Claims
- 1. A system for determining upper limit airborne particle concentration comprising:
- a sampling means for obtaining an ambient air sample and providing said air sample at a detection flow rate (Q.sub.d) to a sensing zone;
- an illumination means at said sensing zone for illuminating any particles present in said air sample;
- a detector means for detecting light scattered by said illuminated particles and producing a particle count signal for each illuminated particle;
- a totaling means for totaling said particle count signals over an elapsed time period (t) and assigning said total to a particle count value (p);
- a determining means for determining an upper limit airborne particle concentration (C) having a Poisson probability (P) by equation: ##EQU8## where .mu.=C.times.t.times.Q.sub.d ; and an output means for outputting said upper limit airborne particle concentration (C) to an output device.
- 2. A system for according to claim 1 wherein said Poisson probability (P) has a value of 0.05.
- 3. The system of claim 1 wherein said determining means determines said upper airborne particle concentration by said equation when said when said particle count value (p) is equal to or less than a threshold particle count;
- when said particle count value p is above said threshold particle count said determining means determines an airborne particle concentration by equation:
- C=p/(Q.sub.d .times.t),
- said output means outputs said particle concentration to an output device when said particle count value (p) is greater than said threshold particle count value; and
- said output means outputs said upper limit airborne concentration to an output device when said particle count value (p) is equal to or less than said threshold particle count value.
- 4. The system of claim 3 wherein said threshold particle count value is equal to 3.
- 5. The system according to claim 3 wherein said elapsed time period (t) is user selectable.
- 6. The system of claim 3 including said each of said output devices comprises a screen, printer or communication port.
- 7. The system of claim 3 wherein said totaling means and said determining means comprise a programmable microprocessor.
- 8. A system for outputting airborne particle concentration having a user selected precision comprising:
- an entry means for entering said user selected precision and assigning said precision to a user selected precision value (PR.sub.u);
- a determining means for determining a required particle count (P.sub.u) for said user selected precision value (PR.sub.u);
- a sampling means for obtaining an ambient air sample and providing said air sample at a detection flow rate (Q.sub.d) to a sensing zone;
- an illumination means at said sensing zone for illuminating any particles present in said air sample;
- a detector means for detecting light scattered by said illuminated particles and producing a particle count signal for each illuminated particle;
- a totaling means for totaling said particle-count signals over an elapsed time period (t) and assigning said total to a particle count value (p);
- said determining means determining an airborne particle concentration (C) by equation: ##EQU9## an output means for outputting said airborne particle concentration (C) to an output device when said particle count value (p) is equal to or greater than said required particle count (P.sub.u).
- 9. The system of claim 8 further including a selector means for selecting between a time period mode and a precision mode, and wherein:
- when said selector means is in said time period mode, said entry means enters a user selected time period and assigns said user selected time period to a user selected time period value;
- when said selector means is in said precision mode, said entry means enters said user selected precision and assigns said user selected precision to said user selected precision value;
- said determining means determines said required particle count when said selector means in said precision mode;
- said output means outputs said particle concentration to an output device when (.sigma.) said selector means is in said time period mode and said elapsed time period is equal to or greater than said user selected time period value, and (b) said selector means is in said precision mode and said particle count value is equal to or greater than said required particle count.
- 10. The system of claim 9 wherein:
- said determining means determines said airborne particle concentration by said equation when said particle count (p) is greater than a threshold particle count value;
- said determining means determines an upper limit airborne particle concentration having a Poisson probability (P) when said particle count value (p) is equal to or less than said threshold particle count value by equation: ##EQU10## where .mu.=c.times.t.times.Q.sub.d ; when said selector means is in said time period mode, said output means outputs said particle concentration when said particle count value (p) is greater than said threshold particle count value, and outputs said upper limit airborne particle count when said particle count value is less than or equal to said threshold particle count value.
