System and method for cleaning and disinfecting dental instrument
The system efficiently cleans and disinfects dental tools by injecting moist steam and compressed air through a coupling nose, addressing inefficiencies in existing methods and ensuring thorough disinfection without damaging mechanical components.
Patent Information
- Application Number
- JP2025175254
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2020-12-03
- Filing Date
- 2025-10-17
- Publication Date
- 2025-12-25
AI Technical Summary
Existing cleaning and disinfecting methods for dental handpieces are inefficient in removing residues from crevices and recessed areas, leading to ineffective disinfection, mechanical component deterioration, and potential patient safety risks due to temperature gradients and high-pressure steam use.
A system that injects moist steam and compressed air into dental tools through a coupling nose, using a flow regulator to create a mixture that maintains uniform disinfection and minimizes mechanical stress, reducing cycle duration and chemical use.
Ensures thorough cleaning and disinfection of dental tools, preserving mechanical components and reducing the risk of overheating, while optimizing disinfection uniformity and reducing cycle time.
Smart Images

Figure 2025188252000001_ABST
Abstract
Description
[Technical Field]
[0001] The present invention relates to the field of instruments and devices for medical practitioners such as dentists and dental surgeons. More specifically, the present invention relates to a steam cleaning and disinfection system and method for handpieces or dental turbine-type instruments. [Background technology]
[0002] Dentists, hygienists, and dental surgeons, as well as other practitioners in the fields of endodontics, periodontics, oral surgery, or implantology, often use a variety of instruments and devices, the most common of which are straight handpieces, contra-angles (so-called because of their slight curvature), and air turbines. These devices typically include a head, which houses the rotor and can transmit motion to the milling, cutting, or polishing tool and enters the patient's mouth, and a handle, the component manipulated by the dental surgeon. Straight handpieces and contra-angles are connected to electric motors (micromotors) that provide the mechanical energy necessary to operate the rotor and, therefore, the milling, cutting, or polishing tool. The air turbine is simply connected to a tube that supplies compressed air to power the rotor. The system that couples the air turbine to the tube is very similar to the coupling system that can couple the handpiece or contra-angle to the motor.
[0003] The motor section is attached to the handpiece via a standardized coupling nose to transmit the motor's torque and route the compressed air that rotates the turbine. At the same time, the handpiece and motor section typically also include multiple interconnected channels that can carry fluids, such as compressed air and / or water, to cool the device or spray the operating area during use. An example of the configuration of cooling and spray channels is described, for example, in U.S. Pat. No. 5,629,499.
[0004] In cleaning and disinfecting such dental handpiece-type instruments, the following operations are typically performed in an automatic sequence or according to user settings: · First, pre-wash, wash, or rinse with cold, warm, or hot water. Followed by cleaning and / or disinfection using chemicals. Finally, removal of debris and / or drying by applying compressed air.
[0005] Patent document 2 describes a solution that employs such a method for cleaning and disinfecting handpieces.
[0006] Alternatively or in addition to the second step of the sequence described below, cleaning and / or disinfection methods using saturated or superheated steam are also known, for example from US Pat. No. 5,629,399. If these two conditions are met, the method is called dry steam.
[0007] A final lubrication step may then be provided using oil and possibly air, or a mixture of both.
[0008] Patent document 4 describes another solution for cleaning and sterilizing dental handpieces in an autoclave, according to which a fixed support replacing the motor part is provided with separate channels for cleaning the spray with steam or hot air, respectively, and for cleaning the rotating part with oil and hot air, respectively, and the sterilization process again uses dry steam at 122°C under pressure conditions of 1.1 bar in an autoclave.
[0009] The main drawback of these solutions known from the prior art is that cleaning the inside of the device is not satisfactory, due to the possibility of solid and / or organic residues (e.g., blood and proteins) accumulating in gears, ball bearings, etc. The accumulation of residues also makes other disinfection and / or sterilization procedures, including steam sterilization in an autoclave, less and less effective, accelerates the ageing of mechanical devices, and can also lead to the risk of overheating and burns to the patient.
[0010] The inefficiency of water-based cleaning procedures is primarily related to the fact that water droplets cannot penetrate into crevices and recessed areas inside the equipment, and while the addition of enzymes or alkaline chemicals may help dissolve residues that water droplets can reach, it does not improve access to the hollow areas.
[0011] The ineffectiveness of alternative cleaning procedures using saturated or superheated steam is related to the fact that heat causes protein denaturation, making soil and biofilm more difficult to dissolve and detach from surfaces.
