Brief Description of the Drawings
The invention may take form in various components and arrangements of components or in various steps and arrangements of steps. The drawings are only for purposes of illustrating a preferred embodiment and are not to be construed as limiting the invention.
FIG. 1 is a perspective view of a sterilizing apparatus in accordance with the present invention; and,
FIG. 2 is a tubing diagram of the sterilizer of FIG. 1.
Detailed Description of the Preferred Embodiments
With reference to FIGS. 1 and 2, a dilutant or water source 10 supplies water or other fluid reagents. In the preferred sterilizer embodiment, the water source includes a length of tubing 12 connected with a water spigot or other building plumbing and a control valve 14 for selectively preventing and permitting the flow of water to a sterilizing means 16. In the preferred embodiment, the sterilizing means is a filter which removes particles which are as large or larger than bacteria. Thermal, chemical, radiological, and other conventional water sterilizing means are also contemplated. Optionally, an in-line water treatment means may be provided for modifying the chemical composition of the water. For example, a water softening cartridge may be provided for reducing or eliminating calcium and magnesium salts from the water. Alternately, various water treatments may be added to the water, such as a wetting agent, a sequestering agent, or others of the reagents to be discussed herein below.
A tubing system 18 connects the filter or other sterilizing means 16 with a basin or other means 20 for receiving an item to be sterilized. In the preferred embodiment, the basin receives a removable container or tray 22 configured in accordance with the item to be sterilized, e.g. an endoscope. The container may have appropriate liquid ports, vents, sterilant distribution system, medical instrument positioners and retainers, closures, etc. such that instruments can be sterilized, rinsed, and stored within the container without opening the container. A lid 24 is sealed to the basin in a lowered position by a resilient gasket 26. Optionally, a transparent window 28 is defined in the lid.
The tubing system 18 includes a basin inlet 30 for filling the basin to surround the items with a sterilant solution and a basin drain 32. A reagent receiving well 34 collects the fluid from the filled basin. Vent lines 36 enable air to be vented from the container and basin such that they are completely filled with the sterilant solution, rinse water, or other liquids. Any excess fluid is discharged through check valve 38 into a drain line 40.
A sealed ampule 42 with a premeasured dose of dry ingredients that form corrosion inhibitors and anti-microbial agents when mixed with water is emptied into the well 34. Optionally, two compartments may be provided such that the corrosion inhibitors are introduced and circulated first over the item to be sterilized or disinfected. This provides corrosion protection before the corrosive anti-microbial agent contacts the item. In the preferred embodiment, the corrosion inhibitors and anti-microbial agent reach the item contemporaneously. As described in greater detail below, the powdered water-soluble reagents include compositions when mixed with water or a water-based solution, form a strong oxidant or other antimicrobial agent. The reagents further provide buffers and anticorrosive agents. More specifically to the preferred embodiment, the dry ingredients include a water-soluble acid precursor and a water-soluble persalt which, when dissolved in water, form a peracetic acid solution with an anti-microbially effective concentration of peracetic acid. Moreover, the water soluble acid precursor and water soluble peracid react or are mixed with other ingredients to provide a buffer, e.g. a borate, for bringing the pH to a neutral level and to inhibit steel corrosion. Other corrosion inhibitors, such as a molybdate for inhibiting aluminum and steel corrosion, a triazole for inhibiting copper and brass corrosion, and the like are optionally included in the powdered ingredients. Wetting and sequestering agents may also be included in the dry ingredients.
The operator closes the lid 24 and the system is filled with water. A pump 50 selectively draws solution or water from the basin 20 through well 34 and returns it to the basin inlet 30. The water dissolves the powdered reagents allowing them to react, forming the antimicrobial solution. Preferably, the vent line 36 is very short and of a substantial diameter such that the solution is circulated over exposed surfaces of the drain check valve 38 and an air sterilizing filter 52. A heating coil 54 adjusts the temperature of the solution. Recirculation continues until the interior of the medical items and all exposed surfaces of the tubing system, pump, basin, container, and valves are sterilized. Alternately, once fully dissolved and distributed the sterilant may remain quiescent without further circulation for a selected duration.
After the preselected sterilization or disinfecting period, the antimicrobial solution is drained through a drain valve 56. Sterile air is drawn into the system through the air sterilizing filter 52 that removes any particles the size of a bacteria or larger. The fill valve 14 is opened and the drain valve 56 is closed such that the sterile filter 16 provides a source of sterile rinse. Note that the sterile rinse liquid flows only in contact with sterilized surfaces of the tubing system and valves in order to assure sterility. Every tubing and valve surface from the filter 16 to the drain has been exposed to the circulating antimicrobial solution for a sufficient duration to assure that it is microbial contamination-free. The pump 50 circulates the sterile rinse through the system for a selected duration sufficient to rinse any deposits or residue, such as salts, that strong buffered solutions tend to deposit. At the end of the rinse cycle, the rinse solution is drained by opening the drain valve 56. When a return valve 60 is closed, the pump 50 pumps liquid from the system out the drain valve 56. Additional drain lines (not shown) and aspirators or pumps (not shown) may be provided for removing liquids from every region of the system. The exact location of such additional drains will be dependent on the bends and contours of the plumbing system.
