SIST-TS CEN ISO/TS 15694:2004
(Main)Mechanical vibration and shock - Measurement and evaluation of single shocks transmitted from hand-held and hand-guided machines to the hand-arm system (ISO/TS 15694:2004)
Mechanical vibration and shock - Measurement and evaluation of single shocks transmitted from hand-held and hand-guided machines to the hand-arm system (ISO/TS 15694:2004)
ISO/TS 15694:2004 specifies methods for measuring single shocks at the handle(s) of hand-held and hand-guided machinery characterized by a maximum strike rate below 5 Hz.
ISO/TS 15694:2004 also defines additional requirements for the measuring instrumentation which is necessary for the evaluation of shocks.
The aim is to facilitate the gathering of emission and human exposure data in order to provide a basis for emission declaration and for the future development of exposure risk criteria. However, ISO/TS 15694:2004 does not provide methods for the interpretation of the potential human effects of single shocks.
It is therefore a basis for measurement and evaluation of emission of single shocks from hand-held and hand-guided machinery but does not cover the evaluation of human exposure.
Mechanische Schwingungen und Stöße - Messung und Bewertung diskreter Stöße, die von handgehaltenen und handgeführten Maschinen auf das Hand-Arm-System übertragen erden (ISO/TS 15694:2004)
Vibrations et chocs mécaniques - Mesurage et évaluation des chocs simples transmis par les machines portatives et guidées a la main au systeme main bras (ISO/TS 15694:2004)
L'ISO/TS 15694:2004 présente les méthodes de mesurage des chocs simples au niveau de la ou des poignées des machines portatives et guidées à la main caractérisées par un taux de frappe maximal inférieur à 5 Hz.
L'ISO/TS 15694:2004 définit également des exigences supplémentaires relatives à l'appareillage de mesure nécessaire à l'évaluation des chocs.
L'objectif est de faciliter le recueil d'informations relatives aux émissions et à l'exposition des individus afin d'établir le fondement d'une déclaration d'émission et du développement à venir des critères d'évaluation du niveau de risque d'exposition. Toutefois, l'ISO/TS 15694:2004 ne propose pas de méthodes d'interprétation des effets potentiels des chocs simples sur l'organisme.
Par conséquent, elle constitue la base du mesurage et de l'évaluation des chocs simples émis par les machines portatives et guidées à la main mais ne couvre pas les actions sur l'organisme.
Mehanične vibracije in udarci - Merjenje in ocena posamičnih udarcev, ki se prenašajo z ročnih in ročno vodenih strojev na sistem dlan-roka (ISO/TS 15694:2004)
General Information
- Status
- Published
- Publication Date
- 31-Aug-2004
- Technical Committee
- I13 - Imaginarni 13
- Current Stage
- 6060 - National Implementation/Publication (Adopted Project)
- Start Date
- 01-Sep-2004
- Due Date
- 01-Sep-2004
- Completion Date
- 01-Sep-2004
Overview
CEN ISO/TS 15694:2004 (ISO/TS 15694:2004) provides standardized methods for measuring and evaluating single shocks transmitted from hand-held and hand-guided machinery to the hand–arm system. It applies to tools with a maximum strike rate below 5 Hz and defines how to capture consistent emission data from single-shock events (for example nailers, tackers, staplers and similar fastener-driving tools). The Technical Specification covers measurement parameters, instrumentation requirements and reporting - but does not provide criteria for interpreting human-health effects or assessing human exposure.
Key topics and technical requirements
- Scope and limitations
- Measurement of single shocks at the handle(s) of hand-held/hand-guided machines (strike rate < 5 Hz).
- Basis for emission declaration and future exposure-risk development; excludes health-effect interpretation.
- Signal conditioning and weighting
- Defines a flat-weighted acceleration band-limited to 6.3 Hz – 1250 Hz (equivalent to 8 Hz–1 000 Hz octave band) and references W-weighting from EN ISO 5349-1.
- Normative filter definitions provided in Annex D (flat weighting) and Annex E (W-weighting).
- Key parameters for characterizing single shocks
- RMS (root-mean-square) value (fixed integration time T = 3 s recommended).
