09-0090R
09-0090R
Page 1U.S. Deportment of Transportation Pipeline and Hazardous Materials Safety Administration NOV 2 5 2009 1200 New Jersey Avenue. SE Washington, DC 20590 Mr. Paul D. Johnson Director of Environmental Affairs Kinbursky Brothers Supply, Inc. 1314 N. Anaheim Blvd. Anaheim, CA 92801 Ref. No. 09-0090R Dear Mr. Johnson: Recently, our Office issued several letters, including our June 23, 2009 letter (Ref. No. 090090) responding to your request, regarding the applicability of the Hazardous Materials Regulations (HMR; 49 CFR Parts 171-180) to the transport of used or spent dry cell batteries. This letter supersedes the response given in our June 23, 2009 letter. After further consideration and analysis ofdry battery chemistries and sizes and based on information available to us, it is the opinion ofthis Office that used or spent dry, sealed batteries of both non-rechargeable and rechargeable designs, described as "Batteries, dry, sealed, n.o.s." in the Hazardous Materials Table in § 172.101 of the HMR and not specifically covered by another proper shipping name, with a marked rating up to 9-volt are not likely to generate a dangerous quantity of heat, short circuit, or create sparks in transportation. Therefore, used or spent batteries ofthe type "Batteries, dry, sealed, n.o.s." with a marked rating of9-volt or less that are combined in the same package and transported by highway or rail for recycling, reconditioning, or disposal are not subject to the HMR. Note that batteries utilizing different chemistries (i.e., those battery chemistries specifically covered by another proper shipping name) as well as dry, sealed batteries with a marked rating greater than 9-volt may not be combined with used or spent batteries ofthe type "Batteries, dry, sealed, n.o.s." in the same package. Note also, that the clarification provided in this letter does not apply to batteries that have been reconditioned for reuse. I hope this information is helpful. If you have further questions, please contact this office. Charles E. Betts, hief, Standards Development o flee of Hazardous Materials Standards#
Page 2E ichen l ~ l o 3 172* I&? s P / 3 6 3 173.21 '13a-14-efy 09'- 60TO April 16,2009 K I N S B U R S K Y BROTHERS I N C U.S. DOT PHMSA Office of Hazardous Materials Standards Attn: PHH-I 0 U.S. Department of Transportation East Building 1200 New jersey Avenue, SE. Washington, DC 205904001 RE: 49 CFR 5 172. I 02 Special Provision 130, 5 173.21. Dear Sirs, I am writing on behalf of Kinsbursky Brothers Inc (KBI) and Toxco Inc (Toxco) to requests the Department's interpretation and applicability of 49 CFR 5 172.102 Special Provision 130 and i 73.2 1 to spent alkaline dry cell batteries being shipped for recycling or disposal. Background Each year KBI and Toxco receive, sort, and package more than one million pounds of spent, used, dry cell alkaline batteries from households, businesses, municipalities, government offices and commercial retail operations in the US and Canada. These batteries power a variety of pertable electronic products including, calculators, keyboards, radios, toys, flashlights and cameras. These batteries are sorted and repackaged for shipment by truck or rail for recycling, metal recovery, or waste management at offsite facilities. These dry-cell batteries are currently shipped using one of the following classifications described in the Hazardous Materials Regulations (HMR; 49 CFR Subtitle B, Chapter I, Subchapter C, part 172.10 1): 1 I Hazard I 1 Packing 1 - I Proper shipping name class Batteries dry containing potassium 8 ID UN3028 group 111 hydroxide solid Batteries, dry, sealed, n.0.s. * -- -- -- *applicable when special provision 130 is met. I Impact of special Provision 130 on the battery recycling industry It appears that the HMR does not expressly take into account the low risk associated with spent dry cell alkaline batteries collected for recycling and disposal. Spent dry cell alkaline batteries are by definition used and inherently contain low electrical energy density (even when fully charged). Our observatioiis and experience is that spent alkaline batteries contain only low voltages if measurable at all. 'it is worth noting that by insulating any one terminal of any single battery cell you effectively eliminate the possibility of a circuit since at least three batteries oriented in series (positive to negative) are necessary to create a circuit.#
