The present disclosure relates to a device for measuring and visualizing of sound level and an associated a method for measuring and visualizing sound level.
Noise is an important public health problem. It has negative consequences for human health and well-being and is a growing concern. Authorities and organizations have developed guidelines, based on a growing understanding of the health effects caused by exposure to noise. One example is a report from the World Health Organization (WHO) on guidelines for exposing people to noise (http://www.euro.who.int/_data/assets/pdf_file/0008/383921/noise-guidelines-eng.pdf?ua=1). The main purpose of these guidelines is to provide recommendations to protect human health from exposure to environmental noise from various sources: noise from transport (road traffic, railways and aircraft), noise from wind turbines and leisure noise. The health advice is supported by facts, which is crucial for producing measures that can protect local communities from the unwanted effects of noise. Exposure levels are recommended that can be considered applicable in several geographic areas.
In addition to noise from the outdoor environment, noise from the indoor environment can pose health challenges. Noise in the workplace is usually regulated and can be limited by per se known technical devices on noise sources or protective equipment. Noise can be measured and visualized so that a person who is exposed to the noise can be notified. The same applies to noise from other indoor environments.
DE 202007007942 U1 is a German utility model that describes a noise level detector that is connected to one or more LEDs (light emitting diode). The LED(s) light up when the noise level exceeds a predetermined value. CN 206609519 U is a Chinese utility pattern with a device comparable to DE 202007007942 U1. It states that the facility has a “reasonable” design and includes some data analysis of measured noise values.
KR 20180093503 A discusses an acoustic meter that visualizes indoor noise using light. An embodiment with a LED line as light is mentioned. The use of the product as a warning system from patient to nurse is discussed. CN 106595844 A discloses a wireless network-based noise monitoring system in industrial areas using LEDs to visualize the noise level. Low cost manufacturing of the noise monitoring system and its use in institutions and schools is discussed. CN 205642605 U discusses a multifunctional noise meter with improved precision that shows the measured noise level on an LED LCD screen (liquid crystal display). U.S. Pat. No. 7,836,770 BB discloses a personal noise dose meter. Accumulated noise is calculated and displayed, for example, by a LED line. KR 20050049774 A discusses a measuring system for rattling sound in cars. Display of the sound level with LED is mentioned.
U.S. Pat. No. 6,098,463 A describes a device for measuring physical signals, including sound. The device measures the sound level and can display it visually with light signals.
U.S. Pat. No. 3,797,012 A discloses a device for measuring and visualizing sound level comprising at least one microphone for detecting sound level, wherein this is connected to a visualization device which responds at sound level. The visualization device can change from smiley face to sourpass and vice versa.
Measurement of noise in different ways and visualization with LED are discussed in all the above-mentioned publications. As a rule, the persons involved are notified when an acute or accumulated noise level exceeds a predetermined limit value. Generation of signals/feedback to involved persons that motivates them to implement measures to reduce the noise level is not mentioned in any of the publications. Noise in the indoor environment caused by people can be difficult to reduce with technical aids. In addition, the use of protective equipment may be impractical.
Disclosed embodiments provide an alternative to known devices for measuring and visualizing sound level.
More specifically, provided herein is a device for measuring and visualizing sound level as a pedagogical aid for reducing man-made sound/noise.
More specifically, provided herein is a device, which motivates the persons involved to reduce the sound level individually and jointly.
Health problems that can be linked to exposure of people to noise are a major societal challenge. Reducing the exposure of people to high sound levels/noise leads to increased quality of life for the people involved and reduced costs for society.
The disclosed embodiments apply to measuring and visualizing the sound level in a place where at least two people are gathered. The device for measuring and visualizing the sound level comprises a sound detector which is connected to a visualization device in such a way that the visualization device responds to sound on site. The sound detector must include at least one microphone and sufficient electronics to provide an output signal that depends on the sound level that the microphone picks up.
The visualization device is arranged so that it gives a gradually increasing response to gradually decreasing sound level. The gradually increasing response to decreasing sound level can inspire and motivate the gathered persons to reduce the sound level until the goal in the form of a predetermined acceptable sound level is reached.
The visualization device may be an analog display or a lighting device. The person skilled in the art may find several suitable visualization devices for carrying out the embodiments. A visualization device that is a lighting device can change from warmer to colder colours and vice versa.