- Running RMS with an exponential time constant (preferred t = 0.125 s).
- RMQ (root-mean-quad) value (T = 3 s).
- MTVV (maximum transient vibration value), PV (peak value), crest factor, and shock-content quotients.
- Instrumentation and measurement procedure
- Additional requirements for accelerometers and acquisition systems are specified (Annex A normative; Annex B informative on digital instrumentation).
- Practical guidance on sensor attachment, orientation and working procedures to ensure reproducible emission data.
- Reporting
- Prescribed measurement report content to support objective tool-to-tool comparisons.
Applications
- Laboratory emission testing of nailers, tackers, staplers and other single-shock producing tools.
- Comparative performance and product development (design changes to reduce shock emission).
- Creation of consistent datasets to support future exposure risk criteria and emission declarations.
- Research studies on hand-transmitted shock characteristics.
Who would use this standard
- Tool manufacturers and product designers (to measure and reduce shock emissions).
- Independent test laboratories and certification bodies (for reproducible measurement).
- Occupational health & safety professionals and ergonomists (for exposure data collection).
- Standards developers and researchers studying hand–arm vibration and shock.
Related standards
- EN ISO 5349-1 / EN ISO 5349-2 (hand-transmitted vibration)
- EN 1033 (laboratory measurement of hand-guided machinery vibration)
- ENV 28041 / ISO 8041 (measuring instrumentation)
- ISO 5348 (accelerometer mounting)
- CEN ISO/TS 8662-11 (fastener driving tools)
Keywords: ISO/TS 15694, hand-held machines, single shocks, measurement, flat-weighted acceleration, MTVV, peak value, crest factor, accelerometers, hand–arm vibration.
Frequently Asked Questions
SIST-TS CEN ISO/TS 15694:2004 is a technical specification published by the Slovenian Institute for Standardization (SIST). Its full title is "Mechanical vibration and shock - Measurement and evaluation of single shocks transmitted from hand-held and hand-guided machines to the hand-arm system (ISO/TS 15694:2004)". This standard covers: ISO/TS 15694:2004 specifies methods for measuring single shocks at the handle(s) of hand-held and hand-guided machinery characterized by a maximum strike rate below 5 Hz. ISO/TS 15694:2004 also defines additional requirements for the measuring instrumentation which is necessary for the evaluation of shocks. The aim is to facilitate the gathering of emission and human exposure data in order to provide a basis for emission declaration and for the future development of exposure risk criteria. However, ISO/TS 15694:2004 does not provide methods for the interpretation of the potential human effects of single shocks. It is therefore a basis for measurement and evaluation of emission of single shocks from hand-held and hand-guided machinery but does not cover the evaluation of human exposure.
ISO/TS 15694:2004 specifies methods for measuring single shocks at the handle(s) of hand-held and hand-guided machinery characterized by a maximum strike rate below 5 Hz. ISO/TS 15694:2004 also defines additional requirements for the measuring instrumentation which is necessary for the evaluation of shocks. The aim is to facilitate the gathering of emission and human exposure data in order to provide a basis for emission declaration and for the future development of exposure risk criteria. However, ISO/TS 15694:2004 does not provide methods for the interpretation of the potential human effects of single shocks. It is therefore a basis for measurement and evaluation of emission of single shocks from hand-held and hand-guided machinery but does not cover the evaluation of human exposure.
SIST-TS CEN ISO/TS 15694:2004 is classified under the following ICS (International Classification for Standards) categories: 13.160 - Vibration and shock with respect to human beings. The ICS classification helps identify the subject area and facilitates finding related standards.
You can purchase SIST-TS CEN ISO/TS 15694:2004 directly from iTeh Standards. The document is available in PDF format and is delivered instantly after payment. Add the standard to your cart and complete the secure checkout process. iTeh Standards is an authorized distributor of SIST standards.
