Systems and Methods for Controlling Algal Growth in Air Conditioning Systems
20240033790 ยท 2024-02-01
Inventors
Cpc classification
F24F13/222
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B08B17/02
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
Systems and methods for controlling algal growth in a condensate drain line. In one embodiment a temperature value is acquired which is indicative of an ambient temperature about the drain line. One or more volumes of algaecide are calculated for injection one or more times per day into the drain line.
Claims
1. A method for controlling algal growth in a condensate drain line comprising: acquiring a temperature value indicative of an ambient temperature about the drain line; and calculating a volume of algaecide for injection one or more times per day into the drain line.
2. The method of claim 1 wherein each injection is a volumetric calculated dose based on an acquired temperature value, the method further including providing one or more injections to reduce the rate of algal growth in the condensate drain line.
3. The method of claim 2 wherein multiple volumes of algaecide are injected into the drain during a one day period.
4. The method of claim 3 wherein multiple different volumes of algaecide are injected into the drain line during a one day period.
5. A method for controlling algal growth in a condensate drain, comprising acquiring and storing temperature values over a series of time intervals; determining a temperature value based on a combination of the stored temperature values; and calculating a volumetric algaecide dose based on the combination of the stored temperature values.
6. The method of claim 5 further including injecting a plurality of the volumetric algaecide doses into the drain line during a one day period.
7. An apparatus for controlling algal growth in a condensate drain line, comprising: a device providing temperature data for a location that is representative of an ambient temperature near the drain line; a processing unit connected to receive the temperature data and configured to calculate doses of algaecide with the temperature data for injection into the drain line; and a pumping system configured to inject variable doses of algaecide into the drain line wherein a dose volume is based on calculations by the processing unit.
8. The apparatus of claim 7 wherein the device measures an ambient temperature near the drain line.
9. The apparatus of claim 7 wherein the device comprises electronic interface circuitry through which temperature data is received into the processing unit, and where the temperature data is representative of ambient temperature about the drain line.
10. The apparatus of claim 7 wherein the electronic interface circuitry comprises electronics for receiving the temperature data from a remote source through the internet or a Wi-Fi link.
11. The apparatus of claim 10 where the remote source provides location specific temperature data based on postal codes, physical address information of other location information.
12. An apparatus for controlling algal growth in a condensate drain line, comprising: a processing unit connected to receive the temperature data from a device and configured to calculate doses of algaecide to individually inject doses into an air conditioning condensate drain line based on the temperature data; and a pumping system configured to inject variable doses of algaecide into the drain line based on one or more dose calculations performed by the processing unit.
13. The apparatus of claim 12 where the pumping system is configured to inject variable doses of algaecide into the drain line.
14. The apparatus of claim 13 where the variable doses are determined by pump-on and pump-off durations.
Description
BRIEF DESCRIPTION OF THE FIGURES
[0018] The drawings illustrate an exemplary embodiment of the invention. The figures may not be drawn to scale such that various aspects of the invention may be more clearly shown to facilitate understanding of the invention, wherein:
[0019]
[0020]
[0021]
[0022]
[0023]
[0024] In accord with common practice, various ones of the described features may not be drawn to scale, to emphasize specific features relevant to the invention.
DETAILED DESCRIPTION OF THE INVENTION
[0025] Exemplary embodiments of a system and a method according to the invention are now described. In
[0026] With respect to temperature, the air handler 30 is subject to the residential interior air temperature. In the case of a thermostat set to the federally recommended value of 78 F. the inside air will vary according to the thermostat hysteresis, typically 1 F., giving an operating range of 77 to 79 F., which may be an optimum temperature for algal growth. When operating, the heat exchanger 40 will be much cooler and hence below the algae growth range. Similarly, any condensate falling on to the tray 42 may be too cold at that point to support algae. As the water moves along the drain 48, the temperature gradient ranges from that of the ambient air outside the drain 48 to the condensate temperature inside. In between these two temperatures lies an ideal range for algal growth. There are many types of algae but those of particular concern are the variety that constitute a nuisance by thriving in low light level and elevated temperature conditions typical of A/C drains.
[0027]
[0028] The MPU performs the following operations to vary dose according to temperature: [0029] 1. The user setting on trimpot 68 is increased or decreased to vary the dose volume from the exemplary default of 1 milliliter every 8 hours. In the example, the dose volume is determined by pump run time. [0030] 2. If the maximum temperature is above 26C the dose is maintained as shown in
[0034] Referring to the Algaecide Delivery System 10 of
[0035] In step 1 the program 60 obtains the ambient temperature from sensor 70 or by other means such as from a remote sensor or a weather website and writes the temperature value to an array. In step 2 the program 60 pauses for a predetermined time interval, e.g., an hour. After the pause interval the program 60 increments the nominal hour count which value in this instance also serves as the array pointer. In step 3 the program 60 compares the hour count to the array size, in this instance eight. If the count is less than eight the program 60 repeats steps 1, 2, and 3 until the hour count reaches 8. When the hour count is eight the program 60 moves to step 4, resets the hour count to zero and sorts the array to find the maximum temperature in the preceding 8-hour time period. The example embodiment includes in
[0036] In this invention it can be seen that the dose amounts are not based on time but, rather, on the approximately sinusoidal temperature cycles of optimal algal growth. A feature of the invention is that the volumetric size of the algaecide dose may be based on the optimal algal growth rate as a function of temperature and is not merely a constant delivery at regular intervals.
[0037] In step 6 the program drives the pump to deliver a calculated dose for each period, e.g., 8 hours. Also in step 6, the invention may transmit by well-known means status information including but not limited to the ambient temperature values and dose values. That information may, for example, be sent to an electronic data collection device forming part of a system such as telemetry, a Smart Home, or Internet of Things.
[0038]
[0039] It can be seen from
[0040]
[0041] In both the high temperature level and low temperature level examples of
[0042] As an example, shown in
[0043] An advantage of this embodiment of the invention is that targeting optimal algal growth temperatures specifically addresses the nuisance of algae. Further, a reduced dose amount and/or longer dose interval at temperatures not supporting algal growth reduces cost, lowers stress on the equipment, and lessens the environmental impact of the algaecide.
[0044] Turning again to the dosing system 10 of
[0045] There are provided in
[0046] In
[0047] Optionally, the microcontroller 62 of
[0048] The resulting dose injected as a function of temperature is illustrated in
[0049] For the disclosed embodiments it may be preferred that the dose not go to zero at low temperatures. A small maintenance dose may be continued through periods of cold weather to discourage other growth, infestation, or to lower the freezing point. The freezing point at normal (5%) acetic acid concentrations of white vinegar is 2 C. The maximum dose is sustained at elevated temperatures as increased condensate flow compensates for algal temperature stress at higher ambient temperatures.
[0050] One or more example embodiments of an apparatus and methods have been illustrated. The illustrated embodiments have been described to provide understanding of inventive concepts and underlying principles. It will be recognized by those skilled in the art that the concepts and principles of operation can be readily modified and extended to create other apparatus designs and methods providing enhanced performance and functionality to mitigating algal growth. Thus while the invention has been described in connection with one embodiment, the scope of the invention is not so limited and includes alternatives, modifications, and equivalents as will be apparent to those persons skilled in the art.
[0051] Accordingly, the scope of the disclosure is only limited by the claims which follow with each claim describing an embodiment while still other embodiments may combine features recited in different claims. Combinations of different embodiments are within the scope of the claims and will be apparent to those of ordinary skill in the art after reviewing this disclosure.