Color<br \/>\n(2) Material (steel, SUS, wood, paper, etc.)<br \/>\n(3) Surface conditions (textured, glossy, etc.)<\/p>\n<p><strong class=\"headline2\">Environment<\/strong><\/p>\n<p>(1) Ambient temperature<br \/>\n(2) Presence of splashing water, oil, or chemicals<br \/>\n(3) Others<\/p>\n<div class=\"img\"><img decoding=\"async\" class=\" lazyloaded\" src=\"https:\/\/www.ia.omron.com\/support\/guide\/43\/img\/intro_21.gif\" alt=\"\" data-src=\"https:\/\/www.ia.omron.com\/support\/guide\/43\/img\/intro_21.gif\" \/><\/div>\n<\/div>\n<\/div>\n<div class=\"column1\">\n<div class=\"positionleft\">\n<h3><strong class=\"headline2\">(3) Classification by Configuration<\/strong><\/h3>\n<p><a class=\"term\" title=\"Photoelectric Sensors - Glossary of Industrial Automation\" href=\"https:\/\/glutenfreepleasure.com\/__proxy_domain\/www.precicon.com.sg\/products\/?tx_product_cat=sensors\">Photoelectric Sensors<\/a>\u00a0are generally comprised of an Emitter, Receiver, Amplifier, Controller, and Power Supply. They are classified as shown below according to how the components are configured.<\/p>\n<\/div>\n<\/div>\n<div class=\"column1\">\n<div class=\"positionleft\">\n<p><strong class=\"headline2\">1. Sensors with Separate Amplifiers<\/strong><\/p>\n<p>Through-beam Sensors have a separate Emitter and Receiver while Reflective Sensors have an integrated Emitter and Receiver. The Amplifier and Controller are housed in a single Amplifier Unit.<\/p>\n<p><strong class=\"headline2\">Features<\/strong><\/p>\n<p class=\"disc\">Compact size because the integrated Emitter-Receiver is comprised simply of an Emitter, Receiver, and optical system.<\/p>\n<p class=\"disc\">Sensitivity can be adjusted remotely if the Emitter and Receiver are installed in a narrow space.<\/p>\n<p class=\"disc\">The signal wire from the Amplifier Unit to the Emitter and Receiver is susceptible to noise.<\/p>\n<p class=\"disc\">Typical Models (Amplifier Units): E3NC, E3C-LDA, and E3C<\/p>\n<\/div>\n<\/div>\n<div class=\"column1\">\n<div class=\"positionleft\">\n<p><strong class=\"headline2\">2.\u00a0<a class=\"term\" title=\"built-in amplifier - Glossary of Industrial Automation\" href=\"https:\/\/glutenfreepleasure.com\/__proxy_domain\/www.precicon.com.sg\/products\/?brands=Omron\">Built-in Amplifier<\/a>\u00a0Sensors<\/strong><\/p>\n<p>Everything except the power supply is integrated in these Sensors. (Through-beam Sensors are divided into the Emitter comprised solely of the Emitter and the Receiver comprised of the Receiver, Amplifier, and Controller.) The power supply is a standalone unit.<\/p>\n<p><strong class=\"headline2\">Features<\/strong><\/p>\n<p class=\"disc\">The Receiver, Amplifier, and Controller are integrated to eliminate the need for weak signal wiring. This makes the Sensor less susceptible to noise.<\/p>\n<p class=\"disc\">Requires less wiring than Sensors with separate Amplifiers.<\/p>\n<p class=\"disc\">Although these Sensors are generally larger than those with separate Amplifiers, those with non-adjustable sensitivity are just as small.<\/p>\n<p class=\"disc\">Typical Models: E3Z, E3T, and E3S-C<\/p>\n<\/div>\n<\/div>\n<div class=\"column1\">\n<div class=\"positionleft\">\n<p><strong class=\"headline2\">3. Sensors with Built-in Power Supplies<\/strong><\/p>\n<p>The Power Supply, Emitter, and Receiver are all installed in the same housing with these Sensors.<\/p>\n<p><strong class=\"headline2\">Features<\/strong><\/p>\n<p class=\"disc\">Sensors can be connected directly to a commercial power supply to provide a large control output directly from the Receiver.<\/p>\n<p class=\"disc\">These Sensors are much larger than those with other configurations because the Emitter and Receiver contain additional components, such as power supply transformers.<\/p>\n<p class=\"disc\">Typical Models: E3G-M, E3JK, and E3JM<\/p>\n<\/div>\n<\/div>\n<div class=\"column1\">\n<div class=\"positionleft\">\n<p><strong class=\"headline2\">4. Area Sensors<\/strong><\/p>\n<p>An Area Sensor is a Through-beam Sensor which consists of a pair of Emitter and Receiver with multiple beams. Select the sensing width of the Sensor to fit the application.