Standards Content (Sample)
SLOVENSKI STANDARD
01-september-2004
0HKDQLþQHYLEUDFLMHLQXGDUFL0HUMHQMHLQRFHQDSRVDPLþQLKXGDUFHYNLVH
SUHQDãDMR]URþQLKLQURþQRYRGHQLKVWURMHYQDVLVWHPGODQURND,6276
Mechanical vibration and shock - Measurement and evaluation of single shocks
transmitted from hand-held and hand-guided machines to the hand-arm system (ISO/TS
15694:2004)
Mechanische Schwingungen und Stöße - Messung und Bewertung diskreter Stöße, die
von handgehaltenen und handgeführten Maschinen auf das Hand-Arm-System
übertragen erden (ISO/TS 15694:2004)
Vibrations et chocs mécaniques - Mesurage et évaluation des chocs simples transmis
par les machines portatives et guidées a la main au systeme main bras (ISO/TS
15694:2004)
Ta slovenski standard je istoveten z: CEN ISO/TS 15694:2004
ICS:
13.160 Vpliv vibracij in udarcev na Vibration and shock with
ljudi respect to human beings
2003-01.Slovenski inštitut za standardizacijo. Razmnoževanje celote ali delov tega standarda ni dovoljeno.
TECHNICAL SPECIFICATION
CEN ISO/TS 15694
SPÉCIFICATION TECHNIQUE
TECHNISCHE SPEZIFIKATION
April 2004
ICS 13.160
English version
Mechanical vibration and shock - Measurement and evaluation
of single shocks transmitted from hand-held and hand-guided
machines to the hand-arm system (ISO/TS 15694:2004)
Vibrations et chocs mécaniques - Mesurage et évaluation Mechanische Schwingungen und Stöße - Messung und
des chocs simples transmis par les machines portatives et Bewertung diskreter Stöße, die von handgehaltenen und
guidées à la main au système main bras (ISO/TS handgeführten Maschinen auf das Hand-Arm-System
15694:2004) übertragen erden (ISO/TS 15694:2004)
This Technical Specification (CEN/TS) was approved by CEN on 5 October 2003 for provisional application.
The period of validity of this CEN/TS is limited initially to three years. After two years the members of CEN will be requested to submit their
comments, particularly on the question whether the CEN/TS can be converted into a European Standard.
CEN members are required to announce the existence of this CEN/TS in the same way as for an EN and to make the CEN/TS available
promptly at national level in an appropriate form. It is permissible to keep conflicting national standards in force (in parallel to the CEN/TS)
until the final decision about the possible conversion of the CEN/TS into an EN is reached.
CEN members are the national standards bodies of Austria, Belgium, Cyprus, Czech Republic, Denmark, Estonia, Finland, France,
Germany, Greece, Hungary, Iceland, Ireland, Italy, Latvia, Lithuania, Luxembourg, Malta, Netherlands, Norway, Poland, Portugal, Slovakia,
Slovenia, Spain, Sweden, Switzerland and United Kingdom.
EUROPEAN COMMITTEE FOR STANDARDIZATION
COMITÉ EUROPÉEN DE NORMALISATION
EUROPÄISCHES KOMITEE FÜR NORMUNG
Management Centre: rue de Stassart, 36 B-1050 Brussels
© 2004 CEN All rights of exploitation in any form and by any means reserved Ref. No. CEN ISO/TS 15694:2004: E
worldwide for CEN national Members.