[0012] Furthermore, disinfection by injection of saturated or superheated steam (of the dry steam type) is not universally effective, since the high pressure and temperature of the steam at the inlet of the device is not maintained throughout the device. In fact, the temperature gradient between the inlet (usually located at the rear of the device, at the level of the nozzle replacing the cleaning and disinfecting motor) and the outlet (located at the head of the device) causes condensation of steam on the interior surfaces of the device (especially at the level of the head), which strongly limits the disinfecting and antifungal capacity in the most contaminated areas of the dental device, precisely at the level of the head of the device, which is most frequently in contact with the patient's mouth and therefore more likely to contain residues of blood, saliva, and other bacterial colonies derived from them.
[0013] Additionally, repeated use of saturated or superheated steam at high pressures can accelerate deterioration of the mechanical components of the handpiece.
[0014] Therefore, a need exists for a cleaning and disinfecting solution that does not have these known limitations. [Prior art documents] [Patent documents]
[0015] [Patent Document 1] European Patent No. 1,768,597 [Patent Document 2] U.S. Patent No. 5,723,090 [Patent Document 3] US Patent Application Publication No. 2012298151 [Patent Document 4] U.S. Patent No. 6,368,556 Summary of the Invention [Problem to be solved by the invention]
[0016] The present invention aims to provide a cleaning and disinfecting system and method that is more efficient than the prior art.
[0017] Another object of the present invention is to provide a cleaning and disinfecting system and method that is less aggressive to the mechanical components of the parts to be treated compared to prior art solutions.
[0018] It is yet another object of the present invention to provide a solution that minimizes the use of chemicals commonly used in cleaning and disinfecting.
[0019] Finally, the object of the invention is to provide a new solution that makes it possible to reduce the duration of cleaning and disinfection cycles inside the device. [Means for solving the problem]
[0020] These objects are achieved according to the invention by a system for cleaning and / or disinfecting dental or surgical tools, comprising a steam generator and a compressed air source, the cleaning and / or disinfecting system further comprising a flow regulator designed to inject moist steam and compressed air into at least one channel of the dental or surgical tool to be treated.
[0021] The advantage of the new system proposed according to the invention is that it makes it possible to avoid the accumulation of biofilm, blood and protein residues inside the tools to be treated, ensuring efficient automatic cleaning of the inside of dental equipment.
[0022] Another advantage of the new system proposed according to the present invention is that it can ensure substantially uniform disinfection of the entire dental appliance being treated, including the head (ie the front part of the tool).
[0023] A further advantage of the new system proposed according to the invention is that it limits the aging of mechanical parts such as ball bearings or joints (O-rings) and minimizes corrosion of metal parts compared to conventional automatic cleaning / disinfection procedures using high-temperature sterilizers or saturated or superheated steam sterilizers.
[0024] A further advantage of the new system proposed according to the present invention is that it eliminates or in any case minimizes the use of chemicals for cleaning and disinfecting operations.
[0025] A further advantage of the new system proposed according to the present invention is that it reduces the duration of the cleaning / disinfecting cycle inside the device.
[0026] According to a preferred embodiment, the system for cleaning and / or disinfecting dental or surgical tools comprises a fixed support for the dental or surgical tool to be cleaned and / or disinfected, the fixed support being provided with a coupling nose as an alternative to a motor part, through which a mixture of moist steam and air can be injected directly.
[0027] The advantage of such a solution is that it can be easily adapted to existing cleaning and disinfecting equipment by very simply adding a module that generates the desired wet steam and vapor flow, which is connected to the rear of the handpiece handle.
[0028] According to one variant of this preferred embodiment, in the system for cleaning and / or disinfecting dental or surgical tools, the stationary support is arranged in a sealed housing, which, on the one hand, makes it possible to easily position a tray for collecting water extracted from the dental or surgical equipment and waste and to easily retrieve them without the risk of splashing, and, on the other hand, makes it possible to add an air filtration system to avoid microbial contaminants being expelled outside the housing, thus optimizing the cleaning and disinfection procedures from a health perspective.
[0029] According to another variant of this preferred embodiment, the housing of the cleaning and / or disinfecting system for dental or surgical tools is equipped with a UVC light disinfection system.
[0030] The advantage of such a variant is that it ensures disinfection not only of the housing itself but also of the outer surface of the dental or surgical device, thus avoiding the risk of cross-contamination between devices that are cleaned and disinfected simultaneously or successively in the same housing.
[0031] According to another preferred embodiment, the system for cleaning and / or disinfecting dental or surgical tools further comprises a user interface allowing to determine at least one input parameter selected from among temperature, pressure, wet steam proportion and / or compressed air proportion.
[0032] The advantage of such a solution is that the desired mixture can be maximally optimized according to the mechanical or electrical constraints of the system to be cleaned / disinfected and / or the operating procedures (dental or surgical) performed before cleaning / disinfecting, and thus according to the regulatory needs to perform subsequent sterilization in an autoclave following cleaning / disinfecting.