- 11. A method for determining upper limit airborne particle concentration comprising the steps of:
- obtaining an ambient air sample and providing said air sample at a detection flow rate (Q.sub.d) to a sensing zone;
- illuminating at said sensing zone any particles present in said air sample;
- detecting light scattered by said illuminated particles and producing a particle count signal for each illuminated particle;
- totaling said particle count signals over an elapsed time period (t) and assigning said total to a particle count value (p);
- determining an upper limit airborne particle concentration (C) having a Poisson probability (PR.sub.p) by equation: ##EQU11## where .mu.=c.times.t.times.Q.sub.d ; and outputting said upper limit airborne particle concentration to an output device.
- 12. The method of claim 11 wherein, when said particle count is equal to or less than a threshold particle value, said upper limit airborne concentration is determined using said formula and is output to said output device; and, when said particle count is greater than said threshold particle value, including the steps of determining an airborne particle concentration by equation:
- C=p/(Q.sub.d .times.t)
- and outputting said airborne particle concentration to an output device.
- 13. A method for determining airborne particle concentration having a user selected precision comprising the steps of:
- determining said user selected precision and assigning said precision to a value (PR.sub.u);
- determining a required particle count (P.sub.u) for said user selected precision (PR.sub.u);
- obtaining an ambient air sample and providing said air sample at a detection flow rate (Q.sub.d) to a sensing zone;
- illuminating at said sensing zone any particles present in said air sample;
- detecting light scattered by said illuminated particles and producing a particle count signal for each illuminated particle;
- totaling said particle count signals over an elapsed time period (t) and assigning said total to a particle count value (p);
- determining an airborne particle concentration (C) when said particle count value (p) is equal to or greater than said required particle count (P.sub.u) by equation: ##EQU12## outputting said particle concentration to an output device.
- 14. The method of claim 13 further including the steps of:
- selecting between a time period mode and a precision mode; entering a user selected time period when in said time period mode and assigning said user selected time period to a user selected time period value;
- entering said user selected precision when in said precision mode;
- determining said required particle count when in said precision mode;
- outputting said particle concentration to an output device when said selector means is in said timer period mode and when said elapsed time period (t) is equal to or greater than said user selected time period value; and,
- outputting said particle concentration to an output device when said selector means is in said precision mode and when said particle count value is equal to or greater than said required particle count.
- 15. The method of claim 14 including the steps of:
- determining said airborne particle concentration by said formula when said particle count value is greater than a threshold particle count value;
- determining an upper limit airborne particle concentration having a Poisson probability (P) when said particle count is equal to or less than said threshold particle count value by equation: ##EQU13## where .mu.=c.times.t.times.Q.sub.d ; outputting said particle concentration to said output device when said particle count value is greater than said threshold particle count value; and
- outputting said upper limit airborne particle count to an output device when said particle count value is less than or equal to said threshold particle count value.
Parent Case Info
This invention relates to a system and method in an particle aerosol monitor for determining and outputting airborne particle concentrations. This application is a continuation of U.S. Ser. No. 07/644,209, filed Jan. 22, 1991 and now abandoned.
US Referenced Citations (2)
Number |
Name |
Date |
Kind |
3692412 |
Chubb |
Sep 1972 |
|
4940327 |
Lilienfeld |
Jul 1990 |
|
Non-Patent Literature Citations (5)
Entry |
"Rotational Electrodynamics of Airborne Fibers"; Lilienfeld; J. Aerosol Sci., vol. 16, No. 4, pp. 315-322 (1985). |
"Light Scattering From Oscillating Fibers At Normal Incidence"; Lilienfeld; J. Aerosol Sci., vol. 18, No. 4, pp. 389-400 (1987). |
MIE Application Note, No. 4-A; Jan. 24, 1990. |
MIE Fiber Monitor Model FM-7400 User's Manual; Jul. 1991. |
"An Introduction to Scientific Research"; Wilson; Section 9.2; pp. 236-237. (no date). |
Continuations (1)
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Number |
Date |
Country |
Parent |
644209 |
Jan 1991 |
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