Contents
page
Foreword.3
Introduction .4
1 Scope .5
2 Normative references .5
3 Terms and definitions .5
4 Parameters for describing single shocks .6
4.1 Acceleration .6
4.2 Flat -weighted acceleration.6
h
4.3 Root-mean-square value of flat -weighted acceleration .6
h
4.4 Running root-mean-square value of flat -weighted acceleration.7
h
4.5 Root-mean-quad value of flat -weighted acceleration .7
h
4.6 Maximum transient vibration value of flat -weighted acceleration.7
h
4.7 Peak value of flat -weighted acceleration.8
h
4.8 Crest factor of flat -weighted acceleration .8
h
4.9 Shock content quotient of flat -weighted acceleration .8
h
4.10 W -weighted acceleration .8
h
4.11 Root-mean-square value of W -weighted acceleration.9
h
4.12 Root-mean-quad value of W -weighted acceleration.9
h
4.13 Shock content quotient of W -weighted acceleration.9
h
5 Measuring instrumentation.9
6 Measurement procedure .10
6.1 Attaching accelerometers.10
6.2 Orientation of accelerometers.10
6.3 Working procedure.10
7 Measurement report .10
Annex A (normative) Requirements and test methods for the measuring instrumentation .12
Annex B (informative) Recommendations and test methods for a digital measuring instrumentation.15
Annex C (informative) Alternative parameter to describe single shocks.17
Annex D (normative) Filter for flat frequency weighting .18
h
Annex E (normative) Filter for frequency weighting W from EN ISO 5349-1 .20
h
Bibliography .22
Foreword
This document (CEN ISO/TS 15694:2004) has been prepared by Technical Committee CEN/TC 231 "Mechanical
vibration and shock", the secretariat of which is held by DIN, in collaboration with Technical Committee ISO/TC 108
"Mechanical vibration and shock".
Annexes A, D and E are normative, Annexes B and C are informative.
According to the CEN/CENELEC Internal Regulations, the national standards organizations of the following
countries are bound to announce this CEN Technical Specification: Austria, Belgium, Cyprus, Czech Republic,
Denmark, Estonia, Finland, France, Germany, Greece, Hungary, Iceland, Ireland, Italy, Latvia, Lithuania,
Luxembourg, Malta, Netherlands, Norway, Poland, Portugal, Slovakia, Slovenia, Spain, Sweden, Switzerland and
United Kingdom
Introduction
The effects of repeated shock-type excitations on the hand-arm system are not fully understood. A literature review
([5], [9] and [11]) shows that there is insufficient knowledge to establish whether the methods from EN ISO 5349-1
can be used for the assessment of health risks from shock-type loading of the hand and arm.
In spite of the lack of knowledge in this field, it is desirable to standardise methods for describing shock-type
excitation from hand-held and hand-guided machinery. The purpose of this Technical Specification is to define
methods
for gathering consistent data on hand-transmitted single shocks under closely defined conditions and
according to uniform criteria and
for providing information on the shock emission of a given power tool, allowing an objective comparison of
different power tools.
Power tools causing shock-type exposure are, for example, nailers, tackers, staplers and setting tools. Impact
wrenches and nut runners are not included because it is not usually possible to trigger a single shock for these
power tools.
Methods for the interpretation of the potential human effects of single shocks would be desirable but the lack of
knowledge does not, at present, allow for the inclusion of such methods in a standard; in the future it is expected
that these areas will be included.
The specification for instrumentation in ENV 28041 does not adequately describe the phase response, or the flat
frequency response, for measurement of single shocks.
1 Scope
This Technical Specification specifies methods for measuring single shocks at the handle(s) of hand-held and
hand-guided machinery characterised by a maximum strike rate below 5 Hz.
NOTE In order to describe the characteristics of single shocks, this Technical Specification defines quantities for the
evaluation which go beyond those defined for hand-transmitted vibration in EN ISO 5349-1.
This Technical Specification also defines additional requirements for the measuring instrumentation which is
necessary for the evaluation of shocks (see Annexes A, B, D and E).
The aim is to facilitate the gathering of emission and human exposure data in order to provide a basis for emission
declaration and for the future development of exposure risk criteria. However, this Technical Specification does not
provide methods for the interpretation of the potential human effects of single shocks.
This Technical Specification therefore is a basis for measurement and evaluation of emission of single shocks from
hand-held and hand-guided machinery but does not cover the evaluation of human exposure.
2 Normative references
This Technical Specification incorporates by dated or undated reference, provisions from other publications. These
normative references are cited at the appropriate places in the text and the publications are listed hereafter. For
dated references, subsequent amendments to or revisions of any of these publications apply to this Technical
Specification only when incorporated in it by amendment or revision. For undated references the latest edition of
the publication referred to applies (including amendments).