[0033] According to another preferred embodiment, the flow regulator of the proposed system for cleaning and / or disinfecting dental or surgical tools comprises a first valve for the outlet of wet steam and a second valve for the outlet of compressed air, the second valve being self-regulating.
[0034] The advantages of such a solution are that it minimizes the number of system components, does not require a dedicated chamber to perform the mixing, and each of the air and steam flows can be supplied to the tool separately. Another advantage is that it maximizes the efficiency of the cleaning and disinfecting cycle, since it is not necessary to achieve thermodynamic equilibrium or quasi-equilibrium (i.e., steady state in time but maintained out of equilibrium by flows continuously arriving at the mixing chamber) of the air and steam mixture before injecting it into the tool to be treated.
[0035] According to one variant of this preferred embodiment, the flow regulating device of the proposed system for cleaning and / or disinfecting dental or surgical tools further comprises a bypass channel connected to said second valve, the bypass channel intended to convey an auxiliary compressed air flow to a pneumatic drive system which drives in rotation at least some of the rotating parts of the dental or surgical tool to be treated.
[0036] The advantage of such a solution is that, firstly, it optimizes the efficiency of the cleaning and disinfecting operation of the normally moving parts of the tool, and secondly, it performs this operation of rotating the parts without requiring a dedicated motor for this purpose, thus simultaneously optimizing the complexity and needs of the device in terms of power supply.
[0037] According to another preferred embodiment, the flow regulator of the proposed system for cleaning and / or disinfecting dental or surgical tools further comprises a mixing chamber for creating a mixture of moist steam and air, which can be delivered via a third valve.
[0038] The advantage of such a solution is that it imposes uniform conditions inside the equipment to be cleaned and disinfected in thermodynamic equilibrium or quasi-equilibrium (i.e., steady state in time but maintained out of equilibrium by the flows continuously arriving at the mixing chamber), thus optimizing the temperature, humidity and pressure conditions according to needs (flow rate, prioritizing cleaning effectiveness over disinfection effectiveness, etc.).
[0039] The invention further relates to a method for cleaning and / or disinfecting dental or surgical tools using the system for cleaning and / or disinfecting according to the invention, characterized in that it comprises a first step of generating a first flow of moist steam and a second step of generating a second flow of compressed air.
[0040] The advantage of such a cleaning and / or disinfection method is that the different steps can be combined in a flexible way, either sequenced in a completely sequential manner or between two variants carried out simultaneously.
[0041] However, according to a preferred embodiment, the method for cleaning and / or disinfecting dental or surgical tools according to the invention uses the first and second steps at least partly simultaneously, thus reducing the duration of the treatment cycle.
[0042] According to one preferred embodiment of the cleaning and / or disinfecting method, the wet steam comprises at least 10% water in the liquid phase in the form of droplets.
[0043] The advantage of this solution is that it defines a good compromise between the desired cleaning and disinfecting properties, since the steam particles are able to reach the most recessed and inaccessible areas and condense, dissolving residues and detaching biofilm, while the concentration of water in the steam phase at low temperatures and the size of the water particles ("droplets") make it possible to dissolve blood and proteins and move biofilm residues to the outside.
[0044] According to a preferred embodiment of the cleaning and / or disinfecting method according to the invention, the effective pressure of the mixture of wet steam and air is less than 4.5 bar, so as not to damage the tools being treated.
[0045] According to a preferred embodiment of the cleaning and / or disinfecting method according to the invention, the partial pressure of the compressed air fraction is 1.5-3 bar, so that thanks to the air contribution it is possible to maintain a uniform steam flow without having to increase the steam pressure excessively.
[0046] According to a preferred embodiment of the cleaning and / or disinfecting method according to the invention, the partial pressure of the wet steam is between 2 and 4 bar.
[0047] The advantage of such a solution is that the temperature at which the steam is generated increases with the applied pressure, so that a constant flow through the device can be maintained without causing excessive heating of the surfaces.
[0048] According to a preferred embodiment of the cleaning and / or disinfecting method of the present invention, the effect of the air is generally to cool the mixture, and the proportion of wet steam in the wet steam and air mixture is always higher than 50%, so that excessive steam pressures and temperatures do not have to be generated if one wishes to maintain the temperature within a range of values sufficient to carry out the cleaning and disinfecting operations (always around 100°C).