<\/p>\n<p><strong class=\"headline2\">Features<\/strong><\/p>\n<p class=\"disc\">Area Sensors can sense wide areas.<\/p>\n<p class=\"disc\">These Sensors are ideal for picking systems for small parts.<\/p>\n<p class=\"disc\">Typical Models: F3W-E and F3W-D<\/p>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<div class=\"divider-wrap\" data-alignment=\"default\">\n<div class=\"divider\"><\/div>\n<\/div>\n<div class=\"divider-wrap\" data-alignment=\"default\">\n<div class=\"divider-border\" data-width=\"100%\" data-animate=\"\" data-animation-delay=\"\" data-color=\"default\"><\/div>\n<\/div>\n<div class=\"wpb_text_column wpb_content_element \">\n<div class=\"wpb_wrapper\">\n<p>Download the full specifications of the brochure below to understand more about the photoelectric sensors.<\/p>\n<\/div>\n<\/div>\n<div class=\"divider-wrap\" data-alignment=\"default\">\n<div class=\"divider\"><\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<div id=\"fws_6930caf6c7e27\" class=\"wpb_row vc_row-fluid vc_row\" data-column-margin=\"default\" data-midnight=\"dark\">\n<div class=\"row-bg-wrap\" data-bg-animation=\"none\" data-bg-animation-delay=\"\" data-bg-overlay=\"false\">\n<div class=\"inner-wrap row-bg-layer\">\n<div class=\"row-bg viewport-desktop\"><\/div>\n<\/div>\n<\/div>\n<div class=\"row_col_wrap_12 col span_12 dark center\">\n<div class=\"vc_col-sm-6 wpb_column column_container vc_column_container col no-extra-padding\" data-padding-pos=\"all\" data-has-bg-color=\"false\" data-bg-color=\"\" data-bg-opacity=\"1\" data-animation=\"\" data-delay=\"0\">\n<div class=\"vc_column-inner\">\n<div class=\"wpb_wrapper\"><a class=\"nectar-button medium regular accent-color  regular-button\" role=\"button\" href=\"https:\/\/glutenfreepleasure.com\/__proxy_domain\/www.precicon.com.sg\/wp-content\/uploads\/2022\/02\/Technical-Explanation-for-Photoelectric-Sensors.pdf\" target=\"_blank\" rel=\"noopener\" data-color-override=\"false\" data-hover-color-override=\"false\" data-hover-text-color-override=\"#fff\">Download Brochure<\/a><\/div>\n<\/div>\n<\/div>\n<div class=\"vc_col-sm-6 wpb_column column_container vc_column_container col no-extra-padding\" data-padding-pos=\"all\" data-has-bg-color=\"false\" data-bg-color=\"\" data-bg-opacity=\"1\" data-animation=\"\" data-delay=\"0\">\n<div class=\"vc_column-inner\">\n<div class=\"wpb_wrapper\"><a class=\"nectar-button medium regular accent-color  regular-button\" role=\"button\" href=\"https:\/\/glutenfreepleasure.com\/__proxy_domain\/www.precicon.com.sg\/products\/?tx_product_cat=sensors\" target=\"_blank\" rel=\"noopener\" data-color-override=\"false\" data-hover-color-override=\"false\" data-hover-text-color-override=\"#fff\">View Products<\/a><\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n","protected":false},"excerpt":{"rendered":"<p>What is a Photoelectric Sensor? Photoelectric Sensors\u00a0detect objects, changes in surface conditions, and other items through a variety of optical properties. A Light Emitting Photoelectric Sensor consists primarily of an&#8230;<\/p>\n","protected":false},"author":4,"featured_media":6668,"comment_status":"closed","ping_status":"closed","sticky":false,"template":"","format":"standard","meta":{"_acf_changed":false,"content-type":"","_jetpack_newsletter_access":"","_jetpack_dont_email_post_to_subs":false,"_jetpack_newsletter_tier_id":0,"_jetpack_memberships_contains_paywalled_content":false,"_jetpack_feature_clip_id":0,"_jetpack_memberships_contains_paid_content":false,"footnotes":"","jetpack_post_was_ever_published":false},"categories":[97,99],"tags":[],"class_list":["post-6656","post","type-post","status-publish","format-standard","has-post-thumbnail","category-product-guides","category-omron"],"acf":[],"yoast_head":"<!-- This site is optimized with the Yoast SEO plugin v28.4 - https:\/\/yoast.com\/product\/yoast-seo-wordpress\/ -->\n<title>Photoelectric Sensors and Its Uses - LKH Precicon<\/title>\n<meta name=\"description\" content=\"Photoelectric Sensors contain an Emitter and Receiver. 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