EN 1033, Hand-arm vibration — Laboratory measurement of vibration at the grip surface of hand-guided machinery
— General
ENV 28041, Human response to vibration — Measuring instrumentation (ISO 8041:1990)
EN ISO 5349-1:2001, Mechanical vibration — Measurement and evaluation of human exposure to hand-
transmitted vibration — Part 1: General requirements (ISO 5349-1:2001)
EN ISO 5349-2, Mechanical vibration — Measurement and evaluation of human exposure to hand-transmitted
vibration — Part 2: Practical guidance for measurement at the workplace (ISO 5349-2:2001)
CEN ISO/TS 8662-11, Hand-held portable power tools — Measurement of vibrations at the handle — Part 11:
Fastener driving tools (nailers) (ISO 8662-11:1999 + Amd. 1:2001)
ISO 5348, Mechanical vibration and shock — Mechanical mounting of accelerometers
3 Terms and definitions
For the purposes of this Technical Specification, the symbols given in EN ISO 5349-1 and the terms and definitions
given in EN ISO 5349-2 and the following apply.
3.1
single shock
short burst of acceleration
NOTE 1 The acceleration time history of a single shock includes a rise to a peak value (see 4.7), followed by a decay of the
acceleration envelope.
NOTE 2 In principle a single shock could also be defined by other physical quantities, for example force or mechanical power
transmitted to the hand-arm system. Due to practical measurement considerations, however, the restricted definition in terms of
acceleration is used (see also Annex C).
EXAMPLE Power tools causing single shocks or single-shock vibration are nailers, tackers, staplers, setting tools, etc.
These power tools produce a burst of high acceleration with short duration (e.g. 10 ms). The period between two shocks is
much longer than the shock itself (e.g. greater than 200 ms).
3.2
single-shock vibration
series of single shocks separated by periods of zero acceleration
EXAMPLE See example in 3.1.
3.3
repetition time
T
rep
time interval between two consecutive single shocks
3.4
strike rate
f
for constant repetition time , the reciprocal of the repetition time, i.e. = 1/
T f T
rep 0 rep
3.5
flat
h
designation for unweighted acceleration which is band-limited as specified in 4.2 and Annex D
4 Parameters for describing single shocks
4.1 Acceleration
a t
The basic quantity for describing single shocks is the acceleration ( ) . It is the basis of all parameters used in this
Technical Specification.
NOTE For use of the vibration velocity to describe single shocks, see Annex C.
4.2 Flat -weighted acceleration
h
The flat -weighted acceleration a (t) is the band-limited acceleration in the frequency band from 6,3 Hz to
h
hF
1250 Hz. The filter for the flat weighting is specified in Annex D.
h
NOTE 1 This frequency band corresponds to the octave bands from 8 Hz to 1000 Hz. In some cases a wider pass band is
required; variations should then be reported with the measurement values.
NOTE 2 The flat weighting differs from the flat responses often provided on measuring instrumentation by a clearly defined
h
frequency band and phase response.
NOTE 3 Unweighted acceleration in this Technical Specification means band-limited acceleration in the frequency band with
a low-pass corner frequency greater than 1250 Hz.
4.3 Root-mean-square value of flat -weighted acceleration
h
Using the specification in 4.2 the root-mean-square (r.m.s.) value of a (t) in a time interval T is given by
hF
T
a = a (t) dt (1)
hF,RMS,T
∫ hF
T
It describes the energy-equivalent average value of the signal. A prescribed fixed integration time of T = 3 s
allows comparison of various measurement results and helps the tool operator to achieve reproducibility.
Experience shows that T = 3 s is a good compromise between the reaction time of the operator and the
requirement for shortest practicable integration time. In order to increase the confidence level of the results it is
advisable to take the average of this quantity over a series of single shocks (see 6.3).
4.4 Running root-mean-square value of flat -weighted acceleration
h
Using the specification in 4.2 the running root-mean-square value of a (t) at time of observation, t , is given by
hF
t-xt
-
2t
a (t) = a (x) e dx(2)
hF,RRMS,t∫ hF
t
where
t is the time of observation (actual time)
xis the integration variable
tis a time constant which is to be specified. A time constant t = 0,125 s is preferred.
In order to increase the confidence level of the results it is advisable to take the average of this quantity over a
series of single shocks (see 6.3).