[0049] Other advantages and configurations will become more apparent from the following description of embodiments for implementing the invention, given as non-limiting examples and illustrated in the accompanying drawings, in which: FIG. [Brief explanation of the drawings]
[0050] [Figure 1] 1 is a diagram illustrating the operation of a cleaning and disinfecting apparatus according to a preferred embodiment of the present invention; [Figure 2] 2A and 2B are diagrams illustrating the operation of a cleaning and disinfecting device according to a variant of the preferred embodiment of FIG. 1; [Figure 3]10A-10D illustrate the operation of the cleaning and disinfecting apparatus according to another preferred embodiment of the present invention. [Figure 4] 1 illustrates several possible sequences for cleaning and disinfecting cycles according to the present invention. FIG. [Figure 5] FIG. 1 illustrates how a combination of water and wet steam can advantageously reduce the temperature of the mixture used to clean and disinfect the interior of a tool in the context of the present invention. DETAILED DESCRIPTION OF THE INVENTION
[0051] According to the current state of the art, the quality of steam or vapor with regard to disinfection has always been considered to be inversely proportional to the degree of humidity and inversely proportional to the pressure applied. In fact, humidity likely limits the amount of heat transferred to bacteria, while one of the advantages of pressure applied to steam has been that it can combine a thermal action with a mechanical cleaning action in conjunction with the mechanical energy of the high-pressure fluid.
[0052] Within the framework of the present invention, technological advances in the characterization of wet steam and mixtures of steam and compressed air are used to obtain a better knowledge of the size of water droplets in steam and to better control the thermodynamic balance of steam-water-air mixtures, thus 1. Mechanical cleaning action, 2. Chemical dissolution of organic residues, 3. Gentle detachment of biofilm from metal surfaces, 4. Uniform cleaning and disinfection characteristics throughout the entire device, from the rear to the head, thereby avoiding large temperature and humidity gradients; To achieve this simultaneously, the properties of a steam-water-air mixture, which have always been considered to be disadvantageous, have been exploited.
[0053] Indeed, the technical feasibility of mixing steam and air was already known in autoclave technology in the context of sterilization processes for devices already containing saline solutions or other substances, but in this case the objective is to be able to sterilize the outer casing of the component to be pressurized, which requires a constant pressure environment in which a partial vacuum must be created before the introduction of steam. However, in these systems, the mixing of air and steam is carried out under quasi-steady conditions, close to thermodynamic equilibrium (similar pressures and temperatures), precisely to avoid excessive pressure gradients and flows.
[0054] Below we will show how it is possible to overcome in particular the technical prejudice that the use of wet steam is unsuitable for both the cleaning and disinfection processes inside the parts being treated, and how it is possible to carry out a mixture that separately optimizes the pressure and temperature of the steam, even at or near the saturation level shown in the saturated vapor pressure curve in Figure 5, which will be described later, where there is a strict relationship between the pressure P and the temperature T.
[0055] FIG. 1 shows an operational diagram of a cleaning and disinfecting system 1000 according to a preferred embodiment of the present invention, which aims to inject wet steam 1 into the interior of dental instruments (tools 600) to be treated from their coupling (i.e., their rear), which essentially corresponds to the handle of a handpiece. According to this preferred embodiment, the coupling is formed by a standard coupling nose 506 mounted on a fixed support 500 arranged within a sealed housing 700 (i.e., separable from the outside). Here, the fixed support 500 of the housing 700 is provided for placing a single tool to be cleaned and disinfected (the speed of the operations performed by the system according to the present invention makes this possible). Alternatively, for reasons of economies of scale, it may be possible to place multiple tools to be cleaned and disinfected simultaneously if permitted by the type of clinical treatment (e.g., if all tools were used to treat the same patient). The housing 700 also preferably includes a disinfection system 701 using UVC light (a subset of ultraviolet light, spectral band "C") to disinfect the exterior of each tool to be treated and avoid mutual self-contamination. To facilitate the cleaning process of the enclosure 700 itself, a removable collection tray 702 is provided to collect water and waste extracted from the tool 600. An air filtration system (not shown) can also be provided to prevent microbial contaminants from being expelled outside the enclosure.
[0056] The present invention calls for the injection of compressed air 1 simultaneously with, or instead of, the injection of wet steam 2 into the dental device through the coupling portion, after which a mixture of air and wet steam 12 emerges from the tool head 600 on the right side of the figure.
[0057] 1, it can be seen that the first flow F1 of wet steam 1 and the second flow F2 of compressed air remain separated until they reach the delivery line to the device, which here is located inside the coupling nose 506 provided on the fixed support 500. There is therefore no mixing chamber for the two phases, which makes the implementation of the proposed cleaning and disinfecting system 1000 particularly simple and not very bulky. The first flow F1 of wet steam 1 is added to the second flow F2 of air to generate a "combined" flow F1+F2 inside the channels of the tool 600, which for example consists of a central cooling channel 601 and one or more spray channels 602 intended to carry air and / or water to the working area near the head of the tool 600. Therefore, at the inlet of the tool 600 to be treated, there is no thermodynamic equilibrium between the first flow F1 of wet steam 1, which is sent at a partial pressure whose value Pv is potentially different from the partial pressure Pa, and the second flow F2 of compressed air, which is also injected at a temperature generally close to ambient temperature (i.e., about 20 degrees) (i.e., much lower than the temperature of the steam, but rather closer to 100 degrees Celsius). However, this equilibrium can be approached at the head of the tool 600, so that at the level of the arrow emerging from the tool 600, the flow corresponding to the wet steam and air mixture 12 is indicated by the symbol FM, to which a pressure value Pe should be applied. This pressure value Pe corresponds to a pressure that can be defined at the user interface 300 of the upstream flow regulator 400 and defines the effective pressure of the mixture (i.e., taking into account not only the partial pressures of the air and vapor phases, but also their respective proportions and volumes in the mixture).