In the preferred embodiment, the ampule contains acetylsalicylic acid (acid precursor) and sodium perborate (persalt). The relative amounts of these two additives are selected so as to produce the chemical reaction: ##STR1## The total volume of dry ingredients is such that the resultant water solution has a concentration of peracetic acid of 0.2% w/v -- a biocidally effective concentration. The Sodium Metaborate (NaBO.sub.2) is an inorganic corrosion inhibitor and the Salicylic acid is an organic corrosion inhibitor with a benzoate function. Preferably, an additional powdered water-soluble phosphate is also present in the ampule to provide additional corrosion resistance when dissolved by the water. The chemical formulation of the phosphate is preferably selected such that it is inert relative to the above described chemical reaction, or at least does not interfere with the chemical reactions formation of peracetic acid and corrosion inhibitors.
A 0.2% w/v peracetic acid solution and associated corrosion inhibitors generated by the above chemical reaction is anti-microbially effective with twelve minutes exposure at 50.degree. C. even to Clostridium sporgenes inoculum on a penicylinders carrier, the carrier and inoculum most resistant to peroxyacetic acid. Antimicrobial test results are summarized in Table 1 below in which each test was conducted at 50.degree. C. with twelve minutes exposure and the peracetic acid at 0.2% w/v.
Other oxidizing or antimicrobial agents can also be generated in situ, such as chlorine dioxide, chlorine, hydrogen peroxide, and mixtures thereof. More specifically, potassium chromates, sodium chloride, and phosphates may be mixed according to the following equation to produce a strong chlorine oxidant on the addition of water:
Optionally, excess dichromate and an organic corrosion inhibitor may be provided for improved buffering and corrosion inhibiting.
Hydrogen peroxide and an inorganic inhibitor can be generated:
Similarly, chlorine dioxide can be generated from powdered ingredients on the addition of water:
A mixed biocide system can be achieved by adding sodium chloride to the peracetic acid reaction to produce ;) hypochlorous acid.
Excess peracetic acid is deliberately present such that both peracetic acid and hypochlorous acid are present in the biocidal solution.
In these compositions, it is preferable to add additional corrosion inhibitors and buffers to protect copper, brass, aluminum, steel, and the like. Preferably, corrosion inhibitors are added which result in three corrosion inhibitors in the final solution. One is an organic inhibitor, one is an inorganic inhibitor, and the third can be either.
The copper and brass corrosion inhibitors are preferably benzotriazoles and tolytriazoles, which are preferred due to their stability in the presence of strong oxidizing compounds. Mercaptobenzathiozol might also be utilized but is more apt to be oxidized or destabilized by strong oxidizers.
Azoles, benzoates, and other five membered ring compounds may also prove acceptable as copper and brass corrosion inhibitors.
By way of example, the anti-corrosive buffering compounds may include a mixture of phosphate in sufficient volume to produce a final concentration of 1.25% weight per Volume and molybdates in an appropriate amount to produce a final solution of 0.011% weight per volume. Phosphates may also be effective in the range of 0.2% to 12% and the molybdates may be effective from 0.1 to 10%. Optionally, chromates, dichromates, tungstates, vanadates, other borates, and combinations thereof, may be substituted in appropriate concentrations to inhibit steel corrosion, i.e. buffer to a generally neutral pH, and aluminum corrosion.
In hard water, the phosphates tend to cause calcium and magnesium salts to precipitate and coat the instruments being sterilized and parts of the sterilizing system. A sequestering agent appropriate to prevent precipitation, such as sodium hexametaphosphate, may be provided. Of course, if deionized or soft water is utilized the sequestering agent may be eliminated. However, to insure universal applicability with any water that might be utilized, the presence of a sequestering agent is preferred.
A wetting agent present from 0.001 to 1.0% (w/v) improves the wetting of the surface of the instrument by the anti-microbial agent. The wetting agent has also been found to increase penetration of the anti-microbials improving anti-microbial efficacy while reducing corrosion.
The following are examples that illustrate the corrosion inhibiting effectiveness of various strong oxidant anti-microbial formulations. Coupons of 410 stainless steel, brass (ASTM B36-C 2600), aluminum (5052-H 32), and carbon steel scalpel blades were exposed to two changes of sterilant mix for a total of four hours exposure at 50-55.degree. C. One set of coupons was run in distilled water and a sterilant mix (0.5% sodium perborate and 0.5% aspirin) and a second set in tap water and sterilant mix. A second set of tests was performed using brass and aluminum coupons, and carbon steel scalpel blades in a matrix with concentrations of disodium phosphate of 0, 0.2, 0.4, 0.5, and 0.7% and concentrations of benzotriazole of 0, 0.001, 0.005, 0.01, and 0.02%. Each type of coupons were exposed to sterilant mix and additives for three hours at 50-55.degree. C. All coupons were rinsed well with distilled water and acetone and allowed to dry before evaluation.
Corrosion or discoloration was noted on all materials using just the basic peracetic acid, sodium metaborate, and salicylic acid solution. Carbon steel and 410 stainless steel showed only minor corrosion. Aluminum was discolored and showed some pitting. Brass was heavily corroded on most surfaces and showed some pitting. In the matrix, the addition of 0.001% benzotriazole or 0.4% phosphate eliminated corrosion on carbon steel. The addition of 0.4% phosphate eliminated corrosion on aluminum. For brass, the addition of 0.2% phosphate or 0.05% benzotriazole eliminated pitting corrosion. However, phosphate caused darkening of brass which was apparent unless 0.02% benzotriazole was added. Random spotting of brass occurred at all concentrations. This sort of corrosion can be eliminated by adding a surfactant.
The invention has been described with reference to the preferred embodiments. Obviously, modifications and alterations will occur to others upon reading and understanding the preceding detailed description. It is intended that the invention be construed as including all such alterations and modification insofar as they come within the scope of the appended claims or the equivalents thereof.