NOTE 1 The exponential averaging function describes the behaviour of many natural processes. It can be generated by very
simple analogue or digital signal processing. The true running r.m.s. acceleration value, obtained by linear integration over a
running time interval of fixed length, looks simpler mathematically but would, in reality, be more difficult to achieve with analogue
instrumentation without any advantage.
NOTE 2 Other International Standards prefer the linear averaging for the running root-mean-square value, which is defined
as follows:
t
a (t) = a (x) dx
hF,RRMS,thF
∫
t
4.5 Root-mean-quad value of flat -weighted acceleration
h
Using the specification in 4.2 the root-mean-quad (r.m.q.) value of a (t) in a time interval T is given by
hF
T
a = 4 a (t) dt (3)
hF,RMQ,T
∫ hF
T
As with the root-mean-square value in 4.3 it describes an average value of the signal. However, with the r.m.q.
average the influence of the higher magnitudes is stronger than with the r.m.s. A prescribed fixed integration time of
T = 3 s allows comparison of various measurement results and helps the tool operator to achieve reproducibility.
Experience shows that T = 3 s is a good compromise between the reaction time of the operator and the
requirement for shortest practicable integration time. In order to increase the confidence level of the results it is
advisable to take the average of this quantity over a series of single shocks (see 6.3).
4.6 Maximum transient vibration value of flat -weighted acceleration
h
Using the specifications in 4.4 the maximum transient vibration value (MTVV) in the time interval T is the highest
a (t) as given by
magnitude of
hF ,RRMS ,t
a = max{}ta (t) (4)
hF,MTVV,thF,RRMS,
0£t£T
th
In order to increase the confidence level of the results it is advisable to take the 50 percentile of this quantity over
a series of single shocks.
4.7 Peak value of flat -weighted acceleration
h
For any specified time interval 0£t£T , the peak value (PV) of a (t) is the maximum absolute instantaneous
hF
value, as given by
{}
a = max a (t) (5)
hF,PV hF
0£t£T
This quantity is used to describe the top level of the signal. In order to increase the confidence level of the results it
th
is advisable to take the 50 percentile of this quantity over a series of single shocks.
4.8 Crest factor of flat -weighted acceleration
h
Using the quantities in 4.3 and 4.7 the crest factor of the flat -weighted acceleration, CF , is obtained by dividing
h h
the peak value of flat -weighted acceleration by the root-mean-square value of the flat -weighted acceleration
h h
measured in the same time period T:
a
hF,PV
(6)
CF =
h
a
hF,RMS,T
This quantity combines the peak value of the signal with the energy-equivalent r.m.s. value and therefore describes
the impulsiveness of the flat -weighted signal.
h
4.9 Shock content quotient of flat -weighted acceleration
h
Using the quantities in 4.3 and 4.5 the shock content quotient of the flat -weighted acceleration, SC , is obtained by
h h
dividing the root-mean-quad value of the flat -weighted acceleration by the root-mean-square value of the flat -
h h
weighted acceleration measured in the same time period T:
a
hF,RMQ,T
SC = (7)
h
a
hF,RMS,T
This quantity also describes the impulsiveness of the signal.
4.10 W -weighted acceleration
h
The frequency weighting characteristic W , used for the measurement and evaluation of hand-transmitted vibration,
h
is defined in EN ISO 5349-1 and is precisely specified in Annex E. W -weighted acceleration is denoted by a (t) .
h
hw
NOTE 1 a (t) may be derived from a (t) (see 4.2) by applying an acceleration-velocity transition function (a-v-
hw hF
transition) which converts acceleration into velocity for frequencies above 16 Hz.
NOTE 2 Although the frequency weighting in EN ISO 5349-1 was originally defined in order to assess periodic and random
or non-periodic vibration, EN ISO 5349-1:2001 states that it may provisionally "also be applied to repeated shock type excitation
(impact)." In addition, use of the W frequency weighting allows comparison with existing data. Furthermore, measurements of
h
parameters based on a (t) can be more reproducible, because problematic higher-frequency components are attenuated.
hw
The order of presentation chosen in this Technical Specification (flat weighting, followed by W weighting) does not imply that
h h
the former is preferred.