[0058] The user interface 300 preferably also comprises an input interface, such as a control element, such as a button or a touch screen, and a display module for confirming the input before activating the setting. According to the described preferred embodiment, an effective pressure value Pe is preferably selected, which can define a suitable temperature for the cleaning and disinfecting operation depending on the proportion of steam and compressed air in the mixture. Nevertheless, the input parameters are not limited to the effective pressure value Pe, but can also include a temperature value T°, and can also adjust the percentages related to the compressed air proportion 20 and the wet steam proportion 10.
[0059] The flow control device 400 comprises a steam generator 100, an integrated or external compressed air source 200, a first valve 401 at the outlet of which a first flow F1 of wet steam 1 is generated, and a second valve 402 at the outlet of which a second flow F2 of compressed air is generated. The opening and closing of each of these valves is performed according to a control step, for example, using an associated sensor or simply using a programmable timer predefined as a function of a control parameter (effective pressure Pe, temperature T°, or moisture content of the steam). In FIG. 1, the steam pressure control step is called step S1, and the compressed air pressure control step is called step S2. However, it can be seen from this figure that the second control step S2 is actually dependent on the first control step S1, since, according to this preferred embodiment, by selecting the effective pressure value Pe of the mixture 12 containing wet steam and air, for a given ratio of air to wet steam, the partial pressure Pa of the air is automatically determined by the partial pressure Pv of the steam. In other words, in this case, the second valve 402 is self-adjusted according to the first valve 401 (hence according to the arrow indicating the connection between the two control steps S1, S2, as well as the dotted arrow indicating the positioning of the second valve 402 relative to the first valve 401).
[0060] Figure 2 shows another preferred embodiment of a cleaning and / or disinfection system 1000 of the present invention, which is a variant of the first embodiment of Figure 1. For simplicity's sake, not all common elements will be described in detail again, and in particular the left side of the figure relates to an entirely identical flow control device 400.
[0061] The improvement of the cleaning and / or disinfection system 1000 proposed according to this variant consists in providing a bypass channel 405 at the outlet of the second valve 402, allowing the compressed air 2 to be sent simultaneously to two separate pipes: one identical to the previous one for carrying the second flow of compressed air F2 to the tool, and the other carrying an auxiliary compressed air flow F2' intended to perform the drive function of certain rotating parts of the tool. Thus, while the first pipe brings the second compressed air flow F2 together with the first wet steam flow F1 inside the coupling nose 506 and passes through the spray pipes 602 and cooling channels 601 of the tool, the generated auxiliary compressed air flow F2' is sent through the bypass channel 405 with an air partial pressure of a value Pa that is a priori identical to the air partial pressure injected into the coupling nose 506 of the tool mounting device in order to operate the pneumatic drive 501 (e.g., a propeller turbine) mechanically connected to the fixed support 500. The action of compressed air allows the coupling nose support 506 to rotate slowly, thus via a mechanical link, a straight handpiece or a gear chain of a contra-angle. And if the support 500 comprises several coupling noses 506 intended to receive several tools 600 to be processed, it will then be possible to provide each coupling nose 506 with its own drive 501, i.e., to effectively rotate each of the gear chains of each tool 600. To do this, several kinematic chains can be mechanically connected in parallel to the same propeller, or a specific air flow can be supplied via a bypass to the propellers each connected to the corresponding coupling nose 506.
[0062] According to the above method, steam and air are injected directly into the pipe leading to the tool 500 to be cleaned / disinfected, thus creating a mixture that is not in thermodynamic equilibrium. This configuration requires fewer components, but is not optimal in terms of the homogeneity of the resulting mixture.
[0063] A further preferred embodiment is described below, which includes a mixing chamber separated from the pipe opening to the tool 500 to be cleaned / disinfected. In this case, the wet steam / air mixture 12 can achieve a steady state close to thermodynamic equilibrium or at least quasi-equilibrium (by balancing the pressure and temperature of the components in a ratio close to 1, e.g., 0.7-1.3), which allows for the optional recovery of some of the condensed water before injecting the mixture containing air and wet steam (a combination of saturated steam and suspended water droplets or "droplets"), as well as at least a portion of the water in the form of droplets that are not in suspension, into the tool. This requires the presence of a system for regulating the pressure of the mixture injected into the device, but also allows for more precise regulation of the flow rate of the cleaning / disinfecting mixture.