Page 3The requirements of SP 130 are significantly proSlematic for interim handlers and processors of end of life spent alkaline batteries being sent for disposal or recycling. Excessive tape, plastic bags, and coatings commonly applied to these types of cells often require removal of the insulation to identifji the chemistry d u r i ~ g the receiving and sortation process. Once batteries are un-insulated, identified and sorted; and material is to be prepared for transport to a destination recycling/disposal facility the batteries must be insulated once agair? for transportation. During sorti~g large format or rncltiple cell batteries and other chemistries are removed and segregated from the dry cell alkaline batteries. This ensures the segregated material is appropriate for the specific processors and that the material being shipped wili not contain any of the battery chemistries that represent a potentiai transportation risk. Upon receipt a1 the final recycling facility the processing facility may be required remove the insulation from each battery cell prior to introduction to a furnace or a chemical process since the added tape, plastic and coating may not confonn to pollution control requirements or end-process tolerances at the destination facility. So~porting Data On March 24th, 2009 KBI technicians conducted experiments mimicking a worst case scenario of a short circuit of dry cel: alkalice batteries during transportation. Using common dry cell alkaline batteries a circuit was crezted in an attempt to determine if dry cell aikaline batteries are capable of generaticg a dangerous amount of heat during transportation. It was determined that this type of battery, when subjected to conditions incidental to transportation without insulation of the cell terminals is not capable of creating a dangerous evolution of heat. Our tests were conducted using 12,new D cell batteries fastened end-to-end (positive to negatike) on an adhesive strip and pIaced in-series. A ten gauge insulated copper wire (see figs land 2 below), was then affixed to the positive side of the battery chain, and the negative side of the battery chain. Additional tests using randomly selected spent batteries were also conducted yielding equivalent results (though expectedly producing less voltage and no measurable heat increase). As the data indicate neither test group produced significant voltage nor generated enough heat to pose a risk during transportation. Figl . New, fully charged batteries Fig 2. 19.4 volt circuit at 73' F. P 7 1 4 . 7 3 8 . 8 5 1 6#
Page 4During the tests the voltages were periodically measured using a standard hand held eiectricians volt meter; the temperature was monitored throughout the experiment using a hand-heid Raytek Ryanger thermal- meter. The rests were conducted on a steel table and voltage and temperature were monitored for a period of 80 minutes. Once the batteries were aligned in series and the lOguage wire was connected the voltage of circuit immediately decrezsed from 19.4 to .6v and the temperature of the cells began to slowly increase. This is recorded in Table 1 below. The temperature of the cells increased, peaking 19 minutes into the experiment, until reaching a maximum temperzture 2t cell numbers 5, 6 and 8 of 229 degrees F at which point continued thermal reading indicated a steady declination of the cell temperatures until the conclusion of the test 61 minutes later. Table 1 12 new D cell alkaline batteries zmbient temperature 73 degree Fahrenheit 19.4 volt circuit at start Time :0:21 10:24 i0:26 10:30 10:35 10:40 10:45 1050 11:05 11:22 11:30 Circuitvoltage 0 . 6 ~ 0 . 5 ~ 0 . 2 ~ 0 . 2 ~ 0 . 2 ~ 0 . 2 ~ 0 . 2 ~ 0 . 2 ~ 0 . 2 ~ 0 . 2 ~ 0 . 2 ~ Temp cell ! 79 104 124 165 202 207 170 144 126 97 90 Temp cell 2 82 109 131 175 195 180 178 120 133 106 59 Temp cell 3 83 i07 127 173 189 170 107 151 135 109 101 Temp cell 4 84 109 127 168 208 208 185 160 160 104 106 Temp cell 5 85 109 120 174 209 229 155 i30 160 106 100 Temp cell 6 84 109 125 170 209 229 150 132 130 101 96 Temp cell 7 84 103 125 170 205 216 135 150 137 106 96 Temp cell 8 87 109 130 175 210 229 150 149 131 104 96 Temp celi 9 85 109 130 177 207 220 135 130 122 98 9 1 Temp cell 10 8 8 109 126 180 213 225 198 178 122 108 99 Temp cell 11 88 111 131 176 203 210 178 160 124 105 99 Temp cell 12 90 103 125 171 203 200 185 154 114 93 90 An additional experiment was conducted using spent dry cell batteries randomly selected from the containers received at KBI (see fig 3 below). The test was conducted under identical parameters however, the circuit created by the used batteries had an initial voltage of O.Ov and remained constant throughout the experiment. Fig 3. used batteries 0.0 v.#