4.11 Root-mean-square value of W -weighted acceleration
h
Using the specification in 4.10 the root-mean-square value of a (t) in a time interval T is given by
hw
T
a = a (t) dt (8)
hw,RMS,T
∫ hw
T
It describes the energy-equivalent average value of the signal. A prescribed fixed integration time of T = 3 s
allows comparison of various measurement results and helps the tool operator to achieve reproducibility.
Experience shows that T = 3 s is a good compromise between the reaction time of the operator and the
requirement for shortest practicable integration time. In order to increase the confidence level of the results it is
advisable to take the average of this quantity over a series of single shocks (see 6.3).
4.12 Root-mean-quad value of W -weighted acceleration
h
Using the specification in 4.10 the root-mean-quad value of a (t) in a time interval T is given by
hw
T
a = 4 a (t) dt (9)
hw,RMQ,T hw
∫
T
As with the root-mean-square value in 4.11 it describes an average value of the signal. However, with the r.m.q.
average the influence of the higher magnitudes is stronger than with the r.m.s. A prescribed fixed integration time of
T = 3 s allows comparison of various measurement results and helps the tool operator to achieve reproducibility.
Experience shows that T = 3 s is a good compromise between the reaction time of the operator and the
requirement for shortest practicable integration time. In order to increase the confidence level of the results it is
advisable to take the average of this quantity over a series of single shocks (see 6.3).
4.13 Shock content quotient of W -weighted acceleration
h
Using the specifications in 4.11 and 4.12 the shock content quotient of a (t) is given by the quotient of the root-
hw
mean-quad and the root-mean-square values measured in the same time period T:
a
hw,RMQ,T
SC = (10)
hw
a
hw,RMS,T
This quantity describes the impulsiveness of the W frequency-weighted signal.
h
5 Measuring instrumentation
The root-mean-square value of the flat -weighted acceleration and W -weighted acceleration, defined in 4.3
h h
and 4.11, with integration time T = 3 s , can be determined with measuring instrumentation in accordance with
ENV 28041 as long as the frequency band of the flat response of the instrumentation is as defined in 4.2. For the
evaluation of all other parameters, the acceleration has to be measured with instrumentation which conforms to the
requirements of Annex A (for digital measuring instr
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이 기사는 SIST-TS CEN ISO/TS 15694:2004에 대해 설명하고 있습니다. 이 기술 규격은 손잡이와 손으로 이끄는 기계에서 손-팔 시스템으로 전달되는 단일 충격을 측정하는 방법을 규정합니다. 최대 충격 속도가 5 Hz 미만인 기계를 대상으로 합니다. 이 기술 규격은 단일 충격의 특성을 기술하기 위해 EN ISO 5349-1에서 정의한 핸드트랜스미티드 진동과는 다른 평가량을 정의합니다. 또한, 충격 평가에 필요한 측정 기기에 대한 추가 요구 사항도 정의합니다. 목표는 배출 및 인체 노출 데이터 수집을 용이하게 하여 보고서 작성 및 미래적인 노출 위험 기준 개발의 기초를 제공하는 것입니다. 그러나 이 기술 규격은 단일 충격의 잠재적인 인체 영향의 해석 방법을 제공하지 않습니다. 따라서 이 기술 규격은 손잡이와 손으로 이끄는 기계에서의 단일 충격 배출의 측정 및 평가를 위한 기초를 제공하지만, 인체 노출 평가는 다루지 않습니다.