[0064] An operational diagram of one such embodiment is shown in Figure 3. With respect to the previous Figure 2, only the elements that differ from Figure 1 will be described in detail, with reference to Figure 1 for all common elements.
[0065] As seen on the left side of FIG. 3, a steam generator 100 and a compressed air source 200, either integrated with or external to the flow control device 400, deliver a first flow F1 of wet steam 1 and a second flow F2 of compressed air to a two-phase mixing chamber 404. Here, the effective pressure P of the wet steam-air mixture 12 can be selected via the user interface 300, and a third flow Fm corresponding to the wet steam-air mixture 12 is generated at the outlet of the third valve 403, followed by a third step S3 of controlling the pressure of this wet steam-air mixture and / or a programmable time delay defined by an adjustable parameter. This third flow Fm of the wet steam-air mixture 12 is introduced in thermodynamic equilibrium into the pipes (cooling channel 601 and spray channel 602) of the tool to be treated at the height of the coupling nose 506. This embodiment is easier to control since it no longer involves self-regulation of the air pressure and makes it possible to obtain a more homogeneous mixture inside the fluid supply line to the device being treated (i.e., tool 600 and thus the tool itself), but due to the volume of the mixing chamber it is clearly less compact in terms of space requirements than the first embodiment described in relation to Figure 1.
[0066] Although not shown, a variant similar to that shown in Figure 2 can be provided for this mode of implementation by supplying compressed air directly to the support of the tool or tools to be treated in order to create a rotational movement under the pneumatic action of the turbine. Nevertheless, a bypass channel must be placed upstream of the mixing chamber 404.
[0067] FIG. 4 shows three non-limiting examples of wet steam 1 and compressed air 2 pressure profiles. In embodiment (A) corresponding to the diagram above, air 2 and wet steam 1 are introduced consecutively, i.e. one after the other without overlap in time, i.e. first compressed air 2 is introduced to cool the dental / surgical equipment, then wet steam 1 is introduced to clean it, after which compressed air 2 is again introduced to dry and cool the tool again. In the embodiment (B) corresponding to the central diagram, air 2 and wet steam 1 are not introduced simultaneously, but with at least a partial temporal overlap. The pressures of air 2 and wet steam 1, as well as the ratio between them, are not constant throughout the process; in the described cases, this ratio varies from values smaller than 1 to values larger than 1. In Example (C) corresponding to the diagram below, air 2 and wet steam 1 are introduced almost simultaneously (with a time overlap of 90% or more).
[0068] Figure 4 shows a first step E1 corresponding to the generation of a first flow F1 of wet steam 1, which is injected directly or indirectly onto the tools to be cleaned and / or disinfected, as shown in Figures 1 to 3, and a second step E2 corresponding to the generation of a second flow F2 of compressed air 2. These two steps can be timed relative to one another as required.
[0069] When wet steam 1 and air 2 are produced via simultaneous flow, a mixture 12 containing wet steam and air is achieved, the thermodynamic properties of which can be summarized as follows: 1. P=Pa+Pv: The total pressure is the sum of the two pressures. 2. Pe = PVv / (Vv + Va): The effective pressure of the wet steam and air mixture 12 is reduced relative to the total pressure by a factor that depends on the volumes of the two fluids (air and steam, respectively, whose volumes are Va and Vv).
[0070] These two relationships above show that it is possible to obtain steam at a lower temperature and at a higher pressure. For example, a mixture consisting of two-thirds steam at 3 bar (absolute) and one-third air at 1.5 bar (absolute) will produce a 4.5 bar mixture at approximately 134°C, which is ideal for sterilization without causing excessive heating of the equipment being sterilized, whereas pure steam at 4.5 bar will reach temperatures approaching 150°C, which may be harmful to certain machine parts.
[0071] An example of this is shown in Figure 5, which shows two saturated vapor pressure curves, one for saturated vapor 1 and one for a mixture containing saturated vapor and compressed air 12. For each of these curves, there is a strict relationship between pressure P and temperature T°, which corresponds to the boundary line corresponding to the phase change between the liquid phase "L" and the vapor phase "V". The CV curve for pure saturated steam starts at 100°C at atmospheric pressure of 1 bar and reaches just under 150°C at a pressure of 4.5 bar [the coordinate point on this curve indicated by the square (X1, Y1)]. The CVm curve for a mixture containing a portion of wet steam 10 equal to 66.6% and a portion of compressed air 20 equal to 33.3%, forming a wet steam-air mixture 12, starts at about 90°C at atmospheric pressure and reaches only 134°C at a pressure of 4.5 bar [coordinate point (X3, Y3) on this curve, indicated by a triangle], which corresponds to saturated steam at a pressure of 3 bar [coordinate point (X2, Y2) on the preceding curve CVs, indicated by a circle].