Page 5Used cells displayed an individual voltage ranging from 0.0 to 1.5 volts. Test 2 was conducted later in the day when the ambient temperature measured approximately 80" F. During this pnase of the experiment the used cells Cad a cell surface temperature ranging from 73 and 75 degrees and showed only negligible indicztions of iilcreasing through out the duration of the tests (some of which can be attributed to the rising ambient temperature). Since no significant increase in temperature was obseweci the test was concluded after 13 minutes. See table 2. Table 2 ( i2 D cell spent alkaline batteries ambient temperature 79 degree Fahrenheit 0.0 volt circuit at start Time 11:17 11:23 Circuit Voltage 0 . 0 ~ 0 . 0 ~ Temp cell 1 7 5 75 Temp cell 2 74 77 Temp cell 3 75 75 Temp cell 4 74 75 Temp cell 5 74 74 Temp cell 6 74 75 Temp cell 7 74 74 Temp cell 8 74 74 Temp cell 9 74 74 Temp cell 10 73 74 ' Temp cell 1 1 74 74 Temo'cel! 12 75 77 Further tests using a mixt~ire of new and used bztteries were conducted on April 8th during a demonstration for traasportation inspectors and similar; if not identical results to test number two were obtained. That is to say that a mixture of new and used dry cell alkaline batteries did not result in a significant increase in temperature and did not generate any measurable voltage after the initial measurement of the circuit. Conclusions 1) The above battery test shows that if a long chain of spent battery cells were to align positive to negative, as demonstrated in our experiment, the resulting circuit does not result in the dangerous evolution of heat. Furthermore, as the results of these experiments and the assembled data contained herein indicate, even brand new batteries purposely wired in such a circuit do not produce enough heat to ignite any of the constituents of dry cell alkaline batteries or any plastic or paper packaging that may be associated with the container. Based on the experiences of receiving, handling and shipping millions of pounds of spent dry cell alkaline batteries over the past 20 years; we strongly believe that alkaline batteries do not represent a safety risk during transportation. Typically, spent batteries are offered for over the road transportation in containers ranging from 5 to 55 gallons in volume. During conditions incidental to transportation these containers are certainly subjected to vibrations and jostling within the transport vehicle. This movement makes it implausible that an adequate number of battery cells could link together end-to-end during the random orientation of cells within a container to create a similar, or larger, circuit as the one demonstrated in our experiments. During the handling of spent dry cell alkaline batteries within the facility KBI stores the cells in large cubic yard tote bins prior to insulation and packaging for off-site shipment.#
Page 6KBI has monitored these bins with the same hand he!d thermal meter used in our experiments and even when thoroughly agitated by dumping or shoveling the batteries, there is no measurable increase in temperature. 3) The transportation of dry cell batteries being shipped for recycling or disposal are subject to wide variations of temperatures in the mode of transportation. Dry cell batteries are commonly stored in steel drums and in direct sunlight. In certain geographic areas high ambient temperatures can surpass 120 degrees F. It is reasonable that a 55 gallon steel drum of dry cell battzries being stored Gr transported in temperatures of 120 degrees or greater can have an interns1 temperature closer to 20G degrees. Even If the internal temperature of a container exceeds 100 degrees F, it has exceeded the temperature of the spent test batteries used in this test. Request for Concurrence KBI seeks the depzrtment's concurrence that based on the above testing, and the design and chemical composition of spent dry cell alkaline batteries that spent batteries, by design are incapable of generating a dangerous evolution of heat, when being transported for disposal and or recycling. As shown by the test data, if you concur, then our interpretation of 45 CFR 173.2 1(c) and Special Provision 130 allow for the shipment of spent dry cell a!kaline batteries without further preventative measures as spent dry cell alkaline britteries d~ not represent a risk of the danger~us evolution of heat during transportation and that adequate safety measures as prescribed by 49 CFR 173.2 1(c) and Special Provision 130 are met by the inherent design characteristics of these spent batteries. Please contact my office with any comments or questions. ( Director of'-mental Affairs Kinsbursky Brothers Supply Inc.#
This material provides agency context. It does not replace binding regulatory text, and its legal effect depends on the underlying authority and facts.