記事タイトル:SIST-TS CEN ISO/TS 15694:2004 - 機械の振動と衝撃 - 手持ちおよび手によるガイド付の機器から手・腕系への単一のショックの測定と評価(ISO / TS 15694:2004) 記事内容:この技術仕様では、最大打撃周波数が5 Hz未満の手持ちおよび手によるガイド付の機器のハンドルで単一のショックを測定する方法を指定しています。 注:単一のショックの特性を記述するため、この技術仕様ではEN ISO 5349-1で定義されている手から伝わる振動とは異なる評価のための数量を定義しています。 また、評価に必要な測定機器についての追加要件も定義しています(付録A、B、D、およびEを参照)。 この仕様書の目的は、排出および人間の露出データを収集し、排出宣言と将来の露出リスク基準の開発の基盤を提供することです。ただし、この技術仕様では単一のショックの潜在的な人間への影響の解釈方法を提供していません。 したがって、この技術仕様は手持ちおよび手によるガイド付の機器からの単一のショックの排出の測定と評価のための基礎を提供しますが、人間の露出の評価はカバーしていません。
The article discusses the SIST-TS CEN ISO/TS 15694:2004, which is a technical specification that provides methods for measuring single shocks transmitted from hand-held and hand-guided machines to the hand-arm system. This specification defines quantities for evaluating the characteristics of single shocks, which goes beyond the definitions for hand-transmitted vibration. It also includes requirements for measuring instrumentation. The goal is to gather emission and human exposure data to establish emission declarations and develop exposure risk criteria. However, this specification does not cover the interpretation of potential human effects of single shocks and focuses solely on measurement and evaluation.
The article discusses the SIST-TS CEN ISO/TS 15694:2004, which is a technical specification that outlines methods for measuring and evaluating single shocks transmitted from hand-held and hand-guided machines to the hand-arm system. These machines have a maximum strike rate below 5 Hz. The specification defines quantities for evaluating the characteristics of single shocks beyond what is defined for hand-transmitted vibration in EN ISO 5349-1. It also includes additional requirements for the necessary measuring instrumentation. The purpose of this specification is to gather data on emissions and human exposure in order to facilitate emission declaration and the development of exposure risk criteria. However, it does not provide methods for interpreting the potential human effects of single shocks.
기사 제목: SIST-TS CEN ISO/TS 15694:2004 - 기계 진동 및 충격 - 손으로 들거나 손으로 이끌어가는 기계에서 손-팔 시스템으로 전달되는 단일 충격의 측정과 평가 (ISO/TS 15694:2004) 기사 내용: 이 기술 사양은 맥주판율이 5 Hz 미만인 손으로 들거나 손으로 이끌어가는 기계의 손잡이에서 단일 충격을 측정하는 방법을 명시합니다. 주의사항: 단일 충격의 특성을 설명하기 위해 이 기술 사양은 EN ISO 5349-1에서 정의된 손으로 전달되는 진동과는 다른 평가를 위한 양을 정의합니다. 이 기술 사양은 또한 충격의 평가에 필요한 측정 기기에 대한 추가 요구 사항을 정의합니다 (부록 A, B, D 및 E 참조). 목표는 배출 및 인체 노출 데이터 수집을 용이하게 하여 배출 선언 및 향후 노출 위험 기준 개발을 위한 기초를 제공하는 것입니다. 그러나 이 기술 사양은 단일 충격의 잠재적 인 인체 영향 해석 방법을 제공하지 않습니다. 따라서 이 기술 사양은 손으로 들거나 손으로 이끌어가는 기계에서의 단일 충격의 배출 측정 및 평가를 위한 기초지만 인체 노출 평가를 다루지 않습니다.
この記事は、SIST-TS CEN ISO/TS 15694:2004について説明しています。この技術仕様は、手持ちや手で操作する機械から手-腕系へ伝達される単発の衝撃を測定するための方法を規定しています。最大の衝撃発生率が5 Hz以下の機械を対象としています。 この技術仕様は、単発の衝撃の特性を記述するために、EN ISO 5349-1で定義されている手転送振動よりも評価量を定義しています。さらに、衝撃評価に必要な計測機器の追加要件も定義しています。 目標は、排出および人体への露出データを収集し、排出宣言の基礎と将来の露出リスク基準の開発のための基盤を提供することです。ただし、この技術仕様は単発の衝撃の潜在的な人体への影響の解釈方法については提供していません。 したがって、この技術仕様は手持ちや手で操作する機械からの単発の衝撃の排出の測定および評価のための基盤を提供しますが、人体への露出評価には対応していません。










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