[0072] It is therefore easy to see that the pressure-temperature curve for a mixture containing 33% compressed air is approximately 15°C lower than the curve for pure saturated steam CVs. Thus, a mixture of 3 bar wet steam and 1.5 bar air could achieve a comparable pressure without excessively increasing the temperature (thus maximizing the mechanical effectiveness of cleaning), and without significantly exceeding normal sterilization / disinfection temperatures (149°C compared to 134°C). The arrow pointing from the CVs curve to the roughly downward-sloping CVm curve shows how this beneficial temperature reduction is achieved due to the shift in the pT° relationship between these two curves.
[0073] From the above, it can be seen that using this technique of "diluting" wet steam with air, it is possible to obtain a wet steam / air mixture 12 for cleaning close to 100°C by correspondingly increasing the pressure and further increasing the air contribution in the mixture, i.e., increasing the proportion of compressed air 20. However, to maintain working conditions that maintain a temperature high enough to maintain effective disinfecting properties but without generating excessive pressures that could damage the tools being treated, the proportion of wet steam 20 must always be greater than 50%. For the same reason, the effective pressure Pe of the mixture must be less than 4.5 bar, and the partial pressure corresponding to the wet steam proportion 10 must always be less than 4 bar. According to a particularly preferred embodiment, the proportion of wet steam 20 is between 50% and 66% of the total mixture.
[0074] Furthermore, to maximize the cleaning properties of the resulting wet steam and air mixture 12, it may be possible to obtain wet steam 1 containing at least 10% water in the liquid phase in the form of droplets. In other words, it will be slightly below the curve defining the saturated vapor pressure of the mixture 12, on the side where the liquid phase is expected to prevail again. The downward arrow and "L" indicate the direction of phase change towards the liquid phase, while the upward arrow and "V" indicate the opposite direction of phase change towards the vapor phase; dry steam 1' in fact corresponds to the part of the overall diagram located above the saturated vapor pressure curve.
[0075] Within the scope of the present invention, it is also possible to add, following the cleaning / disinfection stage, a pure disinfection step carried out by injection of superheated dry steam or a mixture of superheated dry steam and compressed air, the properties of which mixture are defined according to the procedure described in Figure 5. Indeed, after efficient cleaning, the disinfection efficiency of superheated dry steam is significantly improved, allowing a better preservation of the dental or surgical tools to be treated using moderate pressure values, usually below 4.5 bar, advantageously below 3.5 bar.
[0076] Advantageously, the cleaning and disinfecting device can be equipped with an integrated water tank which is filled with distilled, demineralized or tap water, if its hardness permits. In this case, the optimal volume of the water tank is 0.3 to 0.7 liters, in order to optimize the number of cleaning / disinfecting operations that can be carried out before filling the tank (optimally filling once a week, at a rate of 30 cleaning / disinfecting operations per day) and to minimize the dimensions of the device.
[0077] A detailed description of the operation of the new system proposed according to a preferred embodiment has been given in the case of a coupling nose for a contra-angle or straight handpiece. If the tool to be cleaned and disinfected is a turbine, the only difference concerns the shape of the coupling nose, which takes the form of a turbine coupling, and the means for actuating the rotor, which in this case is actuated simply by the passage of a pressurized fluid (wet steam, compressed air, or a mixture of the two fluids).
[0078] Thus, from the above description, it will be appreciated that the surgical dental tool 600 being treated can be either a contra-angle, a straight handpiece, or a turbine.
[0079] Furthermore, in the context of the present invention, reference is made to a steam generator 100 for generating a first wet steam flow F1 that is injected directly or indirectly, i.e. via prior mixing with a second air flow F2 or without mixing, onto the tool 600 to be treated. It will be understood that such a steam generator 100 is not limited to saturated wet steam generators but can also comprise at least partially dry steam generators, provided that the resulting steam flow injected onto the tool or exiting the head of the tool contains wet steam, the basic idea of the present invention being the very use of wet steam for cleaning and / or sanitizing operations, and not only dry steam.