The gradually increasing response to gradually decreasing sound level may consist of increasing (stronger) light and shifting from colder to warmer colours. In the opposite case, the gradually decreasing response to gradually increasing sound level may consist of decreasing (weaker) light and shifting from warmer to colder colours.
Preferably, the device comprises a control device which, among other things, is capable of recording average values of sound level over a certain period of time, for example a period of up to 3 seconds, up to 15 seconds or up to 1 minute.
The device is preferably reversible, i.e. it gives a gradually decreasing response to a gradually increasing sound level. In the extreme, the gradually decreasing response to a gradually increasing sound level can lead to virtually absent light, when the sound level has exceeded a predetermined threshold for a continuous period of time.
The control device may be arranged to receive information about various parameters that are assumed to affect the sound level, such as the level of background noise that cannot be influenced, the number of people present, whether there is a meeting, party or other type of gathering, etc.
The gradually increasing response to gradually decreasing sound level can thus be “calibrated” according to various parameters that have a direct influence on the sound level. In addition, health-related data from authorities and professional communities for sound exposure of persons can form the basis for control and the course of the increasing response to gradually decreasing sound levels and vice versa.
Programming and/or calibration of the control device can take place in various ways, for example with a so-called app where the number of people gathered in the room, type of gathering, form of gathering and health-related data from authorities and professional communities for sound exposure of people are entered into the app and the course of the gradually increasing response to gradually decreasing sound level is fed out of the app and into the device.
The control device may optionally be equipped with a memory unit which allows the device to store history of what is recorded, for example for a certain number of persons present in a certain room, in a certain type of gathering and in a certain form of gathering, the history forms the basis for statistics fed out of the app.
When the device is arranged to be programmed by an app, it is also expedient that the response obtained can be read in the mobile device containing the app. This presupposes two-way communication between the mobile unit and the device.
The visualization device of the device can be made in different sizes, which are adapted to rooms with different sizes and gatherings of different type and scope.
The device can be used in connection with meetings and gatherings where people with neurological disorders such as ADHD are present. The inventive embodiments make it possible to include such persons in the community who together will achieve a reduced sound level.
The device can also be used in places where several people are gathered who basically do not know each other and usually do not feel community for each other. Examples could be a museum, library, quiet compartment on the train, church building, and other similar areas in the community. It can be embarrassing to be reminded to observe silence or lower the volume. The device can in a more positive way contribute to increased support for the desired silence/the reduced sound level, so that the goal is achieved with a smile. Locations that have installed the device may in their marketing indicate that the device exists and that the sound level has been reduced.
Furthermore, the disclosed embodiments relate to a method for measuring and visualizing the sound level in a place where at least two people are gathered using a sound detector which is connected to a visualization device in such a way that the visualization device responds to sound on the spot and that the visualization device provides a gradually increasing response to gradually decreasing sound level. The method may also comprise that the gradually increasing response to gradually decreasing sound level in the visualization device leads to the undershot of a predetermined sound level, as persons present in the room attenuate their sound-creating activities, as a result of the gradually increasing response in the visualizing device.
In the following, the invention is explained in more detail through some non-limiting embodiments illustrated in the accompanying figures, in which:
In both
As mentioned, an increasing response can also be shown with colors, and more specifically that increasing response is to be understood as a shift from cold to warm colors, i.e. a shift from shortwave (blue) light in the direction of long-wave (red) light. Blue light has wavelengths in the range 445 to 520 nm, while red light has wavelengths in the range 625 to 740 nm.
The use of color can also be combined with such a drawing of a circle as shown in
The
It is emphasized that the disclosed embodiments do not bring anything new with regard to lighting devices, analog displays, drawing programs, etc. It is assumed to use per se known technology when it comes to implementing such devices for the relevant displays of noise level.
The visualization devices can be used in different shapes and sizes that are adapted to different areas of use.
The disclosed embodiments can be used in many different contexts and places, such as in assemblies such as school classes, kindergarten departments, meeting rooms, party rooms and group rooms for people with special behavioural challenges.
Number | Date | Country | Kind |
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20190768 | Jun 2019 | NO | national |
Filing Document | Filing Date | Country | Kind |
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PCT/NO2020/050169 | 6/19/2020 | WO |