[0080] The embodiments of the present invention are as follows. [Item 1] A system (1000) for cleaning and / or disinfecting a dental or surgical tool (600), comprising: The cleaning and / or disinfection system (1000) comprises a steam generator (100) and a compressed air source (200); The cleaning and / or disinfection system (1000) further comprises a flow regulator (400) designed to inject moist steam (1) and compressed air (2) into at least one channel of the dental or surgical tool (600) to be treated, system (1000). [Item 2] a stationary support (500) for said dental or surgical tool (600) to be cleaned and / or disinfected, The fixed support (500) has a coupling nose (506) as a substitute for a motor part, 2. A system (1000) for cleaning and / or disinfecting a dental or surgical tool (600) according to claim 1, characterized in that the mixture (12) of the moist steam (1) and the compressed air (2) can be injected directly through the coupling nose (506). [Item 3] 3. A system (1000) for cleaning and / or disinfecting a dental or surgical tool (600) according to item 2, characterized in that the fixed support (500) is arranged in a sealed housing. [Item 4] 4. A system (1000) for cleaning and / or disinfecting dental or surgical tools (600) according to item 3, wherein the housing is equipped with a UVC light disinfection system (701). [Item 5] 5. A system (1000) for cleaning and / or disinfecting a dental or surgical tool (600) according to any one of items 1 to 4, characterized in that it further comprises a user interface (300) that allows determining at least one input parameter selected from the group consisting of temperature, pressure, wet steam proportion (10) and / or compressed air proportion (20). [Item 6] 6. A system (1000) for cleaning and / or disinfecting a dental or surgical tool (600) according to any one of items 1 to 5, characterized in that the flow regulator (400) comprises a first valve (401) for the outlet of wet steam (1) and a second valve (402) for the outlet of compressed air (2), the second valve (402) being self-regulating. [Item 7] Item 6. A system (1000) for cleaning and / or disinfecting a dental or surgical tool (600) according to item 6, characterized in that the flow regulator (400) further comprises a bypass channel (405) connected to the second valve (402), the bypass channel being intended to convey an auxiliary compressed air flow (F2') to a pneumatic drive system (501) that drives rotation of at least some of the rotating parts of the dental or surgical tool (600). [Item 8] 6. A system (1000) for cleaning and / or disinfecting a dental or surgical tool (600) according to any one of items 1 to 5, characterized in that the flow control device (400) further comprises a mixing chamber (404) for creating a mixture (12) of the moist steam (1) and the compressed air (2), which can be delivered via a third valve (403). [Item 9] 9. A system (1000) for cleaning and / or disinfecting a dental or surgical tool (600) according to any one of items 1 to 8, characterized in that the flow regulator (400) is designed to at least partially simultaneously inject the moist steam (1) and the compressed air (2) into at least one channel of the dental or surgical tool (600) to be treated. [Item 10] 10. A method for cleaning and / or disinfecting a dental or surgical tool (600) using a system for cleaning and / or disinfecting (1000) according to any one of items 1 to 9, characterized in that it comprises a first step (E1) of generating a first flow (F1) of moist steam (1) and a second step (E2) of generating a second flow (F2) of compressed air (2). [Item 11] 11. A method for cleaning and / or disinfecting a dental or surgical tool (600) according to item 10, wherein the first step (E1) and the second step (E2) are carried out at least partly simultaneously. [Item 12] 12. A method for cleaning and / or disinfecting a dental or surgical tool (600) according to item 10 or 11, wherein the moist steam (1) comprises at least 10% water in the liquid phase in the form of droplets. [Item 13] 13. The method for cleaning and / or disinfecting a dental or surgical tool (600) according to any one of items 10 to 12, wherein the effective pressure of the mixture (12) of the moist steam (1) and the compressed air (2) is less than 4.5 bar. [Item 14] 14. The method for cleaning and / or disinfecting a dental or surgical tool (600) according to any one of items 10 to 13, characterized in that the partial pressure of the compressed air (20) is between 1.5 and 3 bar. [Item 15] 15. The method for cleaning and / or disinfecting a dental or surgical tool (600) according to any one of items 10 to 14, characterized in that the partial pressure of the wet steam (10) is between 2 and 4 bar. [Item 16] 16. The method for cleaning and / or disinfecting a dental or surgical tool (600) according to any one of items 10 to 15, characterized in that the wet steam proportion (10) in the mixture (12) of the wet steam (1) and the compressed air (2) is greater than 50%.
Claims
[Claim 1] A system (1000) for cleaning and / or disinfecting a dental or surgical tool (600), comprising: The cleaning and / or disinfection system (1000) comprises a steam generator (100) and a compressed air source (200); The cleaning and / or disinfection system (1000) further comprises a flow regulator (400) designed to inject moist steam (1) and compressed air (2) into at least one channel of the dental or surgical tool (600) to be treated.
Citation Information
Patent Citations
EP1,768,597
Device for Disinfecting, Sterilizing and / or Maintaining Medical, Especially Dental, Instruments
US20120298151A1
Method for the hygienic preparation of medical instruments
US5723090A
Apparatus for operational cleaning of dental handpieces